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if_bnx.c revision 1.43
      1  1.43       jym /*	$NetBSD: if_bnx.c,v 1.43 2011/05/02 09:03:10 jym Exp $	*/
      2  1.29    bouyer /*	$OpenBSD: if_bnx.c,v 1.85 2009/11/09 14:32:41 dlg Exp $ */
      3   1.1    bouyer 
      4   1.1    bouyer /*-
      5   1.1    bouyer  * Copyright (c) 2006 Broadcom Corporation
      6   1.1    bouyer  *	David Christensen <davidch (at) broadcom.com>.  All rights reserved.
      7   1.1    bouyer  *
      8   1.1    bouyer  * Redistribution and use in source and binary forms, with or without
      9   1.1    bouyer  * modification, are permitted provided that the following conditions
     10   1.1    bouyer  * are met:
     11   1.1    bouyer  *
     12   1.1    bouyer  * 1. Redistributions of source code must retain the above copyright
     13   1.1    bouyer  *    notice, this list of conditions and the following disclaimer.
     14   1.1    bouyer  * 2. Redistributions in binary form must reproduce the above copyright
     15   1.1    bouyer  *    notice, this list of conditions and the following disclaimer in the
     16   1.1    bouyer  *    documentation and/or other materials provided with the distribution.
     17   1.1    bouyer  * 3. Neither the name of Broadcom Corporation nor the name of its contributors
     18   1.1    bouyer  *    may be used to endorse or promote products derived from this software
     19   1.1    bouyer  *    without specific prior written consent.
     20   1.1    bouyer  *
     21   1.1    bouyer  * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS "AS IS'
     22   1.1    bouyer  * AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     23   1.1    bouyer  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     24   1.1    bouyer  * ARE DISCLAIMED.  IN NO EVENT SHALL THE COPYRIGHT OWNER OR CONTRIBUTORS
     25   1.1    bouyer  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
     26   1.1    bouyer  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
     27   1.1    bouyer  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
     28   1.1    bouyer  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
     29   1.1    bouyer  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
     30   1.1    bouyer  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF
     31   1.1    bouyer  * THE POSSIBILITY OF SUCH DAMAGE.
     32   1.1    bouyer  */
     33   1.1    bouyer 
     34   1.1    bouyer #include <sys/cdefs.h>
     35   1.1    bouyer #if 0
     36   1.1    bouyer __FBSDID("$FreeBSD: src/sys/dev/bce/if_bce.c,v 1.3 2006/04/13 14:12:26 ru Exp $");
     37   1.1    bouyer #endif
     38  1.43       jym __KERNEL_RCSID(0, "$NetBSD: if_bnx.c,v 1.43 2011/05/02 09:03:10 jym Exp $");
     39   1.1    bouyer 
     40   1.1    bouyer /*
     41   1.1    bouyer  * The following controllers are supported by this driver:
     42   1.1    bouyer  *   BCM5706C A2, A3
     43  1.29    bouyer  *   BCM5706S A2, A3
     44  1.20    mhitch  *   BCM5708C B1, B2
     45  1.29    bouyer  *   BCM5708S B1, B2
     46  1.29    bouyer  *   BCM5709C A1, C0
     47  1.40       jym  *   BCM5709S A1, C0
     48  1.29    bouyer  *   BCM5716  C0
     49   1.1    bouyer  *
     50   1.1    bouyer  * The following controllers are not supported by this driver:
     51   1.1    bouyer  *
     52   1.1    bouyer  *   BCM5706C A0, A1
     53  1.29    bouyer  *   BCM5706S A0, A1
     54   1.1    bouyer  *   BCM5708C A0, B0
     55  1.29    bouyer  *   BCM5708S A0, B0
     56  1.29    bouyer  *   BCM5709C A0  B0, B1, B2 (pre-production)
     57  1.40       jym  *   BCM5709S A0, B0, B1, B2 (pre-production)
     58   1.1    bouyer  */
     59   1.1    bouyer 
     60   1.1    bouyer #include <sys/callout.h>
     61  1.29    bouyer #include <sys/mutex.h>
     62   1.1    bouyer 
     63   1.1    bouyer #include <dev/pci/if_bnxreg.h>
     64  1.36       jym #include <dev/pci/if_bnxvar.h>
     65  1.36       jym 
     66   1.1    bouyer #include <dev/microcode/bnx/bnxfw.h>
     67   1.1    bouyer 
     68   1.1    bouyer /****************************************************************************/
     69   1.1    bouyer /* BNX Driver Version                                                       */
     70   1.1    bouyer /****************************************************************************/
     71  1.29    bouyer #define BNX_DRIVER_VERSION	"v0.9.6"
     72   1.1    bouyer 
     73   1.1    bouyer /****************************************************************************/
     74   1.1    bouyer /* BNX Debug Options                                                        */
     75   1.1    bouyer /****************************************************************************/
     76   1.1    bouyer #ifdef BNX_DEBUG
     77   1.1    bouyer 	u_int32_t bnx_debug = /*BNX_WARN*/ BNX_VERBOSE_SEND;
     78   1.1    bouyer 
     79   1.1    bouyer 	/*          0 = Never              */
     80   1.1    bouyer 	/*          1 = 1 in 2,147,483,648 */
     81   1.1    bouyer 	/*        256 = 1 in     8,388,608 */
     82   1.1    bouyer 	/*       2048 = 1 in     1,048,576 */
     83   1.1    bouyer 	/*      65536 = 1 in        32,768 */
     84   1.1    bouyer 	/*    1048576 = 1 in         2,048 */
     85   1.1    bouyer 	/*  268435456 =	1 in             8 */
     86   1.1    bouyer 	/*  536870912 = 1 in             4 */
     87   1.1    bouyer 	/* 1073741824 = 1 in             2 */
     88   1.1    bouyer 
     89   1.1    bouyer 	/* Controls how often the l2_fhdr frame error check will fail. */
     90   1.1    bouyer 	int bnx_debug_l2fhdr_status_check = 0;
     91   1.1    bouyer 
     92   1.1    bouyer 	/* Controls how often the unexpected attention check will fail. */
     93   1.1    bouyer 	int bnx_debug_unexpected_attention = 0;
     94   1.1    bouyer 
     95   1.1    bouyer 	/* Controls how often to simulate an mbuf allocation failure. */
     96   1.1    bouyer 	int bnx_debug_mbuf_allocation_failure = 0;
     97   1.1    bouyer 
     98   1.1    bouyer 	/* Controls how often to simulate a DMA mapping failure. */
     99   1.1    bouyer 	int bnx_debug_dma_map_addr_failure = 0;
    100   1.1    bouyer 
    101   1.1    bouyer 	/* Controls how often to simulate a bootcode failure. */
    102   1.1    bouyer 	int bnx_debug_bootcode_running_failure = 0;
    103   1.1    bouyer #endif
    104   1.1    bouyer 
    105   1.1    bouyer /****************************************************************************/
    106   1.1    bouyer /* PCI Device ID Table                                                      */
    107   1.1    bouyer /*                                                                          */
    108   1.1    bouyer /* Used by bnx_probe() to identify the devices supported by this driver.    */
    109   1.1    bouyer /****************************************************************************/
    110   1.1    bouyer static const struct bnx_product {
    111   1.1    bouyer 	pci_vendor_id_t		bp_vendor;
    112   1.1    bouyer 	pci_product_id_t	bp_product;
    113   1.1    bouyer 	pci_vendor_id_t		bp_subvendor;
    114   1.1    bouyer 	pci_product_id_t	bp_subproduct;
    115   1.1    bouyer 	const char		*bp_name;
    116   1.1    bouyer } bnx_devices[] = {
    117   1.1    bouyer #ifdef PCI_SUBPRODUCT_HP_NC370T
    118   1.1    bouyer 	{
    119   1.1    bouyer 	  PCI_VENDOR_BROADCOM, PCI_PRODUCT_BROADCOM_BCM5706,
    120   1.1    bouyer 	  PCI_VENDOR_HP, PCI_SUBPRODUCT_HP_NC370T,
    121   1.1    bouyer 	  "HP NC370T Multifunction Gigabit Server Adapter"
    122   1.1    bouyer 	},
    123   1.1    bouyer #endif
    124   1.1    bouyer #ifdef PCI_SUBPRODUCT_HP_NC370i
    125   1.1    bouyer 	{
    126   1.1    bouyer 	  PCI_VENDOR_BROADCOM, PCI_PRODUCT_BROADCOM_BCM5706,
    127   1.1    bouyer 	  PCI_VENDOR_HP, PCI_SUBPRODUCT_HP_NC370i,
    128   1.1    bouyer 	  "HP NC370i Multifunction Gigabit Server Adapter"
    129   1.1    bouyer 	},
    130   1.1    bouyer #endif
    131   1.1    bouyer 	{
    132   1.1    bouyer 	  PCI_VENDOR_BROADCOM, PCI_PRODUCT_BROADCOM_BCM5706,
    133   1.1    bouyer 	  0, 0,
    134   1.1    bouyer 	  "Broadcom NetXtreme II BCM5706 1000Base-T"
    135   1.1    bouyer 	},
    136   1.1    bouyer #ifdef PCI_SUBPRODUCT_HP_NC370F
    137   1.1    bouyer 	{
    138   1.1    bouyer 	  PCI_VENDOR_BROADCOM, PCI_PRODUCT_BROADCOM_BCM5706S,
    139   1.1    bouyer 	  PCI_VENDOR_HP, PCI_SUBPRODUCT_HP_NC370F,
    140   1.1    bouyer 	  "HP NC370F Multifunction Gigabit Server Adapter"
    141   1.1    bouyer 	},
    142   1.1    bouyer #endif
    143   1.1    bouyer 	{
    144   1.1    bouyer 	  PCI_VENDOR_BROADCOM, PCI_PRODUCT_BROADCOM_BCM5706S,
    145   1.1    bouyer 	  0, 0,
    146   1.1    bouyer 	  "Broadcom NetXtreme II BCM5706 1000Base-SX"
    147   1.1    bouyer 	},
    148   1.1    bouyer 	{
    149   1.1    bouyer 	  PCI_VENDOR_BROADCOM, PCI_PRODUCT_BROADCOM_BCM5708,
    150   1.1    bouyer 	  0, 0,
    151   1.1    bouyer 	  "Broadcom NetXtreme II BCM5708 1000Base-T"
    152   1.1    bouyer 	},
    153   1.1    bouyer 	{
    154   1.1    bouyer 	  PCI_VENDOR_BROADCOM, PCI_PRODUCT_BROADCOM_BCM5708S,
    155   1.1    bouyer 	  0, 0,
    156   1.1    bouyer 	  "Broadcom NetXtreme II BCM5708 1000Base-SX"
    157   1.1    bouyer 	},
    158  1.27    cegger 	{
    159  1.27    cegger 	  PCI_VENDOR_BROADCOM, PCI_PRODUCT_BROADCOM_BCM5709,
    160  1.27    cegger 	  0, 0,
    161  1.29    bouyer 	  "Broadcom NetXtreme II BCM5709 1000Base-T"
    162  1.29    bouyer 	},
    163  1.29    bouyer 	{
    164  1.29    bouyer 	  PCI_VENDOR_BROADCOM, PCI_PRODUCT_BROADCOM_BCM5709S,
    165  1.29    bouyer 	  0, 0,
    166  1.29    bouyer 	  "Broadcom NetXtreme II BCM5709 1000Base-SX"
    167  1.29    bouyer 	},
    168  1.29    bouyer 	{
    169  1.29    bouyer 	  PCI_VENDOR_BROADCOM, PCI_PRODUCT_BROADCOM_BCM5716,
    170  1.29    bouyer 	  0, 0,
    171  1.29    bouyer 	  "Broadcom NetXtreme II BCM5716 1000Base-T"
    172  1.29    bouyer 	},
    173  1.29    bouyer 	{
    174  1.29    bouyer 	  PCI_VENDOR_BROADCOM, PCI_PRODUCT_BROADCOM_BCM5716S,
    175  1.29    bouyer 	  0, 0,
    176  1.29    bouyer 	  "Broadcom NetXtreme II BCM5716 1000Base-SX"
    177  1.29    bouyer 	},
    178   1.1    bouyer };
    179   1.1    bouyer 
    180   1.1    bouyer /****************************************************************************/
    181   1.1    bouyer /* Supported Flash NVRAM device data.                                       */
    182   1.1    bouyer /****************************************************************************/
    183   1.1    bouyer static struct flash_spec flash_table[] =
    184   1.1    bouyer {
    185  1.29    bouyer #define BUFFERED_FLAGS		(BNX_NV_BUFFERED | BNX_NV_TRANSLATE)
    186  1.29    bouyer #define NONBUFFERED_FLAGS	(BNX_NV_WREN)
    187   1.1    bouyer 	/* Slow EEPROM */
    188   1.1    bouyer 	{0x00000000, 0x40830380, 0x009f0081, 0xa184a053, 0xaf000400,
    189  1.29    bouyer 	 BUFFERED_FLAGS, SEEPROM_PAGE_BITS, SEEPROM_PAGE_SIZE,
    190   1.1    bouyer 	 SEEPROM_BYTE_ADDR_MASK, SEEPROM_TOTAL_SIZE,
    191   1.1    bouyer 	 "EEPROM - slow"},
    192   1.1    bouyer 	/* Expansion entry 0001 */
    193   1.1    bouyer 	{0x08000002, 0x4b808201, 0x00050081, 0x03840253, 0xaf020406,
    194  1.29    bouyer 	 NONBUFFERED_FLAGS, SAIFUN_FLASH_PAGE_BITS, SAIFUN_FLASH_PAGE_SIZE,
    195   1.1    bouyer 	 SAIFUN_FLASH_BYTE_ADDR_MASK, 0,
    196   1.1    bouyer 	 "Entry 0001"},
    197   1.1    bouyer 	/* Saifun SA25F010 (non-buffered flash) */
    198   1.1    bouyer 	/* strap, cfg1, & write1 need updates */
    199   1.1    bouyer 	{0x04000001, 0x47808201, 0x00050081, 0x03840253, 0xaf020406,
    200  1.29    bouyer 	 NONBUFFERED_FLAGS, SAIFUN_FLASH_PAGE_BITS, SAIFUN_FLASH_PAGE_SIZE,
    201   1.1    bouyer 	 SAIFUN_FLASH_BYTE_ADDR_MASK, SAIFUN_FLASH_BASE_TOTAL_SIZE*2,
    202   1.1    bouyer 	 "Non-buffered flash (128kB)"},
    203   1.1    bouyer 	/* Saifun SA25F020 (non-buffered flash) */
    204   1.1    bouyer 	/* strap, cfg1, & write1 need updates */
    205   1.1    bouyer 	{0x0c000003, 0x4f808201, 0x00050081, 0x03840253, 0xaf020406,
    206  1.29    bouyer 	 NONBUFFERED_FLAGS, SAIFUN_FLASH_PAGE_BITS, SAIFUN_FLASH_PAGE_SIZE,
    207   1.1    bouyer 	 SAIFUN_FLASH_BYTE_ADDR_MASK, SAIFUN_FLASH_BASE_TOTAL_SIZE*4,
    208   1.1    bouyer 	 "Non-buffered flash (256kB)"},
    209   1.1    bouyer 	/* Expansion entry 0100 */
    210   1.1    bouyer 	{0x11000000, 0x53808201, 0x00050081, 0x03840253, 0xaf020406,
    211  1.29    bouyer 	 NONBUFFERED_FLAGS, SAIFUN_FLASH_PAGE_BITS, SAIFUN_FLASH_PAGE_SIZE,
    212   1.1    bouyer 	 SAIFUN_FLASH_BYTE_ADDR_MASK, 0,
    213   1.1    bouyer 	 "Entry 0100"},
    214   1.1    bouyer 	/* Entry 0101: ST M45PE10 (non-buffered flash, TetonII B0) */
    215   1.1    bouyer 	{0x19000002, 0x5b808201, 0x000500db, 0x03840253, 0xaf020406,
    216  1.29    bouyer 	 NONBUFFERED_FLAGS, ST_MICRO_FLASH_PAGE_BITS, ST_MICRO_FLASH_PAGE_SIZE,
    217   1.1    bouyer 	 ST_MICRO_FLASH_BYTE_ADDR_MASK, ST_MICRO_FLASH_BASE_TOTAL_SIZE*2,
    218   1.1    bouyer 	 "Entry 0101: ST M45PE10 (128kB non-bufferred)"},
    219   1.1    bouyer 	/* Entry 0110: ST M45PE20 (non-buffered flash)*/
    220   1.1    bouyer 	{0x15000001, 0x57808201, 0x000500db, 0x03840253, 0xaf020406,
    221  1.29    bouyer 	 NONBUFFERED_FLAGS, ST_MICRO_FLASH_PAGE_BITS, ST_MICRO_FLASH_PAGE_SIZE,
    222   1.1    bouyer 	 ST_MICRO_FLASH_BYTE_ADDR_MASK, ST_MICRO_FLASH_BASE_TOTAL_SIZE*4,
    223   1.1    bouyer 	 "Entry 0110: ST M45PE20 (256kB non-bufferred)"},
    224   1.1    bouyer 	/* Saifun SA25F005 (non-buffered flash) */
    225   1.1    bouyer 	/* strap, cfg1, & write1 need updates */
    226   1.1    bouyer 	{0x1d000003, 0x5f808201, 0x00050081, 0x03840253, 0xaf020406,
    227  1.29    bouyer 	 NONBUFFERED_FLAGS, SAIFUN_FLASH_PAGE_BITS, SAIFUN_FLASH_PAGE_SIZE,
    228   1.1    bouyer 	 SAIFUN_FLASH_BYTE_ADDR_MASK, SAIFUN_FLASH_BASE_TOTAL_SIZE,
    229   1.1    bouyer 	 "Non-buffered flash (64kB)"},
    230   1.1    bouyer 	/* Fast EEPROM */
    231   1.1    bouyer 	{0x22000000, 0x62808380, 0x009f0081, 0xa184a053, 0xaf000400,
    232  1.29    bouyer 	 BUFFERED_FLAGS, SEEPROM_PAGE_BITS, SEEPROM_PAGE_SIZE,
    233   1.1    bouyer 	 SEEPROM_BYTE_ADDR_MASK, SEEPROM_TOTAL_SIZE,
    234   1.1    bouyer 	 "EEPROM - fast"},
    235   1.1    bouyer 	/* Expansion entry 1001 */
    236   1.1    bouyer 	{0x2a000002, 0x6b808201, 0x00050081, 0x03840253, 0xaf020406,
    237  1.29    bouyer 	 NONBUFFERED_FLAGS, SAIFUN_FLASH_PAGE_BITS, SAIFUN_FLASH_PAGE_SIZE,
    238   1.1    bouyer 	 SAIFUN_FLASH_BYTE_ADDR_MASK, 0,
    239   1.1    bouyer 	 "Entry 1001"},
    240   1.1    bouyer 	/* Expansion entry 1010 */
    241   1.1    bouyer 	{0x26000001, 0x67808201, 0x00050081, 0x03840253, 0xaf020406,
    242  1.29    bouyer 	 NONBUFFERED_FLAGS, SAIFUN_FLASH_PAGE_BITS, SAIFUN_FLASH_PAGE_SIZE,
    243   1.1    bouyer 	 SAIFUN_FLASH_BYTE_ADDR_MASK, 0,
    244   1.1    bouyer 	 "Entry 1010"},
    245   1.1    bouyer 	/* ATMEL AT45DB011B (buffered flash) */
    246   1.1    bouyer 	{0x2e000003, 0x6e808273, 0x00570081, 0x68848353, 0xaf000400,
    247  1.29    bouyer 	 BUFFERED_FLAGS, BUFFERED_FLASH_PAGE_BITS, BUFFERED_FLASH_PAGE_SIZE,
    248   1.1    bouyer 	 BUFFERED_FLASH_BYTE_ADDR_MASK, BUFFERED_FLASH_TOTAL_SIZE,
    249   1.1    bouyer 	 "Buffered flash (128kB)"},
    250   1.1    bouyer 	/* Expansion entry 1100 */
    251   1.1    bouyer 	{0x33000000, 0x73808201, 0x00050081, 0x03840253, 0xaf020406,
    252  1.29    bouyer 	 NONBUFFERED_FLAGS, SAIFUN_FLASH_PAGE_BITS, SAIFUN_FLASH_PAGE_SIZE,
    253   1.1    bouyer 	 SAIFUN_FLASH_BYTE_ADDR_MASK, 0,
    254   1.1    bouyer 	 "Entry 1100"},
    255   1.1    bouyer 	/* Expansion entry 1101 */
    256   1.1    bouyer 	{0x3b000002, 0x7b808201, 0x00050081, 0x03840253, 0xaf020406,
    257  1.29    bouyer 	 NONBUFFERED_FLAGS, SAIFUN_FLASH_PAGE_BITS, SAIFUN_FLASH_PAGE_SIZE,
    258   1.1    bouyer 	 SAIFUN_FLASH_BYTE_ADDR_MASK, 0,
    259   1.1    bouyer 	 "Entry 1101"},
    260   1.1    bouyer 	/* Ateml Expansion entry 1110 */
    261   1.1    bouyer 	{0x37000001, 0x76808273, 0x00570081, 0x68848353, 0xaf000400,
    262  1.29    bouyer 	 BUFFERED_FLAGS, BUFFERED_FLASH_PAGE_BITS, BUFFERED_FLASH_PAGE_SIZE,
    263   1.1    bouyer 	 BUFFERED_FLASH_BYTE_ADDR_MASK, 0,
    264   1.1    bouyer 	 "Entry 1110 (Atmel)"},
    265   1.1    bouyer 	/* ATMEL AT45DB021B (buffered flash) */
    266   1.1    bouyer 	{0x3f000003, 0x7e808273, 0x00570081, 0x68848353, 0xaf000400,
    267  1.29    bouyer 	 BUFFERED_FLAGS, BUFFERED_FLASH_PAGE_BITS, BUFFERED_FLASH_PAGE_SIZE,
    268   1.1    bouyer 	 BUFFERED_FLASH_BYTE_ADDR_MASK, BUFFERED_FLASH_TOTAL_SIZE*2,
    269   1.1    bouyer 	 "Buffered flash (256kB)"},
    270   1.1    bouyer };
    271   1.1    bouyer 
    272  1.29    bouyer /*
    273  1.29    bouyer  * The BCM5709 controllers transparently handle the
    274  1.29    bouyer  * differences between Atmel 264 byte pages and all
    275  1.29    bouyer  * flash devices which use 256 byte pages, so no
    276  1.29    bouyer  * logical-to-physical mapping is required in the
    277  1.29    bouyer  * driver.
    278  1.29    bouyer  */
    279  1.29    bouyer static struct flash_spec flash_5709 = {
    280  1.29    bouyer 	.flags		= BNX_NV_BUFFERED,
    281  1.29    bouyer 	.page_bits	= BCM5709_FLASH_PAGE_BITS,
    282  1.29    bouyer 	.page_size	= BCM5709_FLASH_PAGE_SIZE,
    283  1.29    bouyer 	.addr_mask	= BCM5709_FLASH_BYTE_ADDR_MASK,
    284  1.29    bouyer 	.total_size	= BUFFERED_FLASH_TOTAL_SIZE * 2,
    285  1.29    bouyer 	.name		= "5709 buffered flash (256kB)",
    286  1.29    bouyer };
    287  1.29    bouyer 
    288   1.1    bouyer /****************************************************************************/
    289   1.1    bouyer /* OpenBSD device entry points.                                             */
    290   1.1    bouyer /****************************************************************************/
    291   1.1    bouyer static int	bnx_probe(device_t, cfdata_t, void *);
    292  1.13    dyoung void	bnx_attach(device_t, device_t, void *);
    293  1.13    dyoung int	bnx_detach(device_t, int);
    294   1.1    bouyer 
    295   1.1    bouyer /****************************************************************************/
    296   1.1    bouyer /* BNX Debug Data Structure Dump Routines                                   */
    297   1.1    bouyer /****************************************************************************/
    298   1.1    bouyer #ifdef BNX_DEBUG
    299   1.1    bouyer void	bnx_dump_mbuf(struct bnx_softc *, struct mbuf *);
    300   1.1    bouyer void	bnx_dump_tx_mbuf_chain(struct bnx_softc *, int, int);
    301   1.1    bouyer void	bnx_dump_rx_mbuf_chain(struct bnx_softc *, int, int);
    302   1.1    bouyer void	bnx_dump_txbd(struct bnx_softc *, int, struct tx_bd *);
    303   1.1    bouyer void	bnx_dump_rxbd(struct bnx_softc *, int, struct rx_bd *);
    304   1.1    bouyer void	bnx_dump_l2fhdr(struct bnx_softc *, int, struct l2_fhdr *);
    305   1.1    bouyer void	bnx_dump_tx_chain(struct bnx_softc *, int, int);
    306   1.1    bouyer void	bnx_dump_rx_chain(struct bnx_softc *, int, int);
    307   1.1    bouyer void	bnx_dump_status_block(struct bnx_softc *);
    308   1.1    bouyer void	bnx_dump_stats_block(struct bnx_softc *);
    309   1.1    bouyer void	bnx_dump_driver_state(struct bnx_softc *);
    310   1.1    bouyer void	bnx_dump_hw_state(struct bnx_softc *);
    311   1.1    bouyer void	bnx_breakpoint(struct bnx_softc *);
    312   1.1    bouyer #endif
    313   1.1    bouyer 
    314   1.1    bouyer /****************************************************************************/
    315   1.1    bouyer /* BNX Register/Memory Access Routines                                      */
    316   1.1    bouyer /****************************************************************************/
    317   1.1    bouyer u_int32_t	bnx_reg_rd_ind(struct bnx_softc *, u_int32_t);
    318   1.1    bouyer void	bnx_reg_wr_ind(struct bnx_softc *, u_int32_t, u_int32_t);
    319   1.1    bouyer void	bnx_ctx_wr(struct bnx_softc *, u_int32_t, u_int32_t, u_int32_t);
    320  1.13    dyoung int	bnx_miibus_read_reg(device_t, int, int);
    321  1.13    dyoung void	bnx_miibus_write_reg(device_t, int, int, int);
    322  1.13    dyoung void	bnx_miibus_statchg(device_t);
    323   1.1    bouyer 
    324   1.1    bouyer /****************************************************************************/
    325   1.1    bouyer /* BNX NVRAM Access Routines                                                */
    326   1.1    bouyer /****************************************************************************/
    327   1.1    bouyer int	bnx_acquire_nvram_lock(struct bnx_softc *);
    328   1.1    bouyer int	bnx_release_nvram_lock(struct bnx_softc *);
    329   1.1    bouyer void	bnx_enable_nvram_access(struct bnx_softc *);
    330   1.1    bouyer void	bnx_disable_nvram_access(struct bnx_softc *);
    331   1.1    bouyer int	bnx_nvram_read_dword(struct bnx_softc *, u_int32_t, u_int8_t *,
    332   1.1    bouyer 	    u_int32_t);
    333   1.1    bouyer int	bnx_init_nvram(struct bnx_softc *);
    334   1.1    bouyer int	bnx_nvram_read(struct bnx_softc *, u_int32_t, u_int8_t *, int);
    335   1.1    bouyer int	bnx_nvram_test(struct bnx_softc *);
    336   1.1    bouyer #ifdef BNX_NVRAM_WRITE_SUPPORT
    337   1.1    bouyer int	bnx_enable_nvram_write(struct bnx_softc *);
    338   1.1    bouyer void	bnx_disable_nvram_write(struct bnx_softc *);
    339   1.1    bouyer int	bnx_nvram_erase_page(struct bnx_softc *, u_int32_t);
    340   1.1    bouyer int	bnx_nvram_write_dword(struct bnx_softc *, u_int32_t, u_int8_t *,
    341   1.1    bouyer 	    u_int32_t);
    342   1.1    bouyer int	bnx_nvram_write(struct bnx_softc *, u_int32_t, u_int8_t *, int);
    343   1.1    bouyer #endif
    344   1.1    bouyer 
    345   1.1    bouyer /****************************************************************************/
    346   1.1    bouyer /*                                                                          */
    347   1.1    bouyer /****************************************************************************/
    348  1.29    bouyer void	bnx_get_media(struct bnx_softc *);
    349  1.41       jym void	bnx_init_media(struct bnx_softc *);
    350   1.1    bouyer int	bnx_dma_alloc(struct bnx_softc *);
    351   1.1    bouyer void	bnx_dma_free(struct bnx_softc *);
    352   1.1    bouyer void	bnx_release_resources(struct bnx_softc *);
    353   1.1    bouyer 
    354   1.1    bouyer /****************************************************************************/
    355   1.1    bouyer /* BNX Firmware Synchronization and Load                                    */
    356   1.1    bouyer /****************************************************************************/
    357   1.1    bouyer int	bnx_fw_sync(struct bnx_softc *, u_int32_t);
    358   1.1    bouyer void	bnx_load_rv2p_fw(struct bnx_softc *, u_int32_t *, u_int32_t,
    359   1.1    bouyer 	    u_int32_t);
    360   1.1    bouyer void	bnx_load_cpu_fw(struct bnx_softc *, struct cpu_reg *,
    361   1.1    bouyer 	    struct fw_info *);
    362   1.1    bouyer void	bnx_init_cpus(struct bnx_softc *);
    363   1.1    bouyer 
    364  1.14    dyoung void	bnx_stop(struct ifnet *, int);
    365   1.1    bouyer int	bnx_reset(struct bnx_softc *, u_int32_t);
    366   1.1    bouyer int	bnx_chipinit(struct bnx_softc *);
    367   1.1    bouyer int	bnx_blockinit(struct bnx_softc *);
    368  1.21    dyoung static int	bnx_add_buf(struct bnx_softc *, struct mbuf *, u_int16_t *,
    369   1.1    bouyer 	    u_int16_t *, u_int32_t *);
    370  1.21    dyoung int	bnx_get_buf(struct bnx_softc *, u_int16_t *, u_int16_t *, u_int32_t *);
    371   1.1    bouyer 
    372   1.1    bouyer int	bnx_init_tx_chain(struct bnx_softc *);
    373  1.29    bouyer void	bnx_init_tx_context(struct bnx_softc *);
    374   1.1    bouyer int	bnx_init_rx_chain(struct bnx_softc *);
    375  1.29    bouyer void	bnx_init_rx_context(struct bnx_softc *);
    376   1.1    bouyer void	bnx_free_rx_chain(struct bnx_softc *);
    377   1.1    bouyer void	bnx_free_tx_chain(struct bnx_softc *);
    378   1.1    bouyer 
    379  1.29    bouyer int	bnx_tx_encap(struct bnx_softc *, struct mbuf *);
    380   1.1    bouyer void	bnx_start(struct ifnet *);
    381   1.3  christos int	bnx_ioctl(struct ifnet *, u_long, void *);
    382   1.1    bouyer void	bnx_watchdog(struct ifnet *);
    383   1.1    bouyer int	bnx_init(struct ifnet *);
    384   1.1    bouyer 
    385   1.1    bouyer void	bnx_init_context(struct bnx_softc *);
    386   1.1    bouyer void	bnx_get_mac_addr(struct bnx_softc *);
    387   1.1    bouyer void	bnx_set_mac_addr(struct bnx_softc *);
    388   1.1    bouyer void	bnx_phy_intr(struct bnx_softc *);
    389   1.1    bouyer void	bnx_rx_intr(struct bnx_softc *);
    390   1.1    bouyer void	bnx_tx_intr(struct bnx_softc *);
    391   1.1    bouyer void	bnx_disable_intr(struct bnx_softc *);
    392   1.1    bouyer void	bnx_enable_intr(struct bnx_softc *);
    393   1.1    bouyer 
    394   1.1    bouyer int	bnx_intr(void *);
    395  1.29    bouyer void	bnx_iff(struct bnx_softc *);
    396   1.1    bouyer void	bnx_stats_update(struct bnx_softc *);
    397   1.1    bouyer void	bnx_tick(void *);
    398   1.1    bouyer 
    399  1.29    bouyer struct pool *bnx_tx_pool = NULL;
    400  1.29    bouyer int	bnx_alloc_pkts(struct bnx_softc *);
    401  1.29    bouyer 
    402   1.1    bouyer /****************************************************************************/
    403   1.1    bouyer /* OpenBSD device dispatch table.                                           */
    404   1.1    bouyer /****************************************************************************/
    405  1.24    dyoung CFATTACH_DECL3_NEW(bnx, sizeof(struct bnx_softc),
    406  1.24    dyoung     bnx_probe, bnx_attach, bnx_detach, NULL, NULL, NULL, DVF_DETACH_SHUTDOWN);
    407   1.1    bouyer 
    408   1.1    bouyer /****************************************************************************/
    409   1.1    bouyer /* Device probe function.                                                   */
    410   1.1    bouyer /*                                                                          */
    411   1.1    bouyer /* Compares the device to the driver's list of supported devices and        */
    412   1.1    bouyer /* reports back to the OS whether this is the right driver for the device.  */
    413   1.1    bouyer /*                                                                          */
    414   1.1    bouyer /* Returns:                                                                 */
    415   1.1    bouyer /*   BUS_PROBE_DEFAULT on success, positive value on failure.               */
    416   1.1    bouyer /****************************************************************************/
    417   1.1    bouyer static const struct bnx_product *
    418   1.1    bouyer bnx_lookup(const struct pci_attach_args *pa)
    419   1.1    bouyer {
    420   1.1    bouyer 	int i;
    421   1.1    bouyer 	pcireg_t subid;
    422   1.1    bouyer 
    423  1.13    dyoung 	for (i = 0; i < __arraycount(bnx_devices); i++) {
    424   1.1    bouyer 		if (PCI_VENDOR(pa->pa_id) != bnx_devices[i].bp_vendor ||
    425   1.1    bouyer 		    PCI_PRODUCT(pa->pa_id) != bnx_devices[i].bp_product)
    426   1.1    bouyer 			continue;
    427   1.1    bouyer 		if (!bnx_devices[i].bp_subvendor)
    428   1.1    bouyer 			return &bnx_devices[i];
    429   1.1    bouyer 		subid = pci_conf_read(pa->pa_pc, pa->pa_tag, PCI_SUBSYS_ID_REG);
    430   1.1    bouyer 		if (PCI_VENDOR(subid) == bnx_devices[i].bp_subvendor &&
    431   1.1    bouyer 		    PCI_PRODUCT(subid) == bnx_devices[i].bp_subproduct)
    432   1.1    bouyer 			return &bnx_devices[i];
    433   1.1    bouyer 	}
    434   1.1    bouyer 
    435   1.1    bouyer 	return NULL;
    436   1.1    bouyer }
    437   1.1    bouyer static int
    438   1.1    bouyer bnx_probe(device_t parent, cfdata_t match, void *aux)
    439   1.1    bouyer {
    440   1.1    bouyer 	struct pci_attach_args *pa = (struct pci_attach_args *)aux;
    441   1.1    bouyer 
    442   1.1    bouyer 	if (bnx_lookup(pa) != NULL)
    443   1.1    bouyer 		return (1);
    444   1.1    bouyer 
    445   1.1    bouyer 	return (0);
    446   1.1    bouyer }
    447   1.1    bouyer 
    448   1.1    bouyer /****************************************************************************/
    449   1.1    bouyer /* Device attach function.                                                  */
    450   1.1    bouyer /*                                                                          */
    451   1.1    bouyer /* Allocates device resources, performs secondary chip identification,      */
    452   1.1    bouyer /* resets and initializes the hardware, and initializes driver instance     */
    453   1.1    bouyer /* variables.                                                               */
    454   1.1    bouyer /*                                                                          */
    455   1.1    bouyer /* Returns:                                                                 */
    456   1.1    bouyer /*   0 on success, positive value on failure.                               */
    457   1.1    bouyer /****************************************************************************/
    458   1.1    bouyer void
    459  1.13    dyoung bnx_attach(device_t parent, device_t self, void *aux)
    460   1.1    bouyer {
    461   1.1    bouyer 	const struct bnx_product *bp;
    462  1.13    dyoung 	struct bnx_softc	*sc = device_private(self);
    463  1.41       jym 	prop_dictionary_t	dict;
    464   1.1    bouyer 	struct pci_attach_args	*pa = aux;
    465   1.1    bouyer 	pci_chipset_tag_t	pc = pa->pa_pc;
    466   1.1    bouyer 	pci_intr_handle_t	ih;
    467   1.1    bouyer 	const char 		*intrstr = NULL;
    468   1.1    bouyer 	u_int32_t		command;
    469   1.1    bouyer 	struct ifnet		*ifp;
    470   1.1    bouyer 	u_int32_t		val;
    471  1.20    mhitch 	int			mii_flags = MIIF_FORCEANEG;
    472   1.1    bouyer 	pcireg_t		memtype;
    473   1.1    bouyer 
    474  1.29    bouyer 	if (bnx_tx_pool == NULL) {
    475  1.29    bouyer 		bnx_tx_pool = malloc(sizeof(*bnx_tx_pool), M_DEVBUF, M_NOWAIT);
    476  1.29    bouyer 		if (bnx_tx_pool != NULL) {
    477  1.29    bouyer 			pool_init(bnx_tx_pool, sizeof(struct bnx_pkt),
    478  1.29    bouyer 			    0, 0, 0, "bnxpkts", NULL, IPL_NET);
    479  1.29    bouyer 		} else {
    480  1.29    bouyer 			aprint_error(": can't alloc bnx_tx_pool\n");
    481  1.29    bouyer 			return;
    482  1.29    bouyer 		}
    483  1.29    bouyer 	}
    484  1.29    bouyer 
    485   1.1    bouyer 	bp = bnx_lookup(pa);
    486   1.1    bouyer 	if (bp == NULL)
    487   1.1    bouyer 		panic("unknown device");
    488   1.1    bouyer 
    489  1.13    dyoung 	sc->bnx_dev = self;
    490  1.13    dyoung 
    491   1.1    bouyer 	aprint_naive("\n");
    492  1.10    martti 	aprint_normal(": %s\n", bp->bp_name);
    493   1.1    bouyer 
    494   1.1    bouyer 	sc->bnx_pa = *pa;
    495   1.1    bouyer 
    496   1.1    bouyer 	/*
    497   1.1    bouyer 	 * Map control/status registers.
    498   1.1    bouyer 	*/
    499   1.1    bouyer 	command = pci_conf_read(pc, pa->pa_tag, PCI_COMMAND_STATUS_REG);
    500   1.1    bouyer 	command |= PCI_COMMAND_MEM_ENABLE | PCI_COMMAND_MASTER_ENABLE;
    501   1.1    bouyer 	pci_conf_write(pc, pa->pa_tag, PCI_COMMAND_STATUS_REG, command);
    502   1.1    bouyer 	command = pci_conf_read(pc, pa->pa_tag, PCI_COMMAND_STATUS_REG);
    503   1.1    bouyer 
    504   1.1    bouyer 	if (!(command & PCI_COMMAND_MEM_ENABLE)) {
    505  1.13    dyoung 		aprint_error_dev(sc->bnx_dev,
    506  1.13    dyoung 		    "failed to enable memory mapping!\n");
    507   1.1    bouyer 		return;
    508   1.1    bouyer 	}
    509   1.1    bouyer 
    510   1.1    bouyer 	memtype = pci_mapreg_type(pa->pa_pc, pa->pa_tag, BNX_PCI_BAR0);
    511  1.29    bouyer 	if (pci_mapreg_map(pa, BNX_PCI_BAR0, memtype, 0, &sc->bnx_btag,
    512  1.29    bouyer 	    &sc->bnx_bhandle, NULL, &sc->bnx_size)) {
    513  1.13    dyoung 		aprint_error_dev(sc->bnx_dev, "can't find mem space\n");
    514   1.1    bouyer 		return;
    515   1.1    bouyer 	}
    516   1.1    bouyer 
    517   1.1    bouyer 	if (pci_intr_map(pa, &ih)) {
    518  1.13    dyoung 		aprint_error_dev(sc->bnx_dev, "couldn't map interrupt\n");
    519   1.1    bouyer 		goto bnx_attach_fail;
    520   1.1    bouyer 	}
    521   1.1    bouyer 
    522   1.1    bouyer 	intrstr = pci_intr_string(pc, ih);
    523   1.1    bouyer 
    524   1.1    bouyer 	/*
    525   1.1    bouyer 	 * Configure byte swap and enable indirect register access.
    526   1.1    bouyer 	 * Rely on CPU to do target byte swapping on big endian systems.
    527   1.1    bouyer 	 * Access to registers outside of PCI configurtion space are not
    528   1.1    bouyer 	 * valid until this is done.
    529   1.1    bouyer 	 */
    530   1.1    bouyer 	pci_conf_write(pa->pa_pc, pa->pa_tag, BNX_PCICFG_MISC_CONFIG,
    531   1.1    bouyer 	    BNX_PCICFG_MISC_CONFIG_REG_WINDOW_ENA |
    532   1.1    bouyer 	    BNX_PCICFG_MISC_CONFIG_TARGET_MB_WORD_SWAP);
    533   1.1    bouyer 
    534   1.1    bouyer 	/* Save ASIC revsion info. */
    535   1.1    bouyer 	sc->bnx_chipid =  REG_RD(sc, BNX_MISC_ID);
    536   1.1    bouyer 
    537   1.1    bouyer 	/*
    538   1.1    bouyer 	 * Find the base address for shared memory access.
    539   1.1    bouyer 	 * Newer versions of bootcode use a signature and offset
    540   1.1    bouyer 	 * while older versions use a fixed address.
    541   1.1    bouyer 	 */
    542   1.1    bouyer 	val = REG_RD_IND(sc, BNX_SHM_HDR_SIGNATURE);
    543   1.1    bouyer 	if ((val & BNX_SHM_HDR_SIGNATURE_SIG_MASK) == BNX_SHM_HDR_SIGNATURE_SIG)
    544  1.29    bouyer 		sc->bnx_shmem_base = REG_RD_IND(sc, BNX_SHM_HDR_ADDR_0 +
    545  1.29    bouyer 		    (sc->bnx_pa.pa_function << 2));
    546   1.1    bouyer 	else
    547   1.1    bouyer 		sc->bnx_shmem_base = HOST_VIEW_SHMEM_BASE;
    548   1.1    bouyer 
    549   1.1    bouyer 	DBPRINT(sc, BNX_INFO, "bnx_shmem_base = 0x%08X\n", sc->bnx_shmem_base);
    550   1.1    bouyer 
    551   1.1    bouyer 	/* Set initial device and PHY flags */
    552   1.1    bouyer 	sc->bnx_flags = 0;
    553   1.1    bouyer 	sc->bnx_phy_flags = 0;
    554   1.1    bouyer 
    555   1.1    bouyer 	/* Get PCI bus information (speed and type). */
    556   1.1    bouyer 	val = REG_RD(sc, BNX_PCICFG_MISC_STATUS);
    557   1.1    bouyer 	if (val & BNX_PCICFG_MISC_STATUS_PCIX_DET) {
    558   1.1    bouyer 		u_int32_t clkreg;
    559   1.1    bouyer 
    560   1.1    bouyer 		sc->bnx_flags |= BNX_PCIX_FLAG;
    561   1.1    bouyer 
    562   1.1    bouyer 		clkreg = REG_RD(sc, BNX_PCICFG_PCI_CLOCK_CONTROL_BITS);
    563   1.1    bouyer 
    564   1.1    bouyer 		clkreg &= BNX_PCICFG_PCI_CLOCK_CONTROL_BITS_PCI_CLK_SPD_DET;
    565   1.1    bouyer 		switch (clkreg) {
    566   1.1    bouyer 		case BNX_PCICFG_PCI_CLOCK_CONTROL_BITS_PCI_CLK_SPD_DET_133MHZ:
    567   1.1    bouyer 			sc->bus_speed_mhz = 133;
    568   1.1    bouyer 			break;
    569   1.1    bouyer 
    570   1.1    bouyer 		case BNX_PCICFG_PCI_CLOCK_CONTROL_BITS_PCI_CLK_SPD_DET_95MHZ:
    571   1.1    bouyer 			sc->bus_speed_mhz = 100;
    572   1.1    bouyer 			break;
    573   1.1    bouyer 
    574   1.1    bouyer 		case BNX_PCICFG_PCI_CLOCK_CONTROL_BITS_PCI_CLK_SPD_DET_66MHZ:
    575   1.1    bouyer 		case BNX_PCICFG_PCI_CLOCK_CONTROL_BITS_PCI_CLK_SPD_DET_80MHZ:
    576   1.1    bouyer 			sc->bus_speed_mhz = 66;
    577   1.1    bouyer 			break;
    578   1.1    bouyer 
    579   1.1    bouyer 		case BNX_PCICFG_PCI_CLOCK_CONTROL_BITS_PCI_CLK_SPD_DET_48MHZ:
    580   1.1    bouyer 		case BNX_PCICFG_PCI_CLOCK_CONTROL_BITS_PCI_CLK_SPD_DET_55MHZ:
    581   1.1    bouyer 			sc->bus_speed_mhz = 50;
    582   1.1    bouyer 			break;
    583   1.1    bouyer 
    584   1.1    bouyer 		case BNX_PCICFG_PCI_CLOCK_CONTROL_BITS_PCI_CLK_SPD_DET_LOW:
    585   1.1    bouyer 		case BNX_PCICFG_PCI_CLOCK_CONTROL_BITS_PCI_CLK_SPD_DET_32MHZ:
    586   1.1    bouyer 		case BNX_PCICFG_PCI_CLOCK_CONTROL_BITS_PCI_CLK_SPD_DET_38MHZ:
    587   1.1    bouyer 			sc->bus_speed_mhz = 33;
    588   1.1    bouyer 			break;
    589   1.1    bouyer 		}
    590   1.1    bouyer 	} else if (val & BNX_PCICFG_MISC_STATUS_M66EN)
    591   1.1    bouyer 			sc->bus_speed_mhz = 66;
    592   1.1    bouyer 		else
    593   1.1    bouyer 			sc->bus_speed_mhz = 33;
    594   1.1    bouyer 
    595   1.1    bouyer 	if (val & BNX_PCICFG_MISC_STATUS_32BIT_DET)
    596   1.1    bouyer 		sc->bnx_flags |= BNX_PCI_32BIT_FLAG;
    597   1.1    bouyer 
    598   1.1    bouyer 	/* Reset the controller. */
    599   1.1    bouyer 	if (bnx_reset(sc, BNX_DRV_MSG_CODE_RESET))
    600   1.1    bouyer 		goto bnx_attach_fail;
    601   1.1    bouyer 
    602   1.1    bouyer 	/* Initialize the controller. */
    603   1.1    bouyer 	if (bnx_chipinit(sc)) {
    604  1.13    dyoung 		aprint_error_dev(sc->bnx_dev,
    605  1.13    dyoung 		    "Controller initialization failed!\n");
    606   1.1    bouyer 		goto bnx_attach_fail;
    607   1.1    bouyer 	}
    608   1.1    bouyer 
    609   1.1    bouyer 	/* Perform NVRAM test. */
    610   1.1    bouyer 	if (bnx_nvram_test(sc)) {
    611  1.13    dyoung 		aprint_error_dev(sc->bnx_dev, "NVRAM test failed!\n");
    612   1.1    bouyer 		goto bnx_attach_fail;
    613   1.1    bouyer 	}
    614   1.1    bouyer 
    615   1.1    bouyer 	/* Fetch the permanent Ethernet MAC address. */
    616   1.1    bouyer 	bnx_get_mac_addr(sc);
    617  1.13    dyoung 	aprint_normal_dev(sc->bnx_dev, "Ethernet address %s\n",
    618   1.1    bouyer 	    ether_sprintf(sc->eaddr));
    619   1.1    bouyer 
    620   1.1    bouyer 	/*
    621   1.1    bouyer 	 * Trip points control how many BDs
    622   1.1    bouyer 	 * should be ready before generating an
    623   1.1    bouyer 	 * interrupt while ticks control how long
    624   1.1    bouyer 	 * a BD can sit in the chain before
    625   1.1    bouyer 	 * generating an interrupt.  Set the default
    626   1.1    bouyer 	 * values for the RX and TX rings.
    627   1.1    bouyer 	 */
    628   1.1    bouyer 
    629   1.1    bouyer #ifdef BNX_DEBUG
    630   1.1    bouyer 	/* Force more frequent interrupts. */
    631   1.1    bouyer 	sc->bnx_tx_quick_cons_trip_int = 1;
    632   1.1    bouyer 	sc->bnx_tx_quick_cons_trip     = 1;
    633   1.1    bouyer 	sc->bnx_tx_ticks_int           = 0;
    634   1.1    bouyer 	sc->bnx_tx_ticks               = 0;
    635   1.1    bouyer 
    636   1.1    bouyer 	sc->bnx_rx_quick_cons_trip_int = 1;
    637   1.1    bouyer 	sc->bnx_rx_quick_cons_trip     = 1;
    638   1.1    bouyer 	sc->bnx_rx_ticks_int           = 0;
    639   1.1    bouyer 	sc->bnx_rx_ticks               = 0;
    640   1.1    bouyer #else
    641   1.1    bouyer 	sc->bnx_tx_quick_cons_trip_int = 20;
    642   1.1    bouyer 	sc->bnx_tx_quick_cons_trip     = 20;
    643   1.1    bouyer 	sc->bnx_tx_ticks_int           = 80;
    644   1.1    bouyer 	sc->bnx_tx_ticks               = 80;
    645   1.1    bouyer 
    646   1.1    bouyer 	sc->bnx_rx_quick_cons_trip_int = 6;
    647   1.1    bouyer 	sc->bnx_rx_quick_cons_trip     = 6;
    648   1.1    bouyer 	sc->bnx_rx_ticks_int           = 18;
    649   1.1    bouyer 	sc->bnx_rx_ticks               = 18;
    650   1.1    bouyer #endif
    651   1.1    bouyer 
    652   1.1    bouyer 	/* Update statistics once every second. */
    653   1.1    bouyer 	sc->bnx_stats_ticks = 1000000 & 0xffff00;
    654   1.1    bouyer 
    655  1.29    bouyer 	/* Find the media type for the adapter. */
    656  1.29    bouyer 	bnx_get_media(sc);
    657  1.29    bouyer 
    658   1.1    bouyer 	/*
    659  1.29    bouyer 	 * Store config data needed by the PHY driver for
    660  1.29    bouyer 	 * backplane applications
    661   1.1    bouyer 	 */
    662  1.29    bouyer 	sc->bnx_shared_hw_cfg = REG_RD_IND(sc, sc->bnx_shmem_base +
    663  1.29    bouyer 	    BNX_SHARED_HW_CFG_CONFIG);
    664  1.29    bouyer 	sc->bnx_port_hw_cfg = REG_RD_IND(sc, sc->bnx_shmem_base +
    665  1.29    bouyer 	    BNX_PORT_HW_CFG_CONFIG);
    666   1.1    bouyer 
    667   1.1    bouyer 	/* Allocate DMA memory resources. */
    668   1.1    bouyer 	sc->bnx_dmatag = pa->pa_dmat;
    669   1.1    bouyer 	if (bnx_dma_alloc(sc)) {
    670  1.13    dyoung 		aprint_error_dev(sc->bnx_dev,
    671  1.13    dyoung 		    "DMA resource allocation failed!\n");
    672   1.1    bouyer 		goto bnx_attach_fail;
    673   1.1    bouyer 	}
    674   1.1    bouyer 
    675   1.1    bouyer 	/* Initialize the ifnet interface. */
    676  1.15    dyoung 	ifp = &sc->bnx_ec.ec_if;
    677   1.1    bouyer 	ifp->if_softc = sc;
    678   1.1    bouyer 	ifp->if_flags = IFF_BROADCAST | IFF_SIMPLEX | IFF_MULTICAST;
    679   1.1    bouyer 	ifp->if_ioctl = bnx_ioctl;
    680  1.14    dyoung 	ifp->if_stop = bnx_stop;
    681   1.1    bouyer 	ifp->if_start = bnx_start;
    682   1.1    bouyer 	ifp->if_init = bnx_init;
    683   1.1    bouyer 	ifp->if_timer = 0;
    684   1.1    bouyer 	ifp->if_watchdog = bnx_watchdog;
    685   1.4    bouyer 	IFQ_SET_MAXLEN(&ifp->if_snd, USABLE_TX_BD - 1);
    686   1.1    bouyer 	IFQ_SET_READY(&ifp->if_snd);
    687  1.13    dyoung 	memcpy(ifp->if_xname, device_xname(self), IFNAMSIZ);
    688   1.1    bouyer 
    689  1.15    dyoung 	sc->bnx_ec.ec_capabilities |= ETHERCAP_JUMBO_MTU |
    690   1.1    bouyer 	    ETHERCAP_VLAN_MTU | ETHERCAP_VLAN_HWTAGGING;
    691   1.1    bouyer 
    692   1.1    bouyer 	ifp->if_capabilities |=
    693   1.1    bouyer 	    IFCAP_CSUM_IPv4_Tx | IFCAP_CSUM_IPv4_Rx |
    694   1.1    bouyer 	    IFCAP_CSUM_TCPv4_Tx | IFCAP_CSUM_TCPv4_Rx |
    695   1.1    bouyer 	    IFCAP_CSUM_UDPv4_Tx | IFCAP_CSUM_UDPv4_Rx;
    696   1.1    bouyer 
    697   1.1    bouyer 	/* Hookup IRQ last. */
    698   1.1    bouyer 	sc->bnx_intrhand = pci_intr_establish(pc, ih, IPL_NET, bnx_intr, sc);
    699   1.1    bouyer 	if (sc->bnx_intrhand == NULL) {
    700  1.13    dyoung 		aprint_error_dev(self, "couldn't establish interrupt");
    701   1.1    bouyer 		if (intrstr != NULL)
    702   1.1    bouyer 			aprint_error(" at %s", intrstr);
    703   1.1    bouyer 		aprint_error("\n");
    704   1.1    bouyer 		goto bnx_attach_fail;
    705   1.1    bouyer 	}
    706  1.29    bouyer 	aprint_normal_dev(sc->bnx_dev, "interrupting at %s\n", intrstr);
    707   1.1    bouyer 
    708   1.1    bouyer 	sc->bnx_mii.mii_ifp = ifp;
    709   1.1    bouyer 	sc->bnx_mii.mii_readreg = bnx_miibus_read_reg;
    710   1.1    bouyer 	sc->bnx_mii.mii_writereg = bnx_miibus_write_reg;
    711   1.1    bouyer 	sc->bnx_mii.mii_statchg = bnx_miibus_statchg;
    712   1.1    bouyer 
    713  1.41       jym 	/* Handle any special PHY initialization for SerDes PHYs. */
    714  1.41       jym 	bnx_init_media(sc);
    715  1.41       jym 
    716  1.16    dyoung 	sc->bnx_ec.ec_mii = &sc->bnx_mii;
    717  1.16    dyoung 	ifmedia_init(&sc->bnx_mii.mii_media, 0, ether_mediachange,
    718  1.16    dyoung 	    ether_mediastatus);
    719  1.41       jym 
    720  1.43       jym 	/* set phyflags and chipid before mii_attach() */
    721  1.41       jym 	dict = device_properties(self);
    722  1.41       jym 	prop_dictionary_set_uint32(dict, "phyflags", sc->bnx_phy_flags);
    723  1.43       jym 	prop_dictionary_set_uint32(dict, "chipid", sc->bnx_chipid);
    724  1.41       jym 
    725  1.20    mhitch 	if (sc->bnx_phy_flags & BNX_PHY_SERDES_FLAG)
    726  1.20    mhitch 		mii_flags |= MIIF_HAVEFIBER;
    727  1.13    dyoung 	mii_attach(self, &sc->bnx_mii, 0xffffffff,
    728  1.20    mhitch 	    MII_PHY_ANY, MII_OFFSET_ANY, mii_flags);
    729   1.1    bouyer 
    730  1.14    dyoung 	if (LIST_EMPTY(&sc->bnx_mii.mii_phys)) {
    731  1.13    dyoung 		aprint_error_dev(self, "no PHY found!\n");
    732   1.1    bouyer 		ifmedia_add(&sc->bnx_mii.mii_media,
    733   1.1    bouyer 		    IFM_ETHER|IFM_MANUAL, 0, NULL);
    734   1.1    bouyer 		ifmedia_set(&sc->bnx_mii.mii_media,
    735   1.1    bouyer 		    IFM_ETHER|IFM_MANUAL);
    736   1.1    bouyer 	} else {
    737   1.1    bouyer 		ifmedia_set(&sc->bnx_mii.mii_media,
    738   1.1    bouyer 		    IFM_ETHER|IFM_AUTO);
    739   1.1    bouyer 	}
    740   1.1    bouyer 
    741   1.1    bouyer 	/* Attach to the Ethernet interface list. */
    742   1.1    bouyer 	if_attach(ifp);
    743   1.1    bouyer 	ether_ifattach(ifp,sc->eaddr);
    744   1.1    bouyer 
    745   1.7        ad 	callout_init(&sc->bnx_timeout, 0);
    746   1.1    bouyer 
    747  1.28   tsutsui 	if (pmf_device_register(self, NULL, NULL))
    748  1.28   tsutsui 		pmf_class_network_register(self, ifp);
    749  1.28   tsutsui 	else
    750  1.13    dyoung 		aprint_error_dev(self, "couldn't establish power handler\n");
    751  1.13    dyoung 
    752   1.1    bouyer 	/* Print some important debugging info. */
    753   1.1    bouyer 	DBRUN(BNX_INFO, bnx_dump_driver_state(sc));
    754   1.1    bouyer 
    755   1.1    bouyer 	goto bnx_attach_exit;
    756   1.1    bouyer 
    757   1.1    bouyer bnx_attach_fail:
    758   1.1    bouyer 	bnx_release_resources(sc);
    759   1.1    bouyer 
    760   1.1    bouyer bnx_attach_exit:
    761  1.12     perry 	DBPRINT(sc, BNX_VERBOSE_RESET, "Exiting %s()\n", __func__);
    762   1.1    bouyer }
    763   1.1    bouyer 
    764   1.1    bouyer /****************************************************************************/
    765   1.1    bouyer /* Device detach function.                                                  */
    766   1.1    bouyer /*                                                                          */
    767   1.1    bouyer /* Stops the controller, resets the controller, and releases resources.     */
    768   1.1    bouyer /*                                                                          */
    769   1.1    bouyer /* Returns:                                                                 */
    770   1.1    bouyer /*   0 on success, positive value on failure.                               */
    771   1.1    bouyer /****************************************************************************/
    772  1.13    dyoung int
    773  1.13    dyoung bnx_detach(device_t dev, int flags)
    774   1.1    bouyer {
    775  1.14    dyoung 	int s;
    776   1.1    bouyer 	struct bnx_softc *sc;
    777  1.13    dyoung 	struct ifnet *ifp;
    778   1.1    bouyer 
    779  1.13    dyoung 	sc = device_private(dev);
    780  1.15    dyoung 	ifp = &sc->bnx_ec.ec_if;
    781   1.1    bouyer 
    782  1.12     perry 	DBPRINT(sc, BNX_VERBOSE_RESET, "Entering %s()\n", __func__);
    783   1.1    bouyer 
    784   1.1    bouyer 	/* Stop and reset the controller. */
    785  1.14    dyoung 	s = splnet();
    786  1.14    dyoung 	if (ifp->if_flags & IFF_RUNNING)
    787  1.14    dyoung 		bnx_stop(ifp, 1);
    788  1.29    bouyer 	else {
    789  1.29    bouyer 		/* Disable the transmit/receive blocks. */
    790  1.29    bouyer 		REG_WR(sc, BNX_MISC_ENABLE_CLR_BITS, 0x5ffffff);
    791  1.29    bouyer 		REG_RD(sc, BNX_MISC_ENABLE_CLR_BITS);
    792  1.29    bouyer 		DELAY(20);
    793  1.29    bouyer 		bnx_disable_intr(sc);
    794  1.29    bouyer 		bnx_reset(sc, BNX_DRV_MSG_CODE_RESET);
    795  1.29    bouyer 	}
    796  1.29    bouyer 
    797  1.14    dyoung 	splx(s);
    798   1.1    bouyer 
    799  1.13    dyoung 	pmf_device_deregister(dev);
    800  1.25    dyoung 	callout_destroy(&sc->bnx_timeout);
    801   1.1    bouyer 	ether_ifdetach(ifp);
    802  1.32   msaitoh 
    803  1.32   msaitoh 	/* Delete all remaining media. */
    804  1.32   msaitoh 	ifmedia_delete_instance(&sc->bnx_mii.mii_media, IFM_INST_ANY);
    805  1.32   msaitoh 
    806  1.13    dyoung 	if_detach(ifp);
    807  1.13    dyoung 	mii_detach(&sc->bnx_mii, MII_PHY_ANY, MII_OFFSET_ANY);
    808   1.1    bouyer 
    809   1.1    bouyer 	/* Release all remaining resources. */
    810   1.1    bouyer 	bnx_release_resources(sc);
    811   1.1    bouyer 
    812  1.12     perry 	DBPRINT(sc, BNX_VERBOSE_RESET, "Exiting %s()\n", __func__);
    813   1.1    bouyer 
    814   1.1    bouyer 	return(0);
    815   1.1    bouyer }
    816   1.1    bouyer 
    817   1.1    bouyer /****************************************************************************/
    818   1.1    bouyer /* Indirect register read.                                                  */
    819   1.1    bouyer /*                                                                          */
    820   1.1    bouyer /* Reads NetXtreme II registers using an index/data register pair in PCI    */
    821   1.1    bouyer /* configuration space.  Using this mechanism avoids issues with posted     */
    822   1.1    bouyer /* reads but is much slower than memory-mapped I/O.                         */
    823   1.1    bouyer /*                                                                          */
    824   1.1    bouyer /* Returns:                                                                 */
    825   1.1    bouyer /*   The value of the register.                                             */
    826   1.1    bouyer /****************************************************************************/
    827   1.1    bouyer u_int32_t
    828   1.1    bouyer bnx_reg_rd_ind(struct bnx_softc *sc, u_int32_t offset)
    829   1.1    bouyer {
    830   1.1    bouyer 	struct pci_attach_args	*pa = &(sc->bnx_pa);
    831   1.1    bouyer 
    832   1.1    bouyer 	pci_conf_write(pa->pa_pc, pa->pa_tag, BNX_PCICFG_REG_WINDOW_ADDRESS,
    833   1.1    bouyer 	    offset);
    834   1.1    bouyer #ifdef BNX_DEBUG
    835   1.1    bouyer 	{
    836   1.1    bouyer 		u_int32_t val;
    837   1.1    bouyer 		val = pci_conf_read(pa->pa_pc, pa->pa_tag,
    838   1.1    bouyer 		    BNX_PCICFG_REG_WINDOW);
    839   1.1    bouyer 		DBPRINT(sc, BNX_EXCESSIVE, "%s(); offset = 0x%08X, "
    840  1.12     perry 		    "val = 0x%08X\n", __func__, offset, val);
    841   1.1    bouyer 		return (val);
    842   1.1    bouyer 	}
    843   1.1    bouyer #else
    844   1.1    bouyer 	return pci_conf_read(pa->pa_pc, pa->pa_tag, BNX_PCICFG_REG_WINDOW);
    845   1.1    bouyer #endif
    846   1.1    bouyer }
    847   1.1    bouyer 
    848   1.1    bouyer /****************************************************************************/
    849   1.1    bouyer /* Indirect register write.                                                 */
    850   1.1    bouyer /*                                                                          */
    851   1.1    bouyer /* Writes NetXtreme II registers using an index/data register pair in PCI   */
    852   1.1    bouyer /* configuration space.  Using this mechanism avoids issues with posted     */
    853   1.1    bouyer /* writes but is muchh slower than memory-mapped I/O.                       */
    854   1.1    bouyer /*                                                                          */
    855   1.1    bouyer /* Returns:                                                                 */
    856   1.1    bouyer /*   Nothing.                                                               */
    857   1.1    bouyer /****************************************************************************/
    858   1.1    bouyer void
    859   1.1    bouyer bnx_reg_wr_ind(struct bnx_softc *sc, u_int32_t offset, u_int32_t val)
    860   1.1    bouyer {
    861   1.1    bouyer 	struct pci_attach_args  *pa = &(sc->bnx_pa);
    862   1.1    bouyer 
    863   1.1    bouyer 	DBPRINT(sc, BNX_EXCESSIVE, "%s(); offset = 0x%08X, val = 0x%08X\n",
    864  1.12     perry 		__func__, offset, val);
    865   1.1    bouyer 
    866   1.1    bouyer 	pci_conf_write(pa->pa_pc, pa->pa_tag, BNX_PCICFG_REG_WINDOW_ADDRESS,
    867   1.1    bouyer 	    offset);
    868   1.1    bouyer 	pci_conf_write(pa->pa_pc, pa->pa_tag, BNX_PCICFG_REG_WINDOW, val);
    869   1.1    bouyer }
    870   1.1    bouyer 
    871   1.1    bouyer /****************************************************************************/
    872   1.1    bouyer /* Context memory write.                                                    */
    873   1.1    bouyer /*                                                                          */
    874   1.1    bouyer /* The NetXtreme II controller uses context memory to track connection      */
    875   1.1    bouyer /* information for L2 and higher network protocols.                         */
    876   1.1    bouyer /*                                                                          */
    877   1.1    bouyer /* Returns:                                                                 */
    878   1.1    bouyer /*   Nothing.                                                               */
    879   1.1    bouyer /****************************************************************************/
    880   1.1    bouyer void
    881  1.29    bouyer bnx_ctx_wr(struct bnx_softc *sc, u_int32_t cid_addr, u_int32_t ctx_offset,
    882  1.29    bouyer     u_int32_t ctx_val)
    883   1.1    bouyer {
    884  1.29    bouyer 	u_int32_t idx, offset = ctx_offset + cid_addr;
    885  1.29    bouyer 	u_int32_t val, retry_cnt = 5;
    886  1.29    bouyer 
    887  1.29    bouyer 	if (BNX_CHIP_NUM(sc) == BNX_CHIP_NUM_5709) {
    888  1.29    bouyer 		REG_WR(sc, BNX_CTX_CTX_DATA, ctx_val);
    889  1.29    bouyer 		REG_WR(sc, BNX_CTX_CTX_CTRL,
    890  1.29    bouyer 		    (offset | BNX_CTX_CTX_CTRL_WRITE_REQ));
    891  1.29    bouyer 
    892  1.29    bouyer 		for (idx = 0; idx < retry_cnt; idx++) {
    893  1.29    bouyer 			val = REG_RD(sc, BNX_CTX_CTX_CTRL);
    894  1.29    bouyer 			if ((val & BNX_CTX_CTX_CTRL_WRITE_REQ) == 0)
    895  1.29    bouyer 				break;
    896  1.29    bouyer 			DELAY(5);
    897  1.29    bouyer 		}
    898   1.1    bouyer 
    899  1.29    bouyer #if 0
    900  1.29    bouyer 		if (val & BNX_CTX_CTX_CTRL_WRITE_REQ)
    901  1.29    bouyer 			BNX_PRINTF("%s(%d); Unable to write CTX memory: "
    902  1.29    bouyer 				"cid_addr = 0x%08X, offset = 0x%08X!\n",
    903  1.29    bouyer 				__FILE__, __LINE__, cid_addr, ctx_offset);
    904  1.29    bouyer #endif
    905   1.1    bouyer 
    906  1.29    bouyer 	} else {
    907  1.29    bouyer 		REG_WR(sc, BNX_CTX_DATA_ADR, offset);
    908  1.29    bouyer 		REG_WR(sc, BNX_CTX_DATA, ctx_val);
    909  1.29    bouyer 	}
    910   1.1    bouyer }
    911   1.1    bouyer 
    912   1.1    bouyer /****************************************************************************/
    913   1.1    bouyer /* PHY register read.                                                       */
    914   1.1    bouyer /*                                                                          */
    915   1.1    bouyer /* Implements register reads on the MII bus.                                */
    916   1.1    bouyer /*                                                                          */
    917   1.1    bouyer /* Returns:                                                                 */
    918   1.1    bouyer /*   The value of the register.                                             */
    919   1.1    bouyer /****************************************************************************/
    920   1.1    bouyer int
    921  1.13    dyoung bnx_miibus_read_reg(device_t dev, int phy, int reg)
    922   1.1    bouyer {
    923  1.13    dyoung 	struct bnx_softc	*sc = device_private(dev);
    924   1.1    bouyer 	u_int32_t		val;
    925   1.1    bouyer 	int			i;
    926   1.1    bouyer 
    927   1.1    bouyer 	/* Make sure we are accessing the correct PHY address. */
    928   1.1    bouyer 	if (phy != sc->bnx_phy_addr) {
    929   1.1    bouyer 		DBPRINT(sc, BNX_VERBOSE,
    930   1.1    bouyer 		    "Invalid PHY address %d for PHY read!\n", phy);
    931   1.1    bouyer 		return(0);
    932   1.1    bouyer 	}
    933   1.1    bouyer 
    934  1.41       jym 	/*
    935  1.41       jym 	 * The BCM5709S PHY is an IEEE Clause 45 PHY
    936  1.41       jym 	 * with special mappings to work with IEEE
    937  1.41       jym 	 * Clause 22 register accesses.
    938  1.41       jym 	 */
    939  1.41       jym 	if ((sc->bnx_phy_flags & BNX_PHY_IEEE_CLAUSE_45_FLAG) != 0) {
    940  1.41       jym 		if (reg >= MII_BMCR && reg <= MII_ANLPRNP)
    941  1.41       jym 			reg += 0x10;
    942  1.41       jym 	}
    943  1.41       jym 
    944   1.1    bouyer 	if (sc->bnx_phy_flags & BNX_PHY_INT_MODE_AUTO_POLLING_FLAG) {
    945   1.1    bouyer 		val = REG_RD(sc, BNX_EMAC_MDIO_MODE);
    946   1.1    bouyer 		val &= ~BNX_EMAC_MDIO_MODE_AUTO_POLL;
    947   1.1    bouyer 
    948   1.1    bouyer 		REG_WR(sc, BNX_EMAC_MDIO_MODE, val);
    949   1.1    bouyer 		REG_RD(sc, BNX_EMAC_MDIO_MODE);
    950   1.1    bouyer 
    951   1.1    bouyer 		DELAY(40);
    952   1.1    bouyer 	}
    953   1.1    bouyer 
    954   1.1    bouyer 	val = BNX_MIPHY(phy) | BNX_MIREG(reg) |
    955   1.1    bouyer 	    BNX_EMAC_MDIO_COMM_COMMAND_READ | BNX_EMAC_MDIO_COMM_DISEXT |
    956   1.1    bouyer 	    BNX_EMAC_MDIO_COMM_START_BUSY;
    957   1.1    bouyer 	REG_WR(sc, BNX_EMAC_MDIO_COMM, val);
    958   1.1    bouyer 
    959   1.1    bouyer 	for (i = 0; i < BNX_PHY_TIMEOUT; i++) {
    960   1.1    bouyer 		DELAY(10);
    961   1.1    bouyer 
    962   1.1    bouyer 		val = REG_RD(sc, BNX_EMAC_MDIO_COMM);
    963   1.1    bouyer 		if (!(val & BNX_EMAC_MDIO_COMM_START_BUSY)) {
    964   1.1    bouyer 			DELAY(5);
    965   1.1    bouyer 
    966   1.1    bouyer 			val = REG_RD(sc, BNX_EMAC_MDIO_COMM);
    967   1.1    bouyer 			val &= BNX_EMAC_MDIO_COMM_DATA;
    968   1.1    bouyer 
    969   1.1    bouyer 			break;
    970   1.1    bouyer 		}
    971   1.1    bouyer 	}
    972   1.1    bouyer 
    973   1.1    bouyer 	if (val & BNX_EMAC_MDIO_COMM_START_BUSY) {
    974   1.1    bouyer 		BNX_PRINTF(sc, "%s(%d): Error: PHY read timeout! phy = %d, "
    975   1.1    bouyer 		    "reg = 0x%04X\n", __FILE__, __LINE__, phy, reg);
    976   1.1    bouyer 		val = 0x0;
    977   1.1    bouyer 	} else
    978   1.1    bouyer 		val = REG_RD(sc, BNX_EMAC_MDIO_COMM);
    979   1.1    bouyer 
    980   1.1    bouyer 	DBPRINT(sc, BNX_EXCESSIVE,
    981  1.12     perry 	    "%s(): phy = %d, reg = 0x%04X, val = 0x%04X\n", __func__, phy,
    982   1.1    bouyer 	    (u_int16_t) reg & 0xffff, (u_int16_t) val & 0xffff);
    983   1.1    bouyer 
    984   1.1    bouyer 	if (sc->bnx_phy_flags & BNX_PHY_INT_MODE_AUTO_POLLING_FLAG) {
    985   1.1    bouyer 		val = REG_RD(sc, BNX_EMAC_MDIO_MODE);
    986   1.1    bouyer 		val |= BNX_EMAC_MDIO_MODE_AUTO_POLL;
    987   1.1    bouyer 
    988   1.1    bouyer 		REG_WR(sc, BNX_EMAC_MDIO_MODE, val);
    989   1.1    bouyer 		REG_RD(sc, BNX_EMAC_MDIO_MODE);
    990   1.1    bouyer 
    991   1.1    bouyer 		DELAY(40);
    992   1.1    bouyer 	}
    993   1.1    bouyer 
    994   1.1    bouyer 	return (val & 0xffff);
    995   1.1    bouyer }
    996   1.1    bouyer 
    997   1.1    bouyer /****************************************************************************/
    998   1.1    bouyer /* PHY register write.                                                      */
    999   1.1    bouyer /*                                                                          */
   1000   1.1    bouyer /* Implements register writes on the MII bus.                               */
   1001   1.1    bouyer /*                                                                          */
   1002   1.1    bouyer /* Returns:                                                                 */
   1003   1.1    bouyer /*   The value of the register.                                             */
   1004   1.1    bouyer /****************************************************************************/
   1005   1.1    bouyer void
   1006  1.13    dyoung bnx_miibus_write_reg(device_t dev, int phy, int reg, int val)
   1007   1.1    bouyer {
   1008  1.13    dyoung 	struct bnx_softc	*sc = device_private(dev);
   1009   1.1    bouyer 	u_int32_t		val1;
   1010   1.1    bouyer 	int			i;
   1011   1.1    bouyer 
   1012   1.1    bouyer 	/* Make sure we are accessing the correct PHY address. */
   1013   1.1    bouyer 	if (phy != sc->bnx_phy_addr) {
   1014   1.1    bouyer 		DBPRINT(sc, BNX_WARN, "Invalid PHY address %d for PHY write!\n",
   1015   1.1    bouyer 		    phy);
   1016   1.1    bouyer 		return;
   1017   1.1    bouyer 	}
   1018   1.1    bouyer 
   1019   1.1    bouyer 	DBPRINT(sc, BNX_EXCESSIVE, "%s(): phy = %d, reg = 0x%04X, "
   1020  1.12     perry 	    "val = 0x%04X\n", __func__,
   1021   1.1    bouyer 	    phy, (u_int16_t) reg & 0xffff, (u_int16_t) val & 0xffff);
   1022   1.1    bouyer 
   1023  1.41       jym 	/*
   1024  1.41       jym 	 * The BCM5709S PHY is an IEEE Clause 45 PHY
   1025  1.41       jym 	 * with special mappings to work with IEEE
   1026  1.41       jym 	 * Clause 22 register accesses.
   1027  1.41       jym 	 */
   1028  1.41       jym 	if ((sc->bnx_phy_flags & BNX_PHY_IEEE_CLAUSE_45_FLAG) != 0) {
   1029  1.41       jym 		if (reg >= MII_BMCR && reg <= MII_ANLPRNP)
   1030  1.41       jym 			reg += 0x10;
   1031  1.41       jym 	}
   1032  1.41       jym 
   1033   1.1    bouyer 	if (sc->bnx_phy_flags & BNX_PHY_INT_MODE_AUTO_POLLING_FLAG) {
   1034   1.1    bouyer 		val1 = REG_RD(sc, BNX_EMAC_MDIO_MODE);
   1035   1.1    bouyer 		val1 &= ~BNX_EMAC_MDIO_MODE_AUTO_POLL;
   1036   1.1    bouyer 
   1037   1.1    bouyer 		REG_WR(sc, BNX_EMAC_MDIO_MODE, val1);
   1038   1.1    bouyer 		REG_RD(sc, BNX_EMAC_MDIO_MODE);
   1039   1.1    bouyer 
   1040   1.1    bouyer 		DELAY(40);
   1041   1.1    bouyer 	}
   1042   1.1    bouyer 
   1043   1.1    bouyer 	val1 = BNX_MIPHY(phy) | BNX_MIREG(reg) | val |
   1044   1.1    bouyer 	    BNX_EMAC_MDIO_COMM_COMMAND_WRITE |
   1045   1.1    bouyer 	    BNX_EMAC_MDIO_COMM_START_BUSY | BNX_EMAC_MDIO_COMM_DISEXT;
   1046   1.1    bouyer 	REG_WR(sc, BNX_EMAC_MDIO_COMM, val1);
   1047   1.1    bouyer 
   1048   1.1    bouyer 	for (i = 0; i < BNX_PHY_TIMEOUT; i++) {
   1049   1.1    bouyer 		DELAY(10);
   1050   1.1    bouyer 
   1051   1.1    bouyer 		val1 = REG_RD(sc, BNX_EMAC_MDIO_COMM);
   1052   1.1    bouyer 		if (!(val1 & BNX_EMAC_MDIO_COMM_START_BUSY)) {
   1053   1.1    bouyer 			DELAY(5);
   1054   1.1    bouyer 			break;
   1055   1.1    bouyer 		}
   1056   1.1    bouyer 	}
   1057   1.1    bouyer 
   1058   1.1    bouyer 	if (val1 & BNX_EMAC_MDIO_COMM_START_BUSY) {
   1059   1.1    bouyer 		BNX_PRINTF(sc, "%s(%d): PHY write timeout!\n", __FILE__,
   1060   1.1    bouyer 		    __LINE__);
   1061   1.1    bouyer 	}
   1062   1.1    bouyer 
   1063   1.1    bouyer 	if (sc->bnx_phy_flags & BNX_PHY_INT_MODE_AUTO_POLLING_FLAG) {
   1064   1.1    bouyer 		val1 = REG_RD(sc, BNX_EMAC_MDIO_MODE);
   1065   1.1    bouyer 		val1 |= BNX_EMAC_MDIO_MODE_AUTO_POLL;
   1066   1.1    bouyer 
   1067   1.1    bouyer 		REG_WR(sc, BNX_EMAC_MDIO_MODE, val1);
   1068   1.1    bouyer 		REG_RD(sc, BNX_EMAC_MDIO_MODE);
   1069   1.1    bouyer 
   1070   1.1    bouyer 		DELAY(40);
   1071   1.1    bouyer 	}
   1072   1.1    bouyer }
   1073   1.1    bouyer 
   1074   1.1    bouyer /****************************************************************************/
   1075   1.1    bouyer /* MII bus status change.                                                   */
   1076   1.1    bouyer /*                                                                          */
   1077   1.1    bouyer /* Called by the MII bus driver when the PHY establishes link to set the    */
   1078   1.1    bouyer /* MAC interface registers.                                                 */
   1079   1.1    bouyer /*                                                                          */
   1080   1.1    bouyer /* Returns:                                                                 */
   1081   1.1    bouyer /*   Nothing.                                                               */
   1082   1.1    bouyer /****************************************************************************/
   1083   1.1    bouyer void
   1084  1.13    dyoung bnx_miibus_statchg(device_t dev)
   1085   1.1    bouyer {
   1086  1.13    dyoung 	struct bnx_softc	*sc = device_private(dev);
   1087   1.1    bouyer 	struct mii_data		*mii = &sc->bnx_mii;
   1088  1.20    mhitch 	int			val;
   1089   1.1    bouyer 
   1090  1.20    mhitch 	val = REG_RD(sc, BNX_EMAC_MODE);
   1091  1.20    mhitch 	val &= ~(BNX_EMAC_MODE_PORT | BNX_EMAC_MODE_HALF_DUPLEX |
   1092  1.20    mhitch 	    BNX_EMAC_MODE_MAC_LOOP | BNX_EMAC_MODE_FORCE_LINK |
   1093  1.20    mhitch 	    BNX_EMAC_MODE_25G);
   1094   1.1    bouyer 
   1095  1.20    mhitch 	/* Set MII or GMII interface based on the speed
   1096  1.20    mhitch 	 * negotiated by the PHY.
   1097  1.20    mhitch 	 */
   1098  1.20    mhitch 	switch (IFM_SUBTYPE(mii->mii_media_active)) {
   1099  1.20    mhitch 	case IFM_10_T:
   1100  1.20    mhitch 		if (BNX_CHIP_NUM(sc) != BNX_CHIP_NUM_5706) {
   1101  1.20    mhitch 			DBPRINT(sc, BNX_INFO, "Enabling 10Mb interface.\n");
   1102  1.20    mhitch 			val |= BNX_EMAC_MODE_PORT_MII_10;
   1103  1.20    mhitch 			break;
   1104  1.20    mhitch 		}
   1105  1.20    mhitch 		/* FALLTHROUGH */
   1106  1.20    mhitch 	case IFM_100_TX:
   1107  1.20    mhitch 		DBPRINT(sc, BNX_INFO, "Enabling MII interface.\n");
   1108  1.20    mhitch 		val |= BNX_EMAC_MODE_PORT_MII;
   1109  1.20    mhitch 		break;
   1110  1.20    mhitch 	case IFM_2500_SX:
   1111  1.20    mhitch 		DBPRINT(sc, BNX_INFO, "Enabling 2.5G MAC mode.\n");
   1112  1.20    mhitch 		val |= BNX_EMAC_MODE_25G;
   1113  1.20    mhitch 		/* FALLTHROUGH */
   1114  1.20    mhitch 	case IFM_1000_T:
   1115  1.20    mhitch 	case IFM_1000_SX:
   1116  1.20    mhitch 		DBPRINT(sc, BNX_INFO, "Enabling GMII interface.\n");
   1117  1.20    mhitch 		val |= BNX_EMAC_MODE_PORT_GMII;
   1118  1.20    mhitch 		break;
   1119  1.20    mhitch 	default:
   1120  1.20    mhitch 		val |= BNX_EMAC_MODE_PORT_GMII;
   1121  1.20    mhitch 		break;
   1122   1.1    bouyer 	}
   1123   1.1    bouyer 
   1124   1.1    bouyer 	/* Set half or full duplex based on the duplicity
   1125   1.1    bouyer 	 * negotiated by the PHY.
   1126   1.1    bouyer 	 */
   1127  1.20    mhitch 	if ((mii->mii_media_active & IFM_GMASK) == IFM_HDX) {
   1128  1.20    mhitch 		DBPRINT(sc, BNX_INFO, "Setting Half-Duplex interface.\n");
   1129  1.20    mhitch 		val |= BNX_EMAC_MODE_HALF_DUPLEX;
   1130  1.20    mhitch 	} else {
   1131   1.1    bouyer 		DBPRINT(sc, BNX_INFO, "Setting Full-Duplex interface.\n");
   1132   1.1    bouyer 	}
   1133  1.20    mhitch 
   1134  1.20    mhitch 	REG_WR(sc, BNX_EMAC_MODE, val);
   1135   1.1    bouyer }
   1136   1.1    bouyer 
   1137   1.1    bouyer /****************************************************************************/
   1138   1.1    bouyer /* Acquire NVRAM lock.                                                      */
   1139   1.1    bouyer /*                                                                          */
   1140   1.1    bouyer /* Before the NVRAM can be accessed the caller must acquire an NVRAM lock.  */
   1141   1.1    bouyer /* Locks 0 and 2 are reserved, lock 1 is used by firmware and lock 2 is     */
   1142   1.1    bouyer /* for use by the driver.                                                   */
   1143   1.1    bouyer /*                                                                          */
   1144   1.1    bouyer /* Returns:                                                                 */
   1145   1.1    bouyer /*   0 on success, positive value on failure.                               */
   1146   1.1    bouyer /****************************************************************************/
   1147   1.1    bouyer int
   1148   1.1    bouyer bnx_acquire_nvram_lock(struct bnx_softc *sc)
   1149   1.1    bouyer {
   1150   1.1    bouyer 	u_int32_t		val;
   1151   1.1    bouyer 	int			j;
   1152   1.1    bouyer 
   1153   1.1    bouyer 	DBPRINT(sc, BNX_VERBOSE, "Acquiring NVRAM lock.\n");
   1154   1.1    bouyer 
   1155   1.1    bouyer 	/* Request access to the flash interface. */
   1156   1.1    bouyer 	REG_WR(sc, BNX_NVM_SW_ARB, BNX_NVM_SW_ARB_ARB_REQ_SET2);
   1157   1.1    bouyer 	for (j = 0; j < NVRAM_TIMEOUT_COUNT; j++) {
   1158   1.1    bouyer 		val = REG_RD(sc, BNX_NVM_SW_ARB);
   1159   1.1    bouyer 		if (val & BNX_NVM_SW_ARB_ARB_ARB2)
   1160   1.1    bouyer 			break;
   1161   1.1    bouyer 
   1162   1.1    bouyer 		DELAY(5);
   1163   1.1    bouyer 	}
   1164   1.1    bouyer 
   1165   1.1    bouyer 	if (j >= NVRAM_TIMEOUT_COUNT) {
   1166   1.1    bouyer 		DBPRINT(sc, BNX_WARN, "Timeout acquiring NVRAM lock!\n");
   1167   1.1    bouyer 		return (EBUSY);
   1168   1.1    bouyer 	}
   1169   1.1    bouyer 
   1170   1.1    bouyer 	return (0);
   1171   1.1    bouyer }
   1172   1.1    bouyer 
   1173   1.1    bouyer /****************************************************************************/
   1174   1.1    bouyer /* Release NVRAM lock.                                                      */
   1175   1.1    bouyer /*                                                                          */
   1176   1.1    bouyer /* When the caller is finished accessing NVRAM the lock must be released.   */
   1177   1.1    bouyer /* Locks 0 and 2 are reserved, lock 1 is used by firmware and lock 2 is     */
   1178   1.1    bouyer /* for use by the driver.                                                   */
   1179   1.1    bouyer /*                                                                          */
   1180   1.1    bouyer /* Returns:                                                                 */
   1181   1.1    bouyer /*   0 on success, positive value on failure.                               */
   1182   1.1    bouyer /****************************************************************************/
   1183   1.1    bouyer int
   1184   1.1    bouyer bnx_release_nvram_lock(struct bnx_softc *sc)
   1185   1.1    bouyer {
   1186   1.1    bouyer 	int			j;
   1187   1.1    bouyer 	u_int32_t		val;
   1188   1.1    bouyer 
   1189   1.1    bouyer 	DBPRINT(sc, BNX_VERBOSE, "Releasing NVRAM lock.\n");
   1190   1.1    bouyer 
   1191   1.1    bouyer 	/* Relinquish nvram interface. */
   1192   1.1    bouyer 	REG_WR(sc, BNX_NVM_SW_ARB, BNX_NVM_SW_ARB_ARB_REQ_CLR2);
   1193   1.1    bouyer 
   1194   1.1    bouyer 	for (j = 0; j < NVRAM_TIMEOUT_COUNT; j++) {
   1195   1.1    bouyer 		val = REG_RD(sc, BNX_NVM_SW_ARB);
   1196   1.1    bouyer 		if (!(val & BNX_NVM_SW_ARB_ARB_ARB2))
   1197   1.1    bouyer 			break;
   1198   1.1    bouyer 
   1199   1.1    bouyer 		DELAY(5);
   1200   1.1    bouyer 	}
   1201   1.1    bouyer 
   1202   1.1    bouyer 	if (j >= NVRAM_TIMEOUT_COUNT) {
   1203   1.1    bouyer 		DBPRINT(sc, BNX_WARN, "Timeout reeasing NVRAM lock!\n");
   1204   1.1    bouyer 		return (EBUSY);
   1205   1.1    bouyer 	}
   1206   1.1    bouyer 
   1207   1.1    bouyer 	return (0);
   1208   1.1    bouyer }
   1209   1.1    bouyer 
   1210   1.1    bouyer #ifdef BNX_NVRAM_WRITE_SUPPORT
   1211   1.1    bouyer /****************************************************************************/
   1212   1.1    bouyer /* Enable NVRAM write access.                                               */
   1213   1.1    bouyer /*                                                                          */
   1214   1.1    bouyer /* Before writing to NVRAM the caller must enable NVRAM writes.             */
   1215   1.1    bouyer /*                                                                          */
   1216   1.1    bouyer /* Returns:                                                                 */
   1217   1.1    bouyer /*   0 on success, positive value on failure.                               */
   1218   1.1    bouyer /****************************************************************************/
   1219   1.1    bouyer int
   1220   1.1    bouyer bnx_enable_nvram_write(struct bnx_softc *sc)
   1221   1.1    bouyer {
   1222   1.1    bouyer 	u_int32_t		val;
   1223   1.1    bouyer 
   1224   1.1    bouyer 	DBPRINT(sc, BNX_VERBOSE, "Enabling NVRAM write.\n");
   1225   1.1    bouyer 
   1226   1.1    bouyer 	val = REG_RD(sc, BNX_MISC_CFG);
   1227   1.1    bouyer 	REG_WR(sc, BNX_MISC_CFG, val | BNX_MISC_CFG_NVM_WR_EN_PCI);
   1228   1.1    bouyer 
   1229  1.29    bouyer 	if (!ISSET(sc->bnx_flash_info->flags, BNX_NV_BUFFERED)) {
   1230   1.1    bouyer 		int j;
   1231   1.1    bouyer 
   1232   1.1    bouyer 		REG_WR(sc, BNX_NVM_COMMAND, BNX_NVM_COMMAND_DONE);
   1233   1.1    bouyer 		REG_WR(sc, BNX_NVM_COMMAND,
   1234   1.1    bouyer 		    BNX_NVM_COMMAND_WREN | BNX_NVM_COMMAND_DOIT);
   1235   1.1    bouyer 
   1236   1.1    bouyer 		for (j = 0; j < NVRAM_TIMEOUT_COUNT; j++) {
   1237   1.1    bouyer 			DELAY(5);
   1238   1.1    bouyer 
   1239   1.1    bouyer 			val = REG_RD(sc, BNX_NVM_COMMAND);
   1240   1.1    bouyer 			if (val & BNX_NVM_COMMAND_DONE)
   1241   1.1    bouyer 				break;
   1242   1.1    bouyer 		}
   1243   1.1    bouyer 
   1244   1.1    bouyer 		if (j >= NVRAM_TIMEOUT_COUNT) {
   1245   1.1    bouyer 			DBPRINT(sc, BNX_WARN, "Timeout writing NVRAM!\n");
   1246   1.1    bouyer 			return (EBUSY);
   1247   1.1    bouyer 		}
   1248   1.1    bouyer 	}
   1249   1.1    bouyer 
   1250   1.1    bouyer 	return (0);
   1251   1.1    bouyer }
   1252   1.1    bouyer 
   1253   1.1    bouyer /****************************************************************************/
   1254   1.1    bouyer /* Disable NVRAM write access.                                              */
   1255   1.1    bouyer /*                                                                          */
   1256   1.1    bouyer /* When the caller is finished writing to NVRAM write access must be        */
   1257   1.1    bouyer /* disabled.                                                                */
   1258   1.1    bouyer /*                                                                          */
   1259   1.1    bouyer /* Returns:                                                                 */
   1260   1.1    bouyer /*   Nothing.                                                               */
   1261   1.1    bouyer /****************************************************************************/
   1262   1.1    bouyer void
   1263   1.1    bouyer bnx_disable_nvram_write(struct bnx_softc *sc)
   1264   1.1    bouyer {
   1265   1.1    bouyer 	u_int32_t		val;
   1266   1.1    bouyer 
   1267   1.1    bouyer 	DBPRINT(sc, BNX_VERBOSE,  "Disabling NVRAM write.\n");
   1268   1.1    bouyer 
   1269   1.1    bouyer 	val = REG_RD(sc, BNX_MISC_CFG);
   1270   1.1    bouyer 	REG_WR(sc, BNX_MISC_CFG, val & ~BNX_MISC_CFG_NVM_WR_EN);
   1271   1.1    bouyer }
   1272   1.1    bouyer #endif
   1273   1.1    bouyer 
   1274   1.1    bouyer /****************************************************************************/
   1275   1.1    bouyer /* Enable NVRAM access.                                                     */
   1276   1.1    bouyer /*                                                                          */
   1277   1.1    bouyer /* Before accessing NVRAM for read or write operations the caller must      */
   1278   1.1    bouyer /* enabled NVRAM access.                                                    */
   1279   1.1    bouyer /*                                                                          */
   1280   1.1    bouyer /* Returns:                                                                 */
   1281   1.1    bouyer /*   Nothing.                                                               */
   1282   1.1    bouyer /****************************************************************************/
   1283   1.1    bouyer void
   1284   1.1    bouyer bnx_enable_nvram_access(struct bnx_softc *sc)
   1285   1.1    bouyer {
   1286   1.1    bouyer 	u_int32_t		val;
   1287   1.1    bouyer 
   1288   1.1    bouyer 	DBPRINT(sc, BNX_VERBOSE, "Enabling NVRAM access.\n");
   1289   1.1    bouyer 
   1290   1.1    bouyer 	val = REG_RD(sc, BNX_NVM_ACCESS_ENABLE);
   1291   1.1    bouyer 	/* Enable both bits, even on read. */
   1292   1.1    bouyer 	REG_WR(sc, BNX_NVM_ACCESS_ENABLE,
   1293   1.1    bouyer 	    val | BNX_NVM_ACCESS_ENABLE_EN | BNX_NVM_ACCESS_ENABLE_WR_EN);
   1294   1.1    bouyer }
   1295   1.1    bouyer 
   1296   1.1    bouyer /****************************************************************************/
   1297   1.1    bouyer /* Disable NVRAM access.                                                    */
   1298   1.1    bouyer /*                                                                          */
   1299   1.1    bouyer /* When the caller is finished accessing NVRAM access must be disabled.     */
   1300   1.1    bouyer /*                                                                          */
   1301   1.1    bouyer /* Returns:                                                                 */
   1302   1.1    bouyer /*   Nothing.                                                               */
   1303   1.1    bouyer /****************************************************************************/
   1304   1.1    bouyer void
   1305   1.1    bouyer bnx_disable_nvram_access(struct bnx_softc *sc)
   1306   1.1    bouyer {
   1307   1.1    bouyer 	u_int32_t		val;
   1308   1.1    bouyer 
   1309   1.1    bouyer 	DBPRINT(sc, BNX_VERBOSE, "Disabling NVRAM access.\n");
   1310   1.1    bouyer 
   1311   1.1    bouyer 	val = REG_RD(sc, BNX_NVM_ACCESS_ENABLE);
   1312   1.1    bouyer 
   1313   1.1    bouyer 	/* Disable both bits, even after read. */
   1314   1.1    bouyer 	REG_WR(sc, BNX_NVM_ACCESS_ENABLE,
   1315   1.1    bouyer 	    val & ~(BNX_NVM_ACCESS_ENABLE_EN | BNX_NVM_ACCESS_ENABLE_WR_EN));
   1316   1.1    bouyer }
   1317   1.1    bouyer 
   1318   1.1    bouyer #ifdef BNX_NVRAM_WRITE_SUPPORT
   1319   1.1    bouyer /****************************************************************************/
   1320   1.1    bouyer /* Erase NVRAM page before writing.                                         */
   1321   1.1    bouyer /*                                                                          */
   1322   1.1    bouyer /* Non-buffered flash parts require that a page be erased before it is      */
   1323   1.1    bouyer /* written.                                                                 */
   1324   1.1    bouyer /*                                                                          */
   1325   1.1    bouyer /* Returns:                                                                 */
   1326   1.1    bouyer /*   0 on success, positive value on failure.                               */
   1327   1.1    bouyer /****************************************************************************/
   1328   1.1    bouyer int
   1329   1.1    bouyer bnx_nvram_erase_page(struct bnx_softc *sc, u_int32_t offset)
   1330   1.1    bouyer {
   1331   1.1    bouyer 	u_int32_t		cmd;
   1332   1.1    bouyer 	int			j;
   1333   1.1    bouyer 
   1334   1.1    bouyer 	/* Buffered flash doesn't require an erase. */
   1335  1.29    bouyer 	if (ISSET(sc->bnx_flash_info->flags, BNX_NV_BUFFERED))
   1336   1.1    bouyer 		return (0);
   1337   1.1    bouyer 
   1338   1.1    bouyer 	DBPRINT(sc, BNX_VERBOSE, "Erasing NVRAM page.\n");
   1339   1.1    bouyer 
   1340   1.1    bouyer 	/* Build an erase command. */
   1341   1.1    bouyer 	cmd = BNX_NVM_COMMAND_ERASE | BNX_NVM_COMMAND_WR |
   1342   1.1    bouyer 	    BNX_NVM_COMMAND_DOIT;
   1343   1.1    bouyer 
   1344   1.1    bouyer 	/*
   1345   1.1    bouyer 	 * Clear the DONE bit separately, set the NVRAM adress to erase,
   1346   1.1    bouyer 	 * and issue the erase command.
   1347   1.1    bouyer 	 */
   1348   1.1    bouyer 	REG_WR(sc, BNX_NVM_COMMAND, BNX_NVM_COMMAND_DONE);
   1349   1.1    bouyer 	REG_WR(sc, BNX_NVM_ADDR, offset & BNX_NVM_ADDR_NVM_ADDR_VALUE);
   1350   1.1    bouyer 	REG_WR(sc, BNX_NVM_COMMAND, cmd);
   1351   1.1    bouyer 
   1352   1.1    bouyer 	/* Wait for completion. */
   1353   1.1    bouyer 	for (j = 0; j < NVRAM_TIMEOUT_COUNT; j++) {
   1354   1.1    bouyer 		u_int32_t val;
   1355   1.1    bouyer 
   1356   1.1    bouyer 		DELAY(5);
   1357   1.1    bouyer 
   1358   1.1    bouyer 		val = REG_RD(sc, BNX_NVM_COMMAND);
   1359   1.1    bouyer 		if (val & BNX_NVM_COMMAND_DONE)
   1360   1.1    bouyer 			break;
   1361   1.1    bouyer 	}
   1362   1.1    bouyer 
   1363   1.1    bouyer 	if (j >= NVRAM_TIMEOUT_COUNT) {
   1364   1.1    bouyer 		DBPRINT(sc, BNX_WARN, "Timeout erasing NVRAM.\n");
   1365   1.1    bouyer 		return (EBUSY);
   1366   1.1    bouyer 	}
   1367   1.1    bouyer 
   1368   1.1    bouyer 	return (0);
   1369   1.1    bouyer }
   1370   1.1    bouyer #endif /* BNX_NVRAM_WRITE_SUPPORT */
   1371   1.1    bouyer 
   1372   1.1    bouyer /****************************************************************************/
   1373   1.1    bouyer /* Read a dword (32 bits) from NVRAM.                                       */
   1374   1.1    bouyer /*                                                                          */
   1375   1.1    bouyer /* Read a 32 bit word from NVRAM.  The caller is assumed to have already    */
   1376   1.1    bouyer /* obtained the NVRAM lock and enabled the controller for NVRAM access.     */
   1377   1.1    bouyer /*                                                                          */
   1378   1.1    bouyer /* Returns:                                                                 */
   1379   1.1    bouyer /*   0 on success and the 32 bit value read, positive value on failure.     */
   1380   1.1    bouyer /****************************************************************************/
   1381   1.1    bouyer int
   1382   1.1    bouyer bnx_nvram_read_dword(struct bnx_softc *sc, u_int32_t offset,
   1383   1.1    bouyer     u_int8_t *ret_val, u_int32_t cmd_flags)
   1384   1.1    bouyer {
   1385   1.1    bouyer 	u_int32_t		cmd;
   1386   1.1    bouyer 	int			i, rc = 0;
   1387   1.1    bouyer 
   1388   1.1    bouyer 	/* Build the command word. */
   1389   1.1    bouyer 	cmd = BNX_NVM_COMMAND_DOIT | cmd_flags;
   1390   1.1    bouyer 
   1391  1.29    bouyer 	/* Calculate the offset for buffered flash if translation is used. */
   1392  1.29    bouyer 	if (ISSET(sc->bnx_flash_info->flags, BNX_NV_TRANSLATE)) {
   1393   1.1    bouyer 		offset = ((offset / sc->bnx_flash_info->page_size) <<
   1394   1.1    bouyer 		    sc->bnx_flash_info->page_bits) +
   1395   1.1    bouyer 		    (offset % sc->bnx_flash_info->page_size);
   1396  1.29    bouyer 	}
   1397   1.1    bouyer 
   1398   1.1    bouyer 	/*
   1399   1.1    bouyer 	 * Clear the DONE bit separately, set the address to read,
   1400   1.1    bouyer 	 * and issue the read.
   1401   1.1    bouyer 	 */
   1402   1.1    bouyer 	REG_WR(sc, BNX_NVM_COMMAND, BNX_NVM_COMMAND_DONE);
   1403   1.1    bouyer 	REG_WR(sc, BNX_NVM_ADDR, offset & BNX_NVM_ADDR_NVM_ADDR_VALUE);
   1404   1.1    bouyer 	REG_WR(sc, BNX_NVM_COMMAND, cmd);
   1405   1.1    bouyer 
   1406   1.1    bouyer 	/* Wait for completion. */
   1407   1.1    bouyer 	for (i = 0; i < NVRAM_TIMEOUT_COUNT; i++) {
   1408   1.1    bouyer 		u_int32_t val;
   1409   1.1    bouyer 
   1410   1.1    bouyer 		DELAY(5);
   1411   1.1    bouyer 
   1412   1.1    bouyer 		val = REG_RD(sc, BNX_NVM_COMMAND);
   1413   1.1    bouyer 		if (val & BNX_NVM_COMMAND_DONE) {
   1414   1.1    bouyer 			val = REG_RD(sc, BNX_NVM_READ);
   1415   1.1    bouyer 
   1416   1.1    bouyer 			val = bnx_be32toh(val);
   1417   1.1    bouyer 			memcpy(ret_val, &val, 4);
   1418   1.1    bouyer 			break;
   1419   1.1    bouyer 		}
   1420   1.1    bouyer 	}
   1421   1.1    bouyer 
   1422   1.1    bouyer 	/* Check for errors. */
   1423   1.1    bouyer 	if (i >= NVRAM_TIMEOUT_COUNT) {
   1424   1.1    bouyer 		BNX_PRINTF(sc, "%s(%d): Timeout error reading NVRAM at "
   1425   1.1    bouyer 		    "offset 0x%08X!\n", __FILE__, __LINE__, offset);
   1426   1.1    bouyer 		rc = EBUSY;
   1427   1.1    bouyer 	}
   1428   1.1    bouyer 
   1429   1.1    bouyer 	return(rc);
   1430   1.1    bouyer }
   1431   1.1    bouyer 
   1432   1.1    bouyer #ifdef BNX_NVRAM_WRITE_SUPPORT
   1433   1.1    bouyer /****************************************************************************/
   1434   1.1    bouyer /* Write a dword (32 bits) to NVRAM.                                        */
   1435   1.1    bouyer /*                                                                          */
   1436   1.1    bouyer /* Write a 32 bit word to NVRAM.  The caller is assumed to have already     */
   1437   1.1    bouyer /* obtained the NVRAM lock, enabled the controller for NVRAM access, and    */
   1438   1.1    bouyer /* enabled NVRAM write access.                                              */
   1439   1.1    bouyer /*                                                                          */
   1440   1.1    bouyer /* Returns:                                                                 */
   1441   1.1    bouyer /*   0 on success, positive value on failure.                               */
   1442   1.1    bouyer /****************************************************************************/
   1443   1.1    bouyer int
   1444   1.1    bouyer bnx_nvram_write_dword(struct bnx_softc *sc, u_int32_t offset, u_int8_t *val,
   1445   1.1    bouyer     u_int32_t cmd_flags)
   1446   1.1    bouyer {
   1447   1.1    bouyer 	u_int32_t		cmd, val32;
   1448   1.1    bouyer 	int			j;
   1449   1.1    bouyer 
   1450   1.1    bouyer 	/* Build the command word. */
   1451   1.1    bouyer 	cmd = BNX_NVM_COMMAND_DOIT | BNX_NVM_COMMAND_WR | cmd_flags;
   1452   1.1    bouyer 
   1453  1.29    bouyer 	/* Calculate the offset for buffered flash if translation is used. */
   1454  1.29    bouyer 	if (ISSET(sc->bnx_flash_info->flags, BNX_NV_TRANSLATE)) {
   1455   1.1    bouyer 		offset = ((offset / sc->bnx_flash_info->page_size) <<
   1456   1.1    bouyer 		    sc->bnx_flash_info->page_bits) +
   1457   1.1    bouyer 		    (offset % sc->bnx_flash_info->page_size);
   1458  1.29    bouyer 	}
   1459   1.1    bouyer 
   1460   1.1    bouyer 	/*
   1461   1.1    bouyer 	 * Clear the DONE bit separately, convert NVRAM data to big-endian,
   1462   1.1    bouyer 	 * set the NVRAM address to write, and issue the write command
   1463   1.1    bouyer 	 */
   1464   1.1    bouyer 	REG_WR(sc, BNX_NVM_COMMAND, BNX_NVM_COMMAND_DONE);
   1465   1.1    bouyer 	memcpy(&val32, val, 4);
   1466   1.1    bouyer 	val32 = htobe32(val32);
   1467   1.1    bouyer 	REG_WR(sc, BNX_NVM_WRITE, val32);
   1468   1.1    bouyer 	REG_WR(sc, BNX_NVM_ADDR, offset & BNX_NVM_ADDR_NVM_ADDR_VALUE);
   1469   1.1    bouyer 	REG_WR(sc, BNX_NVM_COMMAND, cmd);
   1470   1.1    bouyer 
   1471   1.1    bouyer 	/* Wait for completion. */
   1472   1.1    bouyer 	for (j = 0; j < NVRAM_TIMEOUT_COUNT; j++) {
   1473   1.1    bouyer 		DELAY(5);
   1474   1.1    bouyer 
   1475   1.1    bouyer 		if (REG_RD(sc, BNX_NVM_COMMAND) & BNX_NVM_COMMAND_DONE)
   1476   1.1    bouyer 			break;
   1477   1.1    bouyer 	}
   1478   1.1    bouyer 	if (j >= NVRAM_TIMEOUT_COUNT) {
   1479   1.1    bouyer 		BNX_PRINTF(sc, "%s(%d): Timeout error writing NVRAM at "
   1480   1.1    bouyer 		    "offset 0x%08X\n", __FILE__, __LINE__, offset);
   1481   1.1    bouyer 		return (EBUSY);
   1482   1.1    bouyer 	}
   1483   1.1    bouyer 
   1484   1.1    bouyer 	return (0);
   1485   1.1    bouyer }
   1486   1.1    bouyer #endif /* BNX_NVRAM_WRITE_SUPPORT */
   1487   1.1    bouyer 
   1488   1.1    bouyer /****************************************************************************/
   1489   1.1    bouyer /* Initialize NVRAM access.                                                 */
   1490   1.1    bouyer /*                                                                          */
   1491   1.1    bouyer /* Identify the NVRAM device in use and prepare the NVRAM interface to      */
   1492   1.1    bouyer /* access that device.                                                      */
   1493   1.1    bouyer /*                                                                          */
   1494   1.1    bouyer /* Returns:                                                                 */
   1495   1.1    bouyer /*   0 on success, positive value on failure.                               */
   1496   1.1    bouyer /****************************************************************************/
   1497   1.1    bouyer int
   1498   1.1    bouyer bnx_init_nvram(struct bnx_softc *sc)
   1499   1.1    bouyer {
   1500   1.1    bouyer 	u_int32_t		val;
   1501  1.29    bouyer 	int			j, entry_count, rc = 0;
   1502   1.1    bouyer 	struct flash_spec	*flash;
   1503   1.1    bouyer 
   1504  1.12     perry 	DBPRINT(sc,BNX_VERBOSE_RESET, "Entering %s()\n", __func__);
   1505   1.1    bouyer 
   1506  1.29    bouyer 	if (BNX_CHIP_NUM(sc) == BNX_CHIP_NUM_5709) {
   1507  1.29    bouyer 		sc->bnx_flash_info = &flash_5709;
   1508  1.29    bouyer 		goto bnx_init_nvram_get_flash_size;
   1509  1.29    bouyer 	}
   1510  1.29    bouyer 
   1511   1.1    bouyer 	/* Determine the selected interface. */
   1512   1.1    bouyer 	val = REG_RD(sc, BNX_NVM_CFG1);
   1513   1.1    bouyer 
   1514   1.1    bouyer 	entry_count = sizeof(flash_table) / sizeof(struct flash_spec);
   1515   1.1    bouyer 
   1516   1.1    bouyer 	/*
   1517   1.1    bouyer 	 * Flash reconfiguration is required to support additional
   1518   1.1    bouyer 	 * NVRAM devices not directly supported in hardware.
   1519   1.1    bouyer 	 * Check if the flash interface was reconfigured
   1520   1.1    bouyer 	 * by the bootcode.
   1521   1.1    bouyer 	 */
   1522   1.1    bouyer 
   1523   1.1    bouyer 	if (val & 0x40000000) {
   1524   1.1    bouyer 		/* Flash interface reconfigured by bootcode. */
   1525   1.1    bouyer 
   1526   1.1    bouyer 		DBPRINT(sc,BNX_INFO_LOAD,
   1527   1.1    bouyer 			"bnx_init_nvram(): Flash WAS reconfigured.\n");
   1528   1.1    bouyer 
   1529   1.1    bouyer 		for (j = 0, flash = &flash_table[0]; j < entry_count;
   1530   1.1    bouyer 		     j++, flash++) {
   1531   1.1    bouyer 			if ((val & FLASH_BACKUP_STRAP_MASK) ==
   1532   1.1    bouyer 			    (flash->config1 & FLASH_BACKUP_STRAP_MASK)) {
   1533   1.1    bouyer 				sc->bnx_flash_info = flash;
   1534   1.1    bouyer 				break;
   1535   1.1    bouyer 			}
   1536   1.1    bouyer 		}
   1537   1.1    bouyer 	} else {
   1538   1.1    bouyer 		/* Flash interface not yet reconfigured. */
   1539   1.1    bouyer 		u_int32_t mask;
   1540   1.1    bouyer 
   1541   1.1    bouyer 		DBPRINT(sc,BNX_INFO_LOAD,
   1542   1.1    bouyer 			"bnx_init_nvram(): Flash was NOT reconfigured.\n");
   1543   1.1    bouyer 
   1544   1.1    bouyer 		if (val & (1 << 23))
   1545   1.1    bouyer 			mask = FLASH_BACKUP_STRAP_MASK;
   1546   1.1    bouyer 		else
   1547   1.1    bouyer 			mask = FLASH_STRAP_MASK;
   1548   1.1    bouyer 
   1549   1.1    bouyer 		/* Look for the matching NVRAM device configuration data. */
   1550   1.1    bouyer 		for (j = 0, flash = &flash_table[0]; j < entry_count;
   1551   1.1    bouyer 		    j++, flash++) {
   1552   1.1    bouyer 			/* Check if the dev matches any of the known devices. */
   1553   1.1    bouyer 			if ((val & mask) == (flash->strapping & mask)) {
   1554   1.1    bouyer 				/* Found a device match. */
   1555   1.1    bouyer 				sc->bnx_flash_info = flash;
   1556   1.1    bouyer 
   1557   1.1    bouyer 				/* Request access to the flash interface. */
   1558   1.1    bouyer 				if ((rc = bnx_acquire_nvram_lock(sc)) != 0)
   1559   1.1    bouyer 					return (rc);
   1560   1.1    bouyer 
   1561   1.1    bouyer 				/* Reconfigure the flash interface. */
   1562   1.1    bouyer 				bnx_enable_nvram_access(sc);
   1563   1.1    bouyer 				REG_WR(sc, BNX_NVM_CFG1, flash->config1);
   1564   1.1    bouyer 				REG_WR(sc, BNX_NVM_CFG2, flash->config2);
   1565   1.1    bouyer 				REG_WR(sc, BNX_NVM_CFG3, flash->config3);
   1566   1.1    bouyer 				REG_WR(sc, BNX_NVM_WRITE1, flash->write1);
   1567   1.1    bouyer 				bnx_disable_nvram_access(sc);
   1568   1.1    bouyer 				bnx_release_nvram_lock(sc);
   1569   1.1    bouyer 
   1570   1.1    bouyer 				break;
   1571   1.1    bouyer 			}
   1572   1.1    bouyer 		}
   1573   1.1    bouyer 	}
   1574   1.1    bouyer 
   1575   1.1    bouyer 	/* Check if a matching device was found. */
   1576   1.1    bouyer 	if (j == entry_count) {
   1577   1.1    bouyer 		sc->bnx_flash_info = NULL;
   1578   1.1    bouyer 		BNX_PRINTF(sc, "%s(%d): Unknown Flash NVRAM found!\n",
   1579   1.1    bouyer 			__FILE__, __LINE__);
   1580   1.1    bouyer 		rc = ENODEV;
   1581   1.1    bouyer 	}
   1582   1.1    bouyer 
   1583  1.29    bouyer bnx_init_nvram_get_flash_size:
   1584   1.1    bouyer 	/* Write the flash config data to the shared memory interface. */
   1585   1.1    bouyer 	val = REG_RD_IND(sc, sc->bnx_shmem_base + BNX_SHARED_HW_CFG_CONFIG2);
   1586   1.1    bouyer 	val &= BNX_SHARED_HW_CFG2_NVM_SIZE_MASK;
   1587   1.1    bouyer 	if (val)
   1588   1.1    bouyer 		sc->bnx_flash_size = val;
   1589   1.1    bouyer 	else
   1590   1.1    bouyer 		sc->bnx_flash_size = sc->bnx_flash_info->total_size;
   1591   1.1    bouyer 
   1592   1.1    bouyer 	DBPRINT(sc, BNX_INFO_LOAD, "bnx_init_nvram() flash->total_size = "
   1593   1.1    bouyer 	    "0x%08X\n", sc->bnx_flash_info->total_size);
   1594   1.1    bouyer 
   1595  1.12     perry 	DBPRINT(sc, BNX_VERBOSE_RESET, "Exiting %s()\n", __func__);
   1596   1.1    bouyer 
   1597   1.1    bouyer 	return (rc);
   1598   1.1    bouyer }
   1599   1.1    bouyer 
   1600   1.1    bouyer /****************************************************************************/
   1601   1.1    bouyer /* Read an arbitrary range of data from NVRAM.                              */
   1602   1.1    bouyer /*                                                                          */
   1603   1.1    bouyer /* Prepares the NVRAM interface for access and reads the requested data     */
   1604   1.1    bouyer /* into the supplied buffer.                                                */
   1605   1.1    bouyer /*                                                                          */
   1606   1.1    bouyer /* Returns:                                                                 */
   1607   1.1    bouyer /*   0 on success and the data read, positive value on failure.             */
   1608   1.1    bouyer /****************************************************************************/
   1609   1.1    bouyer int
   1610   1.1    bouyer bnx_nvram_read(struct bnx_softc *sc, u_int32_t offset, u_int8_t *ret_buf,
   1611   1.1    bouyer     int buf_size)
   1612   1.1    bouyer {
   1613   1.1    bouyer 	int			rc = 0;
   1614   1.1    bouyer 	u_int32_t		cmd_flags, offset32, len32, extra;
   1615   1.1    bouyer 
   1616   1.1    bouyer 	if (buf_size == 0)
   1617   1.1    bouyer 		return (0);
   1618   1.1    bouyer 
   1619   1.1    bouyer 	/* Request access to the flash interface. */
   1620   1.1    bouyer 	if ((rc = bnx_acquire_nvram_lock(sc)) != 0)
   1621   1.1    bouyer 		return (rc);
   1622   1.1    bouyer 
   1623   1.1    bouyer 	/* Enable access to flash interface */
   1624   1.1    bouyer 	bnx_enable_nvram_access(sc);
   1625   1.1    bouyer 
   1626   1.1    bouyer 	len32 = buf_size;
   1627   1.1    bouyer 	offset32 = offset;
   1628   1.1    bouyer 	extra = 0;
   1629   1.1    bouyer 
   1630   1.1    bouyer 	cmd_flags = 0;
   1631   1.1    bouyer 
   1632   1.1    bouyer 	if (offset32 & 3) {
   1633   1.1    bouyer 		u_int8_t buf[4];
   1634   1.1    bouyer 		u_int32_t pre_len;
   1635   1.1    bouyer 
   1636   1.1    bouyer 		offset32 &= ~3;
   1637   1.1    bouyer 		pre_len = 4 - (offset & 3);
   1638   1.1    bouyer 
   1639   1.1    bouyer 		if (pre_len >= len32) {
   1640   1.1    bouyer 			pre_len = len32;
   1641   1.1    bouyer 			cmd_flags =
   1642   1.1    bouyer 			    BNX_NVM_COMMAND_FIRST | BNX_NVM_COMMAND_LAST;
   1643   1.1    bouyer 		} else
   1644   1.1    bouyer 			cmd_flags = BNX_NVM_COMMAND_FIRST;
   1645   1.1    bouyer 
   1646   1.1    bouyer 		rc = bnx_nvram_read_dword(sc, offset32, buf, cmd_flags);
   1647   1.1    bouyer 
   1648   1.1    bouyer 		if (rc)
   1649   1.1    bouyer 			return (rc);
   1650   1.1    bouyer 
   1651   1.1    bouyer 		memcpy(ret_buf, buf + (offset & 3), pre_len);
   1652   1.1    bouyer 
   1653   1.1    bouyer 		offset32 += 4;
   1654   1.1    bouyer 		ret_buf += pre_len;
   1655   1.1    bouyer 		len32 -= pre_len;
   1656   1.1    bouyer 	}
   1657   1.1    bouyer 
   1658   1.1    bouyer 	if (len32 & 3) {
   1659   1.1    bouyer 		extra = 4 - (len32 & 3);
   1660   1.1    bouyer 		len32 = (len32 + 4) & ~3;
   1661   1.1    bouyer 	}
   1662   1.1    bouyer 
   1663   1.1    bouyer 	if (len32 == 4) {
   1664   1.1    bouyer 		u_int8_t buf[4];
   1665   1.1    bouyer 
   1666   1.1    bouyer 		if (cmd_flags)
   1667   1.1    bouyer 			cmd_flags = BNX_NVM_COMMAND_LAST;
   1668   1.1    bouyer 		else
   1669   1.1    bouyer 			cmd_flags =
   1670   1.1    bouyer 			    BNX_NVM_COMMAND_FIRST | BNX_NVM_COMMAND_LAST;
   1671   1.1    bouyer 
   1672   1.1    bouyer 		rc = bnx_nvram_read_dword(sc, offset32, buf, cmd_flags);
   1673   1.1    bouyer 
   1674   1.1    bouyer 		memcpy(ret_buf, buf, 4 - extra);
   1675   1.1    bouyer 	} else if (len32 > 0) {
   1676   1.1    bouyer 		u_int8_t buf[4];
   1677   1.1    bouyer 
   1678   1.1    bouyer 		/* Read the first word. */
   1679   1.1    bouyer 		if (cmd_flags)
   1680   1.1    bouyer 			cmd_flags = 0;
   1681   1.1    bouyer 		else
   1682   1.1    bouyer 			cmd_flags = BNX_NVM_COMMAND_FIRST;
   1683   1.1    bouyer 
   1684   1.1    bouyer 		rc = bnx_nvram_read_dword(sc, offset32, ret_buf, cmd_flags);
   1685   1.1    bouyer 
   1686   1.1    bouyer 		/* Advance to the next dword. */
   1687   1.1    bouyer 		offset32 += 4;
   1688   1.1    bouyer 		ret_buf += 4;
   1689   1.1    bouyer 		len32 -= 4;
   1690   1.1    bouyer 
   1691   1.1    bouyer 		while (len32 > 4 && rc == 0) {
   1692   1.1    bouyer 			rc = bnx_nvram_read_dword(sc, offset32, ret_buf, 0);
   1693   1.1    bouyer 
   1694   1.1    bouyer 			/* Advance to the next dword. */
   1695   1.1    bouyer 			offset32 += 4;
   1696   1.1    bouyer 			ret_buf += 4;
   1697   1.1    bouyer 			len32 -= 4;
   1698   1.1    bouyer 		}
   1699   1.1    bouyer 
   1700   1.1    bouyer 		if (rc)
   1701   1.1    bouyer 			return (rc);
   1702   1.1    bouyer 
   1703   1.1    bouyer 		cmd_flags = BNX_NVM_COMMAND_LAST;
   1704   1.1    bouyer 		rc = bnx_nvram_read_dword(sc, offset32, buf, cmd_flags);
   1705   1.1    bouyer 
   1706   1.1    bouyer 		memcpy(ret_buf, buf, 4 - extra);
   1707   1.1    bouyer 	}
   1708   1.1    bouyer 
   1709   1.1    bouyer 	/* Disable access to flash interface and release the lock. */
   1710   1.1    bouyer 	bnx_disable_nvram_access(sc);
   1711   1.1    bouyer 	bnx_release_nvram_lock(sc);
   1712   1.1    bouyer 
   1713   1.1    bouyer 	return (rc);
   1714   1.1    bouyer }
   1715   1.1    bouyer 
   1716   1.1    bouyer #ifdef BNX_NVRAM_WRITE_SUPPORT
   1717   1.1    bouyer /****************************************************************************/
   1718   1.1    bouyer /* Write an arbitrary range of data from NVRAM.                             */
   1719   1.1    bouyer /*                                                                          */
   1720   1.1    bouyer /* Prepares the NVRAM interface for write access and writes the requested   */
   1721   1.1    bouyer /* data from the supplied buffer.  The caller is responsible for            */
   1722   1.1    bouyer /* calculating any appropriate CRCs.                                        */
   1723   1.1    bouyer /*                                                                          */
   1724   1.1    bouyer /* Returns:                                                                 */
   1725   1.1    bouyer /*   0 on success, positive value on failure.                               */
   1726   1.1    bouyer /****************************************************************************/
   1727   1.1    bouyer int
   1728   1.1    bouyer bnx_nvram_write(struct bnx_softc *sc, u_int32_t offset, u_int8_t *data_buf,
   1729   1.1    bouyer     int buf_size)
   1730   1.1    bouyer {
   1731   1.1    bouyer 	u_int32_t		written, offset32, len32;
   1732   1.1    bouyer 	u_int8_t		*buf, start[4], end[4];
   1733   1.1    bouyer 	int			rc = 0;
   1734   1.1    bouyer 	int			align_start, align_end;
   1735   1.1    bouyer 
   1736   1.1    bouyer 	buf = data_buf;
   1737   1.1    bouyer 	offset32 = offset;
   1738   1.1    bouyer 	len32 = buf_size;
   1739   1.1    bouyer 	align_start = align_end = 0;
   1740   1.1    bouyer 
   1741   1.1    bouyer 	if ((align_start = (offset32 & 3))) {
   1742   1.1    bouyer 		offset32 &= ~3;
   1743   1.1    bouyer 		len32 += align_start;
   1744   1.1    bouyer 		if ((rc = bnx_nvram_read(sc, offset32, start, 4)))
   1745   1.1    bouyer 			return (rc);
   1746   1.1    bouyer 	}
   1747   1.1    bouyer 
   1748   1.1    bouyer 	if (len32 & 3) {
   1749   1.1    bouyer 	       	if ((len32 > 4) || !align_start) {
   1750   1.1    bouyer 			align_end = 4 - (len32 & 3);
   1751   1.1    bouyer 			len32 += align_end;
   1752   1.1    bouyer 			if ((rc = bnx_nvram_read(sc, offset32 + len32 - 4,
   1753   1.1    bouyer 			    end, 4))) {
   1754   1.1    bouyer 				return (rc);
   1755   1.1    bouyer 			}
   1756   1.1    bouyer 		}
   1757   1.1    bouyer 	}
   1758   1.1    bouyer 
   1759   1.1    bouyer 	if (align_start || align_end) {
   1760   1.1    bouyer 		buf = malloc(len32, M_DEVBUF, M_NOWAIT);
   1761   1.1    bouyer 		if (buf == 0)
   1762   1.1    bouyer 			return (ENOMEM);
   1763   1.1    bouyer 
   1764   1.1    bouyer 		if (align_start)
   1765   1.1    bouyer 			memcpy(buf, start, 4);
   1766   1.1    bouyer 
   1767   1.1    bouyer 		if (align_end)
   1768   1.1    bouyer 			memcpy(buf + len32 - 4, end, 4);
   1769   1.1    bouyer 
   1770   1.1    bouyer 		memcpy(buf + align_start, data_buf, buf_size);
   1771   1.1    bouyer 	}
   1772   1.1    bouyer 
   1773   1.1    bouyer 	written = 0;
   1774   1.1    bouyer 	while ((written < len32) && (rc == 0)) {
   1775   1.1    bouyer 		u_int32_t page_start, page_end, data_start, data_end;
   1776   1.1    bouyer 		u_int32_t addr, cmd_flags;
   1777   1.1    bouyer 		int i;
   1778   1.1    bouyer 		u_int8_t flash_buffer[264];
   1779   1.1    bouyer 
   1780   1.1    bouyer 	    /* Find the page_start addr */
   1781   1.1    bouyer 		page_start = offset32 + written;
   1782   1.1    bouyer 		page_start -= (page_start % sc->bnx_flash_info->page_size);
   1783   1.1    bouyer 		/* Find the page_end addr */
   1784   1.1    bouyer 		page_end = page_start + sc->bnx_flash_info->page_size;
   1785   1.1    bouyer 		/* Find the data_start addr */
   1786   1.1    bouyer 		data_start = (written == 0) ? offset32 : page_start;
   1787   1.1    bouyer 		/* Find the data_end addr */
   1788   1.1    bouyer 		data_end = (page_end > offset32 + len32) ?
   1789   1.1    bouyer 		    (offset32 + len32) : page_end;
   1790   1.1    bouyer 
   1791   1.1    bouyer 		/* Request access to the flash interface. */
   1792   1.1    bouyer 		if ((rc = bnx_acquire_nvram_lock(sc)) != 0)
   1793   1.1    bouyer 			goto nvram_write_end;
   1794   1.1    bouyer 
   1795   1.1    bouyer 		/* Enable access to flash interface */
   1796   1.1    bouyer 		bnx_enable_nvram_access(sc);
   1797   1.1    bouyer 
   1798   1.1    bouyer 		cmd_flags = BNX_NVM_COMMAND_FIRST;
   1799  1.29    bouyer 		if (!ISSET(sc->bnx_flash_info->flags, BNX_NV_BUFFERED)) {
   1800   1.1    bouyer 			int j;
   1801   1.1    bouyer 
   1802   1.1    bouyer 			/* Read the whole page into the buffer
   1803   1.1    bouyer 			 * (non-buffer flash only) */
   1804   1.1    bouyer 			for (j = 0; j < sc->bnx_flash_info->page_size; j += 4) {
   1805   1.1    bouyer 				if (j == (sc->bnx_flash_info->page_size - 4))
   1806   1.1    bouyer 					cmd_flags |= BNX_NVM_COMMAND_LAST;
   1807   1.1    bouyer 
   1808   1.1    bouyer 				rc = bnx_nvram_read_dword(sc,
   1809   1.1    bouyer 					page_start + j,
   1810   1.1    bouyer 					&flash_buffer[j],
   1811   1.1    bouyer 					cmd_flags);
   1812   1.1    bouyer 
   1813   1.1    bouyer 				if (rc)
   1814   1.1    bouyer 					goto nvram_write_end;
   1815   1.1    bouyer 
   1816   1.1    bouyer 				cmd_flags = 0;
   1817   1.1    bouyer 			}
   1818   1.1    bouyer 		}
   1819   1.1    bouyer 
   1820   1.1    bouyer 		/* Enable writes to flash interface (unlock write-protect) */
   1821   1.1    bouyer 		if ((rc = bnx_enable_nvram_write(sc)) != 0)
   1822   1.1    bouyer 			goto nvram_write_end;
   1823   1.1    bouyer 
   1824   1.1    bouyer 		/* Erase the page */
   1825   1.1    bouyer 		if ((rc = bnx_nvram_erase_page(sc, page_start)) != 0)
   1826   1.1    bouyer 			goto nvram_write_end;
   1827   1.1    bouyer 
   1828   1.1    bouyer 		/* Re-enable the write again for the actual write */
   1829   1.1    bouyer 		bnx_enable_nvram_write(sc);
   1830   1.1    bouyer 
   1831   1.1    bouyer 		/* Loop to write back the buffer data from page_start to
   1832   1.1    bouyer 		 * data_start */
   1833   1.1    bouyer 		i = 0;
   1834  1.29    bouyer 		if (!ISSET(sc->bnx_flash_info->flags, BNX_NV_BUFFERED)) {
   1835   1.1    bouyer 			for (addr = page_start; addr < data_start;
   1836   1.1    bouyer 				addr += 4, i += 4) {
   1837   1.1    bouyer 
   1838   1.1    bouyer 				rc = bnx_nvram_write_dword(sc, addr,
   1839   1.1    bouyer 				    &flash_buffer[i], cmd_flags);
   1840   1.1    bouyer 
   1841   1.1    bouyer 				if (rc != 0)
   1842   1.1    bouyer 					goto nvram_write_end;
   1843   1.1    bouyer 
   1844   1.1    bouyer 				cmd_flags = 0;
   1845   1.1    bouyer 			}
   1846   1.1    bouyer 		}
   1847   1.1    bouyer 
   1848   1.1    bouyer 		/* Loop to write the new data from data_start to data_end */
   1849   1.1    bouyer 		for (addr = data_start; addr < data_end; addr += 4, i++) {
   1850   1.1    bouyer 			if ((addr == page_end - 4) ||
   1851  1.29    bouyer 			    (ISSET(sc->bnx_flash_info->flags, BNX_NV_BUFFERED)
   1852  1.29    bouyer 			    && (addr == data_end - 4))) {
   1853   1.1    bouyer 
   1854   1.1    bouyer 				cmd_flags |= BNX_NVM_COMMAND_LAST;
   1855   1.1    bouyer 			}
   1856   1.1    bouyer 
   1857   1.1    bouyer 			rc = bnx_nvram_write_dword(sc, addr, buf, cmd_flags);
   1858   1.1    bouyer 
   1859   1.1    bouyer 			if (rc != 0)
   1860   1.1    bouyer 				goto nvram_write_end;
   1861   1.1    bouyer 
   1862   1.1    bouyer 			cmd_flags = 0;
   1863   1.1    bouyer 			buf += 4;
   1864   1.1    bouyer 		}
   1865   1.1    bouyer 
   1866   1.1    bouyer 		/* Loop to write back the buffer data from data_end
   1867   1.1    bouyer 		 * to page_end */
   1868  1.29    bouyer 		if (!ISSET(sc->bnx_flash_info->flags, BNX_NV_BUFFERED)) {
   1869   1.1    bouyer 			for (addr = data_end; addr < page_end;
   1870   1.1    bouyer 			    addr += 4, i += 4) {
   1871   1.1    bouyer 
   1872   1.1    bouyer 				if (addr == page_end-4)
   1873   1.1    bouyer 					cmd_flags = BNX_NVM_COMMAND_LAST;
   1874   1.1    bouyer 
   1875   1.1    bouyer 				rc = bnx_nvram_write_dword(sc, addr,
   1876   1.1    bouyer 				    &flash_buffer[i], cmd_flags);
   1877   1.1    bouyer 
   1878   1.1    bouyer 				if (rc != 0)
   1879   1.1    bouyer 					goto nvram_write_end;
   1880   1.1    bouyer 
   1881   1.1    bouyer 				cmd_flags = 0;
   1882   1.1    bouyer 			}
   1883   1.1    bouyer 		}
   1884   1.1    bouyer 
   1885   1.1    bouyer 		/* Disable writes to flash interface (lock write-protect) */
   1886   1.1    bouyer 		bnx_disable_nvram_write(sc);
   1887   1.1    bouyer 
   1888   1.1    bouyer 		/* Disable access to flash interface */
   1889   1.1    bouyer 		bnx_disable_nvram_access(sc);
   1890   1.1    bouyer 		bnx_release_nvram_lock(sc);
   1891   1.1    bouyer 
   1892   1.1    bouyer 		/* Increment written */
   1893   1.1    bouyer 		written += data_end - data_start;
   1894   1.1    bouyer 	}
   1895   1.1    bouyer 
   1896   1.1    bouyer nvram_write_end:
   1897   1.1    bouyer 	if (align_start || align_end)
   1898   1.1    bouyer 		free(buf, M_DEVBUF);
   1899   1.1    bouyer 
   1900   1.1    bouyer 	return (rc);
   1901   1.1    bouyer }
   1902   1.1    bouyer #endif /* BNX_NVRAM_WRITE_SUPPORT */
   1903   1.1    bouyer 
   1904   1.1    bouyer /****************************************************************************/
   1905   1.1    bouyer /* Verifies that NVRAM is accessible and contains valid data.               */
   1906   1.1    bouyer /*                                                                          */
   1907   1.1    bouyer /* Reads the configuration data from NVRAM and verifies that the CRC is     */
   1908   1.1    bouyer /* correct.                                                                 */
   1909   1.1    bouyer /*                                                                          */
   1910   1.1    bouyer /* Returns:                                                                 */
   1911   1.1    bouyer /*   0 on success, positive value on failure.                               */
   1912   1.1    bouyer /****************************************************************************/
   1913   1.1    bouyer int
   1914   1.1    bouyer bnx_nvram_test(struct bnx_softc *sc)
   1915   1.1    bouyer {
   1916   1.1    bouyer 	u_int32_t		buf[BNX_NVRAM_SIZE / 4];
   1917   1.1    bouyer 	u_int8_t		*data = (u_int8_t *) buf;
   1918   1.1    bouyer 	int			rc = 0;
   1919   1.1    bouyer 	u_int32_t		magic, csum;
   1920   1.1    bouyer 
   1921   1.1    bouyer 	/*
   1922   1.1    bouyer 	 * Check that the device NVRAM is valid by reading
   1923   1.1    bouyer 	 * the magic value at offset 0.
   1924   1.1    bouyer 	 */
   1925   1.1    bouyer 	if ((rc = bnx_nvram_read(sc, 0, data, 4)) != 0)
   1926   1.1    bouyer 		goto bnx_nvram_test_done;
   1927   1.1    bouyer 
   1928   1.1    bouyer 	magic = bnx_be32toh(buf[0]);
   1929   1.1    bouyer 	if (magic != BNX_NVRAM_MAGIC) {
   1930   1.1    bouyer 		rc = ENODEV;
   1931   1.1    bouyer 		BNX_PRINTF(sc, "%s(%d): Invalid NVRAM magic value! "
   1932   1.1    bouyer 		    "Expected: 0x%08X, Found: 0x%08X\n",
   1933   1.1    bouyer 		    __FILE__, __LINE__, BNX_NVRAM_MAGIC, magic);
   1934   1.1    bouyer 		goto bnx_nvram_test_done;
   1935   1.1    bouyer 	}
   1936   1.1    bouyer 
   1937   1.1    bouyer 	/*
   1938   1.1    bouyer 	 * Verify that the device NVRAM includes valid
   1939   1.1    bouyer 	 * configuration data.
   1940   1.1    bouyer 	 */
   1941   1.1    bouyer 	if ((rc = bnx_nvram_read(sc, 0x100, data, BNX_NVRAM_SIZE)) != 0)
   1942   1.1    bouyer 		goto bnx_nvram_test_done;
   1943   1.1    bouyer 
   1944   1.1    bouyer 	csum = ether_crc32_le(data, 0x100);
   1945   1.1    bouyer 	if (csum != BNX_CRC32_RESIDUAL) {
   1946   1.1    bouyer 		rc = ENODEV;
   1947   1.1    bouyer 		BNX_PRINTF(sc, "%s(%d): Invalid Manufacturing Information "
   1948   1.1    bouyer 		    "NVRAM CRC! Expected: 0x%08X, Found: 0x%08X\n",
   1949   1.1    bouyer 		    __FILE__, __LINE__, BNX_CRC32_RESIDUAL, csum);
   1950   1.1    bouyer 		goto bnx_nvram_test_done;
   1951   1.1    bouyer 	}
   1952   1.1    bouyer 
   1953   1.1    bouyer 	csum = ether_crc32_le(data + 0x100, 0x100);
   1954   1.1    bouyer 	if (csum != BNX_CRC32_RESIDUAL) {
   1955   1.1    bouyer 		BNX_PRINTF(sc, "%s(%d): Invalid Feature Configuration "
   1956   1.1    bouyer 		    "Information NVRAM CRC! Expected: 0x%08X, Found: 08%08X\n",
   1957   1.1    bouyer 		    __FILE__, __LINE__, BNX_CRC32_RESIDUAL, csum);
   1958   1.1    bouyer 		rc = ENODEV;
   1959   1.1    bouyer 	}
   1960   1.1    bouyer 
   1961   1.1    bouyer bnx_nvram_test_done:
   1962   1.1    bouyer 	return (rc);
   1963   1.1    bouyer }
   1964   1.1    bouyer 
   1965   1.1    bouyer /****************************************************************************/
   1966  1.29    bouyer /* Identifies the current media type of the controller and sets the PHY     */
   1967  1.29    bouyer /* address.                                                                 */
   1968  1.29    bouyer /*                                                                          */
   1969  1.29    bouyer /* Returns:                                                                 */
   1970  1.29    bouyer /*   Nothing.                                                               */
   1971  1.29    bouyer /****************************************************************************/
   1972  1.29    bouyer void
   1973  1.29    bouyer bnx_get_media(struct bnx_softc *sc)
   1974  1.29    bouyer {
   1975  1.29    bouyer 	sc->bnx_phy_addr = 1;
   1976  1.29    bouyer 
   1977  1.29    bouyer 	if (BNX_CHIP_NUM(sc) == BNX_CHIP_NUM_5709) {
   1978  1.29    bouyer 		u_int32_t val = REG_RD(sc, BNX_MISC_DUAL_MEDIA_CTRL);
   1979  1.29    bouyer 		u_int32_t bond_id = val & BNX_MISC_DUAL_MEDIA_CTRL_BOND_ID;
   1980  1.29    bouyer 		u_int32_t strap;
   1981  1.29    bouyer 
   1982  1.29    bouyer 		/*
   1983  1.29    bouyer 		 * The BCM5709S is software configurable
   1984  1.29    bouyer 		 * for Copper or SerDes operation.
   1985  1.29    bouyer 		 */
   1986  1.29    bouyer 		if (bond_id == BNX_MISC_DUAL_MEDIA_CTRL_BOND_ID_C) {
   1987  1.29    bouyer 			DBPRINT(sc, BNX_INFO_LOAD,
   1988  1.29    bouyer 			    "5709 bonded for copper.\n");
   1989  1.29    bouyer 			goto bnx_get_media_exit;
   1990  1.29    bouyer 		} else if (bond_id == BNX_MISC_DUAL_MEDIA_CTRL_BOND_ID_S) {
   1991  1.29    bouyer 			DBPRINT(sc, BNX_INFO_LOAD,
   1992  1.29    bouyer 			    "5709 bonded for dual media.\n");
   1993  1.29    bouyer 			sc->bnx_phy_flags |= BNX_PHY_SERDES_FLAG;
   1994  1.29    bouyer 			goto bnx_get_media_exit;
   1995  1.29    bouyer 		}
   1996  1.29    bouyer 
   1997  1.29    bouyer 		if (val & BNX_MISC_DUAL_MEDIA_CTRL_STRAP_OVERRIDE)
   1998  1.29    bouyer 			strap = (val & BNX_MISC_DUAL_MEDIA_CTRL_PHY_CTRL) >> 21;
   1999  1.29    bouyer 		else {
   2000  1.29    bouyer 			strap = (val & BNX_MISC_DUAL_MEDIA_CTRL_PHY_CTRL_STRAP)
   2001  1.29    bouyer 			    >> 8;
   2002  1.29    bouyer 		}
   2003  1.29    bouyer 
   2004  1.29    bouyer 		if (sc->bnx_pa.pa_function == 0) {
   2005  1.29    bouyer 			switch (strap) {
   2006  1.29    bouyer 			case 0x4:
   2007  1.29    bouyer 			case 0x5:
   2008  1.29    bouyer 			case 0x6:
   2009  1.29    bouyer 				DBPRINT(sc, BNX_INFO_LOAD,
   2010  1.29    bouyer 					"BCM5709 s/w configured for SerDes.\n");
   2011  1.29    bouyer 				sc->bnx_phy_flags |= BNX_PHY_SERDES_FLAG;
   2012  1.35       jym 				break;
   2013  1.29    bouyer 			default:
   2014  1.29    bouyer 				DBPRINT(sc, BNX_INFO_LOAD,
   2015  1.29    bouyer 					"BCM5709 s/w configured for Copper.\n");
   2016  1.29    bouyer 			}
   2017  1.29    bouyer 		} else {
   2018  1.29    bouyer 			switch (strap) {
   2019  1.29    bouyer 			case 0x1:
   2020  1.29    bouyer 			case 0x2:
   2021  1.29    bouyer 			case 0x4:
   2022  1.29    bouyer 				DBPRINT(sc, BNX_INFO_LOAD,
   2023  1.29    bouyer 					"BCM5709 s/w configured for SerDes.\n");
   2024  1.29    bouyer 				sc->bnx_phy_flags |= BNX_PHY_SERDES_FLAG;
   2025  1.35       jym 				break;
   2026  1.29    bouyer 			default:
   2027  1.29    bouyer 				DBPRINT(sc, BNX_INFO_LOAD,
   2028  1.29    bouyer 					"BCM5709 s/w configured for Copper.\n");
   2029  1.29    bouyer 			}
   2030  1.29    bouyer 		}
   2031  1.29    bouyer 
   2032  1.29    bouyer 	} else if (BNX_CHIP_BOND_ID(sc) & BNX_CHIP_BOND_ID_SERDES_BIT)
   2033  1.29    bouyer 		sc->bnx_phy_flags |= BNX_PHY_SERDES_FLAG;
   2034  1.29    bouyer 
   2035  1.34  dholland 	if (sc->bnx_phy_flags & BNX_PHY_SERDES_FLAG) {
   2036  1.29    bouyer 		u_int32_t val;
   2037  1.29    bouyer 
   2038  1.29    bouyer 		sc->bnx_flags |= BNX_NO_WOL_FLAG;
   2039  1.41       jym 
   2040  1.41       jym 		if (BNX_CHIP_NUM(sc) == BNX_CHIP_NUM_5709)
   2041  1.41       jym 			sc->bnx_phy_flags |= BNX_PHY_IEEE_CLAUSE_45_FLAG;
   2042  1.41       jym 
   2043  1.41       jym 		/*
   2044  1.41       jym 		 * The BCM5708S, BCM5709S, and BCM5716S controllers use a
   2045  1.41       jym 		 * separate PHY for SerDes.
   2046  1.41       jym 		 */
   2047  1.29    bouyer 		if (BNX_CHIP_NUM(sc) != BNX_CHIP_NUM_5706) {
   2048  1.29    bouyer 			sc->bnx_phy_addr = 2;
   2049  1.29    bouyer 			val = REG_RD_IND(sc, sc->bnx_shmem_base +
   2050  1.29    bouyer 				 BNX_SHARED_HW_CFG_CONFIG);
   2051  1.29    bouyer 			if (val & BNX_SHARED_HW_CFG_PHY_2_5G) {
   2052  1.29    bouyer 				sc->bnx_phy_flags |= BNX_PHY_2_5G_CAPABLE_FLAG;
   2053  1.29    bouyer 				DBPRINT(sc, BNX_INFO_LOAD,
   2054  1.29    bouyer 				    "Found 2.5Gb capable adapter\n");
   2055  1.29    bouyer 			}
   2056  1.29    bouyer 		}
   2057  1.29    bouyer 	} else if ((BNX_CHIP_NUM(sc) == BNX_CHIP_NUM_5706) ||
   2058  1.29    bouyer 		   (BNX_CHIP_NUM(sc) == BNX_CHIP_NUM_5708))
   2059  1.29    bouyer 		sc->bnx_phy_flags |= BNX_PHY_CRC_FIX_FLAG;
   2060  1.29    bouyer 
   2061  1.29    bouyer bnx_get_media_exit:
   2062  1.29    bouyer 	DBPRINT(sc, (BNX_INFO_LOAD),
   2063  1.29    bouyer 		"Using PHY address %d.\n", sc->bnx_phy_addr);
   2064  1.29    bouyer }
   2065  1.29    bouyer 
   2066  1.29    bouyer /****************************************************************************/
   2067  1.41       jym /* Performs PHY initialization required before MII drivers access the       */
   2068  1.41       jym /* device.                                                                  */
   2069  1.41       jym /*                                                                          */
   2070  1.41       jym /* Returns:                                                                 */
   2071  1.41       jym /*   Nothing.                                                               */
   2072  1.41       jym /****************************************************************************/
   2073  1.41       jym void
   2074  1.41       jym bnx_init_media(struct bnx_softc *sc)
   2075  1.41       jym {
   2076  1.41       jym 	if (sc->bnx_phy_flags & BNX_PHY_IEEE_CLAUSE_45_FLAG) {
   2077  1.41       jym 		/*
   2078  1.41       jym 		 * Configure the BCM5709S / BCM5716S PHYs to use traditional
   2079  1.41       jym 		 * IEEE Clause 22 method. Otherwise we have no way to attach
   2080  1.41       jym 		 * the PHY to the mii(4) layer. PHY specific configuration
   2081  1.41       jym 		 * is done by the mii(4) layer.
   2082  1.41       jym 		 */
   2083  1.41       jym 
   2084  1.41       jym 		/* Select auto-negotiation MMD of the PHY. */
   2085  1.41       jym 		bnx_miibus_write_reg(sc->bnx_dev, sc->bnx_phy_addr,
   2086  1.41       jym 		    BRGPHY_BLOCK_ADDR, BRGPHY_BLOCK_ADDR_ADDR_EXT);
   2087  1.41       jym 
   2088  1.41       jym 		bnx_miibus_write_reg(sc->bnx_dev, sc->bnx_phy_addr,
   2089  1.41       jym 		    BRGPHY_ADDR_EXT, BRGPHY_ADDR_EXT_AN_MMD);
   2090  1.41       jym 
   2091  1.41       jym 		bnx_miibus_write_reg(sc->bnx_dev, sc->bnx_phy_addr,
   2092  1.41       jym 		    BRGPHY_BLOCK_ADDR, BRGPHY_BLOCK_ADDR_COMBO_IEEE0);
   2093  1.41       jym 	}
   2094  1.41       jym }
   2095  1.41       jym 
   2096  1.41       jym /****************************************************************************/
   2097   1.1    bouyer /* Free any DMA memory owned by the driver.                                 */
   2098   1.1    bouyer /*                                                                          */
   2099   1.1    bouyer /* Scans through each data structre that requires DMA memory and frees      */
   2100   1.1    bouyer /* the memory if allocated.                                                 */
   2101   1.1    bouyer /*                                                                          */
   2102   1.1    bouyer /* Returns:                                                                 */
   2103   1.1    bouyer /*   Nothing.                                                               */
   2104   1.1    bouyer /****************************************************************************/
   2105   1.1    bouyer void
   2106   1.1    bouyer bnx_dma_free(struct bnx_softc *sc)
   2107   1.1    bouyer {
   2108   1.1    bouyer 	int			i;
   2109   1.1    bouyer 
   2110  1.12     perry 	DBPRINT(sc,BNX_VERBOSE_RESET, "Entering %s()\n", __func__);
   2111   1.1    bouyer 
   2112   1.1    bouyer 	/* Destroy the status block. */
   2113   1.1    bouyer 	if (sc->status_block != NULL && sc->status_map != NULL) {
   2114   1.1    bouyer 		bus_dmamap_unload(sc->bnx_dmatag, sc->status_map);
   2115   1.3  christos 		bus_dmamem_unmap(sc->bnx_dmatag, (void *)sc->status_block,
   2116   1.1    bouyer 		    BNX_STATUS_BLK_SZ);
   2117   1.1    bouyer 		bus_dmamem_free(sc->bnx_dmatag, &sc->status_seg,
   2118   1.1    bouyer 		    sc->status_rseg);
   2119   1.1    bouyer 		bus_dmamap_destroy(sc->bnx_dmatag, sc->status_map);
   2120   1.1    bouyer 		sc->status_block = NULL;
   2121   1.1    bouyer 		sc->status_map = NULL;
   2122   1.1    bouyer 	}
   2123   1.1    bouyer 
   2124   1.1    bouyer 	/* Destroy the statistics block. */
   2125   1.1    bouyer 	if (sc->stats_block != NULL && sc->stats_map != NULL) {
   2126   1.1    bouyer 		bus_dmamap_unload(sc->bnx_dmatag, sc->stats_map);
   2127   1.3  christos 		bus_dmamem_unmap(sc->bnx_dmatag, (void *)sc->stats_block,
   2128   1.1    bouyer 		    BNX_STATS_BLK_SZ);
   2129   1.1    bouyer 		bus_dmamem_free(sc->bnx_dmatag, &sc->stats_seg,
   2130   1.1    bouyer 		    sc->stats_rseg);
   2131   1.1    bouyer 		bus_dmamap_destroy(sc->bnx_dmatag, sc->stats_map);
   2132   1.1    bouyer 		sc->stats_block = NULL;
   2133   1.1    bouyer 		sc->stats_map = NULL;
   2134   1.1    bouyer 	}
   2135   1.1    bouyer 
   2136  1.29    bouyer 	/* Free, unmap and destroy all context memory pages. */
   2137  1.29    bouyer 	if (BNX_CHIP_NUM(sc) == BNX_CHIP_NUM_5709) {
   2138  1.29    bouyer 		for (i = 0; i < sc->ctx_pages; i++) {
   2139  1.29    bouyer 			if (sc->ctx_block[i] != NULL) {
   2140  1.29    bouyer 				bus_dmamap_unload(sc->bnx_dmatag,
   2141  1.29    bouyer 				    sc->ctx_map[i]);
   2142  1.29    bouyer 				bus_dmamem_unmap(sc->bnx_dmatag,
   2143  1.29    bouyer 				    (void *)sc->ctx_block[i],
   2144  1.29    bouyer 				    BCM_PAGE_SIZE);
   2145  1.29    bouyer 				bus_dmamem_free(sc->bnx_dmatag,
   2146  1.29    bouyer 				    &sc->ctx_segs[i], sc->ctx_rsegs[i]);
   2147  1.29    bouyer 				bus_dmamap_destroy(sc->bnx_dmatag,
   2148  1.29    bouyer 				    sc->ctx_map[i]);
   2149  1.29    bouyer 				sc->ctx_block[i] = NULL;
   2150  1.29    bouyer 			}
   2151  1.29    bouyer 		}
   2152  1.29    bouyer 	}
   2153  1.29    bouyer 
   2154   1.1    bouyer 	/* Free, unmap and destroy all TX buffer descriptor chain pages. */
   2155   1.1    bouyer 	for (i = 0; i < TX_PAGES; i++ ) {
   2156   1.1    bouyer 		if (sc->tx_bd_chain[i] != NULL &&
   2157   1.1    bouyer 		    sc->tx_bd_chain_map[i] != NULL) {
   2158   1.1    bouyer 			bus_dmamap_unload(sc->bnx_dmatag,
   2159   1.1    bouyer 			    sc->tx_bd_chain_map[i]);
   2160   1.1    bouyer 			bus_dmamem_unmap(sc->bnx_dmatag,
   2161   1.3  christos 			    (void *)sc->tx_bd_chain[i], BNX_TX_CHAIN_PAGE_SZ);
   2162   1.1    bouyer 			bus_dmamem_free(sc->bnx_dmatag, &sc->tx_bd_chain_seg[i],
   2163   1.1    bouyer 			    sc->tx_bd_chain_rseg[i]);
   2164   1.1    bouyer 			bus_dmamap_destroy(sc->bnx_dmatag,
   2165   1.1    bouyer 			    sc->tx_bd_chain_map[i]);
   2166   1.1    bouyer 			sc->tx_bd_chain[i] = NULL;
   2167   1.1    bouyer 			sc->tx_bd_chain_map[i] = NULL;
   2168   1.1    bouyer 		}
   2169   1.1    bouyer 	}
   2170   1.1    bouyer 
   2171  1.29    bouyer 	/* Destroy the TX dmamaps. */
   2172  1.29    bouyer 	/* This isn't necessary since we dont allocate them up front */
   2173   1.1    bouyer 
   2174   1.1    bouyer 	/* Free, unmap and destroy all RX buffer descriptor chain pages. */
   2175   1.1    bouyer 	for (i = 0; i < RX_PAGES; i++ ) {
   2176   1.1    bouyer 		if (sc->rx_bd_chain[i] != NULL &&
   2177   1.1    bouyer 		    sc->rx_bd_chain_map[i] != NULL) {
   2178   1.1    bouyer 			bus_dmamap_unload(sc->bnx_dmatag,
   2179   1.1    bouyer 			    sc->rx_bd_chain_map[i]);
   2180   1.1    bouyer 			bus_dmamem_unmap(sc->bnx_dmatag,
   2181   1.3  christos 			    (void *)sc->rx_bd_chain[i], BNX_RX_CHAIN_PAGE_SZ);
   2182   1.1    bouyer 			bus_dmamem_free(sc->bnx_dmatag, &sc->rx_bd_chain_seg[i],
   2183   1.1    bouyer 			    sc->rx_bd_chain_rseg[i]);
   2184   1.1    bouyer 
   2185   1.1    bouyer 			bus_dmamap_destroy(sc->bnx_dmatag,
   2186   1.1    bouyer 			    sc->rx_bd_chain_map[i]);
   2187   1.1    bouyer 			sc->rx_bd_chain[i] = NULL;
   2188   1.1    bouyer 			sc->rx_bd_chain_map[i] = NULL;
   2189   1.1    bouyer 		}
   2190   1.1    bouyer 	}
   2191   1.1    bouyer 
   2192   1.1    bouyer 	/* Unload and destroy the RX mbuf maps. */
   2193   1.1    bouyer 	for (i = 0; i < TOTAL_RX_BD; i++) {
   2194   1.1    bouyer 		if (sc->rx_mbuf_map[i] != NULL) {
   2195   1.1    bouyer 			bus_dmamap_unload(sc->bnx_dmatag, sc->rx_mbuf_map[i]);
   2196   1.1    bouyer 			bus_dmamap_destroy(sc->bnx_dmatag, sc->rx_mbuf_map[i]);
   2197   1.1    bouyer 		}
   2198   1.1    bouyer 	}
   2199   1.1    bouyer 
   2200  1.12     perry 	DBPRINT(sc, BNX_VERBOSE_RESET, "Exiting %s()\n", __func__);
   2201   1.1    bouyer }
   2202   1.1    bouyer 
   2203   1.1    bouyer /****************************************************************************/
   2204   1.1    bouyer /* Allocate any DMA memory needed by the driver.                            */
   2205   1.1    bouyer /*                                                                          */
   2206   1.1    bouyer /* Allocates DMA memory needed for the various global structures needed by  */
   2207   1.1    bouyer /* hardware.                                                                */
   2208   1.1    bouyer /*                                                                          */
   2209   1.1    bouyer /* Returns:                                                                 */
   2210   1.1    bouyer /*   0 for success, positive value for failure.                             */
   2211   1.1    bouyer /****************************************************************************/
   2212   1.1    bouyer int
   2213   1.1    bouyer bnx_dma_alloc(struct bnx_softc *sc)
   2214   1.1    bouyer {
   2215   1.1    bouyer 	int			i, rc = 0;
   2216   1.1    bouyer 
   2217  1.12     perry 	DBPRINT(sc, BNX_VERBOSE_RESET, "Entering %s()\n", __func__);
   2218   1.1    bouyer 
   2219   1.1    bouyer 	/*
   2220   1.1    bouyer 	 * Allocate DMA memory for the status block, map the memory into DMA
   2221   1.1    bouyer 	 * space, and fetch the physical address of the block.
   2222   1.1    bouyer 	 */
   2223   1.1    bouyer 	if (bus_dmamap_create(sc->bnx_dmatag, BNX_STATUS_BLK_SZ, 1,
   2224   1.1    bouyer 	    BNX_STATUS_BLK_SZ, 0, BUS_DMA_NOWAIT, &sc->status_map)) {
   2225  1.13    dyoung 		aprint_error_dev(sc->bnx_dev,
   2226  1.13    dyoung 		    "Could not create status block DMA map!\n");
   2227   1.1    bouyer 		rc = ENOMEM;
   2228   1.1    bouyer 		goto bnx_dma_alloc_exit;
   2229   1.1    bouyer 	}
   2230   1.1    bouyer 
   2231   1.1    bouyer 	if (bus_dmamem_alloc(sc->bnx_dmatag, BNX_STATUS_BLK_SZ,
   2232   1.1    bouyer 	    BNX_DMA_ALIGN, BNX_DMA_BOUNDARY, &sc->status_seg, 1,
   2233   1.1    bouyer 	    &sc->status_rseg, BUS_DMA_NOWAIT)) {
   2234  1.13    dyoung 		aprint_error_dev(sc->bnx_dev,
   2235  1.13    dyoung 		    "Could not allocate status block DMA memory!\n");
   2236   1.1    bouyer 		rc = ENOMEM;
   2237   1.1    bouyer 		goto bnx_dma_alloc_exit;
   2238   1.1    bouyer 	}
   2239   1.1    bouyer 
   2240   1.1    bouyer 	if (bus_dmamem_map(sc->bnx_dmatag, &sc->status_seg, sc->status_rseg,
   2241   1.3  christos 	    BNX_STATUS_BLK_SZ, (void **)&sc->status_block, BUS_DMA_NOWAIT)) {
   2242  1.13    dyoung 		aprint_error_dev(sc->bnx_dev,
   2243  1.13    dyoung 		    "Could not map status block DMA memory!\n");
   2244   1.1    bouyer 		rc = ENOMEM;
   2245   1.1    bouyer 		goto bnx_dma_alloc_exit;
   2246   1.1    bouyer 	}
   2247   1.1    bouyer 
   2248   1.1    bouyer 	if (bus_dmamap_load(sc->bnx_dmatag, sc->status_map,
   2249   1.1    bouyer 	    sc->status_block, BNX_STATUS_BLK_SZ, NULL, BUS_DMA_NOWAIT)) {
   2250  1.13    dyoung 		aprint_error_dev(sc->bnx_dev,
   2251  1.13    dyoung 		    "Could not load status block DMA memory!\n");
   2252   1.1    bouyer 		rc = ENOMEM;
   2253   1.1    bouyer 		goto bnx_dma_alloc_exit;
   2254   1.1    bouyer 	}
   2255   1.1    bouyer 
   2256   1.1    bouyer 	sc->status_block_paddr = sc->status_map->dm_segs[0].ds_addr;
   2257  1.23    cegger 	memset(sc->status_block, 0, BNX_STATUS_BLK_SZ);
   2258   1.1    bouyer 
   2259   1.1    bouyer 	/* DRC - Fix for 64 bit addresses. */
   2260   1.1    bouyer 	DBPRINT(sc, BNX_INFO, "status_block_paddr = 0x%08X\n",
   2261   1.1    bouyer 		(u_int32_t) sc->status_block_paddr);
   2262   1.1    bouyer 
   2263  1.29    bouyer 	/* BCM5709 uses host memory as cache for context memory. */
   2264  1.29    bouyer 	if (BNX_CHIP_NUM(sc) == BNX_CHIP_NUM_5709) {
   2265  1.29    bouyer 		sc->ctx_pages = 0x2000 / BCM_PAGE_SIZE;
   2266  1.29    bouyer 		if (sc->ctx_pages == 0)
   2267  1.29    bouyer 			sc->ctx_pages = 1;
   2268  1.29    bouyer 		if (sc->ctx_pages > 4) /* XXX */
   2269  1.29    bouyer 			sc->ctx_pages = 4;
   2270  1.29    bouyer 
   2271  1.29    bouyer 		DBRUNIF((sc->ctx_pages > 512),
   2272  1.29    bouyer 			BNX_PRINTF(sc, "%s(%d): Too many CTX pages! %d > 512\n",
   2273  1.29    bouyer 				__FILE__, __LINE__, sc->ctx_pages));
   2274  1.29    bouyer 
   2275  1.29    bouyer 
   2276  1.29    bouyer 		for (i = 0; i < sc->ctx_pages; i++) {
   2277  1.29    bouyer 			if (bus_dmamap_create(sc->bnx_dmatag, BCM_PAGE_SIZE,
   2278  1.29    bouyer 			    1, BCM_PAGE_SIZE, BNX_DMA_BOUNDARY,
   2279  1.29    bouyer 			    BUS_DMA_NOWAIT | BUS_DMA_ALLOCNOW,
   2280  1.29    bouyer 			    &sc->ctx_map[i]) != 0) {
   2281  1.29    bouyer 				rc = ENOMEM;
   2282  1.29    bouyer 				goto bnx_dma_alloc_exit;
   2283  1.29    bouyer 			}
   2284  1.29    bouyer 
   2285  1.29    bouyer 			if (bus_dmamem_alloc(sc->bnx_dmatag, BCM_PAGE_SIZE,
   2286  1.29    bouyer 			    BCM_PAGE_SIZE, BNX_DMA_BOUNDARY, &sc->ctx_segs[i],
   2287  1.29    bouyer 			    1, &sc->ctx_rsegs[i], BUS_DMA_NOWAIT) != 0) {
   2288  1.29    bouyer 				rc = ENOMEM;
   2289  1.29    bouyer 				goto bnx_dma_alloc_exit;
   2290  1.29    bouyer 			}
   2291  1.29    bouyer 
   2292  1.29    bouyer 			if (bus_dmamem_map(sc->bnx_dmatag, &sc->ctx_segs[i],
   2293  1.29    bouyer 			    sc->ctx_rsegs[i], BCM_PAGE_SIZE,
   2294  1.29    bouyer 			    &sc->ctx_block[i], BUS_DMA_NOWAIT) != 0) {
   2295  1.29    bouyer 				rc = ENOMEM;
   2296  1.29    bouyer 				goto bnx_dma_alloc_exit;
   2297  1.29    bouyer 			}
   2298  1.29    bouyer 
   2299  1.29    bouyer 			if (bus_dmamap_load(sc->bnx_dmatag, sc->ctx_map[i],
   2300  1.29    bouyer 			    sc->ctx_block[i], BCM_PAGE_SIZE, NULL,
   2301  1.29    bouyer 			    BUS_DMA_NOWAIT) != 0) {
   2302  1.29    bouyer 				rc = ENOMEM;
   2303  1.29    bouyer 				goto bnx_dma_alloc_exit;
   2304  1.29    bouyer 			}
   2305  1.29    bouyer 
   2306  1.29    bouyer 			bzero(sc->ctx_block[i], BCM_PAGE_SIZE);
   2307  1.29    bouyer 		}
   2308  1.29    bouyer 	}
   2309  1.29    bouyer 
   2310   1.1    bouyer 	/*
   2311   1.1    bouyer 	 * Allocate DMA memory for the statistics block, map the memory into
   2312   1.1    bouyer 	 * DMA space, and fetch the physical address of the block.
   2313   1.1    bouyer 	 */
   2314   1.1    bouyer 	if (bus_dmamap_create(sc->bnx_dmatag, BNX_STATS_BLK_SZ, 1,
   2315   1.1    bouyer 	    BNX_STATS_BLK_SZ, 0, BUS_DMA_NOWAIT, &sc->stats_map)) {
   2316  1.13    dyoung 		aprint_error_dev(sc->bnx_dev,
   2317  1.13    dyoung 		    "Could not create stats block DMA map!\n");
   2318   1.1    bouyer 		rc = ENOMEM;
   2319   1.1    bouyer 		goto bnx_dma_alloc_exit;
   2320   1.1    bouyer 	}
   2321   1.1    bouyer 
   2322   1.1    bouyer 	if (bus_dmamem_alloc(sc->bnx_dmatag, BNX_STATS_BLK_SZ,
   2323   1.1    bouyer 	    BNX_DMA_ALIGN, BNX_DMA_BOUNDARY, &sc->stats_seg, 1,
   2324   1.1    bouyer 	    &sc->stats_rseg, BUS_DMA_NOWAIT)) {
   2325  1.13    dyoung 		aprint_error_dev(sc->bnx_dev,
   2326  1.13    dyoung 		    "Could not allocate stats block DMA memory!\n");
   2327   1.1    bouyer 		rc = ENOMEM;
   2328   1.1    bouyer 		goto bnx_dma_alloc_exit;
   2329   1.1    bouyer 	}
   2330   1.1    bouyer 
   2331   1.1    bouyer 	if (bus_dmamem_map(sc->bnx_dmatag, &sc->stats_seg, sc->stats_rseg,
   2332   1.3  christos 	    BNX_STATS_BLK_SZ, (void **)&sc->stats_block, BUS_DMA_NOWAIT)) {
   2333  1.13    dyoung 		aprint_error_dev(sc->bnx_dev,
   2334  1.13    dyoung 		    "Could not map stats block DMA memory!\n");
   2335   1.1    bouyer 		rc = ENOMEM;
   2336   1.1    bouyer 		goto bnx_dma_alloc_exit;
   2337   1.1    bouyer 	}
   2338   1.1    bouyer 
   2339   1.1    bouyer 	if (bus_dmamap_load(sc->bnx_dmatag, sc->stats_map,
   2340   1.1    bouyer 	    sc->stats_block, BNX_STATS_BLK_SZ, NULL, BUS_DMA_NOWAIT)) {
   2341  1.13    dyoung 		aprint_error_dev(sc->bnx_dev,
   2342  1.13    dyoung 		    "Could not load status block DMA memory!\n");
   2343   1.1    bouyer 		rc = ENOMEM;
   2344   1.1    bouyer 		goto bnx_dma_alloc_exit;
   2345   1.1    bouyer 	}
   2346   1.1    bouyer 
   2347   1.1    bouyer 	sc->stats_block_paddr = sc->stats_map->dm_segs[0].ds_addr;
   2348  1.23    cegger 	memset(sc->stats_block, 0, BNX_STATS_BLK_SZ);
   2349   1.1    bouyer 
   2350   1.1    bouyer 	/* DRC - Fix for 64 bit address. */
   2351   1.1    bouyer 	DBPRINT(sc,BNX_INFO, "stats_block_paddr = 0x%08X\n",
   2352   1.1    bouyer 	    (u_int32_t) sc->stats_block_paddr);
   2353   1.1    bouyer 
   2354   1.1    bouyer 	/*
   2355   1.1    bouyer 	 * Allocate DMA memory for the TX buffer descriptor chain,
   2356   1.1    bouyer 	 * and fetch the physical address of the block.
   2357   1.1    bouyer 	 */
   2358   1.1    bouyer 	for (i = 0; i < TX_PAGES; i++) {
   2359   1.1    bouyer 		if (bus_dmamap_create(sc->bnx_dmatag, BNX_TX_CHAIN_PAGE_SZ, 1,
   2360   1.1    bouyer 		    BNX_TX_CHAIN_PAGE_SZ, 0, BUS_DMA_NOWAIT,
   2361   1.1    bouyer 		    &sc->tx_bd_chain_map[i])) {
   2362  1.13    dyoung 			aprint_error_dev(sc->bnx_dev,
   2363  1.13    dyoung 			    "Could not create Tx desc %d DMA map!\n", i);
   2364   1.1    bouyer 			rc = ENOMEM;
   2365   1.1    bouyer 			goto bnx_dma_alloc_exit;
   2366   1.1    bouyer 		}
   2367   1.1    bouyer 
   2368   1.1    bouyer 		if (bus_dmamem_alloc(sc->bnx_dmatag, BNX_TX_CHAIN_PAGE_SZ,
   2369   1.1    bouyer 		    BCM_PAGE_SIZE, BNX_DMA_BOUNDARY, &sc->tx_bd_chain_seg[i], 1,
   2370   1.1    bouyer 		    &sc->tx_bd_chain_rseg[i], BUS_DMA_NOWAIT)) {
   2371  1.13    dyoung 			aprint_error_dev(sc->bnx_dev,
   2372  1.13    dyoung 			    "Could not allocate TX desc %d DMA memory!\n",
   2373  1.13    dyoung 			    i);
   2374   1.1    bouyer 			rc = ENOMEM;
   2375   1.1    bouyer 			goto bnx_dma_alloc_exit;
   2376   1.1    bouyer 		}
   2377   1.1    bouyer 
   2378   1.1    bouyer 		if (bus_dmamem_map(sc->bnx_dmatag, &sc->tx_bd_chain_seg[i],
   2379   1.1    bouyer 		    sc->tx_bd_chain_rseg[i], BNX_TX_CHAIN_PAGE_SZ,
   2380   1.3  christos 		    (void **)&sc->tx_bd_chain[i], BUS_DMA_NOWAIT)) {
   2381  1.13    dyoung 			aprint_error_dev(sc->bnx_dev,
   2382  1.13    dyoung 			    "Could not map TX desc %d DMA memory!\n", i);
   2383   1.1    bouyer 			rc = ENOMEM;
   2384   1.1    bouyer 			goto bnx_dma_alloc_exit;
   2385   1.1    bouyer 		}
   2386   1.1    bouyer 
   2387   1.1    bouyer 		if (bus_dmamap_load(sc->bnx_dmatag, sc->tx_bd_chain_map[i],
   2388   1.3  christos 		    (void *)sc->tx_bd_chain[i], BNX_TX_CHAIN_PAGE_SZ, NULL,
   2389   1.1    bouyer 		    BUS_DMA_NOWAIT)) {
   2390  1.13    dyoung 			aprint_error_dev(sc->bnx_dev,
   2391  1.13    dyoung 			    "Could not load TX desc %d DMA memory!\n", i);
   2392   1.1    bouyer 			rc = ENOMEM;
   2393   1.1    bouyer 			goto bnx_dma_alloc_exit;
   2394   1.1    bouyer 		}
   2395   1.1    bouyer 
   2396   1.1    bouyer 		sc->tx_bd_chain_paddr[i] =
   2397   1.1    bouyer 		    sc->tx_bd_chain_map[i]->dm_segs[0].ds_addr;
   2398   1.1    bouyer 
   2399   1.1    bouyer 		/* DRC - Fix for 64 bit systems. */
   2400   1.1    bouyer 		DBPRINT(sc, BNX_INFO, "tx_bd_chain_paddr[%d] = 0x%08X\n",
   2401   1.1    bouyer 		    i, (u_int32_t) sc->tx_bd_chain_paddr[i]);
   2402   1.1    bouyer 	}
   2403   1.1    bouyer 
   2404   1.1    bouyer 	/*
   2405  1.29    bouyer 	 * Create lists to hold TX mbufs.
   2406   1.1    bouyer 	 */
   2407  1.29    bouyer 	TAILQ_INIT(&sc->tx_free_pkts);
   2408  1.29    bouyer 	TAILQ_INIT(&sc->tx_used_pkts);
   2409  1.29    bouyer 	sc->tx_pkt_count = 0;
   2410  1.29    bouyer 	mutex_init(&sc->tx_pkt_mtx, MUTEX_DEFAULT, IPL_NET);
   2411   1.1    bouyer 
   2412   1.1    bouyer 	/*
   2413   1.1    bouyer 	 * Allocate DMA memory for the Rx buffer descriptor chain,
   2414   1.1    bouyer 	 * and fetch the physical address of the block.
   2415   1.1    bouyer 	 */
   2416   1.1    bouyer 	for (i = 0; i < RX_PAGES; i++) {
   2417   1.1    bouyer 		if (bus_dmamap_create(sc->bnx_dmatag, BNX_RX_CHAIN_PAGE_SZ, 1,
   2418   1.1    bouyer 		    BNX_RX_CHAIN_PAGE_SZ, 0, BUS_DMA_NOWAIT,
   2419   1.1    bouyer 		    &sc->rx_bd_chain_map[i])) {
   2420  1.13    dyoung 			aprint_error_dev(sc->bnx_dev,
   2421  1.13    dyoung 			    "Could not create Rx desc %d DMA map!\n", i);
   2422   1.1    bouyer 			rc = ENOMEM;
   2423   1.1    bouyer 			goto bnx_dma_alloc_exit;
   2424   1.1    bouyer 		}
   2425   1.1    bouyer 
   2426   1.1    bouyer 		if (bus_dmamem_alloc(sc->bnx_dmatag, BNX_RX_CHAIN_PAGE_SZ,
   2427   1.1    bouyer 		    BCM_PAGE_SIZE, BNX_DMA_BOUNDARY, &sc->rx_bd_chain_seg[i], 1,
   2428   1.1    bouyer 		    &sc->rx_bd_chain_rseg[i], BUS_DMA_NOWAIT)) {
   2429  1.13    dyoung 			aprint_error_dev(sc->bnx_dev,
   2430  1.13    dyoung 			    "Could not allocate Rx desc %d DMA memory!\n", i);
   2431   1.1    bouyer 			rc = ENOMEM;
   2432   1.1    bouyer 			goto bnx_dma_alloc_exit;
   2433   1.1    bouyer 		}
   2434   1.1    bouyer 
   2435   1.1    bouyer 		if (bus_dmamem_map(sc->bnx_dmatag, &sc->rx_bd_chain_seg[i],
   2436   1.1    bouyer 		    sc->rx_bd_chain_rseg[i], BNX_RX_CHAIN_PAGE_SZ,
   2437   1.3  christos 		    (void **)&sc->rx_bd_chain[i], BUS_DMA_NOWAIT)) {
   2438  1.13    dyoung 			aprint_error_dev(sc->bnx_dev,
   2439  1.13    dyoung 			    "Could not map Rx desc %d DMA memory!\n", i);
   2440   1.1    bouyer 			rc = ENOMEM;
   2441   1.1    bouyer 			goto bnx_dma_alloc_exit;
   2442   1.1    bouyer 		}
   2443   1.1    bouyer 
   2444   1.1    bouyer 		if (bus_dmamap_load(sc->bnx_dmatag, sc->rx_bd_chain_map[i],
   2445   1.3  christos 		    (void *)sc->rx_bd_chain[i], BNX_RX_CHAIN_PAGE_SZ, NULL,
   2446   1.1    bouyer 		    BUS_DMA_NOWAIT)) {
   2447  1.13    dyoung 			aprint_error_dev(sc->bnx_dev,
   2448  1.13    dyoung 			    "Could not load Rx desc %d DMA memory!\n", i);
   2449   1.1    bouyer 			rc = ENOMEM;
   2450   1.1    bouyer 			goto bnx_dma_alloc_exit;
   2451   1.1    bouyer 		}
   2452   1.1    bouyer 
   2453  1.23    cegger 		memset(sc->rx_bd_chain[i], 0, BNX_RX_CHAIN_PAGE_SZ);
   2454   1.1    bouyer 		sc->rx_bd_chain_paddr[i] =
   2455   1.1    bouyer 		    sc->rx_bd_chain_map[i]->dm_segs[0].ds_addr;
   2456   1.1    bouyer 
   2457   1.1    bouyer 		/* DRC - Fix for 64 bit systems. */
   2458   1.1    bouyer 		DBPRINT(sc, BNX_INFO, "rx_bd_chain_paddr[%d] = 0x%08X\n",
   2459   1.1    bouyer 		    i, (u_int32_t) sc->rx_bd_chain_paddr[i]);
   2460   1.1    bouyer 		bus_dmamap_sync(sc->bnx_dmatag, sc->rx_bd_chain_map[i],
   2461   1.1    bouyer 		    0, BNX_RX_CHAIN_PAGE_SZ,
   2462   1.1    bouyer 		    BUS_DMASYNC_PREREAD | BUS_DMASYNC_PREWRITE);
   2463   1.1    bouyer 	}
   2464   1.1    bouyer 
   2465   1.1    bouyer 	/*
   2466   1.1    bouyer 	 * Create DMA maps for the Rx buffer mbufs.
   2467   1.1    bouyer 	 */
   2468   1.1    bouyer 	for (i = 0; i < TOTAL_RX_BD; i++) {
   2469  1.30    bouyer 		if (bus_dmamap_create(sc->bnx_dmatag, BNX_MAX_JUMBO_MRU,
   2470  1.30    bouyer 		    BNX_MAX_SEGMENTS, BNX_MAX_JUMBO_MRU, 0, BUS_DMA_NOWAIT,
   2471   1.1    bouyer 		    &sc->rx_mbuf_map[i])) {
   2472  1.13    dyoung 			aprint_error_dev(sc->bnx_dev,
   2473  1.13    dyoung 			    "Could not create Rx mbuf %d DMA map!\n", i);
   2474   1.1    bouyer 			rc = ENOMEM;
   2475   1.1    bouyer 			goto bnx_dma_alloc_exit;
   2476   1.1    bouyer 		}
   2477   1.1    bouyer 	}
   2478   1.1    bouyer 
   2479   1.1    bouyer  bnx_dma_alloc_exit:
   2480  1.12     perry 	DBPRINT(sc, BNX_VERBOSE_RESET, "Exiting %s()\n", __func__);
   2481   1.1    bouyer 
   2482   1.1    bouyer 	return(rc);
   2483   1.1    bouyer }
   2484   1.1    bouyer 
   2485   1.1    bouyer /****************************************************************************/
   2486   1.1    bouyer /* Release all resources used by the driver.                                */
   2487   1.1    bouyer /*                                                                          */
   2488   1.1    bouyer /* Releases all resources acquired by the driver including interrupts,      */
   2489   1.1    bouyer /* interrupt handler, interfaces, mutexes, and DMA memory.                  */
   2490   1.1    bouyer /*                                                                          */
   2491   1.1    bouyer /* Returns:                                                                 */
   2492   1.1    bouyer /*   Nothing.                                                               */
   2493   1.1    bouyer /****************************************************************************/
   2494   1.1    bouyer void
   2495   1.1    bouyer bnx_release_resources(struct bnx_softc *sc)
   2496   1.1    bouyer {
   2497   1.1    bouyer 	struct pci_attach_args	*pa = &(sc->bnx_pa);
   2498   1.1    bouyer 
   2499  1.12     perry 	DBPRINT(sc, BNX_VERBOSE_RESET, "Entering %s()\n", __func__);
   2500   1.1    bouyer 
   2501   1.1    bouyer 	bnx_dma_free(sc);
   2502   1.1    bouyer 
   2503   1.1    bouyer 	if (sc->bnx_intrhand != NULL)
   2504   1.1    bouyer 		pci_intr_disestablish(pa->pa_pc, sc->bnx_intrhand);
   2505   1.1    bouyer 
   2506   1.1    bouyer 	if (sc->bnx_size)
   2507   1.1    bouyer 		bus_space_unmap(sc->bnx_btag, sc->bnx_bhandle, sc->bnx_size);
   2508   1.1    bouyer 
   2509  1.12     perry 	DBPRINT(sc, BNX_VERBOSE_RESET, "Exiting %s()\n", __func__);
   2510   1.1    bouyer }
   2511   1.1    bouyer 
   2512   1.1    bouyer /****************************************************************************/
   2513   1.1    bouyer /* Firmware synchronization.                                                */
   2514   1.1    bouyer /*                                                                          */
   2515   1.1    bouyer /* Before performing certain events such as a chip reset, synchronize with  */
   2516   1.1    bouyer /* the firmware first.                                                      */
   2517   1.1    bouyer /*                                                                          */
   2518   1.1    bouyer /* Returns:                                                                 */
   2519   1.1    bouyer /*   0 for success, positive value for failure.                             */
   2520   1.1    bouyer /****************************************************************************/
   2521   1.1    bouyer int
   2522   1.1    bouyer bnx_fw_sync(struct bnx_softc *sc, u_int32_t msg_data)
   2523   1.1    bouyer {
   2524   1.1    bouyer 	int			i, rc = 0;
   2525   1.1    bouyer 	u_int32_t		val;
   2526   1.1    bouyer 
   2527   1.1    bouyer 	/* Don't waste any time if we've timed out before. */
   2528   1.1    bouyer 	if (sc->bnx_fw_timed_out) {
   2529   1.1    bouyer 		rc = EBUSY;
   2530   1.1    bouyer 		goto bnx_fw_sync_exit;
   2531   1.1    bouyer 	}
   2532   1.1    bouyer 
   2533   1.1    bouyer 	/* Increment the message sequence number. */
   2534   1.1    bouyer 	sc->bnx_fw_wr_seq++;
   2535   1.1    bouyer 	msg_data |= sc->bnx_fw_wr_seq;
   2536   1.1    bouyer 
   2537   1.1    bouyer  	DBPRINT(sc, BNX_VERBOSE, "bnx_fw_sync(): msg_data = 0x%08X\n",
   2538   1.1    bouyer 	    msg_data);
   2539   1.1    bouyer 
   2540   1.1    bouyer 	/* Send the message to the bootcode driver mailbox. */
   2541   1.1    bouyer 	REG_WR_IND(sc, sc->bnx_shmem_base + BNX_DRV_MB, msg_data);
   2542   1.1    bouyer 
   2543   1.1    bouyer 	/* Wait for the bootcode to acknowledge the message. */
   2544   1.1    bouyer 	for (i = 0; i < FW_ACK_TIME_OUT_MS; i++) {
   2545   1.1    bouyer 		/* Check for a response in the bootcode firmware mailbox. */
   2546   1.1    bouyer 		val = REG_RD_IND(sc, sc->bnx_shmem_base + BNX_FW_MB);
   2547   1.1    bouyer 		if ((val & BNX_FW_MSG_ACK) == (msg_data & BNX_DRV_MSG_SEQ))
   2548   1.1    bouyer 			break;
   2549   1.1    bouyer 		DELAY(1000);
   2550   1.1    bouyer 	}
   2551   1.1    bouyer 
   2552   1.1    bouyer 	/* If we've timed out, tell the bootcode that we've stopped waiting. */
   2553   1.1    bouyer 	if (((val & BNX_FW_MSG_ACK) != (msg_data & BNX_DRV_MSG_SEQ)) &&
   2554   1.1    bouyer 		((msg_data & BNX_DRV_MSG_DATA) != BNX_DRV_MSG_DATA_WAIT0)) {
   2555   1.1    bouyer 		BNX_PRINTF(sc, "%s(%d): Firmware synchronization timeout! "
   2556   1.1    bouyer 		    "msg_data = 0x%08X\n", __FILE__, __LINE__, msg_data);
   2557   1.1    bouyer 
   2558   1.1    bouyer 		msg_data &= ~BNX_DRV_MSG_CODE;
   2559   1.1    bouyer 		msg_data |= BNX_DRV_MSG_CODE_FW_TIMEOUT;
   2560   1.1    bouyer 
   2561   1.1    bouyer 		REG_WR_IND(sc, sc->bnx_shmem_base + BNX_DRV_MB, msg_data);
   2562   1.1    bouyer 
   2563   1.1    bouyer 		sc->bnx_fw_timed_out = 1;
   2564   1.1    bouyer 		rc = EBUSY;
   2565   1.1    bouyer 	}
   2566   1.1    bouyer 
   2567   1.1    bouyer bnx_fw_sync_exit:
   2568   1.1    bouyer 	return (rc);
   2569   1.1    bouyer }
   2570   1.1    bouyer 
   2571   1.1    bouyer /****************************************************************************/
   2572   1.1    bouyer /* Load Receive Virtual 2 Physical (RV2P) processor firmware.               */
   2573   1.1    bouyer /*                                                                          */
   2574   1.1    bouyer /* Returns:                                                                 */
   2575   1.1    bouyer /*   Nothing.                                                               */
   2576   1.1    bouyer /****************************************************************************/
   2577   1.1    bouyer void
   2578   1.1    bouyer bnx_load_rv2p_fw(struct bnx_softc *sc, u_int32_t *rv2p_code,
   2579   1.1    bouyer     u_int32_t rv2p_code_len, u_int32_t rv2p_proc)
   2580   1.1    bouyer {
   2581   1.1    bouyer 	int			i;
   2582   1.1    bouyer 	u_int32_t		val;
   2583   1.1    bouyer 
   2584  1.29    bouyer 	/* Set the page size used by RV2P. */
   2585  1.29    bouyer 	if (rv2p_proc == RV2P_PROC2) {
   2586  1.29    bouyer 		BNX_RV2P_PROC2_CHG_MAX_BD_PAGE(rv2p_code,
   2587  1.29    bouyer 		    USABLE_RX_BD_PER_PAGE);
   2588  1.29    bouyer 	}
   2589  1.29    bouyer 
   2590   1.1    bouyer 	for (i = 0; i < rv2p_code_len; i += 8) {
   2591   1.1    bouyer 		REG_WR(sc, BNX_RV2P_INSTR_HIGH, *rv2p_code);
   2592   1.1    bouyer 		rv2p_code++;
   2593   1.1    bouyer 		REG_WR(sc, BNX_RV2P_INSTR_LOW, *rv2p_code);
   2594   1.1    bouyer 		rv2p_code++;
   2595   1.1    bouyer 
   2596   1.1    bouyer 		if (rv2p_proc == RV2P_PROC1) {
   2597   1.1    bouyer 			val = (i / 8) | BNX_RV2P_PROC1_ADDR_CMD_RDWR;
   2598   1.1    bouyer 			REG_WR(sc, BNX_RV2P_PROC1_ADDR_CMD, val);
   2599  1.29    bouyer 		} else {
   2600   1.1    bouyer 			val = (i / 8) | BNX_RV2P_PROC2_ADDR_CMD_RDWR;
   2601   1.1    bouyer 			REG_WR(sc, BNX_RV2P_PROC2_ADDR_CMD, val);
   2602   1.1    bouyer 		}
   2603   1.1    bouyer 	}
   2604   1.1    bouyer 
   2605   1.1    bouyer 	/* Reset the processor, un-stall is done later. */
   2606   1.1    bouyer 	if (rv2p_proc == RV2P_PROC1)
   2607   1.1    bouyer 		REG_WR(sc, BNX_RV2P_COMMAND, BNX_RV2P_COMMAND_PROC1_RESET);
   2608   1.1    bouyer 	else
   2609   1.1    bouyer 		REG_WR(sc, BNX_RV2P_COMMAND, BNX_RV2P_COMMAND_PROC2_RESET);
   2610   1.1    bouyer }
   2611   1.1    bouyer 
   2612   1.1    bouyer /****************************************************************************/
   2613   1.1    bouyer /* Load RISC processor firmware.                                            */
   2614   1.1    bouyer /*                                                                          */
   2615   1.1    bouyer /* Loads firmware from the file if_bnxfw.h into the scratchpad memory       */
   2616   1.1    bouyer /* associated with a particular processor.                                  */
   2617   1.1    bouyer /*                                                                          */
   2618   1.1    bouyer /* Returns:                                                                 */
   2619   1.1    bouyer /*   Nothing.                                                               */
   2620   1.1    bouyer /****************************************************************************/
   2621   1.1    bouyer void
   2622   1.1    bouyer bnx_load_cpu_fw(struct bnx_softc *sc, struct cpu_reg *cpu_reg,
   2623   1.1    bouyer     struct fw_info *fw)
   2624   1.1    bouyer {
   2625   1.1    bouyer 	u_int32_t		offset;
   2626   1.1    bouyer 	u_int32_t		val;
   2627   1.1    bouyer 
   2628   1.1    bouyer 	/* Halt the CPU. */
   2629   1.1    bouyer 	val = REG_RD_IND(sc, cpu_reg->mode);
   2630   1.1    bouyer 	val |= cpu_reg->mode_value_halt;
   2631   1.1    bouyer 	REG_WR_IND(sc, cpu_reg->mode, val);
   2632   1.1    bouyer 	REG_WR_IND(sc, cpu_reg->state, cpu_reg->state_value_clear);
   2633   1.1    bouyer 
   2634   1.1    bouyer 	/* Load the Text area. */
   2635   1.1    bouyer 	offset = cpu_reg->spad_base + (fw->text_addr - cpu_reg->mips_view_base);
   2636   1.1    bouyer 	if (fw->text) {
   2637   1.1    bouyer 		int j;
   2638   1.1    bouyer 
   2639   1.1    bouyer 		for (j = 0; j < (fw->text_len / 4); j++, offset += 4)
   2640   1.1    bouyer 			REG_WR_IND(sc, offset, fw->text[j]);
   2641   1.1    bouyer 	}
   2642   1.1    bouyer 
   2643   1.1    bouyer 	/* Load the Data area. */
   2644   1.1    bouyer 	offset = cpu_reg->spad_base + (fw->data_addr - cpu_reg->mips_view_base);
   2645   1.1    bouyer 	if (fw->data) {
   2646   1.1    bouyer 		int j;
   2647   1.1    bouyer 
   2648   1.1    bouyer 		for (j = 0; j < (fw->data_len / 4); j++, offset += 4)
   2649   1.1    bouyer 			REG_WR_IND(sc, offset, fw->data[j]);
   2650   1.1    bouyer 	}
   2651   1.1    bouyer 
   2652   1.1    bouyer 	/* Load the SBSS area. */
   2653   1.1    bouyer 	offset = cpu_reg->spad_base + (fw->sbss_addr - cpu_reg->mips_view_base);
   2654   1.1    bouyer 	if (fw->sbss) {
   2655   1.1    bouyer 		int j;
   2656   1.1    bouyer 
   2657   1.1    bouyer 		for (j = 0; j < (fw->sbss_len / 4); j++, offset += 4)
   2658   1.1    bouyer 			REG_WR_IND(sc, offset, fw->sbss[j]);
   2659   1.1    bouyer 	}
   2660   1.1    bouyer 
   2661   1.1    bouyer 	/* Load the BSS area. */
   2662   1.1    bouyer 	offset = cpu_reg->spad_base + (fw->bss_addr - cpu_reg->mips_view_base);
   2663   1.1    bouyer 	if (fw->bss) {
   2664   1.1    bouyer 		int j;
   2665   1.1    bouyer 
   2666   1.1    bouyer 		for (j = 0; j < (fw->bss_len/4); j++, offset += 4)
   2667   1.1    bouyer 			REG_WR_IND(sc, offset, fw->bss[j]);
   2668   1.1    bouyer 	}
   2669   1.1    bouyer 
   2670   1.1    bouyer 	/* Load the Read-Only area. */
   2671   1.1    bouyer 	offset = cpu_reg->spad_base +
   2672   1.1    bouyer 	    (fw->rodata_addr - cpu_reg->mips_view_base);
   2673   1.1    bouyer 	if (fw->rodata) {
   2674   1.1    bouyer 		int j;
   2675   1.1    bouyer 
   2676   1.1    bouyer 		for (j = 0; j < (fw->rodata_len / 4); j++, offset += 4)
   2677   1.1    bouyer 			REG_WR_IND(sc, offset, fw->rodata[j]);
   2678   1.1    bouyer 	}
   2679   1.1    bouyer 
   2680   1.1    bouyer 	/* Clear the pre-fetch instruction. */
   2681   1.1    bouyer 	REG_WR_IND(sc, cpu_reg->inst, 0);
   2682   1.1    bouyer 	REG_WR_IND(sc, cpu_reg->pc, fw->start_addr);
   2683   1.1    bouyer 
   2684   1.1    bouyer 	/* Start the CPU. */
   2685   1.1    bouyer 	val = REG_RD_IND(sc, cpu_reg->mode);
   2686   1.1    bouyer 	val &= ~cpu_reg->mode_value_halt;
   2687   1.1    bouyer 	REG_WR_IND(sc, cpu_reg->state, cpu_reg->state_value_clear);
   2688   1.1    bouyer 	REG_WR_IND(sc, cpu_reg->mode, val);
   2689   1.1    bouyer }
   2690   1.1    bouyer 
   2691   1.1    bouyer /****************************************************************************/
   2692   1.1    bouyer /* Initialize the RV2P, RX, TX, TPAT, and COM CPUs.                         */
   2693   1.1    bouyer /*                                                                          */
   2694   1.1    bouyer /* Loads the firmware for each CPU and starts the CPU.                      */
   2695   1.1    bouyer /*                                                                          */
   2696   1.1    bouyer /* Returns:                                                                 */
   2697   1.1    bouyer /*   Nothing.                                                               */
   2698   1.1    bouyer /****************************************************************************/
   2699   1.1    bouyer void
   2700   1.1    bouyer bnx_init_cpus(struct bnx_softc *sc)
   2701   1.1    bouyer {
   2702   1.1    bouyer 	struct cpu_reg cpu_reg;
   2703   1.1    bouyer 	struct fw_info fw;
   2704   1.1    bouyer 
   2705  1.29    bouyer 	switch(BNX_CHIP_NUM(sc)) {
   2706  1.29    bouyer 	case BNX_CHIP_NUM_5709:
   2707  1.29    bouyer 		/* Initialize the RV2P processor. */
   2708  1.29    bouyer 		if (BNX_CHIP_REV(sc) == BNX_CHIP_REV_Ax) {
   2709  1.29    bouyer 			bnx_load_rv2p_fw(sc, bnx_xi90_rv2p_proc1,
   2710  1.29    bouyer 			    sizeof(bnx_xi90_rv2p_proc1), RV2P_PROC1);
   2711  1.29    bouyer 			bnx_load_rv2p_fw(sc, bnx_xi90_rv2p_proc2,
   2712  1.29    bouyer 			    sizeof(bnx_xi90_rv2p_proc2), RV2P_PROC2);
   2713  1.29    bouyer 		} else {
   2714  1.29    bouyer 			bnx_load_rv2p_fw(sc, bnx_xi_rv2p_proc1,
   2715  1.29    bouyer 			    sizeof(bnx_xi_rv2p_proc1), RV2P_PROC1);
   2716  1.29    bouyer 			bnx_load_rv2p_fw(sc, bnx_xi_rv2p_proc2,
   2717  1.29    bouyer 			    sizeof(bnx_xi_rv2p_proc2), RV2P_PROC2);
   2718  1.29    bouyer 		}
   2719  1.29    bouyer 
   2720  1.29    bouyer 		/* Initialize the RX Processor. */
   2721  1.29    bouyer 		cpu_reg.mode = BNX_RXP_CPU_MODE;
   2722  1.29    bouyer 		cpu_reg.mode_value_halt = BNX_RXP_CPU_MODE_SOFT_HALT;
   2723  1.29    bouyer 		cpu_reg.mode_value_sstep = BNX_RXP_CPU_MODE_STEP_ENA;
   2724  1.29    bouyer 		cpu_reg.state = BNX_RXP_CPU_STATE;
   2725  1.29    bouyer 		cpu_reg.state_value_clear = 0xffffff;
   2726  1.29    bouyer 		cpu_reg.gpr0 = BNX_RXP_CPU_REG_FILE;
   2727  1.29    bouyer 		cpu_reg.evmask = BNX_RXP_CPU_EVENT_MASK;
   2728  1.29    bouyer 		cpu_reg.pc = BNX_RXP_CPU_PROGRAM_COUNTER;
   2729  1.29    bouyer 		cpu_reg.inst = BNX_RXP_CPU_INSTRUCTION;
   2730  1.29    bouyer 		cpu_reg.bp = BNX_RXP_CPU_HW_BREAKPOINT;
   2731  1.29    bouyer 		cpu_reg.spad_base = BNX_RXP_SCRATCH;
   2732  1.29    bouyer 		cpu_reg.mips_view_base = 0x8000000;
   2733  1.29    bouyer 
   2734  1.29    bouyer 		fw.ver_major = bnx_RXP_b09FwReleaseMajor;
   2735  1.29    bouyer 		fw.ver_minor = bnx_RXP_b09FwReleaseMinor;
   2736  1.29    bouyer 		fw.ver_fix = bnx_RXP_b09FwReleaseFix;
   2737  1.29    bouyer 		fw.start_addr = bnx_RXP_b09FwStartAddr;
   2738  1.29    bouyer 
   2739  1.29    bouyer 		fw.text_addr = bnx_RXP_b09FwTextAddr;
   2740  1.29    bouyer 		fw.text_len = bnx_RXP_b09FwTextLen;
   2741  1.29    bouyer 		fw.text_index = 0;
   2742  1.29    bouyer 		fw.text = bnx_RXP_b09FwText;
   2743  1.29    bouyer 
   2744  1.29    bouyer 		fw.data_addr = bnx_RXP_b09FwDataAddr;
   2745  1.29    bouyer 		fw.data_len = bnx_RXP_b09FwDataLen;
   2746  1.29    bouyer 		fw.data_index = 0;
   2747  1.29    bouyer 		fw.data = bnx_RXP_b09FwData;
   2748  1.29    bouyer 
   2749  1.29    bouyer 		fw.sbss_addr = bnx_RXP_b09FwSbssAddr;
   2750  1.29    bouyer 		fw.sbss_len = bnx_RXP_b09FwSbssLen;
   2751  1.29    bouyer 		fw.sbss_index = 0;
   2752  1.29    bouyer 		fw.sbss = bnx_RXP_b09FwSbss;
   2753  1.29    bouyer 
   2754  1.29    bouyer 		fw.bss_addr = bnx_RXP_b09FwBssAddr;
   2755  1.29    bouyer 		fw.bss_len = bnx_RXP_b09FwBssLen;
   2756  1.29    bouyer 		fw.bss_index = 0;
   2757  1.29    bouyer 		fw.bss = bnx_RXP_b09FwBss;
   2758  1.29    bouyer 
   2759  1.29    bouyer 		fw.rodata_addr = bnx_RXP_b09FwRodataAddr;
   2760  1.29    bouyer 		fw.rodata_len = bnx_RXP_b09FwRodataLen;
   2761  1.29    bouyer 		fw.rodata_index = 0;
   2762  1.29    bouyer 		fw.rodata = bnx_RXP_b09FwRodata;
   2763  1.29    bouyer 
   2764  1.29    bouyer 		DBPRINT(sc, BNX_INFO_RESET, "Loading RX firmware.\n");
   2765  1.29    bouyer 		bnx_load_cpu_fw(sc, &cpu_reg, &fw);
   2766  1.29    bouyer 
   2767  1.29    bouyer 		/* Initialize the TX Processor. */
   2768  1.29    bouyer 		cpu_reg.mode = BNX_TXP_CPU_MODE;
   2769  1.29    bouyer 		cpu_reg.mode_value_halt = BNX_TXP_CPU_MODE_SOFT_HALT;
   2770  1.29    bouyer 		cpu_reg.mode_value_sstep = BNX_TXP_CPU_MODE_STEP_ENA;
   2771  1.29    bouyer 		cpu_reg.state = BNX_TXP_CPU_STATE;
   2772  1.29    bouyer 		cpu_reg.state_value_clear = 0xffffff;
   2773  1.29    bouyer 		cpu_reg.gpr0 = BNX_TXP_CPU_REG_FILE;
   2774  1.29    bouyer 		cpu_reg.evmask = BNX_TXP_CPU_EVENT_MASK;
   2775  1.29    bouyer 		cpu_reg.pc = BNX_TXP_CPU_PROGRAM_COUNTER;
   2776  1.29    bouyer 		cpu_reg.inst = BNX_TXP_CPU_INSTRUCTION;
   2777  1.29    bouyer 		cpu_reg.bp = BNX_TXP_CPU_HW_BREAKPOINT;
   2778  1.29    bouyer 		cpu_reg.spad_base = BNX_TXP_SCRATCH;
   2779  1.29    bouyer 		cpu_reg.mips_view_base = 0x8000000;
   2780  1.29    bouyer 
   2781  1.29    bouyer 		fw.ver_major = bnx_TXP_b09FwReleaseMajor;
   2782  1.29    bouyer 		fw.ver_minor = bnx_TXP_b09FwReleaseMinor;
   2783  1.29    bouyer 		fw.ver_fix = bnx_TXP_b09FwReleaseFix;
   2784  1.29    bouyer 		fw.start_addr = bnx_TXP_b09FwStartAddr;
   2785  1.29    bouyer 
   2786  1.29    bouyer 		fw.text_addr = bnx_TXP_b09FwTextAddr;
   2787  1.29    bouyer 		fw.text_len = bnx_TXP_b09FwTextLen;
   2788  1.29    bouyer 		fw.text_index = 0;
   2789  1.29    bouyer 		fw.text = bnx_TXP_b09FwText;
   2790  1.29    bouyer 
   2791  1.29    bouyer 		fw.data_addr = bnx_TXP_b09FwDataAddr;
   2792  1.29    bouyer 		fw.data_len = bnx_TXP_b09FwDataLen;
   2793  1.29    bouyer 		fw.data_index = 0;
   2794  1.29    bouyer 		fw.data = bnx_TXP_b09FwData;
   2795  1.29    bouyer 
   2796  1.29    bouyer 		fw.sbss_addr = bnx_TXP_b09FwSbssAddr;
   2797  1.29    bouyer 		fw.sbss_len = bnx_TXP_b09FwSbssLen;
   2798  1.29    bouyer 		fw.sbss_index = 0;
   2799  1.29    bouyer 		fw.sbss = bnx_TXP_b09FwSbss;
   2800  1.29    bouyer 
   2801  1.29    bouyer 		fw.bss_addr = bnx_TXP_b09FwBssAddr;
   2802  1.29    bouyer 		fw.bss_len = bnx_TXP_b09FwBssLen;
   2803  1.29    bouyer 		fw.bss_index = 0;
   2804  1.29    bouyer 		fw.bss = bnx_TXP_b09FwBss;
   2805  1.29    bouyer 
   2806  1.29    bouyer 		fw.rodata_addr = bnx_TXP_b09FwRodataAddr;
   2807  1.29    bouyer 		fw.rodata_len = bnx_TXP_b09FwRodataLen;
   2808  1.29    bouyer 		fw.rodata_index = 0;
   2809  1.29    bouyer 		fw.rodata = bnx_TXP_b09FwRodata;
   2810  1.29    bouyer 
   2811  1.29    bouyer 		DBPRINT(sc, BNX_INFO_RESET, "Loading TX firmware.\n");
   2812  1.29    bouyer 		bnx_load_cpu_fw(sc, &cpu_reg, &fw);
   2813  1.29    bouyer 
   2814  1.29    bouyer 		/* Initialize the TX Patch-up Processor. */
   2815  1.29    bouyer 		cpu_reg.mode = BNX_TPAT_CPU_MODE;
   2816  1.29    bouyer 		cpu_reg.mode_value_halt = BNX_TPAT_CPU_MODE_SOFT_HALT;
   2817  1.29    bouyer 		cpu_reg.mode_value_sstep = BNX_TPAT_CPU_MODE_STEP_ENA;
   2818  1.29    bouyer 		cpu_reg.state = BNX_TPAT_CPU_STATE;
   2819  1.29    bouyer 		cpu_reg.state_value_clear = 0xffffff;
   2820  1.29    bouyer 		cpu_reg.gpr0 = BNX_TPAT_CPU_REG_FILE;
   2821  1.29    bouyer 		cpu_reg.evmask = BNX_TPAT_CPU_EVENT_MASK;
   2822  1.29    bouyer 		cpu_reg.pc = BNX_TPAT_CPU_PROGRAM_COUNTER;
   2823  1.29    bouyer 		cpu_reg.inst = BNX_TPAT_CPU_INSTRUCTION;
   2824  1.29    bouyer 		cpu_reg.bp = BNX_TPAT_CPU_HW_BREAKPOINT;
   2825  1.29    bouyer 		cpu_reg.spad_base = BNX_TPAT_SCRATCH;
   2826  1.29    bouyer 		cpu_reg.mips_view_base = 0x8000000;
   2827  1.29    bouyer 
   2828  1.29    bouyer 		fw.ver_major = bnx_TPAT_b09FwReleaseMajor;
   2829  1.29    bouyer 		fw.ver_minor = bnx_TPAT_b09FwReleaseMinor;
   2830  1.29    bouyer 		fw.ver_fix = bnx_TPAT_b09FwReleaseFix;
   2831  1.29    bouyer 		fw.start_addr = bnx_TPAT_b09FwStartAddr;
   2832  1.29    bouyer 
   2833  1.29    bouyer 		fw.text_addr = bnx_TPAT_b09FwTextAddr;
   2834  1.29    bouyer 		fw.text_len = bnx_TPAT_b09FwTextLen;
   2835  1.29    bouyer 		fw.text_index = 0;
   2836  1.29    bouyer 		fw.text = bnx_TPAT_b09FwText;
   2837  1.29    bouyer 
   2838  1.29    bouyer 		fw.data_addr = bnx_TPAT_b09FwDataAddr;
   2839  1.29    bouyer 		fw.data_len = bnx_TPAT_b09FwDataLen;
   2840  1.29    bouyer 		fw.data_index = 0;
   2841  1.29    bouyer 		fw.data = bnx_TPAT_b09FwData;
   2842  1.29    bouyer 
   2843  1.29    bouyer 		fw.sbss_addr = bnx_TPAT_b09FwSbssAddr;
   2844  1.29    bouyer 		fw.sbss_len = bnx_TPAT_b09FwSbssLen;
   2845  1.29    bouyer 		fw.sbss_index = 0;
   2846  1.29    bouyer 		fw.sbss = bnx_TPAT_b09FwSbss;
   2847  1.29    bouyer 
   2848  1.29    bouyer 		fw.bss_addr = bnx_TPAT_b09FwBssAddr;
   2849  1.29    bouyer 		fw.bss_len = bnx_TPAT_b09FwBssLen;
   2850  1.29    bouyer 		fw.bss_index = 0;
   2851  1.29    bouyer 		fw.bss = bnx_TPAT_b09FwBss;
   2852  1.29    bouyer 
   2853  1.29    bouyer 		fw.rodata_addr = bnx_TPAT_b09FwRodataAddr;
   2854  1.29    bouyer 		fw.rodata_len = bnx_TPAT_b09FwRodataLen;
   2855  1.29    bouyer 		fw.rodata_index = 0;
   2856  1.29    bouyer 		fw.rodata = bnx_TPAT_b09FwRodata;
   2857  1.29    bouyer 
   2858  1.29    bouyer 		DBPRINT(sc, BNX_INFO_RESET, "Loading TPAT firmware.\n");
   2859  1.29    bouyer 		bnx_load_cpu_fw(sc, &cpu_reg, &fw);
   2860  1.29    bouyer 
   2861  1.29    bouyer 		/* Initialize the Completion Processor. */
   2862  1.29    bouyer 		cpu_reg.mode = BNX_COM_CPU_MODE;
   2863  1.29    bouyer 		cpu_reg.mode_value_halt = BNX_COM_CPU_MODE_SOFT_HALT;
   2864  1.29    bouyer 		cpu_reg.mode_value_sstep = BNX_COM_CPU_MODE_STEP_ENA;
   2865  1.29    bouyer 		cpu_reg.state = BNX_COM_CPU_STATE;
   2866  1.29    bouyer 		cpu_reg.state_value_clear = 0xffffff;
   2867  1.29    bouyer 		cpu_reg.gpr0 = BNX_COM_CPU_REG_FILE;
   2868  1.29    bouyer 		cpu_reg.evmask = BNX_COM_CPU_EVENT_MASK;
   2869  1.29    bouyer 		cpu_reg.pc = BNX_COM_CPU_PROGRAM_COUNTER;
   2870  1.29    bouyer 		cpu_reg.inst = BNX_COM_CPU_INSTRUCTION;
   2871  1.29    bouyer 		cpu_reg.bp = BNX_COM_CPU_HW_BREAKPOINT;
   2872  1.29    bouyer 		cpu_reg.spad_base = BNX_COM_SCRATCH;
   2873  1.29    bouyer 		cpu_reg.mips_view_base = 0x8000000;
   2874  1.29    bouyer 
   2875  1.29    bouyer 		fw.ver_major = bnx_COM_b09FwReleaseMajor;
   2876  1.29    bouyer 		fw.ver_minor = bnx_COM_b09FwReleaseMinor;
   2877  1.29    bouyer 		fw.ver_fix = bnx_COM_b09FwReleaseFix;
   2878  1.29    bouyer 		fw.start_addr = bnx_COM_b09FwStartAddr;
   2879  1.29    bouyer 
   2880  1.29    bouyer 		fw.text_addr = bnx_COM_b09FwTextAddr;
   2881  1.29    bouyer 		fw.text_len = bnx_COM_b09FwTextLen;
   2882  1.29    bouyer 		fw.text_index = 0;
   2883  1.29    bouyer 		fw.text = bnx_COM_b09FwText;
   2884  1.29    bouyer 
   2885  1.29    bouyer 		fw.data_addr = bnx_COM_b09FwDataAddr;
   2886  1.29    bouyer 		fw.data_len = bnx_COM_b09FwDataLen;
   2887  1.29    bouyer 		fw.data_index = 0;
   2888  1.29    bouyer 		fw.data = bnx_COM_b09FwData;
   2889  1.29    bouyer 
   2890  1.29    bouyer 		fw.sbss_addr = bnx_COM_b09FwSbssAddr;
   2891  1.29    bouyer 		fw.sbss_len = bnx_COM_b09FwSbssLen;
   2892  1.29    bouyer 		fw.sbss_index = 0;
   2893  1.29    bouyer 		fw.sbss = bnx_COM_b09FwSbss;
   2894  1.29    bouyer 
   2895  1.29    bouyer 		fw.bss_addr = bnx_COM_b09FwBssAddr;
   2896  1.29    bouyer 		fw.bss_len = bnx_COM_b09FwBssLen;
   2897  1.29    bouyer 		fw.bss_index = 0;
   2898  1.29    bouyer 		fw.bss = bnx_COM_b09FwBss;
   2899  1.29    bouyer 
   2900  1.29    bouyer 		fw.rodata_addr = bnx_COM_b09FwRodataAddr;
   2901  1.29    bouyer 		fw.rodata_len = bnx_COM_b09FwRodataLen;
   2902  1.29    bouyer 		fw.rodata_index = 0;
   2903  1.29    bouyer 		fw.rodata = bnx_COM_b09FwRodata;
   2904  1.29    bouyer 		DBPRINT(sc, BNX_INFO_RESET, "Loading COM firmware.\n");
   2905  1.29    bouyer 		bnx_load_cpu_fw(sc, &cpu_reg, &fw);
   2906  1.29    bouyer 		break;
   2907  1.29    bouyer 	default:
   2908  1.29    bouyer 		/* Initialize the RV2P processor. */
   2909  1.29    bouyer 		bnx_load_rv2p_fw(sc, bnx_rv2p_proc1, sizeof(bnx_rv2p_proc1),
   2910  1.29    bouyer 		    RV2P_PROC1);
   2911  1.29    bouyer 		bnx_load_rv2p_fw(sc, bnx_rv2p_proc2, sizeof(bnx_rv2p_proc2),
   2912  1.29    bouyer 		    RV2P_PROC2);
   2913  1.29    bouyer 
   2914  1.29    bouyer 		/* Initialize the RX Processor. */
   2915  1.29    bouyer 		cpu_reg.mode = BNX_RXP_CPU_MODE;
   2916  1.29    bouyer 		cpu_reg.mode_value_halt = BNX_RXP_CPU_MODE_SOFT_HALT;
   2917  1.29    bouyer 		cpu_reg.mode_value_sstep = BNX_RXP_CPU_MODE_STEP_ENA;
   2918  1.29    bouyer 		cpu_reg.state = BNX_RXP_CPU_STATE;
   2919  1.29    bouyer 		cpu_reg.state_value_clear = 0xffffff;
   2920  1.29    bouyer 		cpu_reg.gpr0 = BNX_RXP_CPU_REG_FILE;
   2921  1.29    bouyer 		cpu_reg.evmask = BNX_RXP_CPU_EVENT_MASK;
   2922  1.29    bouyer 		cpu_reg.pc = BNX_RXP_CPU_PROGRAM_COUNTER;
   2923  1.29    bouyer 		cpu_reg.inst = BNX_RXP_CPU_INSTRUCTION;
   2924  1.29    bouyer 		cpu_reg.bp = BNX_RXP_CPU_HW_BREAKPOINT;
   2925  1.29    bouyer 		cpu_reg.spad_base = BNX_RXP_SCRATCH;
   2926  1.29    bouyer 		cpu_reg.mips_view_base = 0x8000000;
   2927  1.29    bouyer 
   2928  1.29    bouyer 		fw.ver_major = bnx_RXP_b06FwReleaseMajor;
   2929  1.29    bouyer 		fw.ver_minor = bnx_RXP_b06FwReleaseMinor;
   2930  1.29    bouyer 		fw.ver_fix = bnx_RXP_b06FwReleaseFix;
   2931  1.29    bouyer 		fw.start_addr = bnx_RXP_b06FwStartAddr;
   2932  1.29    bouyer 
   2933  1.29    bouyer 		fw.text_addr = bnx_RXP_b06FwTextAddr;
   2934  1.29    bouyer 		fw.text_len = bnx_RXP_b06FwTextLen;
   2935  1.29    bouyer 		fw.text_index = 0;
   2936  1.29    bouyer 		fw.text = bnx_RXP_b06FwText;
   2937  1.29    bouyer 
   2938  1.29    bouyer 		fw.data_addr = bnx_RXP_b06FwDataAddr;
   2939  1.29    bouyer 		fw.data_len = bnx_RXP_b06FwDataLen;
   2940  1.29    bouyer 		fw.data_index = 0;
   2941  1.29    bouyer 		fw.data = bnx_RXP_b06FwData;
   2942  1.29    bouyer 
   2943  1.29    bouyer 		fw.sbss_addr = bnx_RXP_b06FwSbssAddr;
   2944  1.29    bouyer 		fw.sbss_len = bnx_RXP_b06FwSbssLen;
   2945  1.29    bouyer 		fw.sbss_index = 0;
   2946  1.29    bouyer 		fw.sbss = bnx_RXP_b06FwSbss;
   2947  1.29    bouyer 
   2948  1.29    bouyer 		fw.bss_addr = bnx_RXP_b06FwBssAddr;
   2949  1.29    bouyer 		fw.bss_len = bnx_RXP_b06FwBssLen;
   2950  1.29    bouyer 		fw.bss_index = 0;
   2951  1.29    bouyer 		fw.bss = bnx_RXP_b06FwBss;
   2952  1.29    bouyer 
   2953  1.29    bouyer 		fw.rodata_addr = bnx_RXP_b06FwRodataAddr;
   2954  1.29    bouyer 		fw.rodata_len = bnx_RXP_b06FwRodataLen;
   2955  1.29    bouyer 		fw.rodata_index = 0;
   2956  1.29    bouyer 		fw.rodata = bnx_RXP_b06FwRodata;
   2957  1.29    bouyer 
   2958  1.29    bouyer 		DBPRINT(sc, BNX_INFO_RESET, "Loading RX firmware.\n");
   2959  1.29    bouyer 		bnx_load_cpu_fw(sc, &cpu_reg, &fw);
   2960  1.29    bouyer 
   2961  1.29    bouyer 		/* Initialize the TX Processor. */
   2962  1.29    bouyer 		cpu_reg.mode = BNX_TXP_CPU_MODE;
   2963  1.29    bouyer 		cpu_reg.mode_value_halt = BNX_TXP_CPU_MODE_SOFT_HALT;
   2964  1.29    bouyer 		cpu_reg.mode_value_sstep = BNX_TXP_CPU_MODE_STEP_ENA;
   2965  1.29    bouyer 		cpu_reg.state = BNX_TXP_CPU_STATE;
   2966  1.29    bouyer 		cpu_reg.state_value_clear = 0xffffff;
   2967  1.29    bouyer 		cpu_reg.gpr0 = BNX_TXP_CPU_REG_FILE;
   2968  1.29    bouyer 		cpu_reg.evmask = BNX_TXP_CPU_EVENT_MASK;
   2969  1.29    bouyer 		cpu_reg.pc = BNX_TXP_CPU_PROGRAM_COUNTER;
   2970  1.29    bouyer 		cpu_reg.inst = BNX_TXP_CPU_INSTRUCTION;
   2971  1.29    bouyer 		cpu_reg.bp = BNX_TXP_CPU_HW_BREAKPOINT;
   2972  1.29    bouyer 		cpu_reg.spad_base = BNX_TXP_SCRATCH;
   2973  1.29    bouyer 		cpu_reg.mips_view_base = 0x8000000;
   2974  1.29    bouyer 
   2975  1.29    bouyer 		fw.ver_major = bnx_TXP_b06FwReleaseMajor;
   2976  1.29    bouyer 		fw.ver_minor = bnx_TXP_b06FwReleaseMinor;
   2977  1.29    bouyer 		fw.ver_fix = bnx_TXP_b06FwReleaseFix;
   2978  1.29    bouyer 		fw.start_addr = bnx_TXP_b06FwStartAddr;
   2979  1.29    bouyer 
   2980  1.29    bouyer 		fw.text_addr = bnx_TXP_b06FwTextAddr;
   2981  1.29    bouyer 		fw.text_len = bnx_TXP_b06FwTextLen;
   2982  1.29    bouyer 		fw.text_index = 0;
   2983  1.29    bouyer 		fw.text = bnx_TXP_b06FwText;
   2984  1.29    bouyer 
   2985  1.29    bouyer 		fw.data_addr = bnx_TXP_b06FwDataAddr;
   2986  1.29    bouyer 		fw.data_len = bnx_TXP_b06FwDataLen;
   2987  1.29    bouyer 		fw.data_index = 0;
   2988  1.29    bouyer 		fw.data = bnx_TXP_b06FwData;
   2989  1.29    bouyer 
   2990  1.29    bouyer 		fw.sbss_addr = bnx_TXP_b06FwSbssAddr;
   2991  1.29    bouyer 		fw.sbss_len = bnx_TXP_b06FwSbssLen;
   2992  1.29    bouyer 		fw.sbss_index = 0;
   2993  1.29    bouyer 		fw.sbss = bnx_TXP_b06FwSbss;
   2994  1.29    bouyer 
   2995  1.29    bouyer 		fw.bss_addr = bnx_TXP_b06FwBssAddr;
   2996  1.29    bouyer 		fw.bss_len = bnx_TXP_b06FwBssLen;
   2997  1.29    bouyer 		fw.bss_index = 0;
   2998  1.29    bouyer 		fw.bss = bnx_TXP_b06FwBss;
   2999  1.29    bouyer 
   3000  1.29    bouyer 		fw.rodata_addr = bnx_TXP_b06FwRodataAddr;
   3001  1.29    bouyer 		fw.rodata_len = bnx_TXP_b06FwRodataLen;
   3002  1.29    bouyer 		fw.rodata_index = 0;
   3003  1.29    bouyer 		fw.rodata = bnx_TXP_b06FwRodata;
   3004  1.29    bouyer 
   3005  1.29    bouyer 		DBPRINT(sc, BNX_INFO_RESET, "Loading TX firmware.\n");
   3006  1.29    bouyer 		bnx_load_cpu_fw(sc, &cpu_reg, &fw);
   3007  1.29    bouyer 
   3008  1.29    bouyer 		/* Initialize the TX Patch-up Processor. */
   3009  1.29    bouyer 		cpu_reg.mode = BNX_TPAT_CPU_MODE;
   3010  1.29    bouyer 		cpu_reg.mode_value_halt = BNX_TPAT_CPU_MODE_SOFT_HALT;
   3011  1.29    bouyer 		cpu_reg.mode_value_sstep = BNX_TPAT_CPU_MODE_STEP_ENA;
   3012  1.29    bouyer 		cpu_reg.state = BNX_TPAT_CPU_STATE;
   3013  1.29    bouyer 		cpu_reg.state_value_clear = 0xffffff;
   3014  1.29    bouyer 		cpu_reg.gpr0 = BNX_TPAT_CPU_REG_FILE;
   3015  1.29    bouyer 		cpu_reg.evmask = BNX_TPAT_CPU_EVENT_MASK;
   3016  1.29    bouyer 		cpu_reg.pc = BNX_TPAT_CPU_PROGRAM_COUNTER;
   3017  1.29    bouyer 		cpu_reg.inst = BNX_TPAT_CPU_INSTRUCTION;
   3018  1.29    bouyer 		cpu_reg.bp = BNX_TPAT_CPU_HW_BREAKPOINT;
   3019  1.29    bouyer 		cpu_reg.spad_base = BNX_TPAT_SCRATCH;
   3020  1.29    bouyer 		cpu_reg.mips_view_base = 0x8000000;
   3021  1.29    bouyer 
   3022  1.29    bouyer 		fw.ver_major = bnx_TPAT_b06FwReleaseMajor;
   3023  1.29    bouyer 		fw.ver_minor = bnx_TPAT_b06FwReleaseMinor;
   3024  1.29    bouyer 		fw.ver_fix = bnx_TPAT_b06FwReleaseFix;
   3025  1.29    bouyer 		fw.start_addr = bnx_TPAT_b06FwStartAddr;
   3026  1.29    bouyer 
   3027  1.29    bouyer 		fw.text_addr = bnx_TPAT_b06FwTextAddr;
   3028  1.29    bouyer 		fw.text_len = bnx_TPAT_b06FwTextLen;
   3029  1.29    bouyer 		fw.text_index = 0;
   3030  1.29    bouyer 		fw.text = bnx_TPAT_b06FwText;
   3031  1.29    bouyer 
   3032  1.29    bouyer 		fw.data_addr = bnx_TPAT_b06FwDataAddr;
   3033  1.29    bouyer 		fw.data_len = bnx_TPAT_b06FwDataLen;
   3034  1.29    bouyer 		fw.data_index = 0;
   3035  1.29    bouyer 		fw.data = bnx_TPAT_b06FwData;
   3036  1.29    bouyer 
   3037  1.29    bouyer 		fw.sbss_addr = bnx_TPAT_b06FwSbssAddr;
   3038  1.29    bouyer 		fw.sbss_len = bnx_TPAT_b06FwSbssLen;
   3039  1.29    bouyer 		fw.sbss_index = 0;
   3040  1.29    bouyer 		fw.sbss = bnx_TPAT_b06FwSbss;
   3041  1.29    bouyer 
   3042  1.29    bouyer 		fw.bss_addr = bnx_TPAT_b06FwBssAddr;
   3043  1.29    bouyer 		fw.bss_len = bnx_TPAT_b06FwBssLen;
   3044  1.29    bouyer 		fw.bss_index = 0;
   3045  1.29    bouyer 		fw.bss = bnx_TPAT_b06FwBss;
   3046  1.29    bouyer 
   3047  1.29    bouyer 		fw.rodata_addr = bnx_TPAT_b06FwRodataAddr;
   3048  1.29    bouyer 		fw.rodata_len = bnx_TPAT_b06FwRodataLen;
   3049  1.29    bouyer 		fw.rodata_index = 0;
   3050  1.29    bouyer 		fw.rodata = bnx_TPAT_b06FwRodata;
   3051  1.29    bouyer 
   3052  1.29    bouyer 		DBPRINT(sc, BNX_INFO_RESET, "Loading TPAT firmware.\n");
   3053  1.29    bouyer 		bnx_load_cpu_fw(sc, &cpu_reg, &fw);
   3054  1.29    bouyer 
   3055  1.29    bouyer 		/* Initialize the Completion Processor. */
   3056  1.29    bouyer 		cpu_reg.mode = BNX_COM_CPU_MODE;
   3057  1.29    bouyer 		cpu_reg.mode_value_halt = BNX_COM_CPU_MODE_SOFT_HALT;
   3058  1.29    bouyer 		cpu_reg.mode_value_sstep = BNX_COM_CPU_MODE_STEP_ENA;
   3059  1.29    bouyer 		cpu_reg.state = BNX_COM_CPU_STATE;
   3060  1.29    bouyer 		cpu_reg.state_value_clear = 0xffffff;
   3061  1.29    bouyer 		cpu_reg.gpr0 = BNX_COM_CPU_REG_FILE;
   3062  1.29    bouyer 		cpu_reg.evmask = BNX_COM_CPU_EVENT_MASK;
   3063  1.29    bouyer 		cpu_reg.pc = BNX_COM_CPU_PROGRAM_COUNTER;
   3064  1.29    bouyer 		cpu_reg.inst = BNX_COM_CPU_INSTRUCTION;
   3065  1.29    bouyer 		cpu_reg.bp = BNX_COM_CPU_HW_BREAKPOINT;
   3066  1.29    bouyer 		cpu_reg.spad_base = BNX_COM_SCRATCH;
   3067  1.29    bouyer 		cpu_reg.mips_view_base = 0x8000000;
   3068  1.29    bouyer 
   3069  1.29    bouyer 		fw.ver_major = bnx_COM_b06FwReleaseMajor;
   3070  1.29    bouyer 		fw.ver_minor = bnx_COM_b06FwReleaseMinor;
   3071  1.29    bouyer 		fw.ver_fix = bnx_COM_b06FwReleaseFix;
   3072  1.29    bouyer 		fw.start_addr = bnx_COM_b06FwStartAddr;
   3073  1.29    bouyer 
   3074  1.29    bouyer 		fw.text_addr = bnx_COM_b06FwTextAddr;
   3075  1.29    bouyer 		fw.text_len = bnx_COM_b06FwTextLen;
   3076  1.29    bouyer 		fw.text_index = 0;
   3077  1.29    bouyer 		fw.text = bnx_COM_b06FwText;
   3078  1.29    bouyer 
   3079  1.29    bouyer 		fw.data_addr = bnx_COM_b06FwDataAddr;
   3080  1.29    bouyer 		fw.data_len = bnx_COM_b06FwDataLen;
   3081  1.29    bouyer 		fw.data_index = 0;
   3082  1.29    bouyer 		fw.data = bnx_COM_b06FwData;
   3083  1.29    bouyer 
   3084  1.29    bouyer 		fw.sbss_addr = bnx_COM_b06FwSbssAddr;
   3085  1.29    bouyer 		fw.sbss_len = bnx_COM_b06FwSbssLen;
   3086  1.29    bouyer 		fw.sbss_index = 0;
   3087  1.29    bouyer 		fw.sbss = bnx_COM_b06FwSbss;
   3088  1.29    bouyer 
   3089  1.29    bouyer 		fw.bss_addr = bnx_COM_b06FwBssAddr;
   3090  1.29    bouyer 		fw.bss_len = bnx_COM_b06FwBssLen;
   3091  1.29    bouyer 		fw.bss_index = 0;
   3092  1.29    bouyer 		fw.bss = bnx_COM_b06FwBss;
   3093  1.29    bouyer 
   3094  1.29    bouyer 		fw.rodata_addr = bnx_COM_b06FwRodataAddr;
   3095  1.29    bouyer 		fw.rodata_len = bnx_COM_b06FwRodataLen;
   3096  1.29    bouyer 		fw.rodata_index = 0;
   3097  1.29    bouyer 		fw.rodata = bnx_COM_b06FwRodata;
   3098  1.29    bouyer 		DBPRINT(sc, BNX_INFO_RESET, "Loading COM firmware.\n");
   3099  1.29    bouyer 		bnx_load_cpu_fw(sc, &cpu_reg, &fw);
   3100  1.29    bouyer 		break;
   3101  1.29    bouyer 	}
   3102   1.1    bouyer }
   3103   1.1    bouyer 
   3104   1.1    bouyer /****************************************************************************/
   3105   1.1    bouyer /* Initialize context memory.                                               */
   3106   1.1    bouyer /*                                                                          */
   3107   1.1    bouyer /* Clears the memory associated with each Context ID (CID).                 */
   3108   1.1    bouyer /*                                                                          */
   3109   1.1    bouyer /* Returns:                                                                 */
   3110   1.1    bouyer /*   Nothing.                                                               */
   3111   1.1    bouyer /****************************************************************************/
   3112   1.1    bouyer void
   3113   1.1    bouyer bnx_init_context(struct bnx_softc *sc)
   3114   1.1    bouyer {
   3115  1.29    bouyer 	if (BNX_CHIP_NUM(sc) == BNX_CHIP_NUM_5709) {
   3116  1.29    bouyer 		/* DRC: Replace this constant value with a #define. */
   3117  1.29    bouyer 		int i, retry_cnt = 10;
   3118  1.29    bouyer 		u_int32_t val;
   3119   1.1    bouyer 
   3120  1.29    bouyer 		/*
   3121  1.29    bouyer 		 * BCM5709 context memory may be cached
   3122  1.29    bouyer 		 * in host memory so prepare the host memory
   3123  1.29    bouyer 		 * for access.
   3124  1.29    bouyer 		 */
   3125  1.29    bouyer 		val = BNX_CTX_COMMAND_ENABLED | BNX_CTX_COMMAND_MEM_INIT
   3126  1.29    bouyer 		    | (1 << 12);
   3127  1.29    bouyer 		val |= (BCM_PAGE_BITS - 8) << 16;
   3128  1.29    bouyer 		REG_WR(sc, BNX_CTX_COMMAND, val);
   3129  1.29    bouyer 
   3130  1.29    bouyer 		/* Wait for mem init command to complete. */
   3131  1.29    bouyer 		for (i = 0; i < retry_cnt; i++) {
   3132  1.29    bouyer 			val = REG_RD(sc, BNX_CTX_COMMAND);
   3133  1.29    bouyer 			if (!(val & BNX_CTX_COMMAND_MEM_INIT))
   3134  1.29    bouyer 				break;
   3135  1.29    bouyer 			DELAY(2);
   3136  1.29    bouyer 		}
   3137   1.1    bouyer 
   3138   1.1    bouyer 
   3139  1.29    bouyer 		/* ToDo: Consider returning an error here. */
   3140  1.29    bouyer 
   3141  1.29    bouyer 		for (i = 0; i < sc->ctx_pages; i++) {
   3142  1.29    bouyer 			int j;
   3143   1.1    bouyer 
   3144   1.1    bouyer 
   3145  1.29    bouyer 			/* Set the physaddr of the context memory cache. */
   3146  1.29    bouyer 			val = (u_int32_t)(sc->ctx_segs[i].ds_addr);
   3147  1.29    bouyer 			REG_WR(sc, BNX_CTX_HOST_PAGE_TBL_DATA0, val |
   3148  1.29    bouyer 				BNX_CTX_HOST_PAGE_TBL_DATA0_VALID);
   3149  1.29    bouyer 			val = (u_int32_t)
   3150  1.29    bouyer 			    ((u_int64_t)sc->ctx_segs[i].ds_addr >> 32);
   3151  1.29    bouyer 			REG_WR(sc, BNX_CTX_HOST_PAGE_TBL_DATA1, val);
   3152  1.29    bouyer 			REG_WR(sc, BNX_CTX_HOST_PAGE_TBL_CTRL, i |
   3153  1.29    bouyer 				BNX_CTX_HOST_PAGE_TBL_CTRL_WRITE_REQ);
   3154  1.29    bouyer 
   3155  1.29    bouyer 
   3156  1.29    bouyer 			/* Verify that the context memory write was successful. */
   3157  1.29    bouyer 			for (j = 0; j < retry_cnt; j++) {
   3158  1.29    bouyer 				val = REG_RD(sc, BNX_CTX_HOST_PAGE_TBL_CTRL);
   3159  1.29    bouyer 				if ((val & BNX_CTX_HOST_PAGE_TBL_CTRL_WRITE_REQ) == 0)
   3160  1.29    bouyer 					break;
   3161  1.29    bouyer 				DELAY(5);
   3162  1.29    bouyer 			}
   3163   1.1    bouyer 
   3164  1.29    bouyer 			/* ToDo: Consider returning an error here. */
   3165  1.29    bouyer 		}
   3166  1.29    bouyer 	} else {
   3167  1.29    bouyer 		u_int32_t vcid_addr, offset;
   3168  1.29    bouyer 
   3169  1.29    bouyer 		/*
   3170  1.29    bouyer 		 * For the 5706/5708, context memory is local to
   3171  1.29    bouyer 		 * the controller, so initialize the controller
   3172  1.29    bouyer 		 * context memory.
   3173  1.29    bouyer 		 */
   3174  1.29    bouyer 
   3175  1.29    bouyer 		vcid_addr = GET_CID_ADDR(96);
   3176  1.29    bouyer 		while (vcid_addr) {
   3177  1.29    bouyer 
   3178  1.39    martin 			vcid_addr -= BNX_PHY_CTX_SIZE;
   3179  1.29    bouyer 
   3180  1.29    bouyer 			REG_WR(sc, BNX_CTX_VIRT_ADDR, 0);
   3181  1.29    bouyer 			REG_WR(sc, BNX_CTX_PAGE_TBL, vcid_addr);
   3182  1.29    bouyer 
   3183  1.39    martin 			for(offset = 0; offset < BNX_PHY_CTX_SIZE; offset += 4) {
   3184  1.29    bouyer 				CTX_WR(sc, 0x00, offset, 0);
   3185  1.29    bouyer 			}
   3186  1.29    bouyer 
   3187  1.29    bouyer 			REG_WR(sc, BNX_CTX_VIRT_ADDR, vcid_addr);
   3188  1.29    bouyer 			REG_WR(sc, BNX_CTX_PAGE_TBL, vcid_addr);
   3189  1.29    bouyer 		}
   3190   1.1    bouyer 	}
   3191   1.1    bouyer }
   3192   1.1    bouyer 
   3193   1.1    bouyer /****************************************************************************/
   3194   1.1    bouyer /* Fetch the permanent MAC address of the controller.                       */
   3195   1.1    bouyer /*                                                                          */
   3196   1.1    bouyer /* Returns:                                                                 */
   3197   1.1    bouyer /*   Nothing.                                                               */
   3198   1.1    bouyer /****************************************************************************/
   3199   1.1    bouyer void
   3200   1.1    bouyer bnx_get_mac_addr(struct bnx_softc *sc)
   3201   1.1    bouyer {
   3202   1.1    bouyer 	u_int32_t		mac_lo = 0, mac_hi = 0;
   3203   1.1    bouyer 
   3204   1.1    bouyer 	/*
   3205   1.1    bouyer 	 * The NetXtreme II bootcode populates various NIC
   3206   1.1    bouyer 	 * power-on and runtime configuration items in a
   3207   1.1    bouyer 	 * shared memory area.  The factory configured MAC
   3208   1.1    bouyer 	 * address is available from both NVRAM and the
   3209   1.1    bouyer 	 * shared memory area so we'll read the value from
   3210   1.1    bouyer 	 * shared memory for speed.
   3211   1.1    bouyer 	 */
   3212   1.1    bouyer 
   3213   1.1    bouyer 	mac_hi = REG_RD_IND(sc, sc->bnx_shmem_base + BNX_PORT_HW_CFG_MAC_UPPER);
   3214   1.1    bouyer 	mac_lo = REG_RD_IND(sc, sc->bnx_shmem_base + BNX_PORT_HW_CFG_MAC_LOWER);
   3215   1.1    bouyer 
   3216   1.1    bouyer 	if ((mac_lo == 0) && (mac_hi == 0)) {
   3217   1.1    bouyer 		BNX_PRINTF(sc, "%s(%d): Invalid Ethernet address!\n",
   3218   1.1    bouyer 		    __FILE__, __LINE__);
   3219   1.1    bouyer 	} else {
   3220   1.1    bouyer 		sc->eaddr[0] = (u_char)(mac_hi >> 8);
   3221   1.1    bouyer 		sc->eaddr[1] = (u_char)(mac_hi >> 0);
   3222   1.1    bouyer 		sc->eaddr[2] = (u_char)(mac_lo >> 24);
   3223   1.1    bouyer 		sc->eaddr[3] = (u_char)(mac_lo >> 16);
   3224   1.1    bouyer 		sc->eaddr[4] = (u_char)(mac_lo >> 8);
   3225   1.1    bouyer 		sc->eaddr[5] = (u_char)(mac_lo >> 0);
   3226   1.1    bouyer 	}
   3227   1.1    bouyer 
   3228   1.1    bouyer 	DBPRINT(sc, BNX_INFO, "Permanent Ethernet address = "
   3229   1.1    bouyer 	    "%s\n", ether_sprintf(sc->eaddr));
   3230   1.1    bouyer }
   3231   1.1    bouyer 
   3232   1.1    bouyer /****************************************************************************/
   3233   1.1    bouyer /* Program the MAC address.                                                 */
   3234   1.1    bouyer /*                                                                          */
   3235   1.1    bouyer /* Returns:                                                                 */
   3236   1.1    bouyer /*   Nothing.                                                               */
   3237   1.1    bouyer /****************************************************************************/
   3238   1.1    bouyer void
   3239   1.1    bouyer bnx_set_mac_addr(struct bnx_softc *sc)
   3240   1.1    bouyer {
   3241   1.1    bouyer 	u_int32_t		val;
   3242  1.15    dyoung 	const u_int8_t		*mac_addr = CLLADDR(sc->bnx_ec.ec_if.if_sadl);
   3243   1.1    bouyer 
   3244   1.1    bouyer 	DBPRINT(sc, BNX_INFO, "Setting Ethernet address = "
   3245   1.1    bouyer 	    "%s\n", ether_sprintf(sc->eaddr));
   3246   1.1    bouyer 
   3247   1.1    bouyer 	val = (mac_addr[0] << 8) | mac_addr[1];
   3248   1.1    bouyer 
   3249   1.1    bouyer 	REG_WR(sc, BNX_EMAC_MAC_MATCH0, val);
   3250   1.1    bouyer 
   3251   1.1    bouyer 	val = (mac_addr[2] << 24) | (mac_addr[3] << 16) |
   3252   1.1    bouyer 		(mac_addr[4] << 8) | mac_addr[5];
   3253   1.1    bouyer 
   3254   1.1    bouyer 	REG_WR(sc, BNX_EMAC_MAC_MATCH1, val);
   3255   1.1    bouyer }
   3256   1.1    bouyer 
   3257   1.1    bouyer /****************************************************************************/
   3258   1.1    bouyer /* Stop the controller.                                                     */
   3259   1.1    bouyer /*                                                                          */
   3260   1.1    bouyer /* Returns:                                                                 */
   3261   1.1    bouyer /*   Nothing.                                                               */
   3262   1.1    bouyer /****************************************************************************/
   3263   1.1    bouyer void
   3264  1.14    dyoung bnx_stop(struct ifnet *ifp, int disable)
   3265   1.1    bouyer {
   3266  1.14    dyoung 	struct bnx_softc *sc = ifp->if_softc;
   3267   1.1    bouyer 
   3268  1.12     perry 	DBPRINT(sc, BNX_VERBOSE_RESET, "Entering %s()\n", __func__);
   3269   1.1    bouyer 
   3270  1.14    dyoung 	if ((ifp->if_flags & IFF_RUNNING) == 0)
   3271  1.14    dyoung 		return;
   3272   1.1    bouyer 
   3273   1.1    bouyer 	callout_stop(&sc->bnx_timeout);
   3274   1.1    bouyer 
   3275  1.14    dyoung 	mii_down(&sc->bnx_mii);
   3276  1.14    dyoung 
   3277   1.1    bouyer 	ifp->if_flags &= ~(IFF_RUNNING | IFF_OACTIVE);
   3278   1.1    bouyer 
   3279   1.1    bouyer 	/* Disable the transmit/receive blocks. */
   3280   1.1    bouyer 	REG_WR(sc, BNX_MISC_ENABLE_CLR_BITS, 0x5ffffff);
   3281   1.1    bouyer 	REG_RD(sc, BNX_MISC_ENABLE_CLR_BITS);
   3282   1.1    bouyer 	DELAY(20);
   3283   1.1    bouyer 
   3284   1.1    bouyer 	bnx_disable_intr(sc);
   3285   1.1    bouyer 
   3286   1.1    bouyer 	/* Tell firmware that the driver is going away. */
   3287  1.14    dyoung 	if (disable)
   3288  1.14    dyoung 		bnx_reset(sc, BNX_DRV_MSG_CODE_RESET);
   3289  1.14    dyoung 	else
   3290  1.14    dyoung 		bnx_reset(sc, BNX_DRV_MSG_CODE_SUSPEND_NO_WOL);
   3291   1.1    bouyer 
   3292  1.29    bouyer 	/* Free RX buffers. */
   3293   1.1    bouyer 	bnx_free_rx_chain(sc);
   3294   1.1    bouyer 
   3295   1.1    bouyer 	/* Free TX buffers. */
   3296   1.1    bouyer 	bnx_free_tx_chain(sc);
   3297   1.1    bouyer 
   3298   1.1    bouyer 	ifp->if_timer = 0;
   3299   1.1    bouyer 
   3300  1.12     perry 	DBPRINT(sc, BNX_VERBOSE_RESET, "Exiting %s()\n", __func__);
   3301   1.1    bouyer 
   3302   1.1    bouyer }
   3303   1.1    bouyer 
   3304   1.1    bouyer int
   3305   1.1    bouyer bnx_reset(struct bnx_softc *sc, u_int32_t reset_code)
   3306   1.1    bouyer {
   3307  1.29    bouyer 	struct pci_attach_args	*pa = &(sc->bnx_pa);
   3308   1.1    bouyer 	u_int32_t		val;
   3309   1.1    bouyer 	int			i, rc = 0;
   3310   1.1    bouyer 
   3311  1.12     perry 	DBPRINT(sc, BNX_VERBOSE_RESET, "Entering %s()\n", __func__);
   3312   1.1    bouyer 
   3313   1.1    bouyer 	/* Wait for pending PCI transactions to complete. */
   3314   1.1    bouyer 	REG_WR(sc, BNX_MISC_ENABLE_CLR_BITS,
   3315   1.1    bouyer 	    BNX_MISC_ENABLE_CLR_BITS_TX_DMA_ENABLE |
   3316   1.1    bouyer 	    BNX_MISC_ENABLE_CLR_BITS_DMA_ENGINE_ENABLE |
   3317   1.1    bouyer 	    BNX_MISC_ENABLE_CLR_BITS_RX_DMA_ENABLE |
   3318   1.1    bouyer 	    BNX_MISC_ENABLE_CLR_BITS_HOST_COALESCE_ENABLE);
   3319   1.1    bouyer 	val = REG_RD(sc, BNX_MISC_ENABLE_CLR_BITS);
   3320   1.1    bouyer 	DELAY(5);
   3321   1.1    bouyer 
   3322  1.29    bouyer 	/* Disable DMA */
   3323  1.29    bouyer 	if (BNX_CHIP_NUM(sc) == BNX_CHIP_NUM_5709) {
   3324  1.29    bouyer 		val = REG_RD(sc, BNX_MISC_NEW_CORE_CTL);
   3325  1.29    bouyer 		val &= ~BNX_MISC_NEW_CORE_CTL_DMA_ENABLE;
   3326  1.29    bouyer 		REG_WR(sc, BNX_MISC_NEW_CORE_CTL, val);
   3327  1.29    bouyer 	}
   3328  1.29    bouyer 
   3329   1.1    bouyer 	/* Assume bootcode is running. */
   3330   1.1    bouyer 	sc->bnx_fw_timed_out = 0;
   3331   1.1    bouyer 
   3332   1.1    bouyer 	/* Give the firmware a chance to prepare for the reset. */
   3333   1.1    bouyer 	rc = bnx_fw_sync(sc, BNX_DRV_MSG_DATA_WAIT0 | reset_code);
   3334   1.1    bouyer 	if (rc)
   3335   1.1    bouyer 		goto bnx_reset_exit;
   3336   1.1    bouyer 
   3337   1.1    bouyer 	/* Set a firmware reminder that this is a soft reset. */
   3338   1.1    bouyer 	REG_WR_IND(sc, sc->bnx_shmem_base + BNX_DRV_RESET_SIGNATURE,
   3339   1.1    bouyer 	    BNX_DRV_RESET_SIGNATURE_MAGIC);
   3340   1.1    bouyer 
   3341   1.1    bouyer 	/* Dummy read to force the chip to complete all current transactions. */
   3342   1.1    bouyer 	val = REG_RD(sc, BNX_MISC_ID);
   3343   1.1    bouyer 
   3344   1.1    bouyer 	/* Chip reset. */
   3345  1.29    bouyer 	if (BNX_CHIP_NUM(sc) == BNX_CHIP_NUM_5709) {
   3346  1.29    bouyer 		REG_WR(sc, BNX_MISC_COMMAND, BNX_MISC_COMMAND_SW_RESET);
   3347  1.29    bouyer 		REG_RD(sc, BNX_MISC_COMMAND);
   3348  1.29    bouyer 		DELAY(5);
   3349   1.1    bouyer 
   3350  1.29    bouyer 		val = BNX_PCICFG_MISC_CONFIG_REG_WINDOW_ENA |
   3351  1.29    bouyer 		      BNX_PCICFG_MISC_CONFIG_TARGET_MB_WORD_SWAP;
   3352   1.1    bouyer 
   3353  1.29    bouyer 		pci_conf_write(pa->pa_pc, pa->pa_tag, BNX_PCICFG_MISC_CONFIG,
   3354  1.29    bouyer 		    val);
   3355  1.29    bouyer 	} else {
   3356  1.29    bouyer 		val = BNX_PCICFG_MISC_CONFIG_CORE_RST_REQ |
   3357  1.29    bouyer 			BNX_PCICFG_MISC_CONFIG_REG_WINDOW_ENA |
   3358  1.29    bouyer 			BNX_PCICFG_MISC_CONFIG_TARGET_MB_WORD_SWAP;
   3359  1.29    bouyer 		REG_WR(sc, BNX_PCICFG_MISC_CONFIG, val);
   3360  1.29    bouyer 
   3361  1.29    bouyer 		/* Allow up to 30us for reset to complete. */
   3362  1.29    bouyer 		for (i = 0; i < 10; i++) {
   3363  1.29    bouyer 			val = REG_RD(sc, BNX_PCICFG_MISC_CONFIG);
   3364  1.29    bouyer 			if ((val & (BNX_PCICFG_MISC_CONFIG_CORE_RST_REQ |
   3365  1.29    bouyer 				BNX_PCICFG_MISC_CONFIG_CORE_RST_BSY)) == 0) {
   3366  1.29    bouyer 				break;
   3367  1.29    bouyer 			}
   3368  1.29    bouyer 			DELAY(10);
   3369  1.29    bouyer 		}
   3370   1.1    bouyer 
   3371  1.29    bouyer 		/* Check that reset completed successfully. */
   3372  1.29    bouyer 		if (val & (BNX_PCICFG_MISC_CONFIG_CORE_RST_REQ |
   3373  1.29    bouyer 		    BNX_PCICFG_MISC_CONFIG_CORE_RST_BSY)) {
   3374  1.29    bouyer 			BNX_PRINTF(sc, "%s(%d): Reset failed!\n",
   3375  1.29    bouyer 			    __FILE__, __LINE__);
   3376  1.29    bouyer 			rc = EBUSY;
   3377  1.29    bouyer 			goto bnx_reset_exit;
   3378  1.29    bouyer 		}
   3379   1.1    bouyer 	}
   3380   1.1    bouyer 
   3381   1.1    bouyer 	/* Make sure byte swapping is properly configured. */
   3382   1.1    bouyer 	val = REG_RD(sc, BNX_PCI_SWAP_DIAG0);
   3383   1.1    bouyer 	if (val != 0x01020304) {
   3384   1.1    bouyer 		BNX_PRINTF(sc, "%s(%d): Byte swap is incorrect!\n",
   3385   1.1    bouyer 		    __FILE__, __LINE__);
   3386   1.1    bouyer 		rc = ENODEV;
   3387   1.1    bouyer 		goto bnx_reset_exit;
   3388   1.1    bouyer 	}
   3389   1.1    bouyer 
   3390   1.1    bouyer 	/* Just completed a reset, assume that firmware is running again. */
   3391   1.1    bouyer 	sc->bnx_fw_timed_out = 0;
   3392   1.1    bouyer 
   3393   1.1    bouyer 	/* Wait for the firmware to finish its initialization. */
   3394   1.1    bouyer 	rc = bnx_fw_sync(sc, BNX_DRV_MSG_DATA_WAIT1 | reset_code);
   3395   1.1    bouyer 	if (rc)
   3396   1.1    bouyer 		BNX_PRINTF(sc, "%s(%d): Firmware did not complete "
   3397   1.1    bouyer 		    "initialization!\n", __FILE__, __LINE__);
   3398   1.1    bouyer 
   3399   1.1    bouyer bnx_reset_exit:
   3400  1.12     perry 	DBPRINT(sc, BNX_VERBOSE_RESET, "Exiting %s()\n", __func__);
   3401   1.1    bouyer 
   3402   1.1    bouyer 	return (rc);
   3403   1.1    bouyer }
   3404   1.1    bouyer 
   3405   1.1    bouyer int
   3406   1.1    bouyer bnx_chipinit(struct bnx_softc *sc)
   3407   1.1    bouyer {
   3408   1.1    bouyer 	struct pci_attach_args	*pa = &(sc->bnx_pa);
   3409   1.1    bouyer 	u_int32_t		val;
   3410   1.1    bouyer 	int			rc = 0;
   3411   1.1    bouyer 
   3412  1.12     perry 	DBPRINT(sc, BNX_VERBOSE_RESET, "Entering %s()\n", __func__);
   3413   1.1    bouyer 
   3414   1.1    bouyer 	/* Make sure the interrupt is not active. */
   3415   1.1    bouyer 	REG_WR(sc, BNX_PCICFG_INT_ACK_CMD, BNX_PCICFG_INT_ACK_CMD_MASK_INT);
   3416   1.1    bouyer 
   3417   1.1    bouyer 	/* Initialize DMA byte/word swapping, configure the number of DMA  */
   3418   1.1    bouyer 	/* channels and PCI clock compensation delay.                      */
   3419   1.1    bouyer 	val = BNX_DMA_CONFIG_DATA_BYTE_SWAP |
   3420   1.1    bouyer 	    BNX_DMA_CONFIG_DATA_WORD_SWAP |
   3421   1.1    bouyer #if BYTE_ORDER == BIG_ENDIAN
   3422   1.1    bouyer 	    BNX_DMA_CONFIG_CNTL_BYTE_SWAP |
   3423   1.1    bouyer #endif
   3424   1.1    bouyer 	    BNX_DMA_CONFIG_CNTL_WORD_SWAP |
   3425   1.1    bouyer 	    DMA_READ_CHANS << 12 |
   3426   1.1    bouyer 	    DMA_WRITE_CHANS << 16;
   3427   1.1    bouyer 
   3428   1.1    bouyer 	val |= (0x2 << 20) | BNX_DMA_CONFIG_CNTL_PCI_COMP_DLY;
   3429   1.1    bouyer 
   3430   1.1    bouyer 	if ((sc->bnx_flags & BNX_PCIX_FLAG) && (sc->bus_speed_mhz == 133))
   3431   1.1    bouyer 		val |= BNX_DMA_CONFIG_PCI_FAST_CLK_CMP;
   3432   1.1    bouyer 
   3433   1.1    bouyer 	/*
   3434   1.1    bouyer 	 * This setting resolves a problem observed on certain Intel PCI
   3435   1.1    bouyer 	 * chipsets that cannot handle multiple outstanding DMA operations.
   3436   1.1    bouyer 	 * See errata E9_5706A1_65.
   3437   1.1    bouyer 	 */
   3438   1.1    bouyer 	if ((BNX_CHIP_NUM(sc) == BNX_CHIP_NUM_5706) &&
   3439   1.1    bouyer 	    (BNX_CHIP_ID(sc) != BNX_CHIP_ID_5706_A0) &&
   3440   1.1    bouyer 	    !(sc->bnx_flags & BNX_PCIX_FLAG))
   3441   1.1    bouyer 		val |= BNX_DMA_CONFIG_CNTL_PING_PONG_DMA;
   3442   1.1    bouyer 
   3443   1.1    bouyer 	REG_WR(sc, BNX_DMA_CONFIG, val);
   3444   1.1    bouyer 
   3445   1.1    bouyer 	/* Clear the PCI-X relaxed ordering bit. See errata E3_5708CA0_570. */
   3446   1.1    bouyer 	if (sc->bnx_flags & BNX_PCIX_FLAG) {
   3447  1.29    bouyer 		val = pci_conf_read(pa->pa_pc, pa->pa_tag, BNX_PCI_PCIX_CMD);
   3448   1.1    bouyer 		pci_conf_write(pa->pa_pc, pa->pa_tag, BNX_PCI_PCIX_CMD,
   3449  1.29    bouyer 		    val & ~0x20000);
   3450   1.1    bouyer 	}
   3451   1.1    bouyer 
   3452   1.1    bouyer 	/* Enable the RX_V2P and Context state machines before access. */
   3453   1.1    bouyer 	REG_WR(sc, BNX_MISC_ENABLE_SET_BITS,
   3454   1.1    bouyer 	    BNX_MISC_ENABLE_SET_BITS_HOST_COALESCE_ENABLE |
   3455   1.1    bouyer 	    BNX_MISC_ENABLE_STATUS_BITS_RX_V2P_ENABLE |
   3456   1.1    bouyer 	    BNX_MISC_ENABLE_STATUS_BITS_CONTEXT_ENABLE);
   3457   1.1    bouyer 
   3458   1.1    bouyer 	/* Initialize context mapping and zero out the quick contexts. */
   3459   1.1    bouyer 	bnx_init_context(sc);
   3460   1.1    bouyer 
   3461   1.1    bouyer 	/* Initialize the on-boards CPUs */
   3462   1.1    bouyer 	bnx_init_cpus(sc);
   3463   1.1    bouyer 
   3464   1.1    bouyer 	/* Prepare NVRAM for access. */
   3465   1.1    bouyer 	if (bnx_init_nvram(sc)) {
   3466   1.1    bouyer 		rc = ENODEV;
   3467   1.1    bouyer 		goto bnx_chipinit_exit;
   3468   1.1    bouyer 	}
   3469   1.1    bouyer 
   3470   1.1    bouyer 	/* Set the kernel bypass block size */
   3471   1.1    bouyer 	val = REG_RD(sc, BNX_MQ_CONFIG);
   3472   1.1    bouyer 	val &= ~BNX_MQ_CONFIG_KNL_BYP_BLK_SIZE;
   3473   1.1    bouyer 	val |= BNX_MQ_CONFIG_KNL_BYP_BLK_SIZE_256;
   3474  1.29    bouyer 
   3475  1.29    bouyer 	/* Enable bins used on the 5709. */
   3476  1.29    bouyer 	if (BNX_CHIP_NUM(sc) == BNX_CHIP_NUM_5709) {
   3477  1.29    bouyer 		val |= BNX_MQ_CONFIG_BIN_MQ_MODE;
   3478  1.29    bouyer 		if (BNX_CHIP_ID(sc) == BNX_CHIP_ID_5709_A1)
   3479  1.29    bouyer 			val |= BNX_MQ_CONFIG_HALT_DIS;
   3480  1.29    bouyer 	}
   3481  1.29    bouyer 
   3482   1.1    bouyer 	REG_WR(sc, BNX_MQ_CONFIG, val);
   3483   1.1    bouyer 
   3484  1.39    martin 	val = 0x10000 + (MAX_CID_CNT * BNX_MB_KERNEL_CTX_SIZE);
   3485   1.1    bouyer 	REG_WR(sc, BNX_MQ_KNL_BYP_WIND_START, val);
   3486   1.1    bouyer 	REG_WR(sc, BNX_MQ_KNL_WIND_END, val);
   3487   1.1    bouyer 
   3488   1.1    bouyer 	val = (BCM_PAGE_BITS - 8) << 24;
   3489   1.1    bouyer 	REG_WR(sc, BNX_RV2P_CONFIG, val);
   3490   1.1    bouyer 
   3491   1.1    bouyer 	/* Configure page size. */
   3492   1.1    bouyer 	val = REG_RD(sc, BNX_TBDR_CONFIG);
   3493   1.1    bouyer 	val &= ~BNX_TBDR_CONFIG_PAGE_SIZE;
   3494   1.1    bouyer 	val |= (BCM_PAGE_BITS - 8) << 24 | 0x40;
   3495   1.1    bouyer 	REG_WR(sc, BNX_TBDR_CONFIG, val);
   3496   1.1    bouyer 
   3497  1.29    bouyer #if 0
   3498  1.29    bouyer 	/* Set the perfect match control register to default. */
   3499  1.29    bouyer 	REG_WR_IND(sc, BNX_RXP_PM_CTRL, 0);
   3500  1.29    bouyer #endif
   3501  1.29    bouyer 
   3502   1.1    bouyer bnx_chipinit_exit:
   3503  1.12     perry 	DBPRINT(sc, BNX_VERBOSE_RESET, "Exiting %s()\n", __func__);
   3504   1.1    bouyer 
   3505   1.1    bouyer 	return(rc);
   3506   1.1    bouyer }
   3507   1.1    bouyer 
   3508   1.1    bouyer /****************************************************************************/
   3509   1.1    bouyer /* Initialize the controller in preparation to send/receive traffic.        */
   3510   1.1    bouyer /*                                                                          */
   3511   1.1    bouyer /* Returns:                                                                 */
   3512   1.1    bouyer /*   0 for success, positive value for failure.                             */
   3513   1.1    bouyer /****************************************************************************/
   3514   1.1    bouyer int
   3515   1.1    bouyer bnx_blockinit(struct bnx_softc *sc)
   3516   1.1    bouyer {
   3517   1.1    bouyer 	u_int32_t		reg, val;
   3518   1.1    bouyer 	int 			rc = 0;
   3519   1.1    bouyer 
   3520  1.12     perry 	DBPRINT(sc, BNX_VERBOSE_RESET, "Entering %s()\n", __func__);
   3521   1.1    bouyer 
   3522   1.1    bouyer 	/* Load the hardware default MAC address. */
   3523   1.1    bouyer 	bnx_set_mac_addr(sc);
   3524   1.1    bouyer 
   3525   1.1    bouyer 	/* Set the Ethernet backoff seed value */
   3526   1.1    bouyer 	val = sc->eaddr[0] + (sc->eaddr[1] << 8) + (sc->eaddr[2] << 16) +
   3527   1.1    bouyer 	    (sc->eaddr[3]) + (sc->eaddr[4] << 8) + (sc->eaddr[5] << 16);
   3528   1.1    bouyer 	REG_WR(sc, BNX_EMAC_BACKOFF_SEED, val);
   3529   1.1    bouyer 
   3530   1.1    bouyer 	sc->last_status_idx = 0;
   3531   1.1    bouyer 	sc->rx_mode = BNX_EMAC_RX_MODE_SORT_MODE;
   3532   1.1    bouyer 
   3533   1.1    bouyer 	/* Set up link change interrupt generation. */
   3534   1.1    bouyer 	REG_WR(sc, BNX_EMAC_ATTENTION_ENA, BNX_EMAC_ATTENTION_ENA_LINK);
   3535  1.29    bouyer 	REG_WR(sc, BNX_HC_ATTN_BITS_ENABLE, STATUS_ATTN_BITS_LINK_STATE);
   3536   1.1    bouyer 
   3537   1.1    bouyer 	/* Program the physical address of the status block. */
   3538   1.1    bouyer 	REG_WR(sc, BNX_HC_STATUS_ADDR_L, (u_int32_t)(sc->status_block_paddr));
   3539   1.1    bouyer 	REG_WR(sc, BNX_HC_STATUS_ADDR_H,
   3540   1.1    bouyer 	    (u_int32_t)((u_int64_t)sc->status_block_paddr >> 32));
   3541   1.1    bouyer 
   3542   1.1    bouyer 	/* Program the physical address of the statistics block. */
   3543   1.1    bouyer 	REG_WR(sc, BNX_HC_STATISTICS_ADDR_L,
   3544   1.1    bouyer 	    (u_int32_t)(sc->stats_block_paddr));
   3545   1.1    bouyer 	REG_WR(sc, BNX_HC_STATISTICS_ADDR_H,
   3546   1.1    bouyer 	    (u_int32_t)((u_int64_t)sc->stats_block_paddr >> 32));
   3547   1.1    bouyer 
   3548   1.1    bouyer 	/* Program various host coalescing parameters. */
   3549   1.1    bouyer 	REG_WR(sc, BNX_HC_TX_QUICK_CONS_TRIP, (sc->bnx_tx_quick_cons_trip_int
   3550   1.1    bouyer 	    << 16) | sc->bnx_tx_quick_cons_trip);
   3551   1.1    bouyer 	REG_WR(sc, BNX_HC_RX_QUICK_CONS_TRIP, (sc->bnx_rx_quick_cons_trip_int
   3552   1.1    bouyer 	    << 16) | sc->bnx_rx_quick_cons_trip);
   3553   1.1    bouyer 	REG_WR(sc, BNX_HC_COMP_PROD_TRIP, (sc->bnx_comp_prod_trip_int << 16) |
   3554   1.1    bouyer 	    sc->bnx_comp_prod_trip);
   3555   1.1    bouyer 	REG_WR(sc, BNX_HC_TX_TICKS, (sc->bnx_tx_ticks_int << 16) |
   3556   1.1    bouyer 	    sc->bnx_tx_ticks);
   3557   1.1    bouyer 	REG_WR(sc, BNX_HC_RX_TICKS, (sc->bnx_rx_ticks_int << 16) |
   3558   1.1    bouyer 	    sc->bnx_rx_ticks);
   3559   1.1    bouyer 	REG_WR(sc, BNX_HC_COM_TICKS, (sc->bnx_com_ticks_int << 16) |
   3560   1.1    bouyer 	    sc->bnx_com_ticks);
   3561   1.1    bouyer 	REG_WR(sc, BNX_HC_CMD_TICKS, (sc->bnx_cmd_ticks_int << 16) |
   3562   1.1    bouyer 	    sc->bnx_cmd_ticks);
   3563   1.1    bouyer 	REG_WR(sc, BNX_HC_STATS_TICKS, (sc->bnx_stats_ticks & 0xffff00));
   3564   1.1    bouyer 	REG_WR(sc, BNX_HC_STAT_COLLECT_TICKS, 0xbb8);  /* 3ms */
   3565   1.1    bouyer 	REG_WR(sc, BNX_HC_CONFIG,
   3566   1.1    bouyer 	    (BNX_HC_CONFIG_RX_TMR_MODE | BNX_HC_CONFIG_TX_TMR_MODE |
   3567   1.1    bouyer 	    BNX_HC_CONFIG_COLLECT_STATS));
   3568   1.1    bouyer 
   3569   1.1    bouyer 	/* Clear the internal statistics counters. */
   3570   1.1    bouyer 	REG_WR(sc, BNX_HC_COMMAND, BNX_HC_COMMAND_CLR_STAT_NOW);
   3571   1.1    bouyer 
   3572   1.1    bouyer 	/* Verify that bootcode is running. */
   3573   1.1    bouyer 	reg = REG_RD_IND(sc, sc->bnx_shmem_base + BNX_DEV_INFO_SIGNATURE);
   3574   1.1    bouyer 
   3575   1.1    bouyer 	DBRUNIF(DB_RANDOMTRUE(bnx_debug_bootcode_running_failure),
   3576   1.1    bouyer 	    BNX_PRINTF(sc, "%s(%d): Simulating bootcode failure.\n",
   3577   1.1    bouyer 	    __FILE__, __LINE__); reg = 0);
   3578   1.1    bouyer 
   3579   1.1    bouyer 	if ((reg & BNX_DEV_INFO_SIGNATURE_MAGIC_MASK) !=
   3580   1.1    bouyer 	    BNX_DEV_INFO_SIGNATURE_MAGIC) {
   3581   1.1    bouyer 		BNX_PRINTF(sc, "%s(%d): Bootcode not running! Found: 0x%08X, "
   3582   1.1    bouyer 		    "Expected: 08%08X\n", __FILE__, __LINE__,
   3583   1.1    bouyer 		    (reg & BNX_DEV_INFO_SIGNATURE_MAGIC_MASK),
   3584   1.1    bouyer 		    BNX_DEV_INFO_SIGNATURE_MAGIC);
   3585   1.1    bouyer 		rc = ENODEV;
   3586   1.1    bouyer 		goto bnx_blockinit_exit;
   3587   1.1    bouyer 	}
   3588   1.1    bouyer 
   3589   1.1    bouyer 	/* Check if any management firmware is running. */
   3590   1.1    bouyer 	reg = REG_RD_IND(sc, sc->bnx_shmem_base + BNX_PORT_FEATURE);
   3591   1.1    bouyer 	if (reg & (BNX_PORT_FEATURE_ASF_ENABLED |
   3592   1.1    bouyer 	    BNX_PORT_FEATURE_IMD_ENABLED)) {
   3593   1.1    bouyer 		DBPRINT(sc, BNX_INFO, "Management F/W Enabled.\n");
   3594   1.1    bouyer 		sc->bnx_flags |= BNX_MFW_ENABLE_FLAG;
   3595   1.1    bouyer 	}
   3596   1.1    bouyer 
   3597   1.1    bouyer 	sc->bnx_fw_ver = REG_RD_IND(sc, sc->bnx_shmem_base +
   3598   1.1    bouyer 	    BNX_DEV_INFO_BC_REV);
   3599   1.1    bouyer 
   3600   1.1    bouyer 	DBPRINT(sc, BNX_INFO, "bootcode rev = 0x%08X\n", sc->bnx_fw_ver);
   3601   1.1    bouyer 
   3602  1.29    bouyer 	/* Enable DMA */
   3603  1.29    bouyer 	if (BNX_CHIP_NUM(sc) == BNX_CHIP_NUM_5709) {
   3604  1.29    bouyer 		val = REG_RD(sc, BNX_MISC_NEW_CORE_CTL);
   3605  1.29    bouyer 		val |= BNX_MISC_NEW_CORE_CTL_DMA_ENABLE;
   3606  1.29    bouyer 		REG_WR(sc, BNX_MISC_NEW_CORE_CTL, val);
   3607  1.29    bouyer 	}
   3608  1.29    bouyer 
   3609   1.1    bouyer 	/* Allow bootcode to apply any additional fixes before enabling MAC. */
   3610   1.1    bouyer 	rc = bnx_fw_sync(sc, BNX_DRV_MSG_DATA_WAIT2 | BNX_DRV_MSG_CODE_RESET);
   3611   1.1    bouyer 
   3612   1.1    bouyer 	/* Enable link state change interrupt generation. */
   3613  1.29    bouyer 	if (BNX_CHIP_NUM(sc) == BNX_CHIP_NUM_5709) {
   3614  1.29    bouyer 		REG_WR(sc, BNX_MISC_ENABLE_SET_BITS,
   3615  1.29    bouyer 		    BNX_MISC_ENABLE_DEFAULT_XI);
   3616  1.29    bouyer 	} else
   3617  1.29    bouyer 		REG_WR(sc, BNX_MISC_ENABLE_SET_BITS, BNX_MISC_ENABLE_DEFAULT);
   3618   1.1    bouyer 
   3619   1.1    bouyer 	/* Enable all remaining blocks in the MAC. */
   3620   1.1    bouyer 	REG_WR(sc, BNX_MISC_ENABLE_SET_BITS, 0x5ffffff);
   3621   1.1    bouyer 	REG_RD(sc, BNX_MISC_ENABLE_SET_BITS);
   3622   1.1    bouyer 	DELAY(20);
   3623   1.1    bouyer 
   3624   1.1    bouyer bnx_blockinit_exit:
   3625  1.12     perry 	DBPRINT(sc, BNX_VERBOSE_RESET, "Exiting %s()\n", __func__);
   3626   1.1    bouyer 
   3627   1.1    bouyer 	return (rc);
   3628   1.1    bouyer }
   3629   1.1    bouyer 
   3630  1.21    dyoung static int
   3631  1.21    dyoung bnx_add_buf(struct bnx_softc *sc, struct mbuf *m_new, u_int16_t *prod,
   3632  1.21    dyoung     u_int16_t *chain_prod, u_int32_t *prod_bseq)
   3633  1.21    dyoung {
   3634  1.21    dyoung 	bus_dmamap_t		map;
   3635  1.21    dyoung 	struct rx_bd		*rxbd;
   3636  1.21    dyoung 	u_int32_t		addr;
   3637  1.21    dyoung 	int i;
   3638  1.21    dyoung #ifdef BNX_DEBUG
   3639  1.21    dyoung 	u_int16_t debug_chain_prod =	*chain_prod;
   3640  1.21    dyoung #endif
   3641  1.21    dyoung 	u_int16_t first_chain_prod;
   3642  1.21    dyoung 
   3643  1.21    dyoung 	m_new->m_len = m_new->m_pkthdr.len = sc->mbuf_alloc_size;
   3644  1.21    dyoung 
   3645  1.21    dyoung 	/* Map the mbuf cluster into device memory. */
   3646  1.21    dyoung 	map = sc->rx_mbuf_map[*chain_prod];
   3647  1.21    dyoung 	first_chain_prod = *chain_prod;
   3648  1.21    dyoung 	if (bus_dmamap_load_mbuf(sc->bnx_dmatag, map, m_new, BUS_DMA_NOWAIT)) {
   3649  1.21    dyoung 		BNX_PRINTF(sc, "%s(%d): Error mapping mbuf into RX chain!\n",
   3650  1.21    dyoung 		    __FILE__, __LINE__);
   3651  1.21    dyoung 
   3652  1.21    dyoung 		m_freem(m_new);
   3653  1.21    dyoung 
   3654  1.21    dyoung 		DBRUNIF(1, sc->rx_mbuf_alloc--);
   3655  1.21    dyoung 
   3656  1.21    dyoung 		return ENOBUFS;
   3657  1.21    dyoung 	}
   3658  1.29    bouyer 	/* Make sure there is room in the receive chain. */
   3659  1.29    bouyer 	if (map->dm_nsegs > sc->free_rx_bd) {
   3660  1.29    bouyer 		bus_dmamap_unload(sc->bnx_dmatag, map);
   3661  1.29    bouyer 		m_freem(m_new);
   3662  1.29    bouyer 		return EFBIG;
   3663  1.29    bouyer 	}
   3664  1.29    bouyer #ifdef BNX_DEBUG
   3665  1.29    bouyer 	/* Track the distribution of buffer segments. */
   3666  1.29    bouyer 	sc->rx_mbuf_segs[map->dm_nsegs]++;
   3667  1.29    bouyer #endif
   3668  1.29    bouyer 
   3669  1.21    dyoung 	bus_dmamap_sync(sc->bnx_dmatag, map, 0, map->dm_mapsize,
   3670  1.21    dyoung 	    BUS_DMASYNC_PREREAD);
   3671  1.21    dyoung 
   3672  1.29    bouyer 	/* Update some debug statistics counters */
   3673  1.21    dyoung 	DBRUNIF((sc->free_rx_bd < sc->rx_low_watermark),
   3674  1.21    dyoung 	    sc->rx_low_watermark = sc->free_rx_bd);
   3675  1.29    bouyer 	DBRUNIF((sc->free_rx_bd == sc->max_rx_bd), sc->rx_empty_count++);
   3676  1.21    dyoung 
   3677  1.21    dyoung 	/*
   3678  1.21    dyoung 	 * Setup the rx_bd for the first segment
   3679  1.21    dyoung 	 */
   3680  1.21    dyoung 	rxbd = &sc->rx_bd_chain[RX_PAGE(*chain_prod)][RX_IDX(*chain_prod)];
   3681  1.21    dyoung 
   3682  1.37       jym 	addr = (u_int32_t)map->dm_segs[0].ds_addr;
   3683  1.37       jym 	rxbd->rx_bd_haddr_lo = addr;
   3684  1.21    dyoung 	addr = (u_int32_t)((u_int64_t)map->dm_segs[0].ds_addr >> 32);
   3685  1.37       jym 	rxbd->rx_bd_haddr_hi = addr;
   3686  1.37       jym 	rxbd->rx_bd_len = map->dm_segs[0].ds_len;
   3687  1.37       jym 	rxbd->rx_bd_flags = RX_BD_FLAGS_START;
   3688  1.21    dyoung 	*prod_bseq += map->dm_segs[0].ds_len;
   3689  1.21    dyoung 	bus_dmamap_sync(sc->bnx_dmatag,
   3690  1.21    dyoung 	    sc->rx_bd_chain_map[RX_PAGE(*chain_prod)],
   3691  1.21    dyoung 	    sizeof(struct rx_bd) * RX_IDX(*chain_prod), sizeof(struct rx_bd),
   3692  1.21    dyoung 	    BUS_DMASYNC_PREREAD | BUS_DMASYNC_PREWRITE);
   3693  1.21    dyoung 
   3694  1.21    dyoung 	for (i = 1; i < map->dm_nsegs; i++) {
   3695  1.21    dyoung 		*prod = NEXT_RX_BD(*prod);
   3696  1.21    dyoung 		*chain_prod = RX_CHAIN_IDX(*prod);
   3697  1.21    dyoung 
   3698  1.21    dyoung 		rxbd =
   3699  1.21    dyoung 		    &sc->rx_bd_chain[RX_PAGE(*chain_prod)][RX_IDX(*chain_prod)];
   3700  1.21    dyoung 
   3701  1.37       jym 		addr = (u_int32_t)map->dm_segs[i].ds_addr;
   3702  1.37       jym 		rxbd->rx_bd_haddr_lo = addr;
   3703  1.21    dyoung 		addr = (u_int32_t)((u_int64_t)map->dm_segs[i].ds_addr >> 32);
   3704  1.37       jym 		rxbd->rx_bd_haddr_hi = addr;
   3705  1.37       jym 		rxbd->rx_bd_len = map->dm_segs[i].ds_len;
   3706  1.21    dyoung 		rxbd->rx_bd_flags = 0;
   3707  1.21    dyoung 		*prod_bseq += map->dm_segs[i].ds_len;
   3708  1.21    dyoung 		bus_dmamap_sync(sc->bnx_dmatag,
   3709  1.21    dyoung 		    sc->rx_bd_chain_map[RX_PAGE(*chain_prod)],
   3710  1.21    dyoung 		    sizeof(struct rx_bd) * RX_IDX(*chain_prod),
   3711  1.21    dyoung 		    sizeof(struct rx_bd), BUS_DMASYNC_PREREAD | BUS_DMASYNC_PREWRITE);
   3712  1.21    dyoung 	}
   3713  1.21    dyoung 
   3714  1.37       jym 	rxbd->rx_bd_flags |= RX_BD_FLAGS_END;
   3715  1.21    dyoung 	bus_dmamap_sync(sc->bnx_dmatag,
   3716  1.21    dyoung 	    sc->rx_bd_chain_map[RX_PAGE(*chain_prod)],
   3717  1.21    dyoung 	    sizeof(struct rx_bd) * RX_IDX(*chain_prod),
   3718  1.21    dyoung 	    sizeof(struct rx_bd), BUS_DMASYNC_PREREAD | BUS_DMASYNC_PREWRITE);
   3719  1.21    dyoung 
   3720  1.21    dyoung 	/*
   3721  1.21    dyoung 	 * Save the mbuf, ajust the map pointer (swap map for first and
   3722  1.21    dyoung 	 * last rx_bd entry to that rx_mbuf_ptr and rx_mbuf_map matches)
   3723  1.21    dyoung 	 * and update counter.
   3724  1.21    dyoung 	 */
   3725  1.21    dyoung 	sc->rx_mbuf_ptr[*chain_prod] = m_new;
   3726  1.21    dyoung 	sc->rx_mbuf_map[first_chain_prod] = sc->rx_mbuf_map[*chain_prod];
   3727  1.21    dyoung 	sc->rx_mbuf_map[*chain_prod] = map;
   3728  1.21    dyoung 	sc->free_rx_bd -= map->dm_nsegs;
   3729  1.21    dyoung 
   3730  1.21    dyoung 	DBRUN(BNX_VERBOSE_RECV, bnx_dump_rx_mbuf_chain(sc, debug_chain_prod,
   3731  1.21    dyoung 	    map->dm_nsegs));
   3732  1.21    dyoung 	*prod = NEXT_RX_BD(*prod);
   3733  1.21    dyoung 	*chain_prod = RX_CHAIN_IDX(*prod);
   3734  1.21    dyoung 
   3735  1.21    dyoung 	return 0;
   3736  1.21    dyoung }
   3737  1.21    dyoung 
   3738   1.1    bouyer /****************************************************************************/
   3739   1.1    bouyer /* Encapsulate an mbuf cluster into the rx_bd chain.                        */
   3740   1.1    bouyer /*                                                                          */
   3741   1.1    bouyer /* The NetXtreme II can support Jumbo frames by using multiple rx_bd's.     */
   3742   1.1    bouyer /* This routine will map an mbuf cluster into 1 or more rx_bd's as          */
   3743   1.1    bouyer /* necessary.                                                               */
   3744   1.1    bouyer /*                                                                          */
   3745   1.1    bouyer /* Returns:                                                                 */
   3746   1.1    bouyer /*   0 for success, positive value for failure.                             */
   3747   1.1    bouyer /****************************************************************************/
   3748   1.1    bouyer int
   3749  1.21    dyoung bnx_get_buf(struct bnx_softc *sc, u_int16_t *prod,
   3750   1.1    bouyer     u_int16_t *chain_prod, u_int32_t *prod_bseq)
   3751   1.1    bouyer {
   3752   1.1    bouyer 	struct mbuf 		*m_new = NULL;
   3753  1.21    dyoung 	int			rc = 0;
   3754   1.5    bouyer 	u_int16_t min_free_bd;
   3755   1.1    bouyer 
   3756   1.1    bouyer 	DBPRINT(sc, (BNX_VERBOSE_RESET | BNX_VERBOSE_RECV), "Entering %s()\n",
   3757  1.12     perry 	    __func__);
   3758   1.1    bouyer 
   3759   1.1    bouyer 	/* Make sure the inputs are valid. */
   3760   1.1    bouyer 	DBRUNIF((*chain_prod > MAX_RX_BD),
   3761  1.13    dyoung 	    aprint_error_dev(sc->bnx_dev,
   3762  1.13    dyoung 	        "RX producer out of range: 0x%04X > 0x%04X\n",
   3763  1.13    dyoung 		*chain_prod, (u_int16_t)MAX_RX_BD));
   3764   1.1    bouyer 
   3765   1.1    bouyer 	DBPRINT(sc, BNX_VERBOSE_RECV, "%s(enter): prod = 0x%04X, chain_prod = "
   3766  1.12     perry 	    "0x%04X, prod_bseq = 0x%08X\n", __func__, *prod, *chain_prod,
   3767   1.1    bouyer 	    *prod_bseq);
   3768   1.1    bouyer 
   3769   1.5    bouyer 	/* try to get in as many mbufs as possible */
   3770   1.5    bouyer 	if (sc->mbuf_alloc_size == MCLBYTES)
   3771   1.5    bouyer 		min_free_bd = (MCLBYTES + PAGE_SIZE - 1) / PAGE_SIZE;
   3772   1.5    bouyer 	else
   3773  1.30    bouyer 		min_free_bd = (BNX_MAX_JUMBO_MRU + PAGE_SIZE - 1) / PAGE_SIZE;
   3774   1.5    bouyer 	while (sc->free_rx_bd >= min_free_bd) {
   3775  1.29    bouyer 		/* Simulate an mbuf allocation failure. */
   3776  1.21    dyoung 		DBRUNIF(DB_RANDOMTRUE(bnx_debug_mbuf_allocation_failure),
   3777  1.29    bouyer 		    aprint_error_dev(sc->bnx_dev,
   3778  1.29    bouyer 		    "Simulating mbuf allocation failure.\n");
   3779  1.29    bouyer 			sc->mbuf_sim_alloc_failed++;
   3780  1.21    dyoung 			rc = ENOBUFS;
   3781  1.21    dyoung 			goto bnx_get_buf_exit);
   3782   1.1    bouyer 
   3783  1.21    dyoung 		/* This is a new mbuf allocation. */
   3784  1.21    dyoung 		MGETHDR(m_new, M_DONTWAIT, MT_DATA);
   3785  1.21    dyoung 		if (m_new == NULL) {
   3786  1.21    dyoung 			DBPRINT(sc, BNX_WARN,
   3787  1.21    dyoung 			    "%s(%d): RX mbuf header allocation failed!\n",
   3788  1.21    dyoung 			    __FILE__, __LINE__);
   3789   1.1    bouyer 
   3790  1.29    bouyer 			sc->mbuf_alloc_failed++;
   3791   1.1    bouyer 
   3792  1.21    dyoung 			rc = ENOBUFS;
   3793  1.21    dyoung 			goto bnx_get_buf_exit;
   3794  1.21    dyoung 		}
   3795   1.1    bouyer 
   3796  1.21    dyoung 		DBRUNIF(1, sc->rx_mbuf_alloc++);
   3797  1.29    bouyer 
   3798  1.29    bouyer 		/* Simulate an mbuf cluster allocation failure. */
   3799  1.29    bouyer 		DBRUNIF(DB_RANDOMTRUE(bnx_debug_mbuf_allocation_failure),
   3800  1.29    bouyer 			m_freem(m_new);
   3801  1.29    bouyer 			sc->rx_mbuf_alloc--;
   3802  1.29    bouyer 			sc->mbuf_alloc_failed++;
   3803  1.29    bouyer 			sc->mbuf_sim_alloc_failed++;
   3804  1.29    bouyer 			rc = ENOBUFS;
   3805  1.29    bouyer 			goto bnx_get_buf_exit);
   3806  1.29    bouyer 
   3807  1.21    dyoung 		if (sc->mbuf_alloc_size == MCLBYTES)
   3808  1.21    dyoung 			MCLGET(m_new, M_DONTWAIT);
   3809  1.21    dyoung 		else
   3810  1.21    dyoung 			MEXTMALLOC(m_new, sc->mbuf_alloc_size,
   3811  1.21    dyoung 			    M_DONTWAIT);
   3812  1.21    dyoung 		if (!(m_new->m_flags & M_EXT)) {
   3813  1.21    dyoung 			DBPRINT(sc, BNX_WARN,
   3814  1.21    dyoung 			    "%s(%d): RX mbuf chain allocation failed!\n",
   3815   1.1    bouyer 			    __FILE__, __LINE__);
   3816  1.21    dyoung 
   3817   1.1    bouyer 			m_freem(m_new);
   3818   1.1    bouyer 
   3819   1.1    bouyer 			DBRUNIF(1, sc->rx_mbuf_alloc--);
   3820  1.29    bouyer 			sc->mbuf_alloc_failed++;
   3821   1.1    bouyer 
   3822   1.1    bouyer 			rc = ENOBUFS;
   3823   1.1    bouyer 			goto bnx_get_buf_exit;
   3824   1.1    bouyer 		}
   3825  1.21    dyoung 
   3826  1.21    dyoung 		rc = bnx_add_buf(sc, m_new, prod, chain_prod, prod_bseq);
   3827  1.21    dyoung 		if (rc != 0)
   3828  1.21    dyoung 			goto bnx_get_buf_exit;
   3829   1.5    bouyer 	}
   3830   1.1    bouyer 
   3831   1.5    bouyer bnx_get_buf_exit:
   3832   1.1    bouyer 	DBPRINT(sc, BNX_VERBOSE_RECV, "%s(exit): prod = 0x%04X, chain_prod "
   3833  1.12     perry 	    "= 0x%04X, prod_bseq = 0x%08X\n", __func__, *prod,
   3834   1.1    bouyer 	    *chain_prod, *prod_bseq);
   3835   1.1    bouyer 
   3836   1.1    bouyer 	DBPRINT(sc, (BNX_VERBOSE_RESET | BNX_VERBOSE_RECV), "Exiting %s()\n",
   3837  1.12     perry 	    __func__);
   3838   1.1    bouyer 
   3839   1.1    bouyer 	return(rc);
   3840   1.1    bouyer }
   3841   1.1    bouyer 
   3842  1.29    bouyer int
   3843  1.29    bouyer bnx_alloc_pkts(struct bnx_softc *sc)
   3844  1.29    bouyer {
   3845  1.29    bouyer 	struct ifnet *ifp = &sc->bnx_ec.ec_if;
   3846  1.29    bouyer 	struct bnx_pkt *pkt;
   3847  1.29    bouyer 	int i;
   3848  1.29    bouyer 
   3849  1.29    bouyer 	for (i = 0; i < 4; i++) { /* magic! */
   3850  1.29    bouyer 		pkt = pool_get(bnx_tx_pool, PR_NOWAIT);
   3851  1.29    bouyer 		if (pkt == NULL)
   3852  1.29    bouyer 			break;
   3853  1.29    bouyer 
   3854  1.29    bouyer 		if (bus_dmamap_create(sc->bnx_dmatag,
   3855  1.29    bouyer 		    MCLBYTES * BNX_MAX_SEGMENTS, USABLE_TX_BD,
   3856  1.29    bouyer 		    MCLBYTES, 0, BUS_DMA_NOWAIT | BUS_DMA_ALLOCNOW,
   3857  1.29    bouyer 		    &pkt->pkt_dmamap) != 0)
   3858  1.29    bouyer 			goto put;
   3859  1.29    bouyer 
   3860  1.29    bouyer 		if (!ISSET(ifp->if_flags, IFF_UP))
   3861  1.29    bouyer 			goto stopping;
   3862  1.29    bouyer 
   3863  1.29    bouyer 		mutex_enter(&sc->tx_pkt_mtx);
   3864  1.29    bouyer 		TAILQ_INSERT_TAIL(&sc->tx_free_pkts, pkt, pkt_entry);
   3865  1.29    bouyer 		sc->tx_pkt_count++;
   3866  1.29    bouyer 		mutex_exit(&sc->tx_pkt_mtx);
   3867  1.29    bouyer 	}
   3868  1.29    bouyer 
   3869  1.29    bouyer 	return (i == 0) ? ENOMEM : 0;
   3870  1.29    bouyer 
   3871  1.29    bouyer stopping:
   3872  1.29    bouyer 	bus_dmamap_destroy(sc->bnx_dmatag, pkt->pkt_dmamap);
   3873  1.29    bouyer put:
   3874  1.29    bouyer 	pool_put(bnx_tx_pool, pkt);
   3875  1.29    bouyer 	return (i == 0) ? ENOMEM : 0;
   3876  1.29    bouyer }
   3877  1.29    bouyer 
   3878  1.29    bouyer /****************************************************************************/
   3879  1.29    bouyer /* Initialize the TX context memory.                                        */
   3880  1.29    bouyer /*                                                                          */
   3881  1.29    bouyer /* Returns:                                                                 */
   3882  1.29    bouyer /*   Nothing                                                                */
   3883  1.29    bouyer /****************************************************************************/
   3884  1.29    bouyer void
   3885  1.29    bouyer bnx_init_tx_context(struct bnx_softc *sc)
   3886  1.29    bouyer {
   3887  1.29    bouyer 	u_int32_t val;
   3888  1.29    bouyer 
   3889  1.29    bouyer 	/* Initialize the context ID for an L2 TX chain. */
   3890  1.29    bouyer 	if (BNX_CHIP_NUM(sc) == BNX_CHIP_NUM_5709) {
   3891  1.29    bouyer 		/* Set the CID type to support an L2 connection. */
   3892  1.29    bouyer 		val = BNX_L2CTX_TYPE_TYPE_L2 | BNX_L2CTX_TYPE_SIZE_L2;
   3893  1.29    bouyer 		CTX_WR(sc, GET_CID_ADDR(TX_CID), BNX_L2CTX_TYPE_XI, val);
   3894  1.29    bouyer 		val = BNX_L2CTX_CMD_TYPE_TYPE_L2 | (8 << 16);
   3895  1.29    bouyer 		CTX_WR(sc, GET_CID_ADDR(TX_CID), BNX_L2CTX_CMD_TYPE_XI, val);
   3896  1.29    bouyer 
   3897  1.29    bouyer 		/* Point the hardware to the first page in the chain. */
   3898  1.29    bouyer 		val = (u_int32_t)((u_int64_t)sc->tx_bd_chain_paddr[0] >> 32);
   3899  1.29    bouyer 		CTX_WR(sc, GET_CID_ADDR(TX_CID),
   3900  1.29    bouyer 		    BNX_L2CTX_TBDR_BHADDR_HI_XI, val);
   3901  1.29    bouyer 		val = (u_int32_t)(sc->tx_bd_chain_paddr[0]);
   3902  1.29    bouyer 		CTX_WR(sc, GET_CID_ADDR(TX_CID),
   3903  1.29    bouyer 		    BNX_L2CTX_TBDR_BHADDR_LO_XI, val);
   3904  1.29    bouyer 	} else {
   3905  1.29    bouyer 		/* Set the CID type to support an L2 connection. */
   3906  1.29    bouyer 		val = BNX_L2CTX_TYPE_TYPE_L2 | BNX_L2CTX_TYPE_SIZE_L2;
   3907  1.29    bouyer 		CTX_WR(sc, GET_CID_ADDR(TX_CID), BNX_L2CTX_TYPE, val);
   3908  1.29    bouyer 		val = BNX_L2CTX_CMD_TYPE_TYPE_L2 | (8 << 16);
   3909  1.29    bouyer 		CTX_WR(sc, GET_CID_ADDR(TX_CID), BNX_L2CTX_CMD_TYPE, val);
   3910  1.29    bouyer 
   3911  1.29    bouyer 		/* Point the hardware to the first page in the chain. */
   3912  1.29    bouyer 		val = (u_int32_t)((u_int64_t)sc->tx_bd_chain_paddr[0] >> 32);
   3913  1.29    bouyer 		CTX_WR(sc, GET_CID_ADDR(TX_CID), BNX_L2CTX_TBDR_BHADDR_HI, val);
   3914  1.29    bouyer 		val = (u_int32_t)(sc->tx_bd_chain_paddr[0]);
   3915  1.29    bouyer 		CTX_WR(sc, GET_CID_ADDR(TX_CID), BNX_L2CTX_TBDR_BHADDR_LO, val);
   3916  1.29    bouyer 	}
   3917  1.29    bouyer }
   3918  1.29    bouyer 
   3919  1.29    bouyer 
   3920   1.1    bouyer /****************************************************************************/
   3921   1.1    bouyer /* Allocate memory and initialize the TX data structures.                   */
   3922   1.1    bouyer /*                                                                          */
   3923   1.1    bouyer /* Returns:                                                                 */
   3924   1.1    bouyer /*   0 for success, positive value for failure.                             */
   3925   1.1    bouyer /****************************************************************************/
   3926   1.1    bouyer int
   3927   1.1    bouyer bnx_init_tx_chain(struct bnx_softc *sc)
   3928   1.1    bouyer {
   3929   1.1    bouyer 	struct tx_bd		*txbd;
   3930  1.29    bouyer 	u_int32_t		addr;
   3931   1.1    bouyer 	int			i, rc = 0;
   3932   1.1    bouyer 
   3933  1.12     perry 	DBPRINT(sc, BNX_VERBOSE_RESET, "Entering %s()\n", __func__);
   3934   1.1    bouyer 
   3935  1.29    bouyer 	/* Force an allocation of some dmamaps for tx up front */
   3936  1.29    bouyer 	bnx_alloc_pkts(sc);
   3937  1.29    bouyer 
   3938   1.1    bouyer 	/* Set the initial TX producer/consumer indices. */
   3939   1.1    bouyer 	sc->tx_prod = 0;
   3940   1.1    bouyer 	sc->tx_cons = 0;
   3941   1.1    bouyer 	sc->tx_prod_bseq = 0;
   3942   1.1    bouyer 	sc->used_tx_bd = 0;
   3943  1.29    bouyer 	sc->max_tx_bd = USABLE_TX_BD;
   3944   1.1    bouyer 	DBRUNIF(1, sc->tx_hi_watermark = USABLE_TX_BD);
   3945  1.29    bouyer 	DBRUNIF(1, sc->tx_full_count = 0);
   3946   1.1    bouyer 
   3947   1.1    bouyer 	/*
   3948   1.1    bouyer 	 * The NetXtreme II supports a linked-list structure called
   3949   1.1    bouyer 	 * a Buffer Descriptor Chain (or BD chain).  A BD chain
   3950   1.1    bouyer 	 * consists of a series of 1 or more chain pages, each of which
   3951   1.1    bouyer 	 * consists of a fixed number of BD entries.
   3952   1.1    bouyer 	 * The last BD entry on each page is a pointer to the next page
   3953   1.1    bouyer 	 * in the chain, and the last pointer in the BD chain
   3954   1.1    bouyer 	 * points back to the beginning of the chain.
   3955   1.1    bouyer 	 */
   3956   1.1    bouyer 
   3957   1.1    bouyer 	/* Set the TX next pointer chain entries. */
   3958   1.1    bouyer 	for (i = 0; i < TX_PAGES; i++) {
   3959   1.1    bouyer 		int j;
   3960   1.1    bouyer 
   3961   1.1    bouyer 		txbd = &sc->tx_bd_chain[i][USABLE_TX_BD_PER_PAGE];
   3962   1.1    bouyer 
   3963   1.1    bouyer 		/* Check if we've reached the last page. */
   3964   1.1    bouyer 		if (i == (TX_PAGES - 1))
   3965   1.1    bouyer 			j = 0;
   3966   1.1    bouyer 		else
   3967   1.1    bouyer 			j = i + 1;
   3968   1.1    bouyer 
   3969  1.37       jym 		addr = (u_int32_t)sc->tx_bd_chain_paddr[j];
   3970  1.37       jym 		txbd->tx_bd_haddr_lo = addr;
   3971   1.1    bouyer 		addr = (u_int32_t)((u_int64_t)sc->tx_bd_chain_paddr[j] >> 32);
   3972  1.37       jym 		txbd->tx_bd_haddr_hi = addr;
   3973   1.1    bouyer 		bus_dmamap_sync(sc->bnx_dmatag, sc->tx_bd_chain_map[i], 0,
   3974   1.1    bouyer 		    BNX_TX_CHAIN_PAGE_SZ, BUS_DMASYNC_PREWRITE);
   3975   1.1    bouyer 	}
   3976   1.1    bouyer 
   3977   1.1    bouyer 	/*
   3978   1.1    bouyer 	 * Initialize the context ID for an L2 TX chain.
   3979   1.1    bouyer 	 */
   3980  1.29    bouyer 	bnx_init_tx_context(sc);
   3981   1.1    bouyer 
   3982  1.12     perry 	DBPRINT(sc, BNX_VERBOSE_RESET, "Exiting %s()\n", __func__);
   3983   1.1    bouyer 
   3984   1.1    bouyer 	return(rc);
   3985   1.1    bouyer }
   3986   1.1    bouyer 
   3987   1.1    bouyer /****************************************************************************/
   3988   1.1    bouyer /* Free memory and clear the TX data structures.                            */
   3989   1.1    bouyer /*                                                                          */
   3990   1.1    bouyer /* Returns:                                                                 */
   3991   1.1    bouyer /*   Nothing.                                                               */
   3992   1.1    bouyer /****************************************************************************/
   3993   1.1    bouyer void
   3994   1.1    bouyer bnx_free_tx_chain(struct bnx_softc *sc)
   3995   1.1    bouyer {
   3996  1.29    bouyer 	struct bnx_pkt		*pkt;
   3997   1.1    bouyer 	int			i;
   3998   1.1    bouyer 
   3999  1.12     perry 	DBPRINT(sc, BNX_VERBOSE_RESET, "Entering %s()\n", __func__);
   4000   1.1    bouyer 
   4001   1.1    bouyer 	/* Unmap, unload, and free any mbufs still in the TX mbuf chain. */
   4002  1.29    bouyer 	mutex_enter(&sc->tx_pkt_mtx);
   4003  1.29    bouyer 	while ((pkt = TAILQ_FIRST(&sc->tx_used_pkts)) != NULL) {
   4004  1.29    bouyer 		TAILQ_REMOVE(&sc->tx_used_pkts, pkt, pkt_entry);
   4005  1.29    bouyer 		mutex_exit(&sc->tx_pkt_mtx);
   4006  1.29    bouyer 
   4007  1.29    bouyer 		bus_dmamap_sync(sc->bnx_dmatag, pkt->pkt_dmamap, 0,
   4008  1.29    bouyer 		    pkt->pkt_dmamap->dm_mapsize, BUS_DMASYNC_POSTWRITE);
   4009  1.29    bouyer 		bus_dmamap_unload(sc->bnx_dmatag, pkt->pkt_dmamap);
   4010  1.29    bouyer 
   4011  1.29    bouyer 		m_freem(pkt->pkt_mbuf);
   4012  1.29    bouyer 		DBRUNIF(1, sc->tx_mbuf_alloc--);
   4013  1.29    bouyer 
   4014  1.29    bouyer 		mutex_enter(&sc->tx_pkt_mtx);
   4015  1.29    bouyer 		TAILQ_INSERT_TAIL(&sc->tx_free_pkts, pkt, pkt_entry);
   4016  1.29    bouyer         }
   4017  1.29    bouyer 
   4018  1.29    bouyer 	/* Destroy all the dmamaps we allocated for TX */
   4019  1.29    bouyer 	while ((pkt = TAILQ_FIRST(&sc->tx_free_pkts)) != NULL) {
   4020  1.29    bouyer 		TAILQ_REMOVE(&sc->tx_free_pkts, pkt, pkt_entry);
   4021  1.29    bouyer 		sc->tx_pkt_count--;
   4022  1.29    bouyer 		mutex_exit(&sc->tx_pkt_mtx);
   4023  1.29    bouyer 
   4024  1.29    bouyer 		bus_dmamap_destroy(sc->bnx_dmatag, pkt->pkt_dmamap);
   4025  1.29    bouyer 		pool_put(bnx_tx_pool, pkt);
   4026  1.29    bouyer 
   4027  1.29    bouyer 		mutex_enter(&sc->tx_pkt_mtx);
   4028   1.1    bouyer 	}
   4029  1.29    bouyer 	mutex_exit(&sc->tx_pkt_mtx);
   4030  1.29    bouyer 
   4031  1.29    bouyer 
   4032   1.1    bouyer 
   4033   1.1    bouyer 	/* Clear each TX chain page. */
   4034   1.1    bouyer 	for (i = 0; i < TX_PAGES; i++) {
   4035  1.23    cegger 		memset((char *)sc->tx_bd_chain[i], 0, BNX_TX_CHAIN_PAGE_SZ);
   4036   1.1    bouyer 		bus_dmamap_sync(sc->bnx_dmatag, sc->tx_bd_chain_map[i], 0,
   4037   1.1    bouyer 		    BNX_TX_CHAIN_PAGE_SZ, BUS_DMASYNC_PREWRITE);
   4038   1.1    bouyer 	}
   4039   1.1    bouyer 
   4040  1.29    bouyer 	sc->used_tx_bd = 0;
   4041  1.29    bouyer 
   4042   1.1    bouyer 	/* Check if we lost any mbufs in the process. */
   4043   1.1    bouyer 	DBRUNIF((sc->tx_mbuf_alloc),
   4044  1.13    dyoung 	    aprint_error_dev(sc->bnx_dev,
   4045  1.13    dyoung 	        "Memory leak! Lost %d mbufs from tx chain!\n",
   4046  1.13    dyoung 		sc->tx_mbuf_alloc));
   4047   1.1    bouyer 
   4048  1.12     perry 	DBPRINT(sc, BNX_VERBOSE_RESET, "Exiting %s()\n", __func__);
   4049   1.1    bouyer }
   4050   1.1    bouyer 
   4051   1.1    bouyer /****************************************************************************/
   4052  1.29    bouyer /* Initialize the RX context memory.                                        */
   4053  1.29    bouyer /*                                                                          */
   4054  1.29    bouyer /* Returns:                                                                 */
   4055  1.29    bouyer /*   Nothing                                                                */
   4056  1.29    bouyer /****************************************************************************/
   4057  1.29    bouyer void
   4058  1.29    bouyer bnx_init_rx_context(struct bnx_softc *sc)
   4059  1.29    bouyer {
   4060  1.29    bouyer 	u_int32_t val;
   4061  1.29    bouyer 
   4062  1.29    bouyer 	/* Initialize the context ID for an L2 RX chain. */
   4063  1.29    bouyer 	val = BNX_L2CTX_CTX_TYPE_CTX_BD_CHN_TYPE_VALUE |
   4064  1.29    bouyer 		BNX_L2CTX_CTX_TYPE_SIZE_L2 | (0x02 << 8);
   4065  1.29    bouyer 
   4066  1.29    bouyer 	if (BNX_CHIP_NUM(sc) == BNX_CHIP_NUM_5709) {
   4067  1.29    bouyer 		u_int32_t lo_water, hi_water;
   4068  1.29    bouyer 
   4069  1.29    bouyer 		lo_water = BNX_L2CTX_RX_LO_WATER_MARK_DEFAULT;
   4070  1.29    bouyer 		hi_water = USABLE_RX_BD / 4;
   4071  1.29    bouyer 
   4072  1.29    bouyer 		lo_water /= BNX_L2CTX_RX_LO_WATER_MARK_SCALE;
   4073  1.29    bouyer 		hi_water /= BNX_L2CTX_RX_HI_WATER_MARK_SCALE;
   4074  1.29    bouyer 
   4075  1.29    bouyer 		if (hi_water > 0xf)
   4076  1.29    bouyer 			hi_water = 0xf;
   4077  1.29    bouyer 		else if (hi_water == 0)
   4078  1.29    bouyer 			lo_water = 0;
   4079  1.29    bouyer 		val |= lo_water |
   4080  1.29    bouyer 		    (hi_water << BNX_L2CTX_RX_HI_WATER_MARK_SHIFT);
   4081  1.29    bouyer 	}
   4082  1.29    bouyer 
   4083  1.29    bouyer  	CTX_WR(sc, GET_CID_ADDR(RX_CID), BNX_L2CTX_CTX_TYPE, val);
   4084  1.29    bouyer 
   4085  1.29    bouyer 	/* Setup the MQ BIN mapping for l2_ctx_host_bseq. */
   4086  1.29    bouyer 	if (BNX_CHIP_NUM(sc) == BNX_CHIP_NUM_5709) {
   4087  1.29    bouyer 		val = REG_RD(sc, BNX_MQ_MAP_L2_5);
   4088  1.29    bouyer 		REG_WR(sc, BNX_MQ_MAP_L2_5, val | BNX_MQ_MAP_L2_5_ARM);
   4089  1.29    bouyer 	}
   4090  1.29    bouyer 
   4091  1.29    bouyer 	/* Point the hardware to the first page in the chain. */
   4092  1.29    bouyer 	val = (u_int32_t)((u_int64_t)sc->rx_bd_chain_paddr[0] >> 32);
   4093  1.29    bouyer 	CTX_WR(sc, GET_CID_ADDR(RX_CID), BNX_L2CTX_NX_BDHADDR_HI, val);
   4094  1.29    bouyer 	val = (u_int32_t)(sc->rx_bd_chain_paddr[0]);
   4095  1.29    bouyer 	CTX_WR(sc, GET_CID_ADDR(RX_CID), BNX_L2CTX_NX_BDHADDR_LO, val);
   4096  1.29    bouyer }
   4097  1.29    bouyer 
   4098  1.29    bouyer /****************************************************************************/
   4099   1.1    bouyer /* Allocate memory and initialize the RX data structures.                   */
   4100   1.1    bouyer /*                                                                          */
   4101   1.1    bouyer /* Returns:                                                                 */
   4102   1.1    bouyer /*   0 for success, positive value for failure.                             */
   4103   1.1    bouyer /****************************************************************************/
   4104   1.1    bouyer int
   4105   1.1    bouyer bnx_init_rx_chain(struct bnx_softc *sc)
   4106   1.1    bouyer {
   4107   1.1    bouyer 	struct rx_bd		*rxbd;
   4108   1.1    bouyer 	int			i, rc = 0;
   4109   1.1    bouyer 	u_int16_t		prod, chain_prod;
   4110  1.29    bouyer 	u_int32_t		prod_bseq, addr;
   4111   1.1    bouyer 
   4112  1.12     perry 	DBPRINT(sc, BNX_VERBOSE_RESET, "Entering %s()\n", __func__);
   4113   1.1    bouyer 
   4114   1.1    bouyer 	/* Initialize the RX producer and consumer indices. */
   4115   1.1    bouyer 	sc->rx_prod = 0;
   4116   1.1    bouyer 	sc->rx_cons = 0;
   4117   1.1    bouyer 	sc->rx_prod_bseq = 0;
   4118  1.29    bouyer 	sc->free_rx_bd = USABLE_RX_BD;
   4119  1.29    bouyer 	sc->max_rx_bd = USABLE_RX_BD;
   4120   1.1    bouyer 	DBRUNIF(1, sc->rx_low_watermark = USABLE_RX_BD);
   4121  1.29    bouyer 	DBRUNIF(1, sc->rx_empty_count = 0);
   4122   1.1    bouyer 
   4123   1.1    bouyer 	/* Initialize the RX next pointer chain entries. */
   4124   1.1    bouyer 	for (i = 0; i < RX_PAGES; i++) {
   4125   1.1    bouyer 		int j;
   4126   1.1    bouyer 
   4127   1.1    bouyer 		rxbd = &sc->rx_bd_chain[i][USABLE_RX_BD_PER_PAGE];
   4128   1.1    bouyer 
   4129   1.1    bouyer 		/* Check if we've reached the last page. */
   4130   1.1    bouyer 		if (i == (RX_PAGES - 1))
   4131   1.1    bouyer 			j = 0;
   4132   1.1    bouyer 		else
   4133   1.1    bouyer 			j = i + 1;
   4134   1.1    bouyer 
   4135   1.1    bouyer 		/* Setup the chain page pointers. */
   4136   1.1    bouyer 		addr = (u_int32_t)((u_int64_t)sc->rx_bd_chain_paddr[j] >> 32);
   4137  1.37       jym 		rxbd->rx_bd_haddr_hi = addr;
   4138  1.37       jym 		addr = (u_int32_t)sc->rx_bd_chain_paddr[j];
   4139  1.37       jym 		rxbd->rx_bd_haddr_lo = addr;
   4140   1.1    bouyer 		bus_dmamap_sync(sc->bnx_dmatag, sc->rx_bd_chain_map[i],
   4141   1.1    bouyer 		    0, BNX_RX_CHAIN_PAGE_SZ,
   4142   1.1    bouyer 		    BUS_DMASYNC_PREREAD | BUS_DMASYNC_PREWRITE);
   4143   1.1    bouyer 	}
   4144   1.1    bouyer 
   4145   1.1    bouyer 	/* Allocate mbuf clusters for the rx_bd chain. */
   4146   1.1    bouyer 	prod = prod_bseq = 0;
   4147   1.5    bouyer 	chain_prod = RX_CHAIN_IDX(prod);
   4148  1.21    dyoung 	if (bnx_get_buf(sc, &prod, &chain_prod, &prod_bseq)) {
   4149   1.5    bouyer 		BNX_PRINTF(sc,
   4150   1.5    bouyer 		    "Error filling RX chain: rx_bd[0x%04X]!\n", chain_prod);
   4151   1.1    bouyer 	}
   4152   1.1    bouyer 
   4153   1.1    bouyer 	/* Save the RX chain producer index. */
   4154   1.1    bouyer 	sc->rx_prod = prod;
   4155   1.1    bouyer 	sc->rx_prod_bseq = prod_bseq;
   4156   1.1    bouyer 
   4157   1.1    bouyer 	for (i = 0; i < RX_PAGES; i++)
   4158   1.1    bouyer 		bus_dmamap_sync(sc->bnx_dmatag, sc->rx_bd_chain_map[i], 0,
   4159   1.1    bouyer 		    sc->rx_bd_chain_map[i]->dm_mapsize,
   4160   1.1    bouyer 		    BUS_DMASYNC_PREREAD | BUS_DMASYNC_PREWRITE);
   4161   1.1    bouyer 
   4162   1.1    bouyer 	/* Tell the chip about the waiting rx_bd's. */
   4163   1.1    bouyer 	REG_WR16(sc, MB_RX_CID_ADDR + BNX_L2CTX_HOST_BDIDX, sc->rx_prod);
   4164   1.1    bouyer 	REG_WR(sc, MB_RX_CID_ADDR + BNX_L2CTX_HOST_BSEQ, sc->rx_prod_bseq);
   4165   1.1    bouyer 
   4166  1.29    bouyer 	bnx_init_rx_context(sc);
   4167  1.29    bouyer 
   4168   1.1    bouyer 	DBRUN(BNX_VERBOSE_RECV, bnx_dump_rx_chain(sc, 0, TOTAL_RX_BD));
   4169   1.1    bouyer 
   4170  1.12     perry 	DBPRINT(sc, BNX_VERBOSE_RESET, "Exiting %s()\n", __func__);
   4171   1.1    bouyer 
   4172   1.1    bouyer 	return(rc);
   4173   1.1    bouyer }
   4174   1.1    bouyer 
   4175   1.1    bouyer /****************************************************************************/
   4176   1.1    bouyer /* Free memory and clear the RX data structures.                            */
   4177   1.1    bouyer /*                                                                          */
   4178   1.1    bouyer /* Returns:                                                                 */
   4179   1.1    bouyer /*   Nothing.                                                               */
   4180   1.1    bouyer /****************************************************************************/
   4181   1.1    bouyer void
   4182   1.1    bouyer bnx_free_rx_chain(struct bnx_softc *sc)
   4183   1.1    bouyer {
   4184   1.1    bouyer 	int			i;
   4185   1.1    bouyer 
   4186  1.12     perry 	DBPRINT(sc, BNX_VERBOSE_RESET, "Entering %s()\n", __func__);
   4187   1.1    bouyer 
   4188   1.1    bouyer 	/* Free any mbufs still in the RX mbuf chain. */
   4189   1.1    bouyer 	for (i = 0; i < TOTAL_RX_BD; i++) {
   4190   1.1    bouyer 		if (sc->rx_mbuf_ptr[i] != NULL) {
   4191  1.29    bouyer 			if (sc->rx_mbuf_map[i] != NULL) {
   4192   1.1    bouyer 				bus_dmamap_sync(sc->bnx_dmatag,
   4193   1.1    bouyer 				    sc->rx_mbuf_map[i],	0,
   4194   1.1    bouyer 				    sc->rx_mbuf_map[i]->dm_mapsize,
   4195   1.1    bouyer 				    BUS_DMASYNC_POSTREAD);
   4196  1.29    bouyer 				bus_dmamap_unload(sc->bnx_dmatag,
   4197  1.29    bouyer 				    sc->rx_mbuf_map[i]);
   4198  1.29    bouyer 			}
   4199   1.1    bouyer 			m_freem(sc->rx_mbuf_ptr[i]);
   4200   1.1    bouyer 			sc->rx_mbuf_ptr[i] = NULL;
   4201   1.1    bouyer 			DBRUNIF(1, sc->rx_mbuf_alloc--);
   4202   1.1    bouyer 		}
   4203   1.1    bouyer 	}
   4204   1.1    bouyer 
   4205   1.1    bouyer 	/* Clear each RX chain page. */
   4206   1.1    bouyer 	for (i = 0; i < RX_PAGES; i++)
   4207  1.23    cegger 		memset((char *)sc->rx_bd_chain[i], 0, BNX_RX_CHAIN_PAGE_SZ);
   4208   1.1    bouyer 
   4209  1.29    bouyer 	sc->free_rx_bd = sc->max_rx_bd;
   4210  1.29    bouyer 
   4211   1.1    bouyer 	/* Check if we lost any mbufs in the process. */
   4212   1.1    bouyer 	DBRUNIF((sc->rx_mbuf_alloc),
   4213  1.13    dyoung 	    aprint_error_dev(sc->bnx_dev,
   4214  1.13    dyoung 	        "Memory leak! Lost %d mbufs from rx chain!\n",
   4215  1.13    dyoung 		sc->rx_mbuf_alloc));
   4216   1.1    bouyer 
   4217  1.12     perry 	DBPRINT(sc, BNX_VERBOSE_RESET, "Exiting %s()\n", __func__);
   4218   1.1    bouyer }
   4219   1.1    bouyer 
   4220   1.1    bouyer /****************************************************************************/
   4221   1.1    bouyer /* Handles PHY generated interrupt events.                                  */
   4222   1.1    bouyer /*                                                                          */
   4223   1.1    bouyer /* Returns:                                                                 */
   4224   1.1    bouyer /*   Nothing.                                                               */
   4225   1.1    bouyer /****************************************************************************/
   4226   1.1    bouyer void
   4227   1.1    bouyer bnx_phy_intr(struct bnx_softc *sc)
   4228   1.1    bouyer {
   4229   1.1    bouyer 	u_int32_t		new_link_state, old_link_state;
   4230   1.1    bouyer 
   4231   1.1    bouyer 	bus_dmamap_sync(sc->bnx_dmatag, sc->status_map, 0, BNX_STATUS_BLK_SZ,
   4232   1.1    bouyer 	    BUS_DMASYNC_POSTREAD);
   4233   1.1    bouyer 	new_link_state = sc->status_block->status_attn_bits &
   4234   1.1    bouyer 	    STATUS_ATTN_BITS_LINK_STATE;
   4235   1.1    bouyer 	old_link_state = sc->status_block->status_attn_bits_ack &
   4236   1.1    bouyer 	    STATUS_ATTN_BITS_LINK_STATE;
   4237   1.1    bouyer 
   4238   1.1    bouyer 	/* Handle any changes if the link state has changed. */
   4239   1.1    bouyer 	if (new_link_state != old_link_state) {
   4240   1.1    bouyer 		DBRUN(BNX_VERBOSE_INTR, bnx_dump_status_block(sc));
   4241   1.1    bouyer 
   4242   1.1    bouyer 		callout_stop(&sc->bnx_timeout);
   4243   1.1    bouyer 		bnx_tick(sc);
   4244   1.1    bouyer 
   4245   1.1    bouyer 		/* Update the status_attn_bits_ack field in the status block. */
   4246   1.1    bouyer 		if (new_link_state) {
   4247   1.1    bouyer 			REG_WR(sc, BNX_PCICFG_STATUS_BIT_SET_CMD,
   4248   1.1    bouyer 			    STATUS_ATTN_BITS_LINK_STATE);
   4249   1.1    bouyer 			DBPRINT(sc, BNX_INFO, "Link is now UP.\n");
   4250   1.1    bouyer 		} else {
   4251   1.1    bouyer 			REG_WR(sc, BNX_PCICFG_STATUS_BIT_CLEAR_CMD,
   4252   1.1    bouyer 			    STATUS_ATTN_BITS_LINK_STATE);
   4253   1.1    bouyer 			DBPRINT(sc, BNX_INFO, "Link is now DOWN.\n");
   4254   1.1    bouyer 		}
   4255   1.1    bouyer 	}
   4256   1.1    bouyer 
   4257   1.1    bouyer 	/* Acknowledge the link change interrupt. */
   4258   1.1    bouyer 	REG_WR(sc, BNX_EMAC_STATUS, BNX_EMAC_STATUS_LINK_CHANGE);
   4259   1.1    bouyer }
   4260   1.1    bouyer 
   4261   1.1    bouyer /****************************************************************************/
   4262   1.1    bouyer /* Handles received frame interrupt events.                                 */
   4263   1.1    bouyer /*                                                                          */
   4264   1.1    bouyer /* Returns:                                                                 */
   4265   1.1    bouyer /*   Nothing.                                                               */
   4266   1.1    bouyer /****************************************************************************/
   4267   1.1    bouyer void
   4268   1.1    bouyer bnx_rx_intr(struct bnx_softc *sc)
   4269   1.1    bouyer {
   4270   1.1    bouyer 	struct status_block	*sblk = sc->status_block;
   4271  1.15    dyoung 	struct ifnet		*ifp = &sc->bnx_ec.ec_if;
   4272   1.1    bouyer 	u_int16_t		hw_cons, sw_cons, sw_chain_cons;
   4273   1.1    bouyer 	u_int16_t		sw_prod, sw_chain_prod;
   4274   1.1    bouyer 	u_int32_t		sw_prod_bseq;
   4275   1.1    bouyer 	struct l2_fhdr		*l2fhdr;
   4276   1.1    bouyer 	int			i;
   4277   1.1    bouyer 
   4278   1.1    bouyer 	DBRUNIF(1, sc->rx_interrupts++);
   4279   1.1    bouyer 	bus_dmamap_sync(sc->bnx_dmatag, sc->status_map, 0, BNX_STATUS_BLK_SZ,
   4280   1.1    bouyer 	    BUS_DMASYNC_POSTREAD);
   4281   1.1    bouyer 
   4282   1.1    bouyer 	/* Prepare the RX chain pages to be accessed by the host CPU. */
   4283   1.1    bouyer 	for (i = 0; i < RX_PAGES; i++)
   4284   1.1    bouyer 		bus_dmamap_sync(sc->bnx_dmatag,
   4285   1.1    bouyer 		    sc->rx_bd_chain_map[i], 0,
   4286   1.1    bouyer 		    sc->rx_bd_chain_map[i]->dm_mapsize,
   4287   1.1    bouyer 		    BUS_DMASYNC_POSTWRITE);
   4288   1.1    bouyer 
   4289   1.1    bouyer 	/* Get the hardware's view of the RX consumer index. */
   4290   1.1    bouyer 	hw_cons = sc->hw_rx_cons = sblk->status_rx_quick_consumer_index0;
   4291   1.1    bouyer 	if ((hw_cons & USABLE_RX_BD_PER_PAGE) == USABLE_RX_BD_PER_PAGE)
   4292   1.1    bouyer 		hw_cons++;
   4293   1.1    bouyer 
   4294   1.1    bouyer 	/* Get working copies of the driver's view of the RX indices. */
   4295   1.1    bouyer 	sw_cons = sc->rx_cons;
   4296   1.1    bouyer 	sw_prod = sc->rx_prod;
   4297   1.1    bouyer 	sw_prod_bseq = sc->rx_prod_bseq;
   4298   1.1    bouyer 
   4299   1.1    bouyer 	DBPRINT(sc, BNX_INFO_RECV, "%s(enter): sw_prod = 0x%04X, "
   4300   1.1    bouyer 	    "sw_cons = 0x%04X, sw_prod_bseq = 0x%08X\n",
   4301  1.12     perry 	    __func__, sw_prod, sw_cons, sw_prod_bseq);
   4302   1.1    bouyer 
   4303   1.1    bouyer 	/* Prevent speculative reads from getting ahead of the status block. */
   4304   1.1    bouyer 	bus_space_barrier(sc->bnx_btag, sc->bnx_bhandle, 0, 0,
   4305   1.1    bouyer 	    BUS_SPACE_BARRIER_READ);
   4306   1.1    bouyer 
   4307  1.29    bouyer 	/* Update some debug statistics counters */
   4308   1.1    bouyer 	DBRUNIF((sc->free_rx_bd < sc->rx_low_watermark),
   4309   1.1    bouyer 	    sc->rx_low_watermark = sc->free_rx_bd);
   4310  1.29    bouyer 	DBRUNIF((sc->free_rx_bd == USABLE_RX_BD), sc->rx_empty_count++);
   4311   1.1    bouyer 
   4312   1.1    bouyer 	/*
   4313   1.1    bouyer 	 * Scan through the receive chain as long
   4314   1.1    bouyer 	 * as there is work to do.
   4315   1.1    bouyer 	 */
   4316   1.1    bouyer 	while (sw_cons != hw_cons) {
   4317   1.1    bouyer 		struct mbuf *m;
   4318   1.1    bouyer 		struct rx_bd *rxbd;
   4319   1.1    bouyer 		unsigned int len;
   4320   1.1    bouyer 		u_int32_t status;
   4321   1.1    bouyer 
   4322   1.1    bouyer 		/* Convert the producer/consumer indices to an actual
   4323   1.1    bouyer 		 * rx_bd index.
   4324   1.1    bouyer 		 */
   4325   1.1    bouyer 		sw_chain_cons = RX_CHAIN_IDX(sw_cons);
   4326   1.1    bouyer 		sw_chain_prod = RX_CHAIN_IDX(sw_prod);
   4327   1.1    bouyer 
   4328   1.1    bouyer 		/* Get the used rx_bd. */
   4329   1.1    bouyer 		rxbd = &sc->rx_bd_chain[RX_PAGE(sw_chain_cons)][RX_IDX(sw_chain_cons)];
   4330   1.1    bouyer 		sc->free_rx_bd++;
   4331   1.1    bouyer 
   4332  1.12     perry 		DBRUN(BNX_VERBOSE_RECV, aprint_error("%s(): ", __func__);
   4333   1.1    bouyer 		bnx_dump_rxbd(sc, sw_chain_cons, rxbd));
   4334   1.1    bouyer 
   4335   1.1    bouyer 		/* The mbuf is stored with the last rx_bd entry of a packet. */
   4336   1.1    bouyer 		if (sc->rx_mbuf_ptr[sw_chain_cons] != NULL) {
   4337   1.5    bouyer #ifdef DIAGNOSTIC
   4338   1.1    bouyer 			/* Validate that this is the last rx_bd. */
   4339   1.5    bouyer 			if ((rxbd->rx_bd_flags & RX_BD_FLAGS_END) == 0) {
   4340   1.5    bouyer 			    printf("%s: Unexpected mbuf found in "
   4341  1.13    dyoung 			        "rx_bd[0x%04X]!\n", device_xname(sc->bnx_dev),
   4342   1.1    bouyer 			        sw_chain_cons);
   4343   1.5    bouyer 			}
   4344   1.5    bouyer #endif
   4345   1.1    bouyer 
   4346   1.1    bouyer 			/* DRC - ToDo: If the received packet is small, say less
   4347   1.1    bouyer 			 *             than 128 bytes, allocate a new mbuf here,
   4348   1.1    bouyer 			 *             copy the data to that mbuf, and recycle
   4349   1.1    bouyer 			 *             the mapped jumbo frame.
   4350   1.1    bouyer 			 */
   4351   1.1    bouyer 
   4352   1.1    bouyer 			/* Unmap the mbuf from DMA space. */
   4353   1.5    bouyer #ifdef DIAGNOSTIC
   4354   1.5    bouyer 			if (sc->rx_mbuf_map[sw_chain_cons]->dm_mapsize == 0) {
   4355   1.5    bouyer 				printf("invalid map sw_cons 0x%x "
   4356   1.5    bouyer 				"sw_prod 0x%x "
   4357   1.5    bouyer 				"sw_chain_cons 0x%x "
   4358   1.5    bouyer 				"sw_chain_prod 0x%x "
   4359   1.5    bouyer 				"hw_cons 0x%x "
   4360   1.6    bouyer 				"TOTAL_RX_BD_PER_PAGE 0x%x "
   4361   1.6    bouyer 				"TOTAL_RX_BD 0x%x\n",
   4362   1.5    bouyer 				sw_cons, sw_prod, sw_chain_cons, sw_chain_prod,
   4363   1.6    bouyer 				hw_cons,
   4364   1.6    bouyer 				(int)TOTAL_RX_BD_PER_PAGE, (int)TOTAL_RX_BD);
   4365   1.5    bouyer 			}
   4366   1.5    bouyer #endif
   4367   1.1    bouyer 			bus_dmamap_sync(sc->bnx_dmatag,
   4368   1.1    bouyer 			    sc->rx_mbuf_map[sw_chain_cons], 0,
   4369   1.1    bouyer 			    sc->rx_mbuf_map[sw_chain_cons]->dm_mapsize,
   4370   1.1    bouyer 			    BUS_DMASYNC_POSTREAD);
   4371   1.1    bouyer 			bus_dmamap_unload(sc->bnx_dmatag,
   4372   1.1    bouyer 			    sc->rx_mbuf_map[sw_chain_cons]);
   4373   1.1    bouyer 
   4374   1.1    bouyer 			/* Remove the mbuf from the driver's chain. */
   4375   1.1    bouyer 			m = sc->rx_mbuf_ptr[sw_chain_cons];
   4376   1.1    bouyer 			sc->rx_mbuf_ptr[sw_chain_cons] = NULL;
   4377   1.1    bouyer 
   4378   1.1    bouyer 			/*
   4379   1.1    bouyer 			 * Frames received on the NetXteme II are prepended
   4380   1.1    bouyer 			 * with the l2_fhdr structure which provides status
   4381   1.1    bouyer 			 * information about the received frame (including
   4382   1.1    bouyer 			 * VLAN tags and checksum info) and are also
   4383   1.1    bouyer 			 * automatically adjusted to align the IP header
   4384   1.1    bouyer 			 * (i.e. two null bytes are inserted before the
   4385   1.1    bouyer 			 * Ethernet header).
   4386   1.1    bouyer 			 */
   4387   1.1    bouyer 			l2fhdr = mtod(m, struct l2_fhdr *);
   4388   1.1    bouyer 
   4389   1.1    bouyer 			len    = l2fhdr->l2_fhdr_pkt_len;
   4390   1.1    bouyer 			status = l2fhdr->l2_fhdr_status;
   4391   1.1    bouyer 
   4392   1.1    bouyer 			DBRUNIF(DB_RANDOMTRUE(bnx_debug_l2fhdr_status_check),
   4393   1.1    bouyer 			    aprint_error("Simulating l2_fhdr status error.\n");
   4394   1.1    bouyer 			    status = status | L2_FHDR_ERRORS_PHY_DECODE);
   4395   1.1    bouyer 
   4396   1.1    bouyer 			/* Watch for unusual sized frames. */
   4397   1.1    bouyer 			DBRUNIF(((len < BNX_MIN_MTU) ||
   4398   1.1    bouyer 			    (len > BNX_MAX_JUMBO_ETHER_MTU_VLAN)),
   4399  1.13    dyoung 			    aprint_error_dev(sc->bnx_dev,
   4400  1.13    dyoung 			        "Unusual frame size found. "
   4401  1.13    dyoung 				"Min(%d), Actual(%d), Max(%d)\n",
   4402  1.13    dyoung 				(int)BNX_MIN_MTU, len,
   4403  1.13    dyoung 				(int)BNX_MAX_JUMBO_ETHER_MTU_VLAN);
   4404   1.1    bouyer 
   4405   1.1    bouyer 			bnx_dump_mbuf(sc, m);
   4406   1.1    bouyer 			bnx_breakpoint(sc));
   4407   1.1    bouyer 
   4408   1.1    bouyer 			len -= ETHER_CRC_LEN;
   4409   1.1    bouyer 
   4410   1.1    bouyer 			/* Check the received frame for errors. */
   4411   1.1    bouyer 			if ((status &  (L2_FHDR_ERRORS_BAD_CRC |
   4412   1.1    bouyer 			    L2_FHDR_ERRORS_PHY_DECODE |
   4413   1.1    bouyer 			    L2_FHDR_ERRORS_ALIGNMENT |
   4414   1.1    bouyer 			    L2_FHDR_ERRORS_TOO_SHORT |
   4415   1.1    bouyer 			    L2_FHDR_ERRORS_GIANT_FRAME)) ||
   4416   1.1    bouyer 			    len < (BNX_MIN_MTU - ETHER_CRC_LEN) ||
   4417   1.1    bouyer 			    len >
   4418   1.1    bouyer 			    (BNX_MAX_JUMBO_ETHER_MTU_VLAN - ETHER_CRC_LEN)) {
   4419   1.1    bouyer 				ifp->if_ierrors++;
   4420   1.1    bouyer 				DBRUNIF(1, sc->l2fhdr_status_errors++);
   4421   1.1    bouyer 
   4422   1.1    bouyer 				/* Reuse the mbuf for a new frame. */
   4423  1.21    dyoung 				if (bnx_add_buf(sc, m, &sw_prod,
   4424   1.1    bouyer 				    &sw_chain_prod, &sw_prod_bseq)) {
   4425   1.1    bouyer 					DBRUNIF(1, bnx_breakpoint(sc));
   4426   1.1    bouyer 					panic("%s: Can't reuse RX mbuf!\n",
   4427  1.13    dyoung 					    device_xname(sc->bnx_dev));
   4428   1.1    bouyer 				}
   4429   1.5    bouyer 				continue;
   4430   1.1    bouyer 			}
   4431   1.1    bouyer 
   4432   1.1    bouyer 			/*
   4433   1.1    bouyer 			 * Get a new mbuf for the rx_bd.   If no new
   4434   1.1    bouyer 			 * mbufs are available then reuse the current mbuf,
   4435   1.1    bouyer 			 * log an ierror on the interface, and generate
   4436   1.1    bouyer 			 * an error in the system log.
   4437   1.1    bouyer 			 */
   4438  1.21    dyoung 			if (bnx_get_buf(sc, &sw_prod, &sw_chain_prod,
   4439   1.1    bouyer 			    &sw_prod_bseq)) {
   4440  1.29    bouyer 				DBRUN(BNX_WARN, aprint_debug_dev(sc->bnx_dev,
   4441  1.29    bouyer 				    "Failed to allocate "
   4442  1.29    bouyer 				    "new mbuf, incoming frame dropped!\n"));
   4443   1.1    bouyer 
   4444   1.1    bouyer 				ifp->if_ierrors++;
   4445   1.1    bouyer 
   4446   1.1    bouyer 				/* Try and reuse the exisitng mbuf. */
   4447  1.21    dyoung 				if (bnx_add_buf(sc, m, &sw_prod,
   4448   1.1    bouyer 				    &sw_chain_prod, &sw_prod_bseq)) {
   4449   1.1    bouyer 					DBRUNIF(1, bnx_breakpoint(sc));
   4450   1.1    bouyer 					panic("%s: Double mbuf allocation "
   4451  1.13    dyoung 					    "failure!",
   4452  1.13    dyoung 					    device_xname(sc->bnx_dev));
   4453   1.1    bouyer 				}
   4454   1.5    bouyer 				continue;
   4455   1.1    bouyer 			}
   4456   1.1    bouyer 
   4457   1.1    bouyer 			/* Skip over the l2_fhdr when passing the data up
   4458   1.1    bouyer 			 * the stack.
   4459   1.1    bouyer 			 */
   4460   1.1    bouyer 			m_adj(m, sizeof(struct l2_fhdr) + ETHER_ALIGN);
   4461   1.1    bouyer 
   4462   1.1    bouyer 			/* Adjust the pckt length to match the received data. */
   4463   1.1    bouyer 			m->m_pkthdr.len = m->m_len = len;
   4464   1.1    bouyer 
   4465   1.1    bouyer 			/* Send the packet to the appropriate interface. */
   4466   1.1    bouyer 			m->m_pkthdr.rcvif = ifp;
   4467   1.1    bouyer 
   4468   1.1    bouyer 			DBRUN(BNX_VERBOSE_RECV,
   4469   1.1    bouyer 			    struct ether_header *eh;
   4470   1.1    bouyer 			    eh = mtod(m, struct ether_header *);
   4471   1.1    bouyer 			    aprint_error("%s: to: %s, from: %s, type: 0x%04X\n",
   4472  1.12     perry 			    __func__, ether_sprintf(eh->ether_dhost),
   4473   1.1    bouyer 			    ether_sprintf(eh->ether_shost),
   4474   1.1    bouyer 			    htons(eh->ether_type)));
   4475   1.1    bouyer 
   4476   1.1    bouyer 			/* Validate the checksum. */
   4477   1.1    bouyer 
   4478   1.1    bouyer 			/* Check for an IP datagram. */
   4479   1.1    bouyer 			if (status & L2_FHDR_STATUS_IP_DATAGRAM) {
   4480   1.1    bouyer 				/* Check if the IP checksum is valid. */
   4481   1.1    bouyer 				if ((l2fhdr->l2_fhdr_ip_xsum ^ 0xffff)
   4482   1.1    bouyer 				    == 0)
   4483   1.1    bouyer 					m->m_pkthdr.csum_flags |=
   4484   1.1    bouyer 					    M_CSUM_IPv4;
   4485   1.1    bouyer #ifdef BNX_DEBUG
   4486   1.1    bouyer 				else
   4487   1.1    bouyer 					DBPRINT(sc, BNX_WARN_SEND,
   4488   1.1    bouyer 					    "%s(): Invalid IP checksum "
   4489   1.1    bouyer 					        "= 0x%04X!\n",
   4490  1.12     perry 						__func__,
   4491   1.1    bouyer 						l2fhdr->l2_fhdr_ip_xsum
   4492   1.1    bouyer 						);
   4493   1.1    bouyer #endif
   4494   1.1    bouyer 			}
   4495   1.1    bouyer 
   4496   1.1    bouyer 			/* Check for a valid TCP/UDP frame. */
   4497   1.1    bouyer 			if (status & (L2_FHDR_STATUS_TCP_SEGMENT |
   4498   1.1    bouyer 			    L2_FHDR_STATUS_UDP_DATAGRAM)) {
   4499   1.1    bouyer 				/* Check for a good TCP/UDP checksum. */
   4500   1.1    bouyer 				if ((status &
   4501   1.1    bouyer 				    (L2_FHDR_ERRORS_TCP_XSUM |
   4502   1.1    bouyer 				    L2_FHDR_ERRORS_UDP_XSUM)) == 0) {
   4503   1.1    bouyer 					m->m_pkthdr.csum_flags |=
   4504   1.1    bouyer 					    M_CSUM_TCPv4 |
   4505   1.1    bouyer 					    M_CSUM_UDPv4;
   4506   1.1    bouyer 				} else {
   4507   1.1    bouyer 					DBPRINT(sc, BNX_WARN_SEND,
   4508   1.1    bouyer 					    "%s(): Invalid TCP/UDP "
   4509   1.1    bouyer 					    "checksum = 0x%04X!\n",
   4510  1.12     perry 					    __func__,
   4511   1.1    bouyer 					    l2fhdr->l2_fhdr_tcp_udp_xsum);
   4512   1.1    bouyer 				}
   4513   1.1    bouyer 			}
   4514   1.1    bouyer 
   4515   1.1    bouyer 			/*
   4516   1.1    bouyer 			 * If we received a packet with a vlan tag,
   4517   1.1    bouyer 			 * attach that information to the packet.
   4518   1.1    bouyer 			 */
   4519  1.29    bouyer 			if ((status & L2_FHDR_STATUS_L2_VLAN_TAG) &&
   4520  1.29    bouyer 			    !(sc->rx_mode & BNX_EMAC_RX_MODE_KEEP_VLAN_TAG)) {
   4521   1.1    bouyer 				VLAN_INPUT_TAG(ifp, m,
   4522   1.8    bouyer 				    l2fhdr->l2_fhdr_vlan_tag,
   4523   1.5    bouyer 				    continue);
   4524   1.1    bouyer 			}
   4525   1.1    bouyer 
   4526   1.1    bouyer 			/*
   4527   1.1    bouyer 			 * Handle BPF listeners. Let the BPF
   4528   1.1    bouyer 			 * user see the packet.
   4529   1.1    bouyer 			 */
   4530  1.33     joerg 			bpf_mtap(ifp, m);
   4531   1.1    bouyer 
   4532   1.1    bouyer 			/* Pass the mbuf off to the upper layers. */
   4533   1.1    bouyer 			ifp->if_ipackets++;
   4534   1.1    bouyer 			DBPRINT(sc, BNX_VERBOSE_RECV,
   4535  1.12     perry 			    "%s(): Passing received frame up.\n", __func__);
   4536   1.1    bouyer 			(*ifp->if_input)(ifp, m);
   4537   1.1    bouyer 			DBRUNIF(1, sc->rx_mbuf_alloc--);
   4538   1.1    bouyer 
   4539   1.1    bouyer 		}
   4540   1.1    bouyer 
   4541   1.1    bouyer 		sw_cons = NEXT_RX_BD(sw_cons);
   4542   1.1    bouyer 
   4543   1.1    bouyer 		/* Refresh hw_cons to see if there's new work */
   4544   1.1    bouyer 		if (sw_cons == hw_cons) {
   4545   1.1    bouyer 			hw_cons = sc->hw_rx_cons =
   4546   1.1    bouyer 			    sblk->status_rx_quick_consumer_index0;
   4547   1.1    bouyer 			if ((hw_cons & USABLE_RX_BD_PER_PAGE) ==
   4548   1.1    bouyer 			    USABLE_RX_BD_PER_PAGE)
   4549   1.1    bouyer 				hw_cons++;
   4550   1.1    bouyer 		}
   4551   1.1    bouyer 
   4552   1.1    bouyer 		/* Prevent speculative reads from getting ahead of
   4553   1.1    bouyer 		 * the status block.
   4554   1.1    bouyer 		 */
   4555   1.1    bouyer 		bus_space_barrier(sc->bnx_btag, sc->bnx_bhandle, 0, 0,
   4556   1.1    bouyer 		    BUS_SPACE_BARRIER_READ);
   4557   1.1    bouyer 	}
   4558   1.1    bouyer 
   4559   1.1    bouyer 	for (i = 0; i < RX_PAGES; i++)
   4560   1.1    bouyer 		bus_dmamap_sync(sc->bnx_dmatag,
   4561   1.1    bouyer 		    sc->rx_bd_chain_map[i], 0,
   4562   1.1    bouyer 		    sc->rx_bd_chain_map[i]->dm_mapsize,
   4563   1.1    bouyer 		    BUS_DMASYNC_PREWRITE);
   4564   1.1    bouyer 
   4565   1.1    bouyer 	sc->rx_cons = sw_cons;
   4566   1.1    bouyer 	sc->rx_prod = sw_prod;
   4567   1.1    bouyer 	sc->rx_prod_bseq = sw_prod_bseq;
   4568   1.1    bouyer 
   4569   1.1    bouyer 	REG_WR16(sc, MB_RX_CID_ADDR + BNX_L2CTX_HOST_BDIDX, sc->rx_prod);
   4570   1.1    bouyer 	REG_WR(sc, MB_RX_CID_ADDR + BNX_L2CTX_HOST_BSEQ, sc->rx_prod_bseq);
   4571   1.1    bouyer 
   4572   1.1    bouyer 	DBPRINT(sc, BNX_INFO_RECV, "%s(exit): rx_prod = 0x%04X, "
   4573   1.1    bouyer 	    "rx_cons = 0x%04X, rx_prod_bseq = 0x%08X\n",
   4574  1.12     perry 	    __func__, sc->rx_prod, sc->rx_cons, sc->rx_prod_bseq);
   4575   1.1    bouyer }
   4576   1.1    bouyer 
   4577   1.1    bouyer /****************************************************************************/
   4578   1.1    bouyer /* Handles transmit completion interrupt events.                            */
   4579   1.1    bouyer /*                                                                          */
   4580   1.1    bouyer /* Returns:                                                                 */
   4581   1.1    bouyer /*   Nothing.                                                               */
   4582   1.1    bouyer /****************************************************************************/
   4583   1.1    bouyer void
   4584   1.1    bouyer bnx_tx_intr(struct bnx_softc *sc)
   4585   1.1    bouyer {
   4586   1.1    bouyer 	struct status_block	*sblk = sc->status_block;
   4587  1.15    dyoung 	struct ifnet		*ifp = &sc->bnx_ec.ec_if;
   4588  1.29    bouyer 	struct bnx_pkt		*pkt;
   4589  1.29    bouyer 	bus_dmamap_t		map;
   4590   1.1    bouyer 	u_int16_t		hw_tx_cons, sw_tx_cons, sw_tx_chain_cons;
   4591   1.1    bouyer 
   4592   1.1    bouyer 	DBRUNIF(1, sc->tx_interrupts++);
   4593   1.1    bouyer 	bus_dmamap_sync(sc->bnx_dmatag, sc->status_map, 0, BNX_STATUS_BLK_SZ,
   4594   1.1    bouyer 	    BUS_DMASYNC_POSTREAD);
   4595   1.1    bouyer 
   4596   1.1    bouyer 	/* Get the hardware's view of the TX consumer index. */
   4597   1.1    bouyer 	hw_tx_cons = sc->hw_tx_cons = sblk->status_tx_quick_consumer_index0;
   4598   1.1    bouyer 
   4599   1.1    bouyer 	/* Skip to the next entry if this is a chain page pointer. */
   4600   1.1    bouyer 	if ((hw_tx_cons & USABLE_TX_BD_PER_PAGE) == USABLE_TX_BD_PER_PAGE)
   4601   1.1    bouyer 		hw_tx_cons++;
   4602   1.1    bouyer 
   4603   1.1    bouyer 	sw_tx_cons = sc->tx_cons;
   4604   1.1    bouyer 
   4605   1.1    bouyer 	/* Prevent speculative reads from getting ahead of the status block. */
   4606   1.1    bouyer 	bus_space_barrier(sc->bnx_btag, sc->bnx_bhandle, 0, 0,
   4607   1.1    bouyer 	    BUS_SPACE_BARRIER_READ);
   4608   1.1    bouyer 
   4609   1.1    bouyer 	/* Cycle through any completed TX chain page entries. */
   4610   1.1    bouyer 	while (sw_tx_cons != hw_tx_cons) {
   4611   1.1    bouyer #ifdef BNX_DEBUG
   4612   1.1    bouyer 		struct tx_bd *txbd = NULL;
   4613   1.1    bouyer #endif
   4614   1.1    bouyer 		sw_tx_chain_cons = TX_CHAIN_IDX(sw_tx_cons);
   4615   1.1    bouyer 
   4616   1.1    bouyer 		DBPRINT(sc, BNX_INFO_SEND, "%s(): hw_tx_cons = 0x%04X, "
   4617   1.1    bouyer 		    "sw_tx_cons = 0x%04X, sw_tx_chain_cons = 0x%04X\n",
   4618  1.12     perry 		    __func__, hw_tx_cons, sw_tx_cons, sw_tx_chain_cons);
   4619   1.1    bouyer 
   4620   1.1    bouyer 		DBRUNIF((sw_tx_chain_cons > MAX_TX_BD),
   4621  1.13    dyoung 		    aprint_error_dev(sc->bnx_dev,
   4622  1.13    dyoung 		        "TX chain consumer out of range! 0x%04X > 0x%04X\n",
   4623  1.13    dyoung 			sw_tx_chain_cons, (int)MAX_TX_BD); bnx_breakpoint(sc));
   4624   1.1    bouyer 
   4625   1.1    bouyer 		DBRUNIF(1, txbd = &sc->tx_bd_chain
   4626   1.1    bouyer 		    [TX_PAGE(sw_tx_chain_cons)][TX_IDX(sw_tx_chain_cons)]);
   4627   1.1    bouyer 
   4628   1.1    bouyer 		DBRUNIF((txbd == NULL),
   4629  1.13    dyoung 		    aprint_error_dev(sc->bnx_dev,
   4630  1.13    dyoung 		        "Unexpected NULL tx_bd[0x%04X]!\n", sw_tx_chain_cons);
   4631   1.1    bouyer 		    bnx_breakpoint(sc));
   4632   1.1    bouyer 
   4633  1.12     perry 		DBRUN(BNX_INFO_SEND, aprint_debug("%s: ", __func__);
   4634   1.1    bouyer 		    bnx_dump_txbd(sc, sw_tx_chain_cons, txbd));
   4635   1.1    bouyer 
   4636   1.1    bouyer 
   4637  1.29    bouyer 		mutex_enter(&sc->tx_pkt_mtx);
   4638  1.29    bouyer 		pkt = TAILQ_FIRST(&sc->tx_used_pkts);
   4639  1.29    bouyer 		if (pkt != NULL && pkt->pkt_end_desc == sw_tx_chain_cons) {
   4640  1.29    bouyer 			TAILQ_REMOVE(&sc->tx_used_pkts, pkt, pkt_entry);
   4641  1.29    bouyer 			mutex_exit(&sc->tx_pkt_mtx);
   4642  1.29    bouyer 			/*
   4643  1.29    bouyer 			 * Free the associated mbuf. Remember
   4644  1.29    bouyer 			 * that only the last tx_bd of a packet
   4645  1.29    bouyer 			 * has an mbuf pointer and DMA map.
   4646  1.29    bouyer 			 */
   4647  1.29    bouyer 			map = pkt->pkt_dmamap;
   4648  1.29    bouyer 			bus_dmamap_sync(sc->bnx_dmatag, map, 0,
   4649  1.29    bouyer 			    map->dm_mapsize, BUS_DMASYNC_POSTWRITE);
   4650  1.29    bouyer 			bus_dmamap_unload(sc->bnx_dmatag, map);
   4651   1.1    bouyer 
   4652  1.29    bouyer 			m_freem(pkt->pkt_mbuf);
   4653   1.1    bouyer 			DBRUNIF(1, sc->tx_mbuf_alloc--);
   4654   1.1    bouyer 
   4655   1.1    bouyer 			ifp->if_opackets++;
   4656  1.29    bouyer 
   4657  1.29    bouyer 			mutex_enter(&sc->tx_pkt_mtx);
   4658  1.29    bouyer 			TAILQ_INSERT_TAIL(&sc->tx_free_pkts, pkt, pkt_entry);
   4659   1.1    bouyer 		}
   4660  1.29    bouyer 		mutex_exit(&sc->tx_pkt_mtx);
   4661   1.1    bouyer 
   4662   1.1    bouyer 		sc->used_tx_bd--;
   4663  1.29    bouyer 		DBPRINT(sc, BNX_INFO_SEND, "%s(%d) used_tx_bd %d\n",
   4664  1.29    bouyer 			__FILE__, __LINE__, sc->used_tx_bd);
   4665  1.29    bouyer 
   4666   1.1    bouyer 		sw_tx_cons = NEXT_TX_BD(sw_tx_cons);
   4667   1.1    bouyer 
   4668   1.1    bouyer 		/* Refresh hw_cons to see if there's new work. */
   4669   1.1    bouyer 		hw_tx_cons = sc->hw_tx_cons =
   4670   1.1    bouyer 		    sblk->status_tx_quick_consumer_index0;
   4671   1.1    bouyer 		if ((hw_tx_cons & USABLE_TX_BD_PER_PAGE) ==
   4672   1.1    bouyer 		    USABLE_TX_BD_PER_PAGE)
   4673   1.1    bouyer 			hw_tx_cons++;
   4674   1.1    bouyer 
   4675   1.1    bouyer 		/* Prevent speculative reads from getting ahead of
   4676   1.1    bouyer 		 * the status block.
   4677   1.1    bouyer 		 */
   4678   1.1    bouyer 		bus_space_barrier(sc->bnx_btag, sc->bnx_bhandle, 0, 0,
   4679   1.1    bouyer 		    BUS_SPACE_BARRIER_READ);
   4680   1.1    bouyer 	}
   4681   1.1    bouyer 
   4682   1.1    bouyer 	/* Clear the TX timeout timer. */
   4683   1.1    bouyer 	ifp->if_timer = 0;
   4684   1.1    bouyer 
   4685   1.1    bouyer 	/* Clear the tx hardware queue full flag. */
   4686  1.29    bouyer 	if (sc->used_tx_bd < sc->max_tx_bd) {
   4687   1.1    bouyer 		DBRUNIF((ifp->if_flags & IFF_OACTIVE),
   4688  1.13    dyoung 		    aprint_debug_dev(sc->bnx_dev,
   4689  1.29    bouyer 		        "Open TX chain! %d/%d (used/total)\n",
   4690  1.29    bouyer 			sc->used_tx_bd, sc->max_tx_bd));
   4691   1.1    bouyer 		ifp->if_flags &= ~IFF_OACTIVE;
   4692   1.1    bouyer 	}
   4693   1.1    bouyer 
   4694   1.1    bouyer 	sc->tx_cons = sw_tx_cons;
   4695   1.1    bouyer }
   4696   1.1    bouyer 
   4697   1.1    bouyer /****************************************************************************/
   4698   1.1    bouyer /* Disables interrupt generation.                                           */
   4699   1.1    bouyer /*                                                                          */
   4700   1.1    bouyer /* Returns:                                                                 */
   4701   1.1    bouyer /*   Nothing.                                                               */
   4702   1.1    bouyer /****************************************************************************/
   4703   1.1    bouyer void
   4704   1.1    bouyer bnx_disable_intr(struct bnx_softc *sc)
   4705   1.1    bouyer {
   4706   1.1    bouyer 	REG_WR(sc, BNX_PCICFG_INT_ACK_CMD, BNX_PCICFG_INT_ACK_CMD_MASK_INT);
   4707   1.1    bouyer 	REG_RD(sc, BNX_PCICFG_INT_ACK_CMD);
   4708   1.1    bouyer }
   4709   1.1    bouyer 
   4710   1.1    bouyer /****************************************************************************/
   4711   1.1    bouyer /* Enables interrupt generation.                                            */
   4712   1.1    bouyer /*                                                                          */
   4713   1.1    bouyer /* Returns:                                                                 */
   4714   1.1    bouyer /*   Nothing.                                                               */
   4715   1.1    bouyer /****************************************************************************/
   4716   1.1    bouyer void
   4717   1.1    bouyer bnx_enable_intr(struct bnx_softc *sc)
   4718   1.1    bouyer {
   4719   1.1    bouyer 	u_int32_t		val;
   4720   1.1    bouyer 
   4721   1.1    bouyer 	REG_WR(sc, BNX_PCICFG_INT_ACK_CMD, BNX_PCICFG_INT_ACK_CMD_INDEX_VALID |
   4722   1.1    bouyer 	    BNX_PCICFG_INT_ACK_CMD_MASK_INT | sc->last_status_idx);
   4723   1.1    bouyer 
   4724   1.1    bouyer 	REG_WR(sc, BNX_PCICFG_INT_ACK_CMD, BNX_PCICFG_INT_ACK_CMD_INDEX_VALID |
   4725   1.1    bouyer 	    sc->last_status_idx);
   4726   1.1    bouyer 
   4727   1.1    bouyer 	val = REG_RD(sc, BNX_HC_COMMAND);
   4728   1.1    bouyer 	REG_WR(sc, BNX_HC_COMMAND, val | BNX_HC_COMMAND_COAL_NOW);
   4729   1.1    bouyer }
   4730   1.1    bouyer 
   4731   1.1    bouyer /****************************************************************************/
   4732   1.1    bouyer /* Handles controller initialization.                                       */
   4733   1.1    bouyer /*                                                                          */
   4734   1.1    bouyer /****************************************************************************/
   4735   1.1    bouyer int
   4736   1.1    bouyer bnx_init(struct ifnet *ifp)
   4737   1.1    bouyer {
   4738   1.1    bouyer 	struct bnx_softc	*sc = ifp->if_softc;
   4739   1.1    bouyer 	u_int32_t		ether_mtu;
   4740   1.1    bouyer 	int			s, error = 0;
   4741   1.1    bouyer 
   4742  1.12     perry 	DBPRINT(sc, BNX_VERBOSE_RESET, "Entering %s()\n", __func__);
   4743   1.1    bouyer 
   4744   1.1    bouyer 	s = splnet();
   4745   1.1    bouyer 
   4746  1.14    dyoung 	bnx_stop(ifp, 0);
   4747   1.1    bouyer 
   4748   1.1    bouyer 	if ((error = bnx_reset(sc, BNX_DRV_MSG_CODE_RESET)) != 0) {
   4749  1.29    bouyer 		aprint_error_dev(sc->bnx_dev,
   4750  1.29    bouyer 		    "Controller reset failed!\n");
   4751   1.4    bouyer 		goto bnx_init_exit;
   4752   1.1    bouyer 	}
   4753   1.1    bouyer 
   4754   1.1    bouyer 	if ((error = bnx_chipinit(sc)) != 0) {
   4755  1.29    bouyer 		aprint_error_dev(sc->bnx_dev,
   4756  1.29    bouyer 		    "Controller initialization failed!\n");
   4757   1.4    bouyer 		goto bnx_init_exit;
   4758   1.1    bouyer 	}
   4759   1.1    bouyer 
   4760   1.1    bouyer 	if ((error = bnx_blockinit(sc)) != 0) {
   4761  1.29    bouyer 		aprint_error_dev(sc->bnx_dev,
   4762  1.29    bouyer 		    "Block initialization failed!\n");
   4763   1.4    bouyer 		goto bnx_init_exit;
   4764   1.1    bouyer 	}
   4765   1.1    bouyer 
   4766   1.1    bouyer 	/* Calculate and program the Ethernet MRU size. */
   4767   1.5    bouyer 	if (ifp->if_mtu <= ETHERMTU) {
   4768   1.5    bouyer 		ether_mtu = BNX_MAX_STD_ETHER_MTU_VLAN;
   4769   1.5    bouyer 		sc->mbuf_alloc_size = MCLBYTES;
   4770   1.5    bouyer 	} else {
   4771   1.5    bouyer 		ether_mtu = BNX_MAX_JUMBO_ETHER_MTU_VLAN;
   4772  1.30    bouyer 		sc->mbuf_alloc_size = BNX_MAX_JUMBO_MRU;
   4773   1.5    bouyer 	}
   4774   1.5    bouyer 
   4775   1.1    bouyer 
   4776   1.1    bouyer 	DBPRINT(sc, BNX_INFO, "%s(): setting MRU = %d\n",
   4777  1.12     perry 	    __func__, ether_mtu);
   4778   1.1    bouyer 
   4779   1.1    bouyer 	/*
   4780   1.1    bouyer 	 * Program the MRU and enable Jumbo frame
   4781   1.1    bouyer 	 * support.
   4782   1.1    bouyer 	 */
   4783   1.1    bouyer 	REG_WR(sc, BNX_EMAC_RX_MTU_SIZE, ether_mtu |
   4784   1.1    bouyer 		BNX_EMAC_RX_MTU_SIZE_JUMBO_ENA);
   4785   1.1    bouyer 
   4786   1.1    bouyer 	/* Calculate the RX Ethernet frame size for rx_bd's. */
   4787   1.1    bouyer 	sc->max_frame_size = sizeof(struct l2_fhdr) + 2 + ether_mtu + 8;
   4788   1.1    bouyer 
   4789   1.1    bouyer 	DBPRINT(sc, BNX_INFO, "%s(): mclbytes = %d, mbuf_alloc_size = %d, "
   4790  1.12     perry 	    "max_frame_size = %d\n", __func__, (int)MCLBYTES,
   4791   1.1    bouyer 	    sc->mbuf_alloc_size, sc->max_frame_size);
   4792   1.1    bouyer 
   4793   1.1    bouyer 	/* Program appropriate promiscuous/multicast filtering. */
   4794  1.29    bouyer 	bnx_iff(sc);
   4795   1.1    bouyer 
   4796   1.1    bouyer 	/* Init RX buffer descriptor chain. */
   4797   1.1    bouyer 	bnx_init_rx_chain(sc);
   4798   1.1    bouyer 
   4799   1.1    bouyer 	/* Init TX buffer descriptor chain. */
   4800   1.1    bouyer 	bnx_init_tx_chain(sc);
   4801   1.1    bouyer 
   4802   1.1    bouyer 	/* Enable host interrupts. */
   4803   1.1    bouyer 	bnx_enable_intr(sc);
   4804   1.1    bouyer 
   4805  1.16    dyoung 	if ((error = ether_mediachange(ifp)) != 0)
   4806  1.14    dyoung 		goto bnx_init_exit;
   4807   1.1    bouyer 
   4808   1.1    bouyer 	ifp->if_flags |= IFF_RUNNING;
   4809   1.1    bouyer 	ifp->if_flags &= ~IFF_OACTIVE;
   4810   1.1    bouyer 
   4811   1.1    bouyer 	callout_reset(&sc->bnx_timeout, hz, bnx_tick, sc);
   4812   1.1    bouyer 
   4813   1.4    bouyer bnx_init_exit:
   4814  1.12     perry 	DBPRINT(sc, BNX_VERBOSE_RESET, "Exiting %s()\n", __func__);
   4815   1.1    bouyer 
   4816   1.1    bouyer 	splx(s);
   4817   1.1    bouyer 
   4818   1.1    bouyer 	return(error);
   4819   1.1    bouyer }
   4820   1.1    bouyer 
   4821   1.1    bouyer /****************************************************************************/
   4822   1.1    bouyer /* Encapsultes an mbuf cluster into the tx_bd chain structure and makes the */
   4823   1.1    bouyer /* memory visible to the controller.                                        */
   4824   1.1    bouyer /*                                                                          */
   4825   1.1    bouyer /* Returns:                                                                 */
   4826   1.1    bouyer /*   0 for success, positive value for failure.                             */
   4827   1.1    bouyer /****************************************************************************/
   4828   1.1    bouyer int
   4829  1.29    bouyer bnx_tx_encap(struct bnx_softc *sc, struct mbuf *m)
   4830   1.1    bouyer {
   4831  1.29    bouyer 	struct bnx_pkt		*pkt;
   4832   1.1    bouyer 	bus_dmamap_t		map;
   4833   1.4    bouyer 	struct tx_bd		*txbd = NULL;
   4834   1.4    bouyer 	u_int16_t		vlan_tag = 0, flags = 0;
   4835   1.4    bouyer 	u_int16_t		chain_prod, prod;
   4836   1.4    bouyer #ifdef BNX_DEBUG
   4837   1.4    bouyer 	u_int16_t		debug_prod;
   4838   1.4    bouyer #endif
   4839   1.4    bouyer 	u_int32_t		addr, prod_bseq;
   4840  1.29    bouyer 	int			i, error;
   4841   1.1    bouyer 	struct m_tag		*mtag;
   4842   1.1    bouyer 
   4843  1.29    bouyer again:
   4844  1.29    bouyer 	mutex_enter(&sc->tx_pkt_mtx);
   4845  1.29    bouyer 	pkt = TAILQ_FIRST(&sc->tx_free_pkts);
   4846  1.29    bouyer 	if (pkt == NULL) {
   4847  1.29    bouyer 		if (!ISSET(sc->bnx_ec.ec_if.if_flags, IFF_UP)) {
   4848  1.29    bouyer 			mutex_exit(&sc->tx_pkt_mtx);
   4849  1.29    bouyer 			return ENETDOWN;
   4850  1.29    bouyer 		}
   4851  1.29    bouyer 		if (sc->tx_pkt_count <= TOTAL_TX_BD) {
   4852  1.29    bouyer 			mutex_exit(&sc->tx_pkt_mtx);
   4853  1.29    bouyer 			if (bnx_alloc_pkts(sc) == 0)
   4854  1.29    bouyer 				goto again;
   4855  1.29    bouyer 		} else {
   4856  1.29    bouyer 			mutex_exit(&sc->tx_pkt_mtx);
   4857  1.29    bouyer 		}
   4858  1.29    bouyer 		return (ENOMEM);
   4859  1.29    bouyer 	}
   4860  1.29    bouyer 	TAILQ_REMOVE(&sc->tx_free_pkts, pkt, pkt_entry);
   4861  1.29    bouyer 	mutex_exit(&sc->tx_pkt_mtx);
   4862   1.4    bouyer 
   4863   1.1    bouyer 	/* Transfer any checksum offload flags to the bd. */
   4864  1.29    bouyer 	if (m->m_pkthdr.csum_flags) {
   4865  1.29    bouyer 		if (m->m_pkthdr.csum_flags & M_CSUM_IPv4)
   4866   1.4    bouyer 			flags |= TX_BD_FLAGS_IP_CKSUM;
   4867  1.29    bouyer 		if (m->m_pkthdr.csum_flags &
   4868   1.1    bouyer 		    (M_CSUM_TCPv4 | M_CSUM_UDPv4))
   4869   1.4    bouyer 			flags |= TX_BD_FLAGS_TCP_UDP_CKSUM;
   4870   1.1    bouyer 	}
   4871   1.1    bouyer 
   4872   1.1    bouyer 	/* Transfer any VLAN tags to the bd. */
   4873  1.29    bouyer 	mtag = VLAN_OUTPUT_TAG(&sc->bnx_ec, m);
   4874   1.4    bouyer 	if (mtag != NULL) {
   4875   1.4    bouyer 		flags |= TX_BD_FLAGS_VLAN_TAG;
   4876   1.4    bouyer 		vlan_tag = VLAN_TAG_VALUE(mtag);
   4877   1.4    bouyer 	}
   4878   1.1    bouyer 
   4879   1.1    bouyer 	/* Map the mbuf into DMAable memory. */
   4880   1.4    bouyer 	prod = sc->tx_prod;
   4881   1.4    bouyer 	chain_prod = TX_CHAIN_IDX(prod);
   4882  1.29    bouyer 	map = pkt->pkt_dmamap;
   4883   1.4    bouyer 
   4884   1.1    bouyer 	/* Map the mbuf into our DMA address space. */
   4885  1.29    bouyer 	error = bus_dmamap_load_mbuf(sc->bnx_dmatag, map, m, BUS_DMA_NOWAIT);
   4886   1.4    bouyer 	if (error != 0) {
   4887  1.13    dyoung 		aprint_error_dev(sc->bnx_dev,
   4888  1.13    dyoung 		    "Error mapping mbuf into TX chain!\n");
   4889  1.29    bouyer 		sc->tx_dma_map_failures++;
   4890  1.29    bouyer 		goto maperr;
   4891   1.1    bouyer 	}
   4892   1.1    bouyer 	bus_dmamap_sync(sc->bnx_dmatag, map, 0, map->dm_mapsize,
   4893   1.1    bouyer 	    BUS_DMASYNC_PREWRITE);
   4894  1.29    bouyer         /* Make sure there's room in the chain */
   4895  1.29    bouyer 	if (map->dm_nsegs > (sc->max_tx_bd - sc->used_tx_bd))
   4896  1.29    bouyer                 goto nospace;
   4897   1.4    bouyer 
   4898   1.4    bouyer 	/* prod points to an empty tx_bd at this point. */
   4899   1.4    bouyer 	prod_bseq = sc->tx_prod_bseq;
   4900   1.4    bouyer #ifdef BNX_DEBUG
   4901   1.4    bouyer 	debug_prod = chain_prod;
   4902   1.4    bouyer #endif
   4903   1.4    bouyer 	DBPRINT(sc, BNX_INFO_SEND,
   4904   1.4    bouyer 		"%s(): Start: prod = 0x%04X, chain_prod = %04X, "
   4905   1.4    bouyer 		"prod_bseq = 0x%08X\n",
   4906  1.29    bouyer 		__func__, prod, chain_prod, prod_bseq);
   4907   1.1    bouyer 
   4908   1.1    bouyer 	/*
   4909   1.4    bouyer 	 * Cycle through each mbuf segment that makes up
   4910   1.4    bouyer 	 * the outgoing frame, gathering the mapping info
   4911   1.4    bouyer 	 * for that segment and creating a tx_bd for the
   4912   1.4    bouyer 	 * mbuf.
   4913   1.4    bouyer 	 */
   4914   1.4    bouyer 	for (i = 0; i < map->dm_nsegs ; i++) {
   4915   1.4    bouyer 		chain_prod = TX_CHAIN_IDX(prod);
   4916   1.4    bouyer 		txbd = &sc->tx_bd_chain[TX_PAGE(chain_prod)][TX_IDX(chain_prod)];
   4917   1.4    bouyer 
   4918  1.37       jym 		addr = (u_int32_t)map->dm_segs[i].ds_addr;
   4919  1.37       jym 		txbd->tx_bd_haddr_lo = addr;
   4920   1.4    bouyer 		addr = (u_int32_t)((u_int64_t)map->dm_segs[i].ds_addr >> 32);
   4921  1.37       jym 		txbd->tx_bd_haddr_hi = addr;
   4922  1.37       jym 		txbd->tx_bd_mss_nbytes = map->dm_segs[i].ds_len;
   4923  1.37       jym 		txbd->tx_bd_vlan_tag = vlan_tag;
   4924  1.37       jym 		txbd->tx_bd_flags = flags;
   4925   1.4    bouyer 		prod_bseq += map->dm_segs[i].ds_len;
   4926   1.4    bouyer 		if (i == 0)
   4927  1.37       jym 			txbd->tx_bd_flags |= TX_BD_FLAGS_START;
   4928   1.4    bouyer 		prod = NEXT_TX_BD(prod);
   4929   1.4    bouyer 	}
   4930   1.4    bouyer 	/* Set the END flag on the last TX buffer descriptor. */
   4931  1.37       jym 	txbd->tx_bd_flags |= TX_BD_FLAGS_END;
   4932   1.4    bouyer 
   4933  1.29    bouyer 	DBRUN(BNX_INFO_SEND, bnx_dump_tx_chain(sc, debug_prod, map->dm_nsegs));
   4934   1.4    bouyer 
   4935   1.4    bouyer 	DBPRINT(sc, BNX_INFO_SEND,
   4936   1.4    bouyer 		"%s(): End: prod = 0x%04X, chain_prod = %04X, "
   4937   1.4    bouyer 		"prod_bseq = 0x%08X\n",
   4938  1.12     perry 		__func__, prod, chain_prod, prod_bseq);
   4939   1.4    bouyer 
   4940  1.29    bouyer 	pkt->pkt_mbuf = m;
   4941  1.29    bouyer 	pkt->pkt_end_desc = chain_prod;
   4942  1.29    bouyer 
   4943  1.29    bouyer 	mutex_enter(&sc->tx_pkt_mtx);
   4944  1.29    bouyer 	TAILQ_INSERT_TAIL(&sc->tx_used_pkts, pkt, pkt_entry);
   4945  1.29    bouyer 	mutex_exit(&sc->tx_pkt_mtx);
   4946  1.29    bouyer 
   4947   1.4    bouyer 	sc->used_tx_bd += map->dm_nsegs;
   4948  1.29    bouyer 	DBPRINT(sc, BNX_INFO_SEND, "%s(%d) used_tx_bd %d\n",
   4949  1.29    bouyer 		__FILE__, __LINE__, sc->used_tx_bd);
   4950   1.1    bouyer 
   4951  1.29    bouyer 	/* Update some debug statistics counters */
   4952   1.1    bouyer 	DBRUNIF((sc->used_tx_bd > sc->tx_hi_watermark),
   4953   1.1    bouyer 	    sc->tx_hi_watermark = sc->used_tx_bd);
   4954  1.29    bouyer 	DBRUNIF(sc->used_tx_bd == sc->max_tx_bd, sc->tx_full_count++);
   4955   1.1    bouyer 	DBRUNIF(1, sc->tx_mbuf_alloc++);
   4956   1.1    bouyer 
   4957   1.4    bouyer 	DBRUN(BNX_VERBOSE_SEND, bnx_dump_tx_mbuf_chain(sc, chain_prod,
   4958  1.29    bouyer 	    map->dm_nsegs));
   4959   1.1    bouyer 
   4960   1.4    bouyer 	/* prod points to the next free tx_bd at this point. */
   4961   1.4    bouyer 	sc->tx_prod = prod;
   4962   1.4    bouyer 	sc->tx_prod_bseq = prod_bseq;
   4963   1.1    bouyer 
   4964  1.29    bouyer 	return (0);
   4965  1.29    bouyer 
   4966  1.29    bouyer 
   4967  1.29    bouyer nospace:
   4968  1.29    bouyer 	bus_dmamap_unload(sc->bnx_dmatag, map);
   4969  1.29    bouyer maperr:
   4970  1.29    bouyer 	mutex_enter(&sc->tx_pkt_mtx);
   4971  1.29    bouyer 	TAILQ_INSERT_TAIL(&sc->tx_free_pkts, pkt, pkt_entry);
   4972  1.29    bouyer 	mutex_exit(&sc->tx_pkt_mtx);
   4973  1.29    bouyer 
   4974  1.29    bouyer 	return (ENOMEM);
   4975   1.1    bouyer }
   4976   1.1    bouyer 
   4977   1.1    bouyer /****************************************************************************/
   4978   1.1    bouyer /* Main transmit routine.                                                   */
   4979   1.1    bouyer /*                                                                          */
   4980   1.1    bouyer /* Returns:                                                                 */
   4981   1.1    bouyer /*   Nothing.                                                               */
   4982   1.1    bouyer /****************************************************************************/
   4983   1.1    bouyer void
   4984   1.1    bouyer bnx_start(struct ifnet *ifp)
   4985   1.1    bouyer {
   4986   1.1    bouyer 	struct bnx_softc	*sc = ifp->if_softc;
   4987   1.1    bouyer 	struct mbuf		*m_head = NULL;
   4988   1.1    bouyer 	int			count = 0;
   4989   1.1    bouyer 	u_int16_t		tx_prod, tx_chain_prod;
   4990   1.1    bouyer 
   4991   1.1    bouyer 	/* If there's no link or the transmit queue is empty then just exit. */
   4992  1.16    dyoung 	if ((ifp->if_flags & (IFF_OACTIVE|IFF_RUNNING)) != IFF_RUNNING) {
   4993   1.1    bouyer 		DBPRINT(sc, BNX_INFO_SEND,
   4994  1.16    dyoung 		    "%s(): output active or device not running.\n", __func__);
   4995   1.4    bouyer 		goto bnx_start_exit;
   4996   1.1    bouyer 	}
   4997   1.1    bouyer 
   4998   1.1    bouyer 	/* prod points to the next free tx_bd. */
   4999   1.1    bouyer 	tx_prod = sc->tx_prod;
   5000   1.1    bouyer 	tx_chain_prod = TX_CHAIN_IDX(tx_prod);
   5001   1.1    bouyer 
   5002   1.1    bouyer 	DBPRINT(sc, BNX_INFO_SEND, "%s(): Start: tx_prod = 0x%04X, "
   5003  1.29    bouyer 	    "tx_chain_prod = %04X, tx_prod_bseq = 0x%08X, "
   5004  1.29    bouyer 	    "used_tx %d max_tx %d\n",
   5005  1.29    bouyer 	    __func__, tx_prod, tx_chain_prod, sc->tx_prod_bseq,
   5006  1.29    bouyer 	    sc->used_tx_bd, sc->max_tx_bd);
   5007   1.1    bouyer 
   5008   1.4    bouyer 	/*
   5009  1.29    bouyer 	 * Keep adding entries while there is space in the ring.
   5010   1.4    bouyer 	 */
   5011  1.29    bouyer 	while (sc->used_tx_bd < sc->max_tx_bd) {
   5012   1.1    bouyer 		/* Check for any frames to send. */
   5013   1.1    bouyer 		IFQ_POLL(&ifp->if_snd, m_head);
   5014   1.1    bouyer 		if (m_head == NULL)
   5015   1.1    bouyer 			break;
   5016   1.1    bouyer 
   5017   1.1    bouyer 		/*
   5018   1.1    bouyer 		 * Pack the data into the transmit ring. If we
   5019   1.4    bouyer 		 * don't have room, set the OACTIVE flag to wait
   5020   1.4    bouyer 		 * for the NIC to drain the chain.
   5021   1.1    bouyer 		 */
   5022  1.29    bouyer 		if (bnx_tx_encap(sc, m_head)) {
   5023   1.1    bouyer 			ifp->if_flags |= IFF_OACTIVE;
   5024   1.1    bouyer 			DBPRINT(sc, BNX_INFO_SEND, "TX chain is closed for "
   5025   1.1    bouyer 			    "business! Total tx_bd used = %d\n",
   5026   1.1    bouyer 			    sc->used_tx_bd);
   5027   1.1    bouyer 			break;
   5028   1.1    bouyer 		}
   5029   1.1    bouyer 
   5030   1.1    bouyer 		IFQ_DEQUEUE(&ifp->if_snd, m_head);
   5031   1.1    bouyer 		count++;
   5032   1.1    bouyer 
   5033   1.1    bouyer 		/* Send a copy of the frame to any BPF listeners. */
   5034  1.33     joerg 		bpf_mtap(ifp, m_head);
   5035   1.1    bouyer 	}
   5036   1.1    bouyer 
   5037   1.1    bouyer 	if (count == 0) {
   5038   1.1    bouyer 		/* no packets were dequeued */
   5039   1.1    bouyer 		DBPRINT(sc, BNX_VERBOSE_SEND,
   5040  1.12     perry 		    "%s(): No packets were dequeued\n", __func__);
   5041   1.4    bouyer 		goto bnx_start_exit;
   5042   1.1    bouyer 	}
   5043   1.1    bouyer 
   5044   1.1    bouyer 	/* Update the driver's counters. */
   5045   1.4    bouyer 	tx_chain_prod = TX_CHAIN_IDX(sc->tx_prod);
   5046   1.1    bouyer 
   5047   1.1    bouyer 	DBPRINT(sc, BNX_INFO_SEND, "%s(): End: tx_prod = 0x%04X, tx_chain_prod "
   5048  1.12     perry 	    "= 0x%04X, tx_prod_bseq = 0x%08X\n", __func__, tx_prod,
   5049   1.4    bouyer 	    tx_chain_prod, sc->tx_prod_bseq);
   5050   1.1    bouyer 
   5051   1.1    bouyer 	/* Start the transmit. */
   5052   1.1    bouyer 	REG_WR16(sc, MB_TX_CID_ADDR + BNX_L2CTX_TX_HOST_BIDX, sc->tx_prod);
   5053   1.1    bouyer 	REG_WR(sc, MB_TX_CID_ADDR + BNX_L2CTX_TX_HOST_BSEQ, sc->tx_prod_bseq);
   5054   1.1    bouyer 
   5055   1.1    bouyer 	/* Set the tx timeout. */
   5056   1.1    bouyer 	ifp->if_timer = BNX_TX_TIMEOUT;
   5057   1.1    bouyer 
   5058   1.4    bouyer bnx_start_exit:
   5059   1.1    bouyer 	return;
   5060   1.1    bouyer }
   5061   1.1    bouyer 
   5062   1.1    bouyer /****************************************************************************/
   5063   1.1    bouyer /* Handles any IOCTL calls from the operating system.                       */
   5064   1.1    bouyer /*                                                                          */
   5065   1.1    bouyer /* Returns:                                                                 */
   5066   1.1    bouyer /*   0 for success, positive value for failure.                             */
   5067   1.1    bouyer /****************************************************************************/
   5068   1.1    bouyer int
   5069   1.3  christos bnx_ioctl(struct ifnet *ifp, u_long command, void *data)
   5070   1.1    bouyer {
   5071   1.1    bouyer 	struct bnx_softc	*sc = ifp->if_softc;
   5072   1.1    bouyer 	struct ifreq		*ifr = (struct ifreq *) data;
   5073  1.20    mhitch 	struct mii_data		*mii = &sc->bnx_mii;
   5074   1.1    bouyer 	int			s, error = 0;
   5075   1.1    bouyer 
   5076   1.1    bouyer 	s = splnet();
   5077   1.1    bouyer 
   5078   1.1    bouyer 	switch (command) {
   5079   1.1    bouyer 	case SIOCSIFFLAGS:
   5080  1.24    dyoung 		if ((error = ifioctl_common(ifp, command, data)) != 0)
   5081  1.24    dyoung 			break;
   5082  1.24    dyoung 		/* XXX set an ifflags callback and let ether_ioctl
   5083  1.24    dyoung 		 * handle all of this.
   5084  1.24    dyoung 		 */
   5085  1.29    bouyer 		if (ifp->if_flags & IFF_UP) {
   5086  1.29    bouyer 			if (ifp->if_flags & IFF_RUNNING)
   5087  1.29    bouyer 				error = ENETRESET;
   5088  1.29    bouyer 			else
   5089  1.29    bouyer 				bnx_init(ifp);
   5090  1.29    bouyer 		} else if (ifp->if_flags & IFF_RUNNING)
   5091  1.14    dyoung 			bnx_stop(ifp, 1);
   5092   1.1    bouyer 		break;
   5093   1.1    bouyer 
   5094   1.1    bouyer 	case SIOCSIFMEDIA:
   5095   1.1    bouyer 	case SIOCGIFMEDIA:
   5096   1.1    bouyer 		DBPRINT(sc, BNX_VERBOSE, "bnx_phy_flags = 0x%08X\n",
   5097   1.1    bouyer 		    sc->bnx_phy_flags);
   5098   1.1    bouyer 
   5099  1.20    mhitch 		error = ifmedia_ioctl(ifp, ifr, &mii->mii_media, command);
   5100   1.1    bouyer 		break;
   5101   1.1    bouyer 
   5102   1.1    bouyer 	default:
   5103  1.29    bouyer 		error = ether_ioctl(ifp, command, data);
   5104  1.29    bouyer 	}
   5105  1.18    dyoung 
   5106  1.29    bouyer 	if (error == ENETRESET) {
   5107  1.29    bouyer 		if (ifp->if_flags & IFF_RUNNING)
   5108  1.29    bouyer 			bnx_iff(sc);
   5109  1.29    bouyer 		error = 0;
   5110   1.1    bouyer 	}
   5111   1.1    bouyer 
   5112   1.1    bouyer 	splx(s);
   5113   1.1    bouyer 	return (error);
   5114   1.1    bouyer }
   5115   1.1    bouyer 
   5116   1.1    bouyer /****************************************************************************/
   5117   1.1    bouyer /* Transmit timeout handler.                                                */
   5118   1.1    bouyer /*                                                                          */
   5119   1.1    bouyer /* Returns:                                                                 */
   5120   1.1    bouyer /*   Nothing.                                                               */
   5121   1.1    bouyer /****************************************************************************/
   5122   1.1    bouyer void
   5123   1.1    bouyer bnx_watchdog(struct ifnet *ifp)
   5124   1.1    bouyer {
   5125   1.1    bouyer 	struct bnx_softc	*sc = ifp->if_softc;
   5126   1.1    bouyer 
   5127   1.1    bouyer 	DBRUN(BNX_WARN_SEND, bnx_dump_driver_state(sc);
   5128   1.1    bouyer 	    bnx_dump_status_block(sc));
   5129  1.29    bouyer 	/*
   5130  1.29    bouyer 	 * If we are in this routine because of pause frames, then
   5131  1.29    bouyer 	 * don't reset the hardware.
   5132  1.29    bouyer 	 */
   5133  1.29    bouyer 	if (REG_RD(sc, BNX_EMAC_TX_STATUS) & BNX_EMAC_TX_STATUS_XOFFED)
   5134  1.29    bouyer 		return;
   5135   1.1    bouyer 
   5136  1.13    dyoung 	aprint_error_dev(sc->bnx_dev, "Watchdog timeout -- resetting!\n");
   5137   1.1    bouyer 
   5138   1.1    bouyer 	/* DBRUN(BNX_FATAL, bnx_breakpoint(sc)); */
   5139   1.1    bouyer 
   5140   1.1    bouyer 	bnx_init(ifp);
   5141   1.1    bouyer 
   5142   1.1    bouyer 	ifp->if_oerrors++;
   5143   1.1    bouyer }
   5144   1.1    bouyer 
   5145   1.1    bouyer /*
   5146   1.1    bouyer  * Interrupt handler.
   5147   1.1    bouyer  */
   5148   1.1    bouyer /****************************************************************************/
   5149   1.1    bouyer /* Main interrupt entry point.  Verifies that the controller generated the  */
   5150   1.1    bouyer /* interrupt and then calls a separate routine for handle the various       */
   5151   1.1    bouyer /* interrupt causes (PHY, TX, RX).                                          */
   5152   1.1    bouyer /*                                                                          */
   5153   1.1    bouyer /* Returns:                                                                 */
   5154   1.1    bouyer /*   0 for success, positive value for failure.                             */
   5155   1.1    bouyer /****************************************************************************/
   5156   1.1    bouyer int
   5157   1.1    bouyer bnx_intr(void *xsc)
   5158   1.1    bouyer {
   5159   1.1    bouyer 	struct bnx_softc	*sc;
   5160   1.1    bouyer 	struct ifnet		*ifp;
   5161   1.1    bouyer 	u_int32_t		status_attn_bits;
   5162  1.14    dyoung 	const struct status_block *sblk;
   5163   1.1    bouyer 
   5164   1.1    bouyer 	sc = xsc;
   5165  1.13    dyoung 
   5166  1.15    dyoung 	ifp = &sc->bnx_ec.ec_if;
   5167   1.1    bouyer 
   5168  1.42    dyoung 	if (!device_is_active(sc->bnx_dev) ||
   5169  1.42    dyoung 	    (ifp->if_flags & IFF_RUNNING) == 0)
   5170  1.42    dyoung 		return 0;
   5171  1.42    dyoung 
   5172   1.1    bouyer 	DBRUNIF(1, sc->interrupts_generated++);
   5173   1.1    bouyer 
   5174   1.1    bouyer 	bus_dmamap_sync(sc->bnx_dmatag, sc->status_map, 0,
   5175   1.1    bouyer 	    sc->status_map->dm_mapsize, BUS_DMASYNC_POSTWRITE);
   5176   1.1    bouyer 
   5177   1.1    bouyer 	/*
   5178   1.1    bouyer 	 * If the hardware status block index
   5179   1.1    bouyer 	 * matches the last value read by the
   5180   1.1    bouyer 	 * driver and we haven't asserted our
   5181   1.1    bouyer 	 * interrupt then there's nothing to do.
   5182   1.1    bouyer 	 */
   5183   1.1    bouyer 	if ((sc->status_block->status_idx == sc->last_status_idx) &&
   5184   1.1    bouyer 	    (REG_RD(sc, BNX_PCICFG_MISC_STATUS) &
   5185   1.1    bouyer 	    BNX_PCICFG_MISC_STATUS_INTA_VALUE))
   5186   1.1    bouyer 		return (0);
   5187   1.1    bouyer 
   5188   1.1    bouyer 	/* Ack the interrupt and stop others from occuring. */
   5189   1.1    bouyer 	REG_WR(sc, BNX_PCICFG_INT_ACK_CMD,
   5190   1.1    bouyer 	    BNX_PCICFG_INT_ACK_CMD_USE_INT_HC_PARAM |
   5191   1.1    bouyer 	    BNX_PCICFG_INT_ACK_CMD_MASK_INT);
   5192   1.1    bouyer 
   5193   1.1    bouyer 	/* Keep processing data as long as there is work to do. */
   5194   1.1    bouyer 	for (;;) {
   5195  1.14    dyoung 		sblk = sc->status_block;
   5196  1.14    dyoung 		status_attn_bits = sblk->status_attn_bits;
   5197   1.1    bouyer 
   5198   1.1    bouyer 		DBRUNIF(DB_RANDOMTRUE(bnx_debug_unexpected_attention),
   5199   1.1    bouyer 		    aprint_debug("Simulating unexpected status attention bit set.");
   5200   1.1    bouyer 		    status_attn_bits = status_attn_bits |
   5201   1.1    bouyer 		    STATUS_ATTN_BITS_PARITY_ERROR);
   5202   1.1    bouyer 
   5203   1.1    bouyer 		/* Was it a link change interrupt? */
   5204   1.1    bouyer 		if ((status_attn_bits & STATUS_ATTN_BITS_LINK_STATE) !=
   5205  1.14    dyoung 		    (sblk->status_attn_bits_ack &
   5206   1.1    bouyer 		    STATUS_ATTN_BITS_LINK_STATE))
   5207   1.1    bouyer 			bnx_phy_intr(sc);
   5208   1.1    bouyer 
   5209   1.1    bouyer 		/* If any other attention is asserted then the chip is toast. */
   5210   1.1    bouyer 		if (((status_attn_bits & ~STATUS_ATTN_BITS_LINK_STATE) !=
   5211  1.14    dyoung 		    (sblk->status_attn_bits_ack &
   5212   1.1    bouyer 		    ~STATUS_ATTN_BITS_LINK_STATE))) {
   5213   1.1    bouyer 			DBRUN(1, sc->unexpected_attentions++);
   5214   1.1    bouyer 
   5215  1.29    bouyer 			BNX_PRINTF(sc,
   5216  1.13    dyoung 			    "Fatal attention detected: 0x%08X\n",
   5217  1.14    dyoung 			    sblk->status_attn_bits);
   5218   1.1    bouyer 
   5219   1.1    bouyer 			DBRUN(BNX_FATAL,
   5220   1.1    bouyer 			    if (bnx_debug_unexpected_attention == 0)
   5221   1.1    bouyer 			    bnx_breakpoint(sc));
   5222   1.1    bouyer 
   5223   1.1    bouyer 			bnx_init(ifp);
   5224   1.1    bouyer 			return (1);
   5225   1.1    bouyer 		}
   5226   1.1    bouyer 
   5227   1.1    bouyer 		/* Check for any completed RX frames. */
   5228  1.14    dyoung 		if (sblk->status_rx_quick_consumer_index0 !=
   5229   1.1    bouyer 		    sc->hw_rx_cons)
   5230   1.1    bouyer 			bnx_rx_intr(sc);
   5231   1.1    bouyer 
   5232   1.1    bouyer 		/* Check for any completed TX frames. */
   5233  1.14    dyoung 		if (sblk->status_tx_quick_consumer_index0 !=
   5234   1.1    bouyer 		    sc->hw_tx_cons)
   5235   1.1    bouyer 			bnx_tx_intr(sc);
   5236   1.1    bouyer 
   5237   1.1    bouyer 		/* Save the status block index value for use during the
   5238   1.1    bouyer 		 * next interrupt.
   5239   1.1    bouyer 		 */
   5240  1.14    dyoung 		sc->last_status_idx = sblk->status_idx;
   5241   1.1    bouyer 
   5242   1.1    bouyer 		/* Prevent speculative reads from getting ahead of the
   5243   1.1    bouyer 		 * status block.
   5244   1.1    bouyer 		 */
   5245   1.1    bouyer 		bus_space_barrier(sc->bnx_btag, sc->bnx_bhandle, 0, 0,
   5246   1.1    bouyer 		    BUS_SPACE_BARRIER_READ);
   5247   1.1    bouyer 
   5248   1.1    bouyer 		/* If there's no work left then exit the isr. */
   5249  1.14    dyoung 		if ((sblk->status_rx_quick_consumer_index0 ==
   5250   1.1    bouyer 		    sc->hw_rx_cons) &&
   5251  1.14    dyoung 		    (sblk->status_tx_quick_consumer_index0 ==
   5252   1.1    bouyer 		    sc->hw_tx_cons))
   5253   1.1    bouyer 			break;
   5254   1.1    bouyer 	}
   5255   1.1    bouyer 
   5256   1.1    bouyer 	bus_dmamap_sync(sc->bnx_dmatag, sc->status_map, 0,
   5257   1.1    bouyer 	    sc->status_map->dm_mapsize, BUS_DMASYNC_PREWRITE);
   5258   1.1    bouyer 
   5259   1.1    bouyer 	/* Re-enable interrupts. */
   5260   1.1    bouyer 	REG_WR(sc, BNX_PCICFG_INT_ACK_CMD,
   5261   1.1    bouyer 	    BNX_PCICFG_INT_ACK_CMD_INDEX_VALID | sc->last_status_idx |
   5262   1.4    bouyer 	    BNX_PCICFG_INT_ACK_CMD_MASK_INT);
   5263   1.1    bouyer 	REG_WR(sc, BNX_PCICFG_INT_ACK_CMD,
   5264   1.1    bouyer 	    BNX_PCICFG_INT_ACK_CMD_INDEX_VALID | sc->last_status_idx);
   5265   1.1    bouyer 
   5266   1.1    bouyer 	/* Handle any frames that arrived while handling the interrupt. */
   5267  1.16    dyoung 	if (!IFQ_IS_EMPTY(&ifp->if_snd))
   5268   1.1    bouyer 		bnx_start(ifp);
   5269   1.1    bouyer 
   5270   1.1    bouyer 	return (1);
   5271   1.1    bouyer }
   5272   1.1    bouyer 
   5273   1.1    bouyer /****************************************************************************/
   5274   1.1    bouyer /* Programs the various packet receive modes (broadcast and multicast).     */
   5275   1.1    bouyer /*                                                                          */
   5276   1.1    bouyer /* Returns:                                                                 */
   5277   1.1    bouyer /*   Nothing.                                                               */
   5278   1.1    bouyer /****************************************************************************/
   5279   1.1    bouyer void
   5280  1.29    bouyer bnx_iff(struct bnx_softc *sc)
   5281   1.1    bouyer {
   5282  1.15    dyoung 	struct ethercom		*ec = &sc->bnx_ec;
   5283   1.1    bouyer 	struct ifnet		*ifp = &ec->ec_if;
   5284   1.1    bouyer 	struct ether_multi	*enm;
   5285   1.1    bouyer 	struct ether_multistep	step;
   5286   1.4    bouyer 	u_int32_t		hashes[NUM_MC_HASH_REGISTERS] = { 0, 0, 0, 0, 0, 0, 0, 0 };
   5287   1.1    bouyer 	u_int32_t		rx_mode, sort_mode;
   5288   1.1    bouyer 	int			h, i;
   5289   1.1    bouyer 
   5290   1.1    bouyer 	/* Initialize receive mode default settings. */
   5291   1.1    bouyer 	rx_mode = sc->rx_mode & ~(BNX_EMAC_RX_MODE_PROMISCUOUS |
   5292   1.1    bouyer 	    BNX_EMAC_RX_MODE_KEEP_VLAN_TAG);
   5293   1.1    bouyer 	sort_mode = 1 | BNX_RPM_SORT_USER0_BC_EN;
   5294  1.29    bouyer 	ifp->if_flags &= ~IFF_ALLMULTI;
   5295   1.1    bouyer 
   5296   1.1    bouyer 	/*
   5297   1.1    bouyer 	 * ASF/IPMI/UMP firmware requires that VLAN tag stripping
   5298   1.1    bouyer 	 * be enbled.
   5299   1.1    bouyer 	 */
   5300   1.1    bouyer 	if (!(sc->bnx_flags & BNX_MFW_ENABLE_FLAG))
   5301   1.1    bouyer 		rx_mode |= BNX_EMAC_RX_MODE_KEEP_VLAN_TAG;
   5302   1.1    bouyer 
   5303   1.1    bouyer 	/*
   5304   1.1    bouyer 	 * Check for promiscuous, all multicast, or selected
   5305   1.1    bouyer 	 * multicast address filtering.
   5306   1.1    bouyer 	 */
   5307   1.1    bouyer 	if (ifp->if_flags & IFF_PROMISC) {
   5308   1.1    bouyer 		DBPRINT(sc, BNX_INFO, "Enabling promiscuous mode.\n");
   5309   1.1    bouyer 
   5310  1.29    bouyer 		ifp->if_flags |= IFF_ALLMULTI;
   5311   1.1    bouyer 		/* Enable promiscuous mode. */
   5312   1.1    bouyer 		rx_mode |= BNX_EMAC_RX_MODE_PROMISCUOUS;
   5313   1.1    bouyer 		sort_mode |= BNX_RPM_SORT_USER0_PROM_EN;
   5314   1.1    bouyer 	} else if (ifp->if_flags & IFF_ALLMULTI) {
   5315   1.1    bouyer allmulti:
   5316   1.1    bouyer 		DBPRINT(sc, BNX_INFO, "Enabling all multicast mode.\n");
   5317   1.1    bouyer 
   5318  1.29    bouyer 		ifp->if_flags |= IFF_ALLMULTI;
   5319   1.1    bouyer 		/* Enable all multicast addresses. */
   5320   1.1    bouyer 		for (i = 0; i < NUM_MC_HASH_REGISTERS; i++)
   5321   1.1    bouyer 			REG_WR(sc, BNX_EMAC_MULTICAST_HASH0 + (i * 4),
   5322   1.1    bouyer 			    0xffffffff);
   5323   1.1    bouyer 		sort_mode |= BNX_RPM_SORT_USER0_MC_EN;
   5324   1.1    bouyer 	} else {
   5325   1.1    bouyer 		/* Accept one or more multicast(s). */
   5326   1.1    bouyer 		DBPRINT(sc, BNX_INFO, "Enabling selective multicast mode.\n");
   5327   1.1    bouyer 
   5328   1.1    bouyer 		ETHER_FIRST_MULTI(step, ec, enm);
   5329   1.1    bouyer 		while (enm != NULL) {
   5330  1.22    cegger 			if (memcmp(enm->enm_addrlo, enm->enm_addrhi,
   5331   1.1    bouyer 			    ETHER_ADDR_LEN)) {
   5332   1.1    bouyer 				goto allmulti;
   5333   1.1    bouyer 			}
   5334   1.1    bouyer 			h = ether_crc32_le(enm->enm_addrlo, ETHER_ADDR_LEN) &
   5335   1.4    bouyer 			    0xFF;
   5336   1.4    bouyer 			hashes[(h & 0xE0) >> 5] |= 1 << (h & 0x1F);
   5337   1.1    bouyer 			ETHER_NEXT_MULTI(step, enm);
   5338   1.1    bouyer 		}
   5339   1.1    bouyer 
   5340   1.4    bouyer 		for (i = 0; i < NUM_MC_HASH_REGISTERS; i++)
   5341   1.1    bouyer 			REG_WR(sc, BNX_EMAC_MULTICAST_HASH0 + (i * 4),
   5342   1.1    bouyer 			    hashes[i]);
   5343   1.1    bouyer 
   5344   1.1    bouyer 		sort_mode |= BNX_RPM_SORT_USER0_MC_HSH_EN;
   5345   1.1    bouyer 	}
   5346   1.1    bouyer 
   5347   1.1    bouyer 	/* Only make changes if the recive mode has actually changed. */
   5348   1.1    bouyer 	if (rx_mode != sc->rx_mode) {
   5349   1.1    bouyer 		DBPRINT(sc, BNX_VERBOSE, "Enabling new receive mode: 0x%08X\n",
   5350   1.1    bouyer 		    rx_mode);
   5351   1.1    bouyer 
   5352   1.1    bouyer 		sc->rx_mode = rx_mode;
   5353   1.1    bouyer 		REG_WR(sc, BNX_EMAC_RX_MODE, rx_mode);
   5354   1.1    bouyer 	}
   5355   1.1    bouyer 
   5356   1.1    bouyer 	/* Disable and clear the exisitng sort before enabling a new sort. */
   5357   1.1    bouyer 	REG_WR(sc, BNX_RPM_SORT_USER0, 0x0);
   5358   1.1    bouyer 	REG_WR(sc, BNX_RPM_SORT_USER0, sort_mode);
   5359   1.1    bouyer 	REG_WR(sc, BNX_RPM_SORT_USER0, sort_mode | BNX_RPM_SORT_USER0_ENA);
   5360   1.1    bouyer }
   5361   1.1    bouyer 
   5362   1.1    bouyer /****************************************************************************/
   5363   1.1    bouyer /* Called periodically to updates statistics from the controllers           */
   5364   1.1    bouyer /* statistics block.                                                        */
   5365   1.1    bouyer /*                                                                          */
   5366   1.1    bouyer /* Returns:                                                                 */
   5367   1.1    bouyer /*   Nothing.                                                               */
   5368   1.1    bouyer /****************************************************************************/
   5369   1.1    bouyer void
   5370   1.1    bouyer bnx_stats_update(struct bnx_softc *sc)
   5371   1.1    bouyer {
   5372  1.15    dyoung 	struct ifnet		*ifp = &sc->bnx_ec.ec_if;
   5373   1.1    bouyer 	struct statistics_block	*stats;
   5374   1.1    bouyer 
   5375  1.12     perry 	DBPRINT(sc, BNX_EXCESSIVE, "Entering %s()\n", __func__);
   5376   1.1    bouyer 	bus_dmamap_sync(sc->bnx_dmatag, sc->status_map, 0, BNX_STATUS_BLK_SZ,
   5377   1.1    bouyer 	    BUS_DMASYNC_POSTREAD);
   5378   1.1    bouyer 
   5379   1.1    bouyer 	stats = (struct statistics_block *)sc->stats_block;
   5380   1.1    bouyer 
   5381   1.1    bouyer 	/*
   5382   1.1    bouyer 	 * Update the interface statistics from the
   5383   1.1    bouyer 	 * hardware statistics.
   5384   1.1    bouyer 	 */
   5385   1.1    bouyer 	ifp->if_collisions = (u_long)stats->stat_EtherStatsCollisions;
   5386   1.1    bouyer 
   5387   1.1    bouyer 	ifp->if_ierrors = (u_long)stats->stat_EtherStatsUndersizePkts +
   5388   1.1    bouyer 	    (u_long)stats->stat_EtherStatsOverrsizePkts +
   5389   1.1    bouyer 	    (u_long)stats->stat_IfInMBUFDiscards +
   5390   1.1    bouyer 	    (u_long)stats->stat_Dot3StatsAlignmentErrors +
   5391   1.1    bouyer 	    (u_long)stats->stat_Dot3StatsFCSErrors;
   5392   1.1    bouyer 
   5393   1.1    bouyer 	ifp->if_oerrors = (u_long)
   5394   1.1    bouyer 	    stats->stat_emac_tx_stat_dot3statsinternalmactransmiterrors +
   5395   1.1    bouyer 	    (u_long)stats->stat_Dot3StatsExcessiveCollisions +
   5396   1.1    bouyer 	    (u_long)stats->stat_Dot3StatsLateCollisions;
   5397   1.1    bouyer 
   5398   1.1    bouyer 	/*
   5399   1.1    bouyer 	 * Certain controllers don't report
   5400   1.1    bouyer 	 * carrier sense errors correctly.
   5401   1.1    bouyer 	 * See errata E11_5708CA0_1165.
   5402   1.1    bouyer 	 */
   5403   1.1    bouyer 	if (!(BNX_CHIP_NUM(sc) == BNX_CHIP_NUM_5706) &&
   5404   1.1    bouyer 	    !(BNX_CHIP_ID(sc) == BNX_CHIP_ID_5708_A0))
   5405   1.1    bouyer 		ifp->if_oerrors += (u_long) stats->stat_Dot3StatsCarrierSenseErrors;
   5406   1.1    bouyer 
   5407   1.1    bouyer 	/*
   5408   1.1    bouyer 	 * Update the sysctl statistics from the
   5409   1.1    bouyer 	 * hardware statistics.
   5410   1.1    bouyer 	 */
   5411   1.1    bouyer 	sc->stat_IfHCInOctets = ((u_int64_t)stats->stat_IfHCInOctets_hi << 32) +
   5412   1.1    bouyer 	    (u_int64_t) stats->stat_IfHCInOctets_lo;
   5413   1.1    bouyer 
   5414   1.1    bouyer 	sc->stat_IfHCInBadOctets =
   5415   1.1    bouyer 	    ((u_int64_t) stats->stat_IfHCInBadOctets_hi << 32) +
   5416   1.1    bouyer 	    (u_int64_t) stats->stat_IfHCInBadOctets_lo;
   5417   1.1    bouyer 
   5418   1.1    bouyer 	sc->stat_IfHCOutOctets =
   5419   1.1    bouyer 	    ((u_int64_t) stats->stat_IfHCOutOctets_hi << 32) +
   5420   1.1    bouyer 	    (u_int64_t) stats->stat_IfHCOutOctets_lo;
   5421   1.1    bouyer 
   5422   1.1    bouyer 	sc->stat_IfHCOutBadOctets =
   5423   1.1    bouyer 	    ((u_int64_t) stats->stat_IfHCOutBadOctets_hi << 32) +
   5424   1.1    bouyer 	    (u_int64_t) stats->stat_IfHCOutBadOctets_lo;
   5425   1.1    bouyer 
   5426   1.1    bouyer 	sc->stat_IfHCInUcastPkts =
   5427   1.1    bouyer 	    ((u_int64_t) stats->stat_IfHCInUcastPkts_hi << 32) +
   5428   1.1    bouyer 	    (u_int64_t) stats->stat_IfHCInUcastPkts_lo;
   5429   1.1    bouyer 
   5430   1.1    bouyer 	sc->stat_IfHCInMulticastPkts =
   5431   1.1    bouyer 	    ((u_int64_t) stats->stat_IfHCInMulticastPkts_hi << 32) +
   5432   1.1    bouyer 	    (u_int64_t) stats->stat_IfHCInMulticastPkts_lo;
   5433   1.1    bouyer 
   5434   1.1    bouyer 	sc->stat_IfHCInBroadcastPkts =
   5435   1.1    bouyer 	    ((u_int64_t) stats->stat_IfHCInBroadcastPkts_hi << 32) +
   5436   1.1    bouyer 	    (u_int64_t) stats->stat_IfHCInBroadcastPkts_lo;
   5437   1.1    bouyer 
   5438   1.1    bouyer 	sc->stat_IfHCOutUcastPkts =
   5439   1.1    bouyer 	   ((u_int64_t) stats->stat_IfHCOutUcastPkts_hi << 32) +
   5440   1.1    bouyer 	    (u_int64_t) stats->stat_IfHCOutUcastPkts_lo;
   5441   1.1    bouyer 
   5442   1.1    bouyer 	sc->stat_IfHCOutMulticastPkts =
   5443   1.1    bouyer 	    ((u_int64_t) stats->stat_IfHCOutMulticastPkts_hi << 32) +
   5444   1.1    bouyer 	    (u_int64_t) stats->stat_IfHCOutMulticastPkts_lo;
   5445   1.1    bouyer 
   5446   1.1    bouyer 	sc->stat_IfHCOutBroadcastPkts =
   5447   1.1    bouyer 	    ((u_int64_t) stats->stat_IfHCOutBroadcastPkts_hi << 32) +
   5448   1.1    bouyer 	    (u_int64_t) stats->stat_IfHCOutBroadcastPkts_lo;
   5449   1.1    bouyer 
   5450   1.1    bouyer 	sc->stat_emac_tx_stat_dot3statsinternalmactransmiterrors =
   5451   1.1    bouyer 	    stats->stat_emac_tx_stat_dot3statsinternalmactransmiterrors;
   5452   1.1    bouyer 
   5453   1.1    bouyer 	sc->stat_Dot3StatsCarrierSenseErrors =
   5454   1.1    bouyer 	    stats->stat_Dot3StatsCarrierSenseErrors;
   5455   1.1    bouyer 
   5456   1.1    bouyer 	sc->stat_Dot3StatsFCSErrors = stats->stat_Dot3StatsFCSErrors;
   5457   1.1    bouyer 
   5458   1.1    bouyer 	sc->stat_Dot3StatsAlignmentErrors =
   5459   1.1    bouyer 	    stats->stat_Dot3StatsAlignmentErrors;
   5460   1.1    bouyer 
   5461   1.1    bouyer 	sc->stat_Dot3StatsSingleCollisionFrames =
   5462   1.1    bouyer 	    stats->stat_Dot3StatsSingleCollisionFrames;
   5463   1.1    bouyer 
   5464   1.1    bouyer 	sc->stat_Dot3StatsMultipleCollisionFrames =
   5465   1.1    bouyer 	    stats->stat_Dot3StatsMultipleCollisionFrames;
   5466   1.1    bouyer 
   5467   1.1    bouyer 	sc->stat_Dot3StatsDeferredTransmissions =
   5468   1.1    bouyer 	    stats->stat_Dot3StatsDeferredTransmissions;
   5469   1.1    bouyer 
   5470   1.1    bouyer 	sc->stat_Dot3StatsExcessiveCollisions =
   5471   1.1    bouyer 	    stats->stat_Dot3StatsExcessiveCollisions;
   5472   1.1    bouyer 
   5473   1.1    bouyer 	sc->stat_Dot3StatsLateCollisions = stats->stat_Dot3StatsLateCollisions;
   5474   1.1    bouyer 
   5475   1.1    bouyer 	sc->stat_EtherStatsCollisions = stats->stat_EtherStatsCollisions;
   5476   1.1    bouyer 
   5477   1.1    bouyer 	sc->stat_EtherStatsFragments = stats->stat_EtherStatsFragments;
   5478   1.1    bouyer 
   5479   1.1    bouyer 	sc->stat_EtherStatsJabbers = stats->stat_EtherStatsJabbers;
   5480   1.1    bouyer 
   5481   1.1    bouyer 	sc->stat_EtherStatsUndersizePkts = stats->stat_EtherStatsUndersizePkts;
   5482   1.1    bouyer 
   5483   1.1    bouyer 	sc->stat_EtherStatsOverrsizePkts = stats->stat_EtherStatsOverrsizePkts;
   5484   1.1    bouyer 
   5485   1.1    bouyer 	sc->stat_EtherStatsPktsRx64Octets =
   5486   1.1    bouyer 	    stats->stat_EtherStatsPktsRx64Octets;
   5487   1.1    bouyer 
   5488   1.1    bouyer 	sc->stat_EtherStatsPktsRx65Octetsto127Octets =
   5489   1.1    bouyer 	    stats->stat_EtherStatsPktsRx65Octetsto127Octets;
   5490   1.1    bouyer 
   5491   1.1    bouyer 	sc->stat_EtherStatsPktsRx128Octetsto255Octets =
   5492   1.1    bouyer 	    stats->stat_EtherStatsPktsRx128Octetsto255Octets;
   5493   1.1    bouyer 
   5494   1.1    bouyer 	sc->stat_EtherStatsPktsRx256Octetsto511Octets =
   5495   1.1    bouyer 	    stats->stat_EtherStatsPktsRx256Octetsto511Octets;
   5496   1.1    bouyer 
   5497   1.1    bouyer 	sc->stat_EtherStatsPktsRx512Octetsto1023Octets =
   5498   1.1    bouyer 	    stats->stat_EtherStatsPktsRx512Octetsto1023Octets;
   5499   1.1    bouyer 
   5500   1.1    bouyer 	sc->stat_EtherStatsPktsRx1024Octetsto1522Octets =
   5501   1.1    bouyer 	    stats->stat_EtherStatsPktsRx1024Octetsto1522Octets;
   5502   1.1    bouyer 
   5503   1.1    bouyer 	sc->stat_EtherStatsPktsRx1523Octetsto9022Octets =
   5504   1.1    bouyer 	    stats->stat_EtherStatsPktsRx1523Octetsto9022Octets;
   5505   1.1    bouyer 
   5506   1.1    bouyer 	sc->stat_EtherStatsPktsTx64Octets =
   5507   1.1    bouyer 	    stats->stat_EtherStatsPktsTx64Octets;
   5508   1.1    bouyer 
   5509   1.1    bouyer 	sc->stat_EtherStatsPktsTx65Octetsto127Octets =
   5510   1.1    bouyer 	    stats->stat_EtherStatsPktsTx65Octetsto127Octets;
   5511   1.1    bouyer 
   5512   1.1    bouyer 	sc->stat_EtherStatsPktsTx128Octetsto255Octets =
   5513   1.1    bouyer 	    stats->stat_EtherStatsPktsTx128Octetsto255Octets;
   5514   1.1    bouyer 
   5515   1.1    bouyer 	sc->stat_EtherStatsPktsTx256Octetsto511Octets =
   5516   1.1    bouyer 	    stats->stat_EtherStatsPktsTx256Octetsto511Octets;
   5517   1.1    bouyer 
   5518   1.1    bouyer 	sc->stat_EtherStatsPktsTx512Octetsto1023Octets =
   5519   1.1    bouyer 	    stats->stat_EtherStatsPktsTx512Octetsto1023Octets;
   5520   1.1    bouyer 
   5521   1.1    bouyer 	sc->stat_EtherStatsPktsTx1024Octetsto1522Octets =
   5522   1.1    bouyer 	    stats->stat_EtherStatsPktsTx1024Octetsto1522Octets;
   5523   1.1    bouyer 
   5524   1.1    bouyer 	sc->stat_EtherStatsPktsTx1523Octetsto9022Octets =
   5525   1.1    bouyer 	    stats->stat_EtherStatsPktsTx1523Octetsto9022Octets;
   5526   1.1    bouyer 
   5527   1.1    bouyer 	sc->stat_XonPauseFramesReceived = stats->stat_XonPauseFramesReceived;
   5528   1.1    bouyer 
   5529   1.1    bouyer 	sc->stat_XoffPauseFramesReceived = stats->stat_XoffPauseFramesReceived;
   5530   1.1    bouyer 
   5531   1.1    bouyer 	sc->stat_OutXonSent = stats->stat_OutXonSent;
   5532   1.1    bouyer 
   5533   1.1    bouyer 	sc->stat_OutXoffSent = stats->stat_OutXoffSent;
   5534   1.1    bouyer 
   5535   1.1    bouyer 	sc->stat_FlowControlDone = stats->stat_FlowControlDone;
   5536   1.1    bouyer 
   5537   1.1    bouyer 	sc->stat_MacControlFramesReceived =
   5538   1.1    bouyer 	    stats->stat_MacControlFramesReceived;
   5539   1.1    bouyer 
   5540   1.1    bouyer 	sc->stat_XoffStateEntered = stats->stat_XoffStateEntered;
   5541   1.1    bouyer 
   5542   1.1    bouyer 	sc->stat_IfInFramesL2FilterDiscards =
   5543   1.1    bouyer 	    stats->stat_IfInFramesL2FilterDiscards;
   5544   1.1    bouyer 
   5545   1.1    bouyer 	sc->stat_IfInRuleCheckerDiscards = stats->stat_IfInRuleCheckerDiscards;
   5546   1.1    bouyer 
   5547   1.1    bouyer 	sc->stat_IfInFTQDiscards = stats->stat_IfInFTQDiscards;
   5548   1.1    bouyer 
   5549   1.1    bouyer 	sc->stat_IfInMBUFDiscards = stats->stat_IfInMBUFDiscards;
   5550   1.1    bouyer 
   5551   1.1    bouyer 	sc->stat_IfInRuleCheckerP4Hit = stats->stat_IfInRuleCheckerP4Hit;
   5552   1.1    bouyer 
   5553   1.1    bouyer 	sc->stat_CatchupInRuleCheckerDiscards =
   5554   1.1    bouyer 	    stats->stat_CatchupInRuleCheckerDiscards;
   5555   1.1    bouyer 
   5556   1.1    bouyer 	sc->stat_CatchupInFTQDiscards = stats->stat_CatchupInFTQDiscards;
   5557   1.1    bouyer 
   5558   1.1    bouyer 	sc->stat_CatchupInMBUFDiscards = stats->stat_CatchupInMBUFDiscards;
   5559   1.1    bouyer 
   5560   1.1    bouyer 	sc->stat_CatchupInRuleCheckerP4Hit =
   5561   1.1    bouyer 	    stats->stat_CatchupInRuleCheckerP4Hit;
   5562   1.1    bouyer 
   5563  1.12     perry 	DBPRINT(sc, BNX_EXCESSIVE, "Exiting %s()\n", __func__);
   5564   1.1    bouyer }
   5565   1.1    bouyer 
   5566   1.1    bouyer void
   5567   1.1    bouyer bnx_tick(void *xsc)
   5568   1.1    bouyer {
   5569   1.1    bouyer 	struct bnx_softc	*sc = xsc;
   5570  1.14    dyoung 	struct mii_data		*mii;
   5571   1.1    bouyer 	u_int32_t		msg;
   5572   1.5    bouyer 	u_int16_t		prod, chain_prod;
   5573   1.5    bouyer 	u_int32_t		prod_bseq;
   5574   1.4    bouyer 	int s = splnet();
   5575   1.1    bouyer 
   5576   1.1    bouyer 	/* Tell the firmware that the driver is still running. */
   5577   1.1    bouyer #ifdef BNX_DEBUG
   5578   1.1    bouyer 	msg = (u_int32_t)BNX_DRV_MSG_DATA_PULSE_CODE_ALWAYS_ALIVE;
   5579   1.1    bouyer #else
   5580   1.1    bouyer 	msg = (u_int32_t)++sc->bnx_fw_drv_pulse_wr_seq;
   5581   1.1    bouyer #endif
   5582   1.1    bouyer 	REG_WR_IND(sc, sc->bnx_shmem_base + BNX_DRV_PULSE_MB, msg);
   5583   1.1    bouyer 
   5584   1.1    bouyer 	/* Update the statistics from the hardware statistics block. */
   5585   1.1    bouyer 	bnx_stats_update(sc);
   5586   1.1    bouyer 
   5587   1.1    bouyer 	/* Schedule the next tick. */
   5588   1.1    bouyer 	callout_reset(&sc->bnx_timeout, hz, bnx_tick, sc);
   5589   1.1    bouyer 
   5590   1.1    bouyer 	mii = &sc->bnx_mii;
   5591   1.1    bouyer 	mii_tick(mii);
   5592   1.1    bouyer 
   5593   1.5    bouyer 	/* try to get more RX buffers, just in case */
   5594   1.5    bouyer 	prod = sc->rx_prod;
   5595   1.5    bouyer 	prod_bseq = sc->rx_prod_bseq;
   5596   1.5    bouyer 	chain_prod = RX_CHAIN_IDX(prod);
   5597  1.21    dyoung 	bnx_get_buf(sc, &prod, &chain_prod, &prod_bseq);
   5598   1.5    bouyer 	sc->rx_prod = prod;
   5599   1.5    bouyer 	sc->rx_prod_bseq = prod_bseq;
   5600   1.4    bouyer 	splx(s);
   5601   1.1    bouyer 	return;
   5602   1.1    bouyer }
   5603   1.1    bouyer 
   5604   1.1    bouyer /****************************************************************************/
   5605   1.1    bouyer /* BNX Debug Routines                                                       */
   5606   1.1    bouyer /****************************************************************************/
   5607   1.1    bouyer #ifdef BNX_DEBUG
   5608   1.1    bouyer 
   5609   1.1    bouyer /****************************************************************************/
   5610   1.1    bouyer /* Prints out information about an mbuf.                                    */
   5611   1.1    bouyer /*                                                                          */
   5612   1.1    bouyer /* Returns:                                                                 */
   5613   1.1    bouyer /*   Nothing.                                                               */
   5614   1.1    bouyer /****************************************************************************/
   5615   1.1    bouyer void
   5616   1.1    bouyer bnx_dump_mbuf(struct bnx_softc *sc, struct mbuf *m)
   5617   1.1    bouyer {
   5618   1.1    bouyer 	struct mbuf		*mp = m;
   5619   1.1    bouyer 
   5620   1.1    bouyer 	if (m == NULL) {
   5621   1.1    bouyer 		/* Index out of range. */
   5622   1.1    bouyer 		aprint_error("mbuf ptr is null!\n");
   5623   1.1    bouyer 		return;
   5624   1.1    bouyer 	}
   5625   1.1    bouyer 
   5626   1.1    bouyer 	while (mp) {
   5627   1.1    bouyer 		aprint_debug("mbuf: vaddr = %p, m_len = %d, m_flags = ",
   5628   1.1    bouyer 		    mp, mp->m_len);
   5629   1.1    bouyer 
   5630   1.1    bouyer 		if (mp->m_flags & M_EXT)
   5631   1.1    bouyer 			aprint_debug("M_EXT ");
   5632   1.1    bouyer 		if (mp->m_flags & M_PKTHDR)
   5633   1.1    bouyer 			aprint_debug("M_PKTHDR ");
   5634   1.1    bouyer 		aprint_debug("\n");
   5635   1.1    bouyer 
   5636   1.1    bouyer 		if (mp->m_flags & M_EXT)
   5637   1.1    bouyer 			aprint_debug("- m_ext: vaddr = %p, ext_size = 0x%04zX\n",
   5638   1.1    bouyer 			    mp, mp->m_ext.ext_size);
   5639   1.1    bouyer 
   5640   1.1    bouyer 		mp = mp->m_next;
   5641   1.1    bouyer 	}
   5642   1.1    bouyer }
   5643   1.1    bouyer 
   5644   1.1    bouyer /****************************************************************************/
   5645   1.1    bouyer /* Prints out the mbufs in the TX mbuf chain.                               */
   5646   1.1    bouyer /*                                                                          */
   5647   1.1    bouyer /* Returns:                                                                 */
   5648   1.1    bouyer /*   Nothing.                                                               */
   5649   1.1    bouyer /****************************************************************************/
   5650   1.1    bouyer void
   5651   1.1    bouyer bnx_dump_tx_mbuf_chain(struct bnx_softc *sc, int chain_prod, int count)
   5652   1.1    bouyer {
   5653  1.29    bouyer #if 0
   5654   1.1    bouyer 	struct mbuf		*m;
   5655   1.1    bouyer 	int			i;
   5656   1.1    bouyer 
   5657  1.29    bouyer 	aprint_debug_dev(sc->bnx_dev,
   5658   1.1    bouyer 	    "----------------------------"
   5659   1.1    bouyer 	    "  tx mbuf data  "
   5660   1.1    bouyer 	    "----------------------------\n");
   5661   1.1    bouyer 
   5662   1.1    bouyer 	for (i = 0; i < count; i++) {
   5663   1.1    bouyer 	 	m = sc->tx_mbuf_ptr[chain_prod];
   5664   1.1    bouyer 		BNX_PRINTF(sc, "txmbuf[%d]\n", chain_prod);
   5665   1.1    bouyer 		bnx_dump_mbuf(sc, m);
   5666   1.1    bouyer 		chain_prod = TX_CHAIN_IDX(NEXT_TX_BD(chain_prod));
   5667   1.1    bouyer 	}
   5668   1.1    bouyer 
   5669  1.29    bouyer 	aprint_debug_dev(sc->bnx_dev,
   5670   1.1    bouyer 	    "--------------------------------------------"
   5671   1.1    bouyer 	    "----------------------------\n");
   5672  1.29    bouyer #endif
   5673   1.1    bouyer }
   5674   1.1    bouyer 
   5675   1.1    bouyer /*
   5676   1.1    bouyer  * This routine prints the RX mbuf chain.
   5677   1.1    bouyer  */
   5678   1.1    bouyer void
   5679   1.1    bouyer bnx_dump_rx_mbuf_chain(struct bnx_softc *sc, int chain_prod, int count)
   5680   1.1    bouyer {
   5681   1.1    bouyer 	struct mbuf		*m;
   5682   1.1    bouyer 	int			i;
   5683   1.1    bouyer 
   5684  1.29    bouyer 	aprint_debug_dev(sc->bnx_dev,
   5685   1.1    bouyer 	    "----------------------------"
   5686   1.1    bouyer 	    "  rx mbuf data  "
   5687   1.1    bouyer 	    "----------------------------\n");
   5688   1.1    bouyer 
   5689   1.1    bouyer 	for (i = 0; i < count; i++) {
   5690   1.1    bouyer 	 	m = sc->rx_mbuf_ptr[chain_prod];
   5691   1.1    bouyer 		BNX_PRINTF(sc, "rxmbuf[0x%04X]\n", chain_prod);
   5692   1.1    bouyer 		bnx_dump_mbuf(sc, m);
   5693   1.1    bouyer 		chain_prod = RX_CHAIN_IDX(NEXT_RX_BD(chain_prod));
   5694   1.1    bouyer 	}
   5695   1.1    bouyer 
   5696   1.1    bouyer 
   5697  1.29    bouyer 	aprint_debug_dev(sc->bnx_dev,
   5698   1.1    bouyer 	    "--------------------------------------------"
   5699   1.1    bouyer 	    "----------------------------\n");
   5700   1.1    bouyer }
   5701   1.1    bouyer 
   5702   1.1    bouyer void
   5703   1.1    bouyer bnx_dump_txbd(struct bnx_softc *sc, int idx, struct tx_bd *txbd)
   5704   1.1    bouyer {
   5705   1.1    bouyer 	if (idx > MAX_TX_BD)
   5706   1.1    bouyer 		/* Index out of range. */
   5707   1.1    bouyer 		BNX_PRINTF(sc, "tx_bd[0x%04X]: Invalid tx_bd index!\n", idx);
   5708   1.1    bouyer 	else if ((idx & USABLE_TX_BD_PER_PAGE) == USABLE_TX_BD_PER_PAGE)
   5709   1.1    bouyer 		/* TX Chain page pointer. */
   5710   1.1    bouyer 		BNX_PRINTF(sc, "tx_bd[0x%04X]: haddr = 0x%08X:%08X, chain "
   5711   1.1    bouyer 		    "page pointer\n", idx, txbd->tx_bd_haddr_hi,
   5712   1.1    bouyer 		    txbd->tx_bd_haddr_lo);
   5713   1.1    bouyer 	else
   5714   1.1    bouyer 		/* Normal tx_bd entry. */
   5715   1.1    bouyer 		BNX_PRINTF(sc, "tx_bd[0x%04X]: haddr = 0x%08X:%08X, nbytes = "
   5716   1.4    bouyer 		    "0x%08X, vlan tag = 0x%4X, flags = 0x%08X\n", idx,
   5717   1.1    bouyer 		    txbd->tx_bd_haddr_hi, txbd->tx_bd_haddr_lo,
   5718   1.4    bouyer 		    txbd->tx_bd_mss_nbytes, txbd->tx_bd_vlan_tag,
   5719   1.4    bouyer 		    txbd->tx_bd_flags);
   5720   1.1    bouyer }
   5721   1.1    bouyer 
   5722   1.1    bouyer void
   5723   1.1    bouyer bnx_dump_rxbd(struct bnx_softc *sc, int idx, struct rx_bd *rxbd)
   5724   1.1    bouyer {
   5725   1.1    bouyer 	if (idx > MAX_RX_BD)
   5726   1.1    bouyer 		/* Index out of range. */
   5727   1.1    bouyer 		BNX_PRINTF(sc, "rx_bd[0x%04X]: Invalid rx_bd index!\n", idx);
   5728   1.1    bouyer 	else if ((idx & USABLE_RX_BD_PER_PAGE) == USABLE_RX_BD_PER_PAGE)
   5729   1.1    bouyer 		/* TX Chain page pointer. */
   5730   1.1    bouyer 		BNX_PRINTF(sc, "rx_bd[0x%04X]: haddr = 0x%08X:%08X, chain page "
   5731   1.1    bouyer 		    "pointer\n", idx, rxbd->rx_bd_haddr_hi,
   5732   1.1    bouyer 		    rxbd->rx_bd_haddr_lo);
   5733   1.1    bouyer 	else
   5734   1.1    bouyer 		/* Normal tx_bd entry. */
   5735   1.1    bouyer 		BNX_PRINTF(sc, "rx_bd[0x%04X]: haddr = 0x%08X:%08X, nbytes = "
   5736   1.1    bouyer 		    "0x%08X, flags = 0x%08X\n", idx,
   5737   1.1    bouyer 			rxbd->rx_bd_haddr_hi, rxbd->rx_bd_haddr_lo,
   5738   1.1    bouyer 			rxbd->rx_bd_len, rxbd->rx_bd_flags);
   5739   1.1    bouyer }
   5740   1.1    bouyer 
   5741   1.1    bouyer void
   5742   1.1    bouyer bnx_dump_l2fhdr(struct bnx_softc *sc, int idx, struct l2_fhdr *l2fhdr)
   5743   1.1    bouyer {
   5744   1.1    bouyer 	BNX_PRINTF(sc, "l2_fhdr[0x%04X]: status = 0x%08X, "
   5745   1.1    bouyer 	    "pkt_len = 0x%04X, vlan = 0x%04x, ip_xsum = 0x%04X, "
   5746   1.1    bouyer 	    "tcp_udp_xsum = 0x%04X\n", idx,
   5747   1.1    bouyer 	    l2fhdr->l2_fhdr_status, l2fhdr->l2_fhdr_pkt_len,
   5748   1.1    bouyer 	    l2fhdr->l2_fhdr_vlan_tag, l2fhdr->l2_fhdr_ip_xsum,
   5749   1.1    bouyer 	    l2fhdr->l2_fhdr_tcp_udp_xsum);
   5750   1.1    bouyer }
   5751   1.1    bouyer 
   5752   1.1    bouyer /*
   5753   1.1    bouyer  * This routine prints the TX chain.
   5754   1.1    bouyer  */
   5755   1.1    bouyer void
   5756   1.1    bouyer bnx_dump_tx_chain(struct bnx_softc *sc, int tx_prod, int count)
   5757   1.1    bouyer {
   5758   1.1    bouyer 	struct tx_bd		*txbd;
   5759   1.1    bouyer 	int			i;
   5760   1.1    bouyer 
   5761   1.1    bouyer 	/* First some info about the tx_bd chain structure. */
   5762  1.29    bouyer 	aprint_debug_dev(sc->bnx_dev,
   5763   1.1    bouyer 	    "----------------------------"
   5764   1.1    bouyer 	    "  tx_bd  chain  "
   5765   1.1    bouyer 	    "----------------------------\n");
   5766   1.1    bouyer 
   5767   1.1    bouyer 	BNX_PRINTF(sc,
   5768   1.1    bouyer 	    "page size      = 0x%08X, tx chain pages        = 0x%08X\n",
   5769   1.1    bouyer 	    (u_int32_t)BCM_PAGE_SIZE, (u_int32_t) TX_PAGES);
   5770   1.1    bouyer 
   5771   1.1    bouyer 	BNX_PRINTF(sc,
   5772   1.1    bouyer 	    "tx_bd per page = 0x%08X, usable tx_bd per page = 0x%08X\n",
   5773   1.1    bouyer 	    (u_int32_t)TOTAL_TX_BD_PER_PAGE, (u_int32_t)USABLE_TX_BD_PER_PAGE);
   5774   1.1    bouyer 
   5775  1.29    bouyer 	BNX_PRINTF(sc, "total tx_bd    = 0x%08X\n", TOTAL_TX_BD);
   5776   1.1    bouyer 
   5777  1.29    bouyer 	aprint_error_dev(sc->bnx_dev, ""
   5778   1.1    bouyer 	    "-----------------------------"
   5779   1.1    bouyer 	    "   tx_bd data   "
   5780   1.1    bouyer 	    "-----------------------------\n");
   5781   1.1    bouyer 
   5782   1.1    bouyer 	/* Now print out the tx_bd's themselves. */
   5783   1.1    bouyer 	for (i = 0; i < count; i++) {
   5784   1.1    bouyer 	 	txbd = &sc->tx_bd_chain[TX_PAGE(tx_prod)][TX_IDX(tx_prod)];
   5785   1.1    bouyer 		bnx_dump_txbd(sc, tx_prod, txbd);
   5786   1.1    bouyer 		tx_prod = TX_CHAIN_IDX(NEXT_TX_BD(tx_prod));
   5787   1.1    bouyer 	}
   5788   1.1    bouyer 
   5789  1.29    bouyer 	aprint_debug_dev(sc->bnx_dev,
   5790   1.1    bouyer 	    "-----------------------------"
   5791   1.1    bouyer 	    "--------------"
   5792   1.1    bouyer 	    "-----------------------------\n");
   5793   1.1    bouyer }
   5794   1.1    bouyer 
   5795   1.1    bouyer /*
   5796   1.1    bouyer  * This routine prints the RX chain.
   5797   1.1    bouyer  */
   5798   1.1    bouyer void
   5799   1.1    bouyer bnx_dump_rx_chain(struct bnx_softc *sc, int rx_prod, int count)
   5800   1.1    bouyer {
   5801   1.1    bouyer 	struct rx_bd		*rxbd;
   5802   1.1    bouyer 	int			i;
   5803   1.1    bouyer 
   5804   1.1    bouyer 	/* First some info about the tx_bd chain structure. */
   5805  1.29    bouyer 	aprint_debug_dev(sc->bnx_dev,
   5806   1.1    bouyer 	    "----------------------------"
   5807   1.1    bouyer 	    "  rx_bd  chain  "
   5808   1.1    bouyer 	    "----------------------------\n");
   5809   1.1    bouyer 
   5810  1.29    bouyer 	aprint_debug_dev(sc->bnx_dev, "----- RX_BD Chain -----\n");
   5811   1.1    bouyer 
   5812   1.1    bouyer 	BNX_PRINTF(sc,
   5813   1.1    bouyer 	    "page size      = 0x%08X, rx chain pages        = 0x%08X\n",
   5814   1.1    bouyer 	    (u_int32_t)BCM_PAGE_SIZE, (u_int32_t)RX_PAGES);
   5815   1.1    bouyer 
   5816   1.1    bouyer 	BNX_PRINTF(sc,
   5817   1.1    bouyer 	    "rx_bd per page = 0x%08X, usable rx_bd per page = 0x%08X\n",
   5818   1.1    bouyer 	    (u_int32_t)TOTAL_RX_BD_PER_PAGE, (u_int32_t)USABLE_RX_BD_PER_PAGE);
   5819   1.1    bouyer 
   5820  1.29    bouyer 	BNX_PRINTF(sc, "total rx_bd    = 0x%08X\n", TOTAL_RX_BD);
   5821   1.1    bouyer 
   5822  1.29    bouyer 	aprint_error_dev(sc->bnx_dev,
   5823   1.1    bouyer 	    "----------------------------"
   5824   1.1    bouyer 	    "   rx_bd data   "
   5825   1.1    bouyer 	    "----------------------------\n");
   5826   1.1    bouyer 
   5827   1.1    bouyer 	/* Now print out the rx_bd's themselves. */
   5828   1.1    bouyer 	for (i = 0; i < count; i++) {
   5829   1.1    bouyer 		rxbd = &sc->rx_bd_chain[RX_PAGE(rx_prod)][RX_IDX(rx_prod)];
   5830   1.1    bouyer 		bnx_dump_rxbd(sc, rx_prod, rxbd);
   5831   1.1    bouyer 		rx_prod = RX_CHAIN_IDX(NEXT_RX_BD(rx_prod));
   5832   1.1    bouyer 	}
   5833   1.1    bouyer 
   5834  1.29    bouyer 	aprint_debug_dev(sc->bnx_dev,
   5835   1.1    bouyer 	    "----------------------------"
   5836   1.1    bouyer 	    "--------------"
   5837   1.1    bouyer 	    "----------------------------\n");
   5838   1.1    bouyer }
   5839   1.1    bouyer 
   5840   1.1    bouyer /*
   5841   1.1    bouyer  * This routine prints the status block.
   5842   1.1    bouyer  */
   5843   1.1    bouyer void
   5844   1.1    bouyer bnx_dump_status_block(struct bnx_softc *sc)
   5845   1.1    bouyer {
   5846   1.1    bouyer 	struct status_block	*sblk;
   5847   1.1    bouyer 	bus_dmamap_sync(sc->bnx_dmatag, sc->status_map, 0, BNX_STATUS_BLK_SZ,
   5848   1.1    bouyer 	    BUS_DMASYNC_POSTREAD);
   5849   1.1    bouyer 
   5850   1.1    bouyer 	sblk = sc->status_block;
   5851   1.1    bouyer 
   5852  1.29    bouyer    	aprint_debug_dev(sc->bnx_dev, "----------------------------- Status Block "
   5853   1.1    bouyer 	    "-----------------------------\n");
   5854   1.1    bouyer 
   5855   1.1    bouyer 	BNX_PRINTF(sc,
   5856   1.1    bouyer 	    "attn_bits  = 0x%08X, attn_bits_ack = 0x%08X, index = 0x%04X\n",
   5857   1.1    bouyer 	    sblk->status_attn_bits, sblk->status_attn_bits_ack,
   5858   1.1    bouyer 	    sblk->status_idx);
   5859   1.1    bouyer 
   5860   1.1    bouyer 	BNX_PRINTF(sc, "rx_cons0   = 0x%08X, tx_cons0      = 0x%08X\n",
   5861   1.1    bouyer 	    sblk->status_rx_quick_consumer_index0,
   5862   1.1    bouyer 	    sblk->status_tx_quick_consumer_index0);
   5863   1.1    bouyer 
   5864   1.1    bouyer 	BNX_PRINTF(sc, "status_idx = 0x%04X\n", sblk->status_idx);
   5865   1.1    bouyer 
   5866   1.1    bouyer 	/* Theses indices are not used for normal L2 drivers. */
   5867   1.1    bouyer 	if (sblk->status_rx_quick_consumer_index1 ||
   5868   1.1    bouyer 		sblk->status_tx_quick_consumer_index1)
   5869   1.1    bouyer 		BNX_PRINTF(sc, "rx_cons1  = 0x%08X, tx_cons1      = 0x%08X\n",
   5870   1.1    bouyer 		    sblk->status_rx_quick_consumer_index1,
   5871   1.1    bouyer 		    sblk->status_tx_quick_consumer_index1);
   5872   1.1    bouyer 
   5873   1.1    bouyer 	if (sblk->status_rx_quick_consumer_index2 ||
   5874   1.1    bouyer 		sblk->status_tx_quick_consumer_index2)
   5875   1.1    bouyer 		BNX_PRINTF(sc, "rx_cons2  = 0x%08X, tx_cons2      = 0x%08X\n",
   5876   1.1    bouyer 		    sblk->status_rx_quick_consumer_index2,
   5877   1.1    bouyer 		    sblk->status_tx_quick_consumer_index2);
   5878   1.1    bouyer 
   5879   1.1    bouyer 	if (sblk->status_rx_quick_consumer_index3 ||
   5880   1.1    bouyer 		sblk->status_tx_quick_consumer_index3)
   5881   1.1    bouyer 		BNX_PRINTF(sc, "rx_cons3  = 0x%08X, tx_cons3      = 0x%08X\n",
   5882   1.1    bouyer 		    sblk->status_rx_quick_consumer_index3,
   5883   1.1    bouyer 		    sblk->status_tx_quick_consumer_index3);
   5884   1.1    bouyer 
   5885   1.1    bouyer 	if (sblk->status_rx_quick_consumer_index4 ||
   5886   1.1    bouyer 		sblk->status_rx_quick_consumer_index5)
   5887   1.1    bouyer 		BNX_PRINTF(sc, "rx_cons4  = 0x%08X, rx_cons5      = 0x%08X\n",
   5888   1.1    bouyer 		    sblk->status_rx_quick_consumer_index4,
   5889   1.1    bouyer 		    sblk->status_rx_quick_consumer_index5);
   5890   1.1    bouyer 
   5891   1.1    bouyer 	if (sblk->status_rx_quick_consumer_index6 ||
   5892   1.1    bouyer 		sblk->status_rx_quick_consumer_index7)
   5893   1.1    bouyer 		BNX_PRINTF(sc, "rx_cons6  = 0x%08X, rx_cons7      = 0x%08X\n",
   5894   1.1    bouyer 		    sblk->status_rx_quick_consumer_index6,
   5895   1.1    bouyer 		    sblk->status_rx_quick_consumer_index7);
   5896   1.1    bouyer 
   5897   1.1    bouyer 	if (sblk->status_rx_quick_consumer_index8 ||
   5898   1.1    bouyer 		sblk->status_rx_quick_consumer_index9)
   5899   1.1    bouyer 		BNX_PRINTF(sc, "rx_cons8  = 0x%08X, rx_cons9      = 0x%08X\n",
   5900   1.1    bouyer 		    sblk->status_rx_quick_consumer_index8,
   5901   1.1    bouyer 		    sblk->status_rx_quick_consumer_index9);
   5902   1.1    bouyer 
   5903   1.1    bouyer 	if (sblk->status_rx_quick_consumer_index10 ||
   5904   1.1    bouyer 		sblk->status_rx_quick_consumer_index11)
   5905   1.1    bouyer 		BNX_PRINTF(sc, "rx_cons10 = 0x%08X, rx_cons11     = 0x%08X\n",
   5906   1.1    bouyer 		    sblk->status_rx_quick_consumer_index10,
   5907   1.1    bouyer 		    sblk->status_rx_quick_consumer_index11);
   5908   1.1    bouyer 
   5909   1.1    bouyer 	if (sblk->status_rx_quick_consumer_index12 ||
   5910   1.1    bouyer 		sblk->status_rx_quick_consumer_index13)
   5911   1.1    bouyer 		BNX_PRINTF(sc, "rx_cons12 = 0x%08X, rx_cons13     = 0x%08X\n",
   5912   1.1    bouyer 		    sblk->status_rx_quick_consumer_index12,
   5913   1.1    bouyer 		    sblk->status_rx_quick_consumer_index13);
   5914   1.1    bouyer 
   5915   1.1    bouyer 	if (sblk->status_rx_quick_consumer_index14 ||
   5916   1.1    bouyer 		sblk->status_rx_quick_consumer_index15)
   5917   1.1    bouyer 		BNX_PRINTF(sc, "rx_cons14 = 0x%08X, rx_cons15     = 0x%08X\n",
   5918   1.1    bouyer 		    sblk->status_rx_quick_consumer_index14,
   5919   1.1    bouyer 		    sblk->status_rx_quick_consumer_index15);
   5920   1.1    bouyer 
   5921   1.1    bouyer 	if (sblk->status_completion_producer_index ||
   5922   1.1    bouyer 		sblk->status_cmd_consumer_index)
   5923   1.1    bouyer 		BNX_PRINTF(sc, "com_prod  = 0x%08X, cmd_cons      = 0x%08X\n",
   5924   1.1    bouyer 		    sblk->status_completion_producer_index,
   5925   1.1    bouyer 		    sblk->status_cmd_consumer_index);
   5926   1.1    bouyer 
   5927  1.29    bouyer 	aprint_debug_dev(sc->bnx_dev, "-------------------------------------------"
   5928   1.1    bouyer 	    "-----------------------------\n");
   5929   1.1    bouyer }
   5930   1.1    bouyer 
   5931   1.1    bouyer /*
   5932   1.1    bouyer  * This routine prints the statistics block.
   5933   1.1    bouyer  */
   5934   1.1    bouyer void
   5935   1.1    bouyer bnx_dump_stats_block(struct bnx_softc *sc)
   5936   1.1    bouyer {
   5937   1.1    bouyer 	struct statistics_block	*sblk;
   5938   1.1    bouyer 	bus_dmamap_sync(sc->bnx_dmatag, sc->status_map, 0, BNX_STATUS_BLK_SZ,
   5939   1.1    bouyer 	    BUS_DMASYNC_POSTREAD);
   5940   1.1    bouyer 
   5941   1.1    bouyer 	sblk = sc->stats_block;
   5942   1.1    bouyer 
   5943  1.29    bouyer 	aprint_debug_dev(sc->bnx_dev, ""
   5944   1.1    bouyer 	    "-----------------------------"
   5945   1.1    bouyer 	    " Stats  Block "
   5946   1.1    bouyer 	    "-----------------------------\n");
   5947   1.1    bouyer 
   5948   1.1    bouyer 	BNX_PRINTF(sc, "IfHcInOctets         = 0x%08X:%08X, "
   5949   1.1    bouyer 	    "IfHcInBadOctets      = 0x%08X:%08X\n",
   5950   1.1    bouyer 	    sblk->stat_IfHCInOctets_hi, sblk->stat_IfHCInOctets_lo,
   5951   1.1    bouyer 	    sblk->stat_IfHCInBadOctets_hi, sblk->stat_IfHCInBadOctets_lo);
   5952   1.1    bouyer 
   5953   1.1    bouyer 	BNX_PRINTF(sc, "IfHcOutOctets        = 0x%08X:%08X, "
   5954   1.1    bouyer 	    "IfHcOutBadOctets     = 0x%08X:%08X\n",
   5955   1.1    bouyer 	    sblk->stat_IfHCOutOctets_hi, sblk->stat_IfHCOutOctets_lo,
   5956   1.1    bouyer 	    sblk->stat_IfHCOutBadOctets_hi, sblk->stat_IfHCOutBadOctets_lo);
   5957   1.1    bouyer 
   5958   1.1    bouyer 	BNX_PRINTF(sc, "IfHcInUcastPkts      = 0x%08X:%08X, "
   5959   1.1    bouyer 	    "IfHcInMulticastPkts  = 0x%08X:%08X\n",
   5960   1.1    bouyer 	    sblk->stat_IfHCInUcastPkts_hi, sblk->stat_IfHCInUcastPkts_lo,
   5961   1.1    bouyer 	    sblk->stat_IfHCInMulticastPkts_hi,
   5962   1.1    bouyer 	    sblk->stat_IfHCInMulticastPkts_lo);
   5963   1.1    bouyer 
   5964   1.1    bouyer 	BNX_PRINTF(sc, "IfHcInBroadcastPkts  = 0x%08X:%08X, "
   5965   1.1    bouyer 	    "IfHcOutUcastPkts     = 0x%08X:%08X\n",
   5966   1.1    bouyer 	    sblk->stat_IfHCInBroadcastPkts_hi,
   5967   1.1    bouyer 	    sblk->stat_IfHCInBroadcastPkts_lo,
   5968   1.1    bouyer 	    sblk->stat_IfHCOutUcastPkts_hi,
   5969   1.1    bouyer 	    sblk->stat_IfHCOutUcastPkts_lo);
   5970   1.1    bouyer 
   5971   1.1    bouyer 	BNX_PRINTF(sc, "IfHcOutMulticastPkts = 0x%08X:%08X, "
   5972   1.1    bouyer 	    "IfHcOutBroadcastPkts = 0x%08X:%08X\n",
   5973   1.1    bouyer 	    sblk->stat_IfHCOutMulticastPkts_hi,
   5974   1.1    bouyer 	    sblk->stat_IfHCOutMulticastPkts_lo,
   5975   1.1    bouyer 	    sblk->stat_IfHCOutBroadcastPkts_hi,
   5976   1.1    bouyer 	    sblk->stat_IfHCOutBroadcastPkts_lo);
   5977   1.1    bouyer 
   5978   1.1    bouyer 	if (sblk->stat_emac_tx_stat_dot3statsinternalmactransmiterrors)
   5979   1.1    bouyer 		BNX_PRINTF(sc, "0x%08X : "
   5980   1.1    bouyer 		    "emac_tx_stat_dot3statsinternalmactransmiterrors\n",
   5981   1.1    bouyer 		    sblk->stat_emac_tx_stat_dot3statsinternalmactransmiterrors);
   5982   1.1    bouyer 
   5983   1.1    bouyer 	if (sblk->stat_Dot3StatsCarrierSenseErrors)
   5984   1.1    bouyer 		BNX_PRINTF(sc, "0x%08X : Dot3StatsCarrierSenseErrors\n",
   5985   1.1    bouyer 		    sblk->stat_Dot3StatsCarrierSenseErrors);
   5986   1.1    bouyer 
   5987   1.1    bouyer 	if (sblk->stat_Dot3StatsFCSErrors)
   5988   1.1    bouyer 		BNX_PRINTF(sc, "0x%08X : Dot3StatsFCSErrors\n",
   5989   1.1    bouyer 		    sblk->stat_Dot3StatsFCSErrors);
   5990   1.1    bouyer 
   5991   1.1    bouyer 	if (sblk->stat_Dot3StatsAlignmentErrors)
   5992   1.1    bouyer 		BNX_PRINTF(sc, "0x%08X : Dot3StatsAlignmentErrors\n",
   5993   1.1    bouyer 		    sblk->stat_Dot3StatsAlignmentErrors);
   5994   1.1    bouyer 
   5995   1.1    bouyer 	if (sblk->stat_Dot3StatsSingleCollisionFrames)
   5996   1.1    bouyer 		BNX_PRINTF(sc, "0x%08X : Dot3StatsSingleCollisionFrames\n",
   5997   1.1    bouyer 		    sblk->stat_Dot3StatsSingleCollisionFrames);
   5998   1.1    bouyer 
   5999   1.1    bouyer 	if (sblk->stat_Dot3StatsMultipleCollisionFrames)
   6000   1.1    bouyer 		BNX_PRINTF(sc, "0x%08X : Dot3StatsMultipleCollisionFrames\n",
   6001   1.1    bouyer 		    sblk->stat_Dot3StatsMultipleCollisionFrames);
   6002   1.1    bouyer 
   6003   1.1    bouyer 	if (sblk->stat_Dot3StatsDeferredTransmissions)
   6004   1.1    bouyer 		BNX_PRINTF(sc, "0x%08X : Dot3StatsDeferredTransmissions\n",
   6005   1.1    bouyer 		    sblk->stat_Dot3StatsDeferredTransmissions);
   6006   1.1    bouyer 
   6007   1.1    bouyer 	if (sblk->stat_Dot3StatsExcessiveCollisions)
   6008   1.1    bouyer 		BNX_PRINTF(sc, "0x%08X : Dot3StatsExcessiveCollisions\n",
   6009   1.1    bouyer 		    sblk->stat_Dot3StatsExcessiveCollisions);
   6010   1.1    bouyer 
   6011   1.1    bouyer 	if (sblk->stat_Dot3StatsLateCollisions)
   6012   1.1    bouyer 		BNX_PRINTF(sc, "0x%08X : Dot3StatsLateCollisions\n",
   6013   1.1    bouyer 		    sblk->stat_Dot3StatsLateCollisions);
   6014   1.1    bouyer 
   6015   1.1    bouyer 	if (sblk->stat_EtherStatsCollisions)
   6016   1.1    bouyer 		BNX_PRINTF(sc, "0x%08X : EtherStatsCollisions\n",
   6017   1.1    bouyer 		    sblk->stat_EtherStatsCollisions);
   6018   1.1    bouyer 
   6019   1.1    bouyer 	if (sblk->stat_EtherStatsFragments)
   6020   1.1    bouyer 		BNX_PRINTF(sc, "0x%08X : EtherStatsFragments\n",
   6021   1.1    bouyer 		    sblk->stat_EtherStatsFragments);
   6022   1.1    bouyer 
   6023   1.1    bouyer 	if (sblk->stat_EtherStatsJabbers)
   6024   1.1    bouyer 		BNX_PRINTF(sc, "0x%08X : EtherStatsJabbers\n",
   6025   1.1    bouyer 		    sblk->stat_EtherStatsJabbers);
   6026   1.1    bouyer 
   6027   1.1    bouyer 	if (sblk->stat_EtherStatsUndersizePkts)
   6028   1.1    bouyer 		BNX_PRINTF(sc, "0x%08X : EtherStatsUndersizePkts\n",
   6029   1.1    bouyer 		    sblk->stat_EtherStatsUndersizePkts);
   6030   1.1    bouyer 
   6031   1.1    bouyer 	if (sblk->stat_EtherStatsOverrsizePkts)
   6032   1.1    bouyer 		BNX_PRINTF(sc, "0x%08X : EtherStatsOverrsizePkts\n",
   6033   1.1    bouyer 		    sblk->stat_EtherStatsOverrsizePkts);
   6034   1.1    bouyer 
   6035   1.1    bouyer 	if (sblk->stat_EtherStatsPktsRx64Octets)
   6036   1.1    bouyer 		BNX_PRINTF(sc, "0x%08X : EtherStatsPktsRx64Octets\n",
   6037   1.1    bouyer 		    sblk->stat_EtherStatsPktsRx64Octets);
   6038   1.1    bouyer 
   6039   1.1    bouyer 	if (sblk->stat_EtherStatsPktsRx65Octetsto127Octets)
   6040   1.1    bouyer 		BNX_PRINTF(sc, "0x%08X : EtherStatsPktsRx65Octetsto127Octets\n",
   6041   1.1    bouyer 		    sblk->stat_EtherStatsPktsRx65Octetsto127Octets);
   6042   1.1    bouyer 
   6043   1.1    bouyer 	if (sblk->stat_EtherStatsPktsRx128Octetsto255Octets)
   6044   1.1    bouyer 		BNX_PRINTF(sc, "0x%08X : "
   6045   1.1    bouyer 		    "EtherStatsPktsRx128Octetsto255Octets\n",
   6046   1.1    bouyer 		    sblk->stat_EtherStatsPktsRx128Octetsto255Octets);
   6047   1.1    bouyer 
   6048   1.1    bouyer 	if (sblk->stat_EtherStatsPktsRx256Octetsto511Octets)
   6049   1.1    bouyer 		BNX_PRINTF(sc, "0x%08X : "
   6050   1.1    bouyer 		    "EtherStatsPktsRx256Octetsto511Octets\n",
   6051   1.1    bouyer 		    sblk->stat_EtherStatsPktsRx256Octetsto511Octets);
   6052   1.1    bouyer 
   6053   1.1    bouyer 	if (sblk->stat_EtherStatsPktsRx512Octetsto1023Octets)
   6054   1.1    bouyer 		BNX_PRINTF(sc, "0x%08X : "
   6055   1.1    bouyer 		    "EtherStatsPktsRx512Octetsto1023Octets\n",
   6056   1.1    bouyer 		    sblk->stat_EtherStatsPktsRx512Octetsto1023Octets);
   6057   1.1    bouyer 
   6058   1.1    bouyer 	if (sblk->stat_EtherStatsPktsRx1024Octetsto1522Octets)
   6059   1.1    bouyer 		BNX_PRINTF(sc, "0x%08X : "
   6060   1.1    bouyer 		    "EtherStatsPktsRx1024Octetsto1522Octets\n",
   6061   1.1    bouyer 		sblk->stat_EtherStatsPktsRx1024Octetsto1522Octets);
   6062   1.1    bouyer 
   6063   1.1    bouyer 	if (sblk->stat_EtherStatsPktsRx1523Octetsto9022Octets)
   6064   1.1    bouyer 		BNX_PRINTF(sc, "0x%08X : "
   6065   1.1    bouyer 		    "EtherStatsPktsRx1523Octetsto9022Octets\n",
   6066   1.1    bouyer 		    sblk->stat_EtherStatsPktsRx1523Octetsto9022Octets);
   6067   1.1    bouyer 
   6068   1.1    bouyer 	if (sblk->stat_EtherStatsPktsTx64Octets)
   6069   1.1    bouyer 		BNX_PRINTF(sc, "0x%08X : EtherStatsPktsTx64Octets\n",
   6070   1.1    bouyer 		    sblk->stat_EtherStatsPktsTx64Octets);
   6071   1.1    bouyer 
   6072   1.1    bouyer 	if (sblk->stat_EtherStatsPktsTx65Octetsto127Octets)
   6073   1.1    bouyer 		BNX_PRINTF(sc, "0x%08X : EtherStatsPktsTx65Octetsto127Octets\n",
   6074   1.1    bouyer 		    sblk->stat_EtherStatsPktsTx65Octetsto127Octets);
   6075   1.1    bouyer 
   6076   1.1    bouyer 	if (sblk->stat_EtherStatsPktsTx128Octetsto255Octets)
   6077   1.1    bouyer 		BNX_PRINTF(sc, "0x%08X : "
   6078   1.1    bouyer 		    "EtherStatsPktsTx128Octetsto255Octets\n",
   6079   1.1    bouyer 		    sblk->stat_EtherStatsPktsTx128Octetsto255Octets);
   6080   1.1    bouyer 
   6081   1.1    bouyer 	if (sblk->stat_EtherStatsPktsTx256Octetsto511Octets)
   6082   1.1    bouyer 		BNX_PRINTF(sc, "0x%08X : "
   6083   1.1    bouyer 		    "EtherStatsPktsTx256Octetsto511Octets\n",
   6084   1.1    bouyer 		    sblk->stat_EtherStatsPktsTx256Octetsto511Octets);
   6085   1.1    bouyer 
   6086   1.1    bouyer 	if (sblk->stat_EtherStatsPktsTx512Octetsto1023Octets)
   6087   1.1    bouyer 		BNX_PRINTF(sc, "0x%08X : "
   6088   1.1    bouyer 		    "EtherStatsPktsTx512Octetsto1023Octets\n",
   6089   1.1    bouyer 		    sblk->stat_EtherStatsPktsTx512Octetsto1023Octets);
   6090   1.1    bouyer 
   6091   1.1    bouyer 	if (sblk->stat_EtherStatsPktsTx1024Octetsto1522Octets)
   6092   1.1    bouyer 		BNX_PRINTF(sc, "0x%08X : "
   6093   1.1    bouyer 		    "EtherStatsPktsTx1024Octetsto1522Octets\n",
   6094   1.1    bouyer 		    sblk->stat_EtherStatsPktsTx1024Octetsto1522Octets);
   6095   1.1    bouyer 
   6096   1.1    bouyer 	if (sblk->stat_EtherStatsPktsTx1523Octetsto9022Octets)
   6097   1.1    bouyer 		BNX_PRINTF(sc, "0x%08X : "
   6098   1.1    bouyer 		    "EtherStatsPktsTx1523Octetsto9022Octets\n",
   6099   1.1    bouyer 		    sblk->stat_EtherStatsPktsTx1523Octetsto9022Octets);
   6100   1.1    bouyer 
   6101   1.1    bouyer 	if (sblk->stat_XonPauseFramesReceived)
   6102   1.1    bouyer 		BNX_PRINTF(sc, "0x%08X : XonPauseFramesReceived\n",
   6103   1.1    bouyer 		    sblk->stat_XonPauseFramesReceived);
   6104   1.1    bouyer 
   6105   1.1    bouyer 	if (sblk->stat_XoffPauseFramesReceived)
   6106   1.1    bouyer 		BNX_PRINTF(sc, "0x%08X : XoffPauseFramesReceived\n",
   6107   1.1    bouyer 		    sblk->stat_XoffPauseFramesReceived);
   6108   1.1    bouyer 
   6109   1.1    bouyer 	if (sblk->stat_OutXonSent)
   6110   1.1    bouyer 		BNX_PRINTF(sc, "0x%08X : OutXonSent\n",
   6111   1.1    bouyer 		    sblk->stat_OutXonSent);
   6112   1.1    bouyer 
   6113   1.1    bouyer 	if (sblk->stat_OutXoffSent)
   6114   1.1    bouyer 		BNX_PRINTF(sc, "0x%08X : OutXoffSent\n",
   6115   1.1    bouyer 		    sblk->stat_OutXoffSent);
   6116   1.1    bouyer 
   6117   1.1    bouyer 	if (sblk->stat_FlowControlDone)
   6118   1.1    bouyer 		BNX_PRINTF(sc, "0x%08X : FlowControlDone\n",
   6119   1.1    bouyer 		    sblk->stat_FlowControlDone);
   6120   1.1    bouyer 
   6121   1.1    bouyer 	if (sblk->stat_MacControlFramesReceived)
   6122   1.1    bouyer 		BNX_PRINTF(sc, "0x%08X : MacControlFramesReceived\n",
   6123   1.1    bouyer 		    sblk->stat_MacControlFramesReceived);
   6124   1.1    bouyer 
   6125   1.1    bouyer 	if (sblk->stat_XoffStateEntered)
   6126   1.1    bouyer 		BNX_PRINTF(sc, "0x%08X : XoffStateEntered\n",
   6127   1.1    bouyer 		    sblk->stat_XoffStateEntered);
   6128   1.1    bouyer 
   6129   1.1    bouyer 	if (sblk->stat_IfInFramesL2FilterDiscards)
   6130   1.1    bouyer 		BNX_PRINTF(sc, "0x%08X : IfInFramesL2FilterDiscards\n",
   6131   1.1    bouyer 		    sblk->stat_IfInFramesL2FilterDiscards);
   6132   1.1    bouyer 
   6133   1.1    bouyer 	if (sblk->stat_IfInRuleCheckerDiscards)
   6134   1.1    bouyer 		BNX_PRINTF(sc, "0x%08X : IfInRuleCheckerDiscards\n",
   6135   1.1    bouyer 		    sblk->stat_IfInRuleCheckerDiscards);
   6136   1.1    bouyer 
   6137   1.1    bouyer 	if (sblk->stat_IfInFTQDiscards)
   6138   1.1    bouyer 		BNX_PRINTF(sc, "0x%08X : IfInFTQDiscards\n",
   6139   1.1    bouyer 		    sblk->stat_IfInFTQDiscards);
   6140   1.1    bouyer 
   6141   1.1    bouyer 	if (sblk->stat_IfInMBUFDiscards)
   6142   1.1    bouyer 		BNX_PRINTF(sc, "0x%08X : IfInMBUFDiscards\n",
   6143   1.1    bouyer 		    sblk->stat_IfInMBUFDiscards);
   6144   1.1    bouyer 
   6145   1.1    bouyer 	if (sblk->stat_IfInRuleCheckerP4Hit)
   6146   1.1    bouyer 		BNX_PRINTF(sc, "0x%08X : IfInRuleCheckerP4Hit\n",
   6147   1.1    bouyer 		    sblk->stat_IfInRuleCheckerP4Hit);
   6148   1.1    bouyer 
   6149   1.1    bouyer 	if (sblk->stat_CatchupInRuleCheckerDiscards)
   6150   1.1    bouyer 		BNX_PRINTF(sc, "0x%08X : CatchupInRuleCheckerDiscards\n",
   6151   1.1    bouyer 		    sblk->stat_CatchupInRuleCheckerDiscards);
   6152   1.1    bouyer 
   6153   1.1    bouyer 	if (sblk->stat_CatchupInFTQDiscards)
   6154   1.1    bouyer 		BNX_PRINTF(sc, "0x%08X : CatchupInFTQDiscards\n",
   6155   1.1    bouyer 		    sblk->stat_CatchupInFTQDiscards);
   6156   1.1    bouyer 
   6157   1.1    bouyer 	if (sblk->stat_CatchupInMBUFDiscards)
   6158   1.1    bouyer 		BNX_PRINTF(sc, "0x%08X : CatchupInMBUFDiscards\n",
   6159   1.1    bouyer 		    sblk->stat_CatchupInMBUFDiscards);
   6160   1.1    bouyer 
   6161   1.1    bouyer 	if (sblk->stat_CatchupInRuleCheckerP4Hit)
   6162   1.1    bouyer 		BNX_PRINTF(sc, "0x%08X : CatchupInRuleCheckerP4Hit\n",
   6163   1.1    bouyer 		    sblk->stat_CatchupInRuleCheckerP4Hit);
   6164   1.1    bouyer 
   6165  1.29    bouyer 	aprint_debug_dev(sc->bnx_dev,
   6166   1.1    bouyer 	    "-----------------------------"
   6167   1.1    bouyer 	    "--------------"
   6168   1.1    bouyer 	    "-----------------------------\n");
   6169   1.1    bouyer }
   6170   1.1    bouyer 
   6171   1.1    bouyer void
   6172   1.1    bouyer bnx_dump_driver_state(struct bnx_softc *sc)
   6173   1.1    bouyer {
   6174  1.29    bouyer 	aprint_debug_dev(sc->bnx_dev,
   6175   1.1    bouyer 	    "-----------------------------"
   6176   1.1    bouyer 	    " Driver State "
   6177   1.1    bouyer 	    "-----------------------------\n");
   6178   1.1    bouyer 
   6179   1.1    bouyer 	BNX_PRINTF(sc, "%p - (sc) driver softc structure virtual "
   6180   1.1    bouyer 	    "address\n", sc);
   6181   1.1    bouyer 
   6182   1.1    bouyer 	BNX_PRINTF(sc, "%p - (sc->status_block) status block virtual address\n",
   6183   1.1    bouyer 	    sc->status_block);
   6184   1.1    bouyer 
   6185   1.1    bouyer 	BNX_PRINTF(sc, "%p - (sc->stats_block) statistics block virtual "
   6186   1.1    bouyer 	    "address\n", sc->stats_block);
   6187   1.1    bouyer 
   6188   1.1    bouyer 	BNX_PRINTF(sc, "%p - (sc->tx_bd_chain) tx_bd chain virtual "
   6189   1.1    bouyer 	    "adddress\n", sc->tx_bd_chain);
   6190   1.1    bouyer 
   6191  1.29    bouyer #if 0
   6192   1.1    bouyer 	BNX_PRINTF(sc, "%p - (sc->rx_bd_chain) rx_bd chain virtual address\n",
   6193   1.1    bouyer 	    sc->rx_bd_chain);
   6194   1.1    bouyer 
   6195   1.1    bouyer 	BNX_PRINTF(sc, "%p - (sc->tx_mbuf_ptr) tx mbuf chain virtual address\n",
   6196   1.1    bouyer 	    sc->tx_mbuf_ptr);
   6197  1.29    bouyer #endif
   6198   1.1    bouyer 
   6199   1.1    bouyer 	BNX_PRINTF(sc, "%p - (sc->rx_mbuf_ptr) rx mbuf chain virtual address\n",
   6200   1.1    bouyer 	    sc->rx_mbuf_ptr);
   6201   1.1    bouyer 
   6202   1.1    bouyer 	BNX_PRINTF(sc,
   6203   1.1    bouyer 	    "         0x%08X - (sc->interrupts_generated) h/w intrs\n",
   6204   1.1    bouyer 	    sc->interrupts_generated);
   6205   1.1    bouyer 
   6206   1.1    bouyer 	BNX_PRINTF(sc,
   6207   1.1    bouyer 	    "         0x%08X - (sc->rx_interrupts) rx interrupts handled\n",
   6208   1.1    bouyer 	    sc->rx_interrupts);
   6209   1.1    bouyer 
   6210   1.1    bouyer 	BNX_PRINTF(sc,
   6211   1.1    bouyer 	    "         0x%08X - (sc->tx_interrupts) tx interrupts handled\n",
   6212   1.1    bouyer 	    sc->tx_interrupts);
   6213   1.1    bouyer 
   6214   1.1    bouyer 	BNX_PRINTF(sc,
   6215   1.1    bouyer 	    "         0x%08X - (sc->last_status_idx) status block index\n",
   6216   1.1    bouyer 	    sc->last_status_idx);
   6217   1.1    bouyer 
   6218   1.1    bouyer 	BNX_PRINTF(sc, "         0x%08X - (sc->tx_prod) tx producer index\n",
   6219   1.1    bouyer 	    sc->tx_prod);
   6220   1.1    bouyer 
   6221   1.1    bouyer 	BNX_PRINTF(sc, "         0x%08X - (sc->tx_cons) tx consumer index\n",
   6222   1.1    bouyer 	    sc->tx_cons);
   6223   1.1    bouyer 
   6224   1.1    bouyer 	BNX_PRINTF(sc,
   6225   1.1    bouyer 	    "         0x%08X - (sc->tx_prod_bseq) tx producer bseq index\n",
   6226   1.1    bouyer 	    sc->tx_prod_bseq);
   6227  1.29    bouyer 	BNX_PRINTF(sc,
   6228  1.29    bouyer 	    "	 0x%08X - (sc->tx_mbuf_alloc) tx mbufs allocated\n",
   6229  1.29    bouyer 	    sc->tx_mbuf_alloc);
   6230  1.29    bouyer 
   6231  1.29    bouyer 	BNX_PRINTF(sc,
   6232  1.29    bouyer 	    "	 0x%08X - (sc->used_tx_bd) used tx_bd's\n",
   6233  1.29    bouyer 	    sc->used_tx_bd);
   6234  1.29    bouyer 
   6235  1.29    bouyer 	BNX_PRINTF(sc,
   6236  1.29    bouyer 	    "	 0x%08X/%08X - (sc->tx_hi_watermark) tx hi watermark\n",
   6237  1.29    bouyer 	    sc->tx_hi_watermark, sc->max_tx_bd);
   6238  1.29    bouyer 
   6239   1.1    bouyer 
   6240   1.1    bouyer 	BNX_PRINTF(sc, "         0x%08X - (sc->rx_prod) rx producer index\n",
   6241   1.1    bouyer 	    sc->rx_prod);
   6242   1.1    bouyer 
   6243   1.1    bouyer 	BNX_PRINTF(sc, "         0x%08X - (sc->rx_cons) rx consumer index\n",
   6244   1.1    bouyer 	    sc->rx_cons);
   6245   1.1    bouyer 
   6246   1.1    bouyer 	BNX_PRINTF(sc,
   6247   1.1    bouyer 	    "         0x%08X - (sc->rx_prod_bseq) rx producer bseq index\n",
   6248   1.1    bouyer 	    sc->rx_prod_bseq);
   6249   1.1    bouyer 
   6250   1.1    bouyer 	BNX_PRINTF(sc,
   6251   1.1    bouyer 	    "         0x%08X - (sc->rx_mbuf_alloc) rx mbufs allocated\n",
   6252   1.1    bouyer 	    sc->rx_mbuf_alloc);
   6253   1.1    bouyer 
   6254   1.1    bouyer 	BNX_PRINTF(sc, "         0x%08X - (sc->free_rx_bd) free rx_bd's\n",
   6255   1.1    bouyer 	    sc->free_rx_bd);
   6256   1.1    bouyer 
   6257   1.1    bouyer 	BNX_PRINTF(sc,
   6258   1.1    bouyer 	    "0x%08X/%08X - (sc->rx_low_watermark) rx low watermark\n",
   6259  1.29    bouyer 	    sc->rx_low_watermark, sc->max_rx_bd);
   6260   1.1    bouyer 
   6261   1.1    bouyer 	BNX_PRINTF(sc,
   6262  1.29    bouyer 	    "         0x%08X - (sc->mbuf_alloc_failed) "
   6263  1.29    bouyer 	    "mbuf alloc failures\n",
   6264  1.29    bouyer 	    sc->mbuf_alloc_failed);
   6265   1.1    bouyer 
   6266   1.1    bouyer 	BNX_PRINTF(sc,
   6267  1.29    bouyer 	    "         0x%0X - (sc->mbuf_sim_allocated_failed) "
   6268  1.29    bouyer 	    "simulated mbuf alloc failures\n",
   6269  1.29    bouyer 	    sc->mbuf_sim_alloc_failed);
   6270   1.1    bouyer 
   6271  1.29    bouyer 	aprint_debug_dev(sc->bnx_dev, "-------------------------------------------"
   6272   1.1    bouyer 	    "-----------------------------\n");
   6273   1.1    bouyer }
   6274   1.1    bouyer 
   6275   1.1    bouyer void
   6276   1.1    bouyer bnx_dump_hw_state(struct bnx_softc *sc)
   6277   1.1    bouyer {
   6278   1.1    bouyer 	u_int32_t		val1;
   6279   1.1    bouyer 	int			i;
   6280   1.1    bouyer 
   6281  1.29    bouyer 	aprint_debug_dev(sc->bnx_dev,
   6282   1.1    bouyer 	    "----------------------------"
   6283   1.1    bouyer 	    " Hardware State "
   6284   1.1    bouyer 	    "----------------------------\n");
   6285   1.1    bouyer 
   6286   1.1    bouyer 	BNX_PRINTF(sc, "0x%08X : bootcode version\n", sc->bnx_fw_ver);
   6287   1.1    bouyer 
   6288   1.1    bouyer 	val1 = REG_RD(sc, BNX_MISC_ENABLE_STATUS_BITS);
   6289   1.1    bouyer 	BNX_PRINTF(sc, "0x%08X : (0x%04X) misc_enable_status_bits\n",
   6290   1.1    bouyer 	    val1, BNX_MISC_ENABLE_STATUS_BITS);
   6291   1.1    bouyer 
   6292   1.1    bouyer 	val1 = REG_RD(sc, BNX_DMA_STATUS);
   6293   1.1    bouyer 	BNX_PRINTF(sc, "0x%08X : (0x%04X) dma_status\n", val1, BNX_DMA_STATUS);
   6294   1.1    bouyer 
   6295   1.1    bouyer 	val1 = REG_RD(sc, BNX_CTX_STATUS);
   6296   1.1    bouyer 	BNX_PRINTF(sc, "0x%08X : (0x%04X) ctx_status\n", val1, BNX_CTX_STATUS);
   6297   1.1    bouyer 
   6298   1.1    bouyer 	val1 = REG_RD(sc, BNX_EMAC_STATUS);
   6299   1.1    bouyer 	BNX_PRINTF(sc, "0x%08X : (0x%04X) emac_status\n", val1,
   6300   1.1    bouyer 	    BNX_EMAC_STATUS);
   6301   1.1    bouyer 
   6302   1.1    bouyer 	val1 = REG_RD(sc, BNX_RPM_STATUS);
   6303   1.1    bouyer 	BNX_PRINTF(sc, "0x%08X : (0x%04X) rpm_status\n", val1, BNX_RPM_STATUS);
   6304   1.1    bouyer 
   6305   1.1    bouyer 	val1 = REG_RD(sc, BNX_TBDR_STATUS);
   6306   1.1    bouyer 	BNX_PRINTF(sc, "0x%08X : (0x%04X) tbdr_status\n", val1,
   6307   1.1    bouyer 	    BNX_TBDR_STATUS);
   6308   1.1    bouyer 
   6309   1.1    bouyer 	val1 = REG_RD(sc, BNX_TDMA_STATUS);
   6310   1.1    bouyer 	BNX_PRINTF(sc, "0x%08X : (0x%04X) tdma_status\n", val1,
   6311   1.1    bouyer 	    BNX_TDMA_STATUS);
   6312   1.1    bouyer 
   6313   1.1    bouyer 	val1 = REG_RD(sc, BNX_HC_STATUS);
   6314   1.1    bouyer 	BNX_PRINTF(sc, "0x%08X : (0x%04X) hc_status\n", val1, BNX_HC_STATUS);
   6315   1.1    bouyer 
   6316  1.29    bouyer 	aprint_debug_dev(sc->bnx_dev,
   6317   1.1    bouyer 	    "----------------------------"
   6318   1.1    bouyer 	    "----------------"
   6319   1.1    bouyer 	    "----------------------------\n");
   6320   1.1    bouyer 
   6321  1.29    bouyer 	aprint_debug_dev(sc->bnx_dev,
   6322   1.1    bouyer 	    "----------------------------"
   6323   1.1    bouyer 	    " Register  Dump "
   6324   1.1    bouyer 	    "----------------------------\n");
   6325   1.1    bouyer 
   6326   1.1    bouyer 	for (i = 0x400; i < 0x8000; i += 0x10)
   6327   1.1    bouyer 		BNX_PRINTF(sc, "0x%04X: 0x%08X 0x%08X 0x%08X 0x%08X\n",
   6328   1.1    bouyer 		    i, REG_RD(sc, i), REG_RD(sc, i + 0x4),
   6329   1.1    bouyer 		    REG_RD(sc, i + 0x8), REG_RD(sc, i + 0xC));
   6330   1.1    bouyer 
   6331  1.29    bouyer 	aprint_debug_dev(sc->bnx_dev,
   6332   1.1    bouyer 	    "----------------------------"
   6333   1.1    bouyer 	    "----------------"
   6334   1.1    bouyer 	    "----------------------------\n");
   6335   1.1    bouyer }
   6336   1.1    bouyer 
   6337   1.1    bouyer void
   6338   1.1    bouyer bnx_breakpoint(struct bnx_softc *sc)
   6339   1.1    bouyer {
   6340   1.1    bouyer 	/* Unreachable code to shut the compiler up about unused functions. */
   6341   1.1    bouyer 	if (0) {
   6342   1.1    bouyer    		bnx_dump_txbd(sc, 0, NULL);
   6343   1.1    bouyer 		bnx_dump_rxbd(sc, 0, NULL);
   6344   1.1    bouyer 		bnx_dump_tx_mbuf_chain(sc, 0, USABLE_TX_BD);
   6345  1.29    bouyer 		bnx_dump_rx_mbuf_chain(sc, 0, sc->max_rx_bd);
   6346   1.1    bouyer 		bnx_dump_l2fhdr(sc, 0, NULL);
   6347   1.1    bouyer 		bnx_dump_tx_chain(sc, 0, USABLE_TX_BD);
   6348  1.29    bouyer 		bnx_dump_rx_chain(sc, 0, sc->max_rx_bd);
   6349   1.1    bouyer 		bnx_dump_status_block(sc);
   6350   1.1    bouyer 		bnx_dump_stats_block(sc);
   6351   1.1    bouyer 		bnx_dump_driver_state(sc);
   6352   1.1    bouyer 		bnx_dump_hw_state(sc);
   6353   1.1    bouyer 	}
   6354   1.1    bouyer 
   6355   1.1    bouyer 	bnx_dump_driver_state(sc);
   6356   1.1    bouyer 	/* Print the important status block fields. */
   6357   1.1    bouyer 	bnx_dump_status_block(sc);
   6358   1.1    bouyer 
   6359   1.1    bouyer #if 0
   6360   1.1    bouyer 	/* Call the debugger. */
   6361   1.1    bouyer 	breakpoint();
   6362   1.1    bouyer #endif
   6363   1.1    bouyer 
   6364   1.1    bouyer 	return;
   6365   1.1    bouyer }
   6366   1.1    bouyer #endif
   6367