Home | History | Annotate | Line # | Download | only in marvell
if_mvxpe.c revision 1.19.2.3
      1  1.19.2.2    martin /*	$NetBSD: if_mvxpe.c,v 1.19.2.3 2020/04/13 08:04:23 martin Exp $	*/
      2       1.1  hsuenaga /*
      3       1.1  hsuenaga  * Copyright (c) 2015 Internet Initiative Japan Inc.
      4       1.1  hsuenaga  * All rights reserved.
      5       1.1  hsuenaga  *
      6       1.1  hsuenaga  * Redistribution and use in source and binary forms, with or without
      7       1.1  hsuenaga  * modification, are permitted provided that the following conditions
      8       1.1  hsuenaga  * are met:
      9       1.1  hsuenaga  * 1. Redistributions of source code must retain the above copyright
     10       1.1  hsuenaga  *    notice, this list of conditions and the following disclaimer.
     11       1.1  hsuenaga  * 2. Redistributions in binary form must reproduce the above copyright
     12       1.1  hsuenaga  *    notice, this list of conditions and the following disclaimer in the
     13       1.1  hsuenaga  *    documentation and/or other materials provided with the distribution.
     14       1.1  hsuenaga  *
     15       1.1  hsuenaga  * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
     16       1.1  hsuenaga  * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED
     17       1.1  hsuenaga  * WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE
     18       1.1  hsuenaga  * DISCLAIMED.  IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT,
     19       1.1  hsuenaga  * INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES
     20       1.1  hsuenaga  * (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR
     21       1.1  hsuenaga  * SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     22       1.1  hsuenaga  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT,
     23       1.1  hsuenaga  * STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN
     24       1.1  hsuenaga  * ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
     25       1.1  hsuenaga  * POSSIBILITY OF SUCH DAMAGE.
     26       1.1  hsuenaga  */
     27       1.1  hsuenaga #include <sys/cdefs.h>
     28  1.19.2.2    martin __KERNEL_RCSID(0, "$NetBSD: if_mvxpe.c,v 1.19.2.3 2020/04/13 08:04:23 martin Exp $");
     29       1.1  hsuenaga 
     30       1.1  hsuenaga #include "opt_multiprocessor.h"
     31       1.1  hsuenaga 
     32       1.1  hsuenaga #include <sys/param.h>
     33       1.1  hsuenaga #include <sys/bus.h>
     34       1.1  hsuenaga #include <sys/callout.h>
     35       1.1  hsuenaga #include <sys/device.h>
     36       1.1  hsuenaga #include <sys/endian.h>
     37       1.1  hsuenaga #include <sys/errno.h>
     38       1.1  hsuenaga #include <sys/evcnt.h>
     39       1.1  hsuenaga #include <sys/kernel.h>
     40       1.1  hsuenaga #include <sys/kmem.h>
     41       1.1  hsuenaga #include <sys/mutex.h>
     42       1.1  hsuenaga #include <sys/sockio.h>
     43       1.1  hsuenaga #include <sys/sysctl.h>
     44       1.1  hsuenaga #include <sys/syslog.h>
     45       1.1  hsuenaga #include <sys/rndsource.h>
     46       1.1  hsuenaga 
     47       1.1  hsuenaga #include <net/if.h>
     48       1.1  hsuenaga #include <net/if_ether.h>
     49       1.1  hsuenaga #include <net/if_media.h>
     50       1.1  hsuenaga #include <net/bpf.h>
     51       1.1  hsuenaga 
     52       1.1  hsuenaga #include <netinet/in.h>
     53       1.1  hsuenaga #include <netinet/in_systm.h>
     54       1.1  hsuenaga #include <netinet/ip.h>
     55       1.1  hsuenaga 
     56       1.1  hsuenaga #include <dev/mii/mii.h>
     57       1.1  hsuenaga #include <dev/mii/miivar.h>
     58       1.1  hsuenaga 
     59       1.1  hsuenaga #include <dev/marvell/marvellreg.h>
     60       1.1  hsuenaga #include <dev/marvell/marvellvar.h>
     61       1.2  hsuenaga #include <dev/marvell/mvxpbmvar.h>
     62       1.1  hsuenaga #include <dev/marvell/if_mvxpereg.h>
     63       1.1  hsuenaga #include <dev/marvell/if_mvxpevar.h>
     64       1.1  hsuenaga 
     65       1.1  hsuenaga #include "locators.h"
     66       1.1  hsuenaga 
     67       1.1  hsuenaga #if BYTE_ORDER == BIG_ENDIAN
     68       1.1  hsuenaga #error "BIG ENDIAN not supported"
     69       1.1  hsuenaga #endif
     70       1.1  hsuenaga 
     71       1.1  hsuenaga #ifdef MVXPE_DEBUG
     72       1.1  hsuenaga #define STATIC /* nothing */
     73       1.1  hsuenaga #else
     74       1.1  hsuenaga #define STATIC static
     75       1.1  hsuenaga #endif
     76       1.1  hsuenaga 
     77       1.1  hsuenaga /* autoconf(9) */
     78       1.1  hsuenaga STATIC int mvxpe_match(device_t, struct cfdata *, void *);
     79       1.1  hsuenaga STATIC void mvxpe_attach(device_t, device_t, void *);
     80       1.1  hsuenaga STATIC int mvxpe_evcnt_attach(struct mvxpe_softc *);
     81       1.1  hsuenaga CFATTACH_DECL_NEW(mvxpe_mbus, sizeof(struct mvxpe_softc),
     82       1.1  hsuenaga     mvxpe_match, mvxpe_attach, NULL, NULL);
     83       1.1  hsuenaga STATIC void mvxpe_sc_lock(struct mvxpe_softc *);
     84       1.1  hsuenaga STATIC void mvxpe_sc_unlock(struct mvxpe_softc *);
     85       1.1  hsuenaga 
     86       1.1  hsuenaga /* MII */
     87  1.19.2.1  christos STATIC int mvxpe_miibus_readreg(device_t, int, int, uint16_t *);
     88  1.19.2.1  christos STATIC int mvxpe_miibus_writereg(device_t, int, int, uint16_t);
     89       1.1  hsuenaga STATIC void mvxpe_miibus_statchg(struct ifnet *);
     90       1.1  hsuenaga 
     91       1.1  hsuenaga /* Addres Decoding Window */
     92       1.1  hsuenaga STATIC void mvxpe_wininit(struct mvxpe_softc *, enum marvell_tags *);
     93       1.1  hsuenaga 
     94       1.1  hsuenaga /* Device Register Initialization */
     95       1.1  hsuenaga STATIC int mvxpe_initreg(struct ifnet *);
     96       1.1  hsuenaga 
     97       1.1  hsuenaga /* Descriptor Ring Control for each of queues */
     98       1.1  hsuenaga STATIC void *mvxpe_dma_memalloc(struct mvxpe_softc *, bus_dmamap_t *, size_t);
     99       1.1  hsuenaga STATIC int mvxpe_ring_alloc_queue(struct mvxpe_softc *, int);
    100       1.1  hsuenaga STATIC void mvxpe_ring_dealloc_queue(struct mvxpe_softc *, int);
    101       1.1  hsuenaga STATIC void mvxpe_ring_init_queue(struct mvxpe_softc *, int);
    102       1.1  hsuenaga STATIC void mvxpe_ring_flush_queue(struct mvxpe_softc *, int);
    103       1.1  hsuenaga STATIC void mvxpe_ring_sync_rx(struct mvxpe_softc *, int, int, int, int);
    104       1.1  hsuenaga STATIC void mvxpe_ring_sync_tx(struct mvxpe_softc *, int, int, int, int);
    105       1.1  hsuenaga 
    106       1.1  hsuenaga /* Rx/Tx Queue Control */
    107       1.1  hsuenaga STATIC int mvxpe_rx_queue_init(struct ifnet *, int);
    108       1.1  hsuenaga STATIC int mvxpe_tx_queue_init(struct ifnet *, int);
    109       1.1  hsuenaga STATIC int mvxpe_rx_queue_enable(struct ifnet *, int);
    110       1.1  hsuenaga STATIC int mvxpe_tx_queue_enable(struct ifnet *, int);
    111       1.1  hsuenaga STATIC void mvxpe_rx_lockq(struct mvxpe_softc *, int);
    112       1.1  hsuenaga STATIC void mvxpe_rx_unlockq(struct mvxpe_softc *, int);
    113       1.1  hsuenaga STATIC void mvxpe_tx_lockq(struct mvxpe_softc *, int);
    114       1.1  hsuenaga STATIC void mvxpe_tx_unlockq(struct mvxpe_softc *, int);
    115       1.1  hsuenaga 
    116       1.1  hsuenaga /* Interrupt Handlers */
    117       1.1  hsuenaga STATIC void mvxpe_disable_intr(struct mvxpe_softc *);
    118       1.1  hsuenaga STATIC void mvxpe_enable_intr(struct mvxpe_softc *);
    119       1.1  hsuenaga STATIC int mvxpe_rxtxth_intr(void *);
    120       1.1  hsuenaga STATIC int mvxpe_misc_intr(void *);
    121       1.1  hsuenaga STATIC int mvxpe_rxtx_intr(void *);
    122       1.1  hsuenaga STATIC void mvxpe_tick(void *);
    123       1.1  hsuenaga 
    124       1.1  hsuenaga /* struct ifnet and mii callbacks*/
    125       1.1  hsuenaga STATIC void mvxpe_start(struct ifnet *);
    126       1.1  hsuenaga STATIC int mvxpe_ioctl(struct ifnet *, u_long, void *);
    127       1.1  hsuenaga STATIC int mvxpe_init(struct ifnet *);
    128       1.1  hsuenaga STATIC void mvxpe_stop(struct ifnet *, int);
    129       1.1  hsuenaga STATIC void mvxpe_watchdog(struct ifnet *);
    130       1.1  hsuenaga STATIC int mvxpe_ifflags_cb(struct ethercom *);
    131       1.1  hsuenaga STATIC int mvxpe_mediachange(struct ifnet *);
    132       1.1  hsuenaga STATIC void mvxpe_mediastatus(struct ifnet *, struct ifmediareq *);
    133       1.1  hsuenaga 
    134       1.1  hsuenaga /* Link State Notify */
    135       1.1  hsuenaga STATIC void mvxpe_linkupdate(struct mvxpe_softc *sc);
    136       1.1  hsuenaga STATIC void mvxpe_linkup(struct mvxpe_softc *);
    137       1.1  hsuenaga STATIC void mvxpe_linkdown(struct mvxpe_softc *);
    138       1.1  hsuenaga STATIC void mvxpe_linkreset(struct mvxpe_softc *);
    139       1.1  hsuenaga 
    140       1.1  hsuenaga /* Tx Subroutines */
    141       1.1  hsuenaga STATIC int mvxpe_tx_queue_select(struct mvxpe_softc *, struct mbuf *);
    142       1.1  hsuenaga STATIC int mvxpe_tx_queue(struct mvxpe_softc *, struct mbuf *, int);
    143       1.1  hsuenaga STATIC void mvxpe_tx_set_csumflag(struct ifnet *,
    144       1.1  hsuenaga     struct mvxpe_tx_desc *, struct mbuf *);
    145       1.2  hsuenaga STATIC void mvxpe_tx_complete(struct mvxpe_softc *, uint32_t);
    146       1.2  hsuenaga STATIC void mvxpe_tx_queue_complete(struct mvxpe_softc *, int);
    147       1.1  hsuenaga 
    148       1.1  hsuenaga /* Rx Subroutines */
    149       1.2  hsuenaga STATIC void mvxpe_rx(struct mvxpe_softc *, uint32_t);
    150       1.1  hsuenaga STATIC void mvxpe_rx_queue(struct mvxpe_softc *, int, int);
    151       1.2  hsuenaga STATIC int mvxpe_rx_queue_select(struct mvxpe_softc *, uint32_t, int *);
    152       1.2  hsuenaga STATIC void mvxpe_rx_refill(struct mvxpe_softc *, uint32_t);
    153       1.2  hsuenaga STATIC void mvxpe_rx_queue_refill(struct mvxpe_softc *, int);
    154       1.1  hsuenaga STATIC int mvxpe_rx_queue_add(struct mvxpe_softc *, int);
    155       1.1  hsuenaga STATIC void mvxpe_rx_set_csumflag(struct ifnet *,
    156       1.1  hsuenaga     struct mvxpe_rx_desc *, struct mbuf *);
    157       1.1  hsuenaga 
    158       1.1  hsuenaga /* MAC address filter */
    159       1.1  hsuenaga STATIC uint8_t mvxpe_crc8(const uint8_t *, size_t);
    160       1.1  hsuenaga STATIC void mvxpe_filter_setup(struct mvxpe_softc *);
    161       1.1  hsuenaga 
    162       1.1  hsuenaga /* sysctl(9) */
    163       1.1  hsuenaga STATIC int sysctl_read_mib(SYSCTLFN_PROTO);
    164       1.1  hsuenaga STATIC int sysctl_clear_mib(SYSCTLFN_PROTO);
    165       1.1  hsuenaga STATIC int sysctl_set_queue_length(SYSCTLFN_PROTO);
    166       1.1  hsuenaga STATIC int sysctl_set_queue_rxthtime(SYSCTLFN_PROTO);
    167       1.1  hsuenaga STATIC void sysctl_mvxpe_init(struct mvxpe_softc *);
    168       1.1  hsuenaga 
    169       1.1  hsuenaga /* MIB */
    170       1.1  hsuenaga STATIC void mvxpe_clear_mib(struct mvxpe_softc *);
    171       1.1  hsuenaga STATIC void mvxpe_update_mib(struct mvxpe_softc *);
    172       1.1  hsuenaga 
    173       1.1  hsuenaga /* for Debug */
    174       1.1  hsuenaga STATIC void mvxpe_dump_txdesc(struct mvxpe_tx_desc *, int) __attribute__((__unused__));
    175       1.1  hsuenaga STATIC void mvxpe_dump_rxdesc(struct mvxpe_rx_desc *, int) __attribute__((__unused__));
    176       1.1  hsuenaga 
    177       1.1  hsuenaga STATIC int mvxpe_root_num;
    178       1.1  hsuenaga STATIC kmutex_t mii_mutex;
    179       1.1  hsuenaga STATIC int mii_init = 0;
    180       1.1  hsuenaga #ifdef MVXPE_DEBUG
    181       1.1  hsuenaga STATIC int mvxpe_debug = MVXPE_DEBUG;
    182       1.1  hsuenaga #endif
    183       1.1  hsuenaga 
    184       1.1  hsuenaga /*
    185       1.1  hsuenaga  * List of MIB register and names
    186       1.1  hsuenaga  */
    187       1.1  hsuenaga STATIC struct mvxpe_mib_def {
    188       1.1  hsuenaga 	uint32_t regnum;
    189       1.1  hsuenaga 	int reg64;
    190       1.1  hsuenaga 	const char *sysctl_name;
    191       1.1  hsuenaga 	const char *desc;
    192      1.10    hikaru 	int ext;
    193      1.10    hikaru #define MVXPE_MIBEXT_IF_OERRORS	1
    194      1.10    hikaru #define MVXPE_MIBEXT_IF_IERRORS	2
    195      1.10    hikaru #define MVXPE_MIBEXT_IF_COLLISIONS	3
    196       1.1  hsuenaga } mvxpe_mib_list[] = {
    197       1.1  hsuenaga 	{MVXPE_MIB_RX_GOOD_OCT, 1,	"rx_good_oct",
    198      1.10    hikaru 	    "Good Octets Rx", 0},
    199       1.1  hsuenaga 	{MVXPE_MIB_RX_BAD_OCT, 0,	"rx_bad_oct",
    200      1.10    hikaru 	    "Bad  Octets Rx", 0},
    201      1.10    hikaru 	{MVXPE_MIB_TX_MAC_TRNS_ERR, 0,	"tx_mac_err",
    202      1.10    hikaru 	    "MAC Transmit Error", MVXPE_MIBEXT_IF_OERRORS},
    203       1.1  hsuenaga 	{MVXPE_MIB_RX_GOOD_FRAME, 0,	"rx_good_frame",
    204      1.10    hikaru 	    "Good Frames Rx", 0},
    205       1.1  hsuenaga 	{MVXPE_MIB_RX_BAD_FRAME, 0,	"rx_bad_frame",
    206      1.10    hikaru 	    "Bad Frames Rx", 0},
    207       1.1  hsuenaga 	{MVXPE_MIB_RX_BCAST_FRAME, 0,	"rx_bcast_frame",
    208      1.10    hikaru 	    "Broadcast Frames Rx", 0},
    209       1.1  hsuenaga 	{MVXPE_MIB_RX_MCAST_FRAME, 0,	"rx_mcast_frame",
    210      1.10    hikaru 	    "Multicast Frames Rx", 0},
    211       1.1  hsuenaga 	{MVXPE_MIB_RX_FRAME64_OCT, 0,	"rx_frame_1_64",
    212      1.10    hikaru 	    "Frame Size    1 -   64", 0},
    213       1.1  hsuenaga 	{MVXPE_MIB_RX_FRAME127_OCT, 0,	"rx_frame_65_127",
    214      1.10    hikaru 	    "Frame Size   65 -  127", 0},
    215       1.1  hsuenaga 	{MVXPE_MIB_RX_FRAME255_OCT, 0,	"rx_frame_128_255",
    216      1.10    hikaru 	    "Frame Size  128 -  255", 0},
    217       1.1  hsuenaga 	{MVXPE_MIB_RX_FRAME511_OCT, 0,	"rx_frame_256_511",
    218       1.1  hsuenaga 	    "Frame Size  256 -  511"},
    219       1.1  hsuenaga 	{MVXPE_MIB_RX_FRAME1023_OCT, 0,	"rx_frame_512_1023",
    220      1.10    hikaru 	    "Frame Size  512 - 1023", 0},
    221       1.1  hsuenaga 	{MVXPE_MIB_RX_FRAMEMAX_OCT, 0,	"rx_fame_1024_max",
    222      1.10    hikaru 	    "Frame Size 1024 -  Max", 0},
    223       1.1  hsuenaga 	{MVXPE_MIB_TX_GOOD_OCT, 1,	"tx_good_oct",
    224      1.10    hikaru 	    "Good Octets Tx", 0},
    225       1.1  hsuenaga 	{MVXPE_MIB_TX_GOOD_FRAME, 0,	"tx_good_frame",
    226      1.10    hikaru 	    "Good Frames Tx", 0},
    227       1.1  hsuenaga 	{MVXPE_MIB_TX_EXCES_COL, 0,	"tx_exces_collision",
    228      1.10    hikaru 	    "Excessive Collision", MVXPE_MIBEXT_IF_OERRORS},
    229       1.1  hsuenaga 	{MVXPE_MIB_TX_MCAST_FRAME, 0,	"tx_mcast_frame",
    230       1.1  hsuenaga 	    "Multicast Frames Tx"},
    231       1.1  hsuenaga 	{MVXPE_MIB_TX_BCAST_FRAME, 0,	"tx_bcast_frame",
    232       1.1  hsuenaga 	    "Broadcast Frames Tx"},
    233       1.1  hsuenaga 	{MVXPE_MIB_TX_MAC_CTL_ERR, 0,	"tx_mac_err",
    234      1.10    hikaru 	    "Unknown MAC Control", 0},
    235       1.1  hsuenaga 	{MVXPE_MIB_FC_SENT, 0,		"fc_tx",
    236      1.10    hikaru 	    "Flow Control Tx", 0},
    237       1.1  hsuenaga 	{MVXPE_MIB_FC_GOOD, 0,		"fc_rx_good",
    238      1.10    hikaru 	    "Good Flow Control Rx", 0},
    239       1.1  hsuenaga 	{MVXPE_MIB_FC_BAD, 0,		"fc_rx_bad",
    240      1.10    hikaru 	    "Bad Flow Control Rx", 0},
    241       1.1  hsuenaga 	{MVXPE_MIB_PKT_UNDERSIZE, 0,	"pkt_undersize",
    242      1.10    hikaru 	    "Undersized Packets Rx", MVXPE_MIBEXT_IF_IERRORS},
    243       1.1  hsuenaga 	{MVXPE_MIB_PKT_FRAGMENT, 0,	"pkt_fragment",
    244      1.10    hikaru 	    "Fragmented Packets Rx", MVXPE_MIBEXT_IF_IERRORS},
    245       1.1  hsuenaga 	{MVXPE_MIB_PKT_OVERSIZE, 0,	"pkt_oversize",
    246      1.10    hikaru 	    "Oversized Packets Rx", MVXPE_MIBEXT_IF_IERRORS},
    247       1.1  hsuenaga 	{MVXPE_MIB_PKT_JABBER, 0,	"pkt_jabber",
    248      1.10    hikaru 	    "Jabber Packets Rx", MVXPE_MIBEXT_IF_IERRORS},
    249       1.1  hsuenaga 	{MVXPE_MIB_MAC_RX_ERR, 0,	"mac_rx_err",
    250      1.10    hikaru 	    "MAC Rx Errors", MVXPE_MIBEXT_IF_IERRORS},
    251       1.1  hsuenaga 	{MVXPE_MIB_MAC_CRC_ERR, 0,	"mac_crc_err",
    252      1.10    hikaru 	    "MAC CRC Errors", MVXPE_MIBEXT_IF_IERRORS},
    253       1.1  hsuenaga 	{MVXPE_MIB_MAC_COL, 0,		"mac_collision",
    254      1.10    hikaru 	    "MAC Collision", MVXPE_MIBEXT_IF_COLLISIONS},
    255       1.1  hsuenaga 	{MVXPE_MIB_MAC_LATE_COL, 0,	"mac_late_collision",
    256      1.10    hikaru 	    "MAC Late Collision", MVXPE_MIBEXT_IF_OERRORS},
    257       1.1  hsuenaga };
    258       1.1  hsuenaga 
    259       1.1  hsuenaga /*
    260       1.1  hsuenaga  * autoconf(9)
    261       1.1  hsuenaga  */
    262       1.1  hsuenaga /* ARGSUSED */
    263       1.1  hsuenaga STATIC int
    264       1.1  hsuenaga mvxpe_match(device_t parent, cfdata_t match, void *aux)
    265       1.1  hsuenaga {
    266       1.1  hsuenaga 	struct marvell_attach_args *mva = aux;
    267       1.1  hsuenaga 	bus_size_t pv_off;
    268       1.1  hsuenaga 	uint32_t pv;
    269       1.1  hsuenaga 
    270       1.1  hsuenaga 	if (strcmp(mva->mva_name, match->cf_name) != 0)
    271       1.1  hsuenaga 		return 0;
    272       1.1  hsuenaga 	if (mva->mva_offset == MVA_OFFSET_DEFAULT)
    273       1.1  hsuenaga 		return 0;
    274       1.1  hsuenaga 
    275       1.1  hsuenaga 	/* check port version */
    276       1.1  hsuenaga 	pv_off = mva->mva_offset + MVXPE_PV;
    277       1.1  hsuenaga 	pv = bus_space_read_4(mva->mva_iot, mva->mva_ioh, pv_off);
    278       1.1  hsuenaga 	if (MVXPE_PV_GET_VERSION(pv) < 0x10)
    279       1.1  hsuenaga 		return 0; /* old version is not supported */
    280       1.1  hsuenaga 
    281       1.1  hsuenaga 	return 1;
    282       1.1  hsuenaga }
    283       1.1  hsuenaga 
    284       1.1  hsuenaga /* ARGSUSED */
    285       1.1  hsuenaga STATIC void
    286       1.1  hsuenaga mvxpe_attach(device_t parent, device_t self, void *aux)
    287       1.1  hsuenaga {
    288       1.1  hsuenaga 	struct mvxpe_softc *sc = device_private(self);
    289  1.19.2.3    martin 	struct mii_softc *child;
    290       1.1  hsuenaga 	struct ifnet *ifp = &sc->sc_ethercom.ec_if;
    291  1.19.2.1  christos 	struct mii_data * const mii = &sc->sc_mii;
    292       1.1  hsuenaga 	struct marvell_attach_args *mva = aux;
    293       1.1  hsuenaga 	prop_dictionary_t dict;
    294       1.1  hsuenaga 	prop_data_t enaddrp = NULL;
    295       1.1  hsuenaga 	uint32_t phyaddr, maddrh, maddrl;
    296       1.1  hsuenaga 	uint8_t enaddr[ETHER_ADDR_LEN];
    297       1.1  hsuenaga 	int q;
    298       1.1  hsuenaga 
    299       1.1  hsuenaga 	aprint_naive("\n");
    300       1.1  hsuenaga 	aprint_normal(": Marvell ARMADA GbE Controller\n");
    301       1.1  hsuenaga 	memset(sc, 0, sizeof(*sc));
    302       1.1  hsuenaga 	sc->sc_dev = self;
    303       1.1  hsuenaga 	sc->sc_port = mva->mva_unit;
    304       1.1  hsuenaga 	sc->sc_iot = mva->mva_iot;
    305       1.1  hsuenaga 	sc->sc_dmat = mva->mva_dmat;
    306       1.1  hsuenaga 	mutex_init(&sc->sc_mtx, MUTEX_DEFAULT, IPL_NET);
    307       1.1  hsuenaga 	callout_init(&sc->sc_tick_ch, 0);
    308       1.1  hsuenaga 	callout_setfunc(&sc->sc_tick_ch, mvxpe_tick, sc);
    309       1.1  hsuenaga 
    310       1.1  hsuenaga 	/*
    311       1.1  hsuenaga 	 * BUS space
    312       1.1  hsuenaga 	 */
    313       1.1  hsuenaga 	if (bus_space_subregion(mva->mva_iot, mva->mva_ioh,
    314       1.1  hsuenaga 	    mva->mva_offset, mva->mva_size, &sc->sc_ioh)) {
    315       1.1  hsuenaga 		aprint_error_dev(self, "Cannot map registers\n");
    316       1.1  hsuenaga 		goto fail;
    317       1.1  hsuenaga 	}
    318       1.1  hsuenaga 	if (bus_space_subregion(mva->mva_iot, mva->mva_ioh,
    319       1.1  hsuenaga 	    mva->mva_offset + MVXPE_PORTMIB_BASE, MVXPE_PORTMIB_SIZE,
    320       1.1  hsuenaga 	    &sc->sc_mibh)) {
    321       1.1  hsuenaga 		aprint_error_dev(self,
    322       1.1  hsuenaga 		    "Cannot map destination address filter registers\n");
    323       1.1  hsuenaga 		goto fail;
    324       1.1  hsuenaga 	}
    325       1.1  hsuenaga 	sc->sc_version = MVXPE_READ(sc, MVXPE_PV);
    326       1.1  hsuenaga 	aprint_normal_dev(self, "Port Version %#x\n", sc->sc_version);
    327       1.1  hsuenaga 
    328       1.1  hsuenaga 	/*
    329       1.2  hsuenaga 	 * Buffer Manager(BM) subsystem.
    330       1.1  hsuenaga 	 */
    331       1.2  hsuenaga 	sc->sc_bm = mvxpbm_device(mva);
    332       1.2  hsuenaga 	if (sc->sc_bm == NULL) {
    333       1.2  hsuenaga 		aprint_error_dev(self, "no Buffer Manager.\n");
    334       1.1  hsuenaga 		goto fail;
    335       1.1  hsuenaga 	}
    336       1.2  hsuenaga 	aprint_normal_dev(self,
    337  1.19.2.1  christos 	    "Using Buffer Manager: %s\n", mvxpbm_xname(sc->sc_bm));
    338       1.2  hsuenaga 	aprint_normal_dev(sc->sc_dev,
    339       1.2  hsuenaga 	    "%zu kbytes managed buffer, %zu bytes * %u entries allocated.\n",
    340       1.2  hsuenaga 	    mvxpbm_buf_size(sc->sc_bm) / 1024,
    341       1.2  hsuenaga 	    mvxpbm_chunk_size(sc->sc_bm), mvxpbm_chunk_count(sc->sc_bm));
    342       1.1  hsuenaga 
    343       1.1  hsuenaga 	/*
    344       1.1  hsuenaga 	 * make sure DMA engines are in reset state
    345       1.1  hsuenaga 	 */
    346       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_PRXINIT, 0x00000001);
    347       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_PTXINIT, 0x00000001);
    348       1.1  hsuenaga 
    349       1.1  hsuenaga 	/*
    350       1.1  hsuenaga 	 * Address decoding window
    351       1.1  hsuenaga 	 */
    352       1.1  hsuenaga 	mvxpe_wininit(sc, mva->mva_tags);
    353       1.1  hsuenaga 
    354       1.1  hsuenaga 	/*
    355       1.1  hsuenaga 	 * MAC address
    356       1.1  hsuenaga 	 */
    357       1.1  hsuenaga 	dict = device_properties(self);
    358       1.1  hsuenaga 	if (dict)
    359       1.1  hsuenaga 		enaddrp = prop_dictionary_get(dict, "mac-address");
    360       1.1  hsuenaga 	if (enaddrp) {
    361       1.1  hsuenaga 		memcpy(enaddr, prop_data_data_nocopy(enaddrp), ETHER_ADDR_LEN);
    362       1.1  hsuenaga 		maddrh  = enaddr[0] << 24;
    363       1.1  hsuenaga 		maddrh |= enaddr[1] << 16;
    364       1.1  hsuenaga 		maddrh |= enaddr[2] << 8;
    365       1.1  hsuenaga 		maddrh |= enaddr[3];
    366       1.1  hsuenaga 		maddrl  = enaddr[4] << 8;
    367       1.1  hsuenaga 		maddrl |= enaddr[5];
    368       1.1  hsuenaga 		MVXPE_WRITE(sc, MVXPE_MACAH, maddrh);
    369       1.1  hsuenaga 		MVXPE_WRITE(sc, MVXPE_MACAL, maddrl);
    370       1.1  hsuenaga 	}
    371       1.1  hsuenaga 	else {
    372       1.1  hsuenaga 		/*
    373       1.1  hsuenaga 		 * even if enaddr is not found in dictionary,
    374       1.1  hsuenaga 		 * the port may be initialized by IPL program such as U-BOOT.
    375       1.1  hsuenaga 		 */
    376       1.1  hsuenaga 		maddrh = MVXPE_READ(sc, MVXPE_MACAH);
    377       1.1  hsuenaga 		maddrl = MVXPE_READ(sc, MVXPE_MACAL);
    378       1.1  hsuenaga 		if ((maddrh | maddrl) == 0) {
    379       1.1  hsuenaga 			aprint_error_dev(self, "No Ethernet address\n");
    380       1.1  hsuenaga 			return;
    381       1.1  hsuenaga 		}
    382       1.1  hsuenaga 	}
    383       1.1  hsuenaga 	sc->sc_enaddr[0] = maddrh >> 24;
    384       1.1  hsuenaga 	sc->sc_enaddr[1] = maddrh >> 16;
    385       1.1  hsuenaga 	sc->sc_enaddr[2] = maddrh >> 8;
    386       1.1  hsuenaga 	sc->sc_enaddr[3] = maddrh >> 0;
    387       1.1  hsuenaga 	sc->sc_enaddr[4] = maddrl >> 8;
    388       1.1  hsuenaga 	sc->sc_enaddr[5] = maddrl >> 0;
    389       1.1  hsuenaga 	aprint_normal_dev(self, "Ethernet address %s\n",
    390       1.1  hsuenaga 	    ether_sprintf(sc->sc_enaddr));
    391       1.1  hsuenaga 
    392       1.1  hsuenaga 	/*
    393       1.1  hsuenaga 	 * Register interrupt handlers
    394       1.1  hsuenaga 	 * XXX: handle Ethernet unit intr. and Error intr.
    395       1.1  hsuenaga 	 */
    396       1.1  hsuenaga 	mvxpe_disable_intr(sc);
    397       1.1  hsuenaga 	marvell_intr_establish(mva->mva_irq, IPL_NET, mvxpe_rxtxth_intr, sc);
    398       1.1  hsuenaga 
    399       1.1  hsuenaga 	/*
    400       1.1  hsuenaga 	 * MIB buffer allocation
    401       1.1  hsuenaga 	 */
    402       1.1  hsuenaga 	sc->sc_sysctl_mib_size =
    403       1.1  hsuenaga 	    __arraycount(mvxpe_mib_list) * sizeof(struct mvxpe_sysctl_mib);
    404  1.19.2.3    martin 	sc->sc_sysctl_mib = kmem_alloc(sc->sc_sysctl_mib_size, KM_SLEEP);
    405       1.1  hsuenaga 	memset(sc->sc_sysctl_mib, 0, sc->sc_sysctl_mib_size);
    406       1.1  hsuenaga 
    407       1.1  hsuenaga 	/*
    408       1.1  hsuenaga 	 * Device DMA Buffer allocation
    409       1.1  hsuenaga 	 */
    410       1.1  hsuenaga 	for (q = 0; q < MVXPE_QUEUE_SIZE; q++) {
    411       1.1  hsuenaga 		if (mvxpe_ring_alloc_queue(sc, q) != 0)
    412       1.1  hsuenaga 			goto fail;
    413       1.1  hsuenaga 		mvxpe_ring_init_queue(sc, q);
    414       1.1  hsuenaga 	}
    415       1.1  hsuenaga 
    416       1.1  hsuenaga 	/*
    417       1.1  hsuenaga 	 * We can support 802.1Q VLAN-sized frames and jumbo
    418       1.1  hsuenaga 	 * Ethernet frames.
    419       1.1  hsuenaga 	 */
    420       1.1  hsuenaga 	sc->sc_ethercom.ec_capabilities |=
    421       1.1  hsuenaga 	    ETHERCAP_VLAN_MTU | ETHERCAP_JUMBO_MTU;
    422       1.1  hsuenaga 	ifp->if_softc = sc;
    423       1.1  hsuenaga 	ifp->if_flags = IFF_BROADCAST | IFF_SIMPLEX | IFF_MULTICAST;
    424       1.1  hsuenaga 	ifp->if_start = mvxpe_start;
    425       1.1  hsuenaga 	ifp->if_ioctl = mvxpe_ioctl;
    426       1.1  hsuenaga 	ifp->if_init = mvxpe_init;
    427       1.1  hsuenaga 	ifp->if_stop = mvxpe_stop;
    428       1.1  hsuenaga 	ifp->if_watchdog = mvxpe_watchdog;
    429       1.1  hsuenaga 
    430       1.1  hsuenaga 	/*
    431       1.1  hsuenaga 	 * We can do IPv4/TCPv4/UDPv4/TCPv6/UDPv6 checksums in hardware.
    432       1.1  hsuenaga 	 */
    433       1.1  hsuenaga 	ifp->if_capabilities |= IFCAP_CSUM_IPv4_Tx;
    434       1.1  hsuenaga 	ifp->if_capabilities |= IFCAP_CSUM_IPv4_Rx;
    435       1.1  hsuenaga 	ifp->if_capabilities |= IFCAP_CSUM_TCPv4_Tx;
    436       1.1  hsuenaga 	ifp->if_capabilities |= IFCAP_CSUM_TCPv4_Rx;
    437       1.1  hsuenaga 	ifp->if_capabilities |= IFCAP_CSUM_UDPv4_Tx;
    438       1.1  hsuenaga 	ifp->if_capabilities |= IFCAP_CSUM_UDPv4_Rx;
    439       1.1  hsuenaga 	ifp->if_capabilities |= IFCAP_CSUM_TCPv6_Tx;
    440       1.1  hsuenaga 	ifp->if_capabilities |= IFCAP_CSUM_TCPv6_Rx;
    441       1.1  hsuenaga 	ifp->if_capabilities |= IFCAP_CSUM_UDPv6_Tx;
    442       1.1  hsuenaga 	ifp->if_capabilities |= IFCAP_CSUM_UDPv6_Rx;
    443       1.1  hsuenaga 
    444       1.1  hsuenaga 	/*
    445       1.1  hsuenaga 	 * Initialize struct ifnet
    446       1.1  hsuenaga 	 */
    447  1.19.2.1  christos 	IFQ_SET_MAXLEN(&ifp->if_snd, uimax(MVXPE_TX_RING_CNT - 1, IFQ_MAXLEN));
    448       1.1  hsuenaga 	IFQ_SET_READY(&ifp->if_snd);
    449       1.1  hsuenaga 	strlcpy(ifp->if_xname, device_xname(sc->sc_dev), sizeof(ifp->if_xname));
    450       1.1  hsuenaga 
    451       1.1  hsuenaga 	/*
    452      1.15     skrll 	 * Enable DMA engines and Initiazlie Device Registers.
    453       1.1  hsuenaga 	 */
    454       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_PRXINIT, 0x00000000);
    455       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_PTXINIT, 0x00000000);
    456       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_PACC, MVXPE_PACC_ACCELERATIONMODE_EDM);
    457       1.1  hsuenaga 	mvxpe_sc_lock(sc); /* XXX */
    458       1.1  hsuenaga 	mvxpe_filter_setup(sc);
    459       1.1  hsuenaga 	mvxpe_sc_unlock(sc);
    460       1.1  hsuenaga 	mvxpe_initreg(ifp);
    461       1.1  hsuenaga 
    462       1.1  hsuenaga 	/*
    463       1.1  hsuenaga 	 * Now MAC is working, setup MII.
    464       1.1  hsuenaga 	 */
    465       1.1  hsuenaga 	if (mii_init == 0) {
    466       1.1  hsuenaga 		/*
    467       1.1  hsuenaga 		 * MII bus is shared by all MACs and all PHYs in SoC.
    468       1.1  hsuenaga 		 * serializing the bus access should be safe.
    469       1.1  hsuenaga 		 */
    470       1.1  hsuenaga 		mutex_init(&mii_mutex, MUTEX_DEFAULT, IPL_NET);
    471       1.1  hsuenaga 		mii_init = 1;
    472       1.1  hsuenaga 	}
    473  1.19.2.1  christos 	mii->mii_ifp = ifp;
    474  1.19.2.1  christos 	mii->mii_readreg = mvxpe_miibus_readreg;
    475  1.19.2.1  christos 	mii->mii_writereg = mvxpe_miibus_writereg;
    476  1.19.2.1  christos 	mii->mii_statchg = mvxpe_miibus_statchg;
    477  1.19.2.1  christos 
    478  1.19.2.1  christos 	sc->sc_ethercom.ec_mii = mii;
    479  1.19.2.1  christos 	ifmedia_init(&mii->mii_media, 0, mvxpe_mediachange, mvxpe_mediastatus);
    480       1.1  hsuenaga 	/*
    481       1.1  hsuenaga 	 * XXX: phy addressing highly depends on Board Design.
    482  1.19.2.1  christos 	 * we assume phyaddress == MAC unit number here,
    483       1.1  hsuenaga 	 * but some boards may not.
    484       1.1  hsuenaga 	 */
    485  1.19.2.1  christos 	mii_attach(self, mii, 0xffffffff, MII_PHY_ANY, sc->sc_dev->dv_unit, 0);
    486  1.19.2.3    martin 	child = LIST_FIRST(&mii->mii_phys);
    487  1.19.2.3    martin 	if (child == NULL) {
    488       1.1  hsuenaga 		aprint_error_dev(self, "no PHY found!\n");
    489  1.19.2.1  christos 		ifmedia_add(&mii->mii_media, IFM_ETHER | IFM_MANUAL, 0, NULL);
    490  1.19.2.1  christos 		ifmedia_set(&mii->mii_media, IFM_ETHER | IFM_MANUAL);
    491       1.1  hsuenaga 	} else {
    492  1.19.2.1  christos 		ifmedia_set(&mii->mii_media, IFM_ETHER | IFM_AUTO);
    493  1.19.2.3    martin 		phyaddr = MVXPE_PHYADDR_PHYAD(child->mii_phy);
    494       1.1  hsuenaga 		MVXPE_WRITE(sc, MVXPE_PHYADDR, phyaddr);
    495       1.1  hsuenaga 		DPRINTSC(sc, 1, "PHYADDR: %#x\n", MVXPE_READ(sc, MVXPE_PHYADDR));
    496       1.1  hsuenaga 	}
    497       1.1  hsuenaga 
    498       1.1  hsuenaga 	/*
    499       1.1  hsuenaga 	 * Call MI attach routines.
    500       1.1  hsuenaga 	 */
    501       1.1  hsuenaga 	if_attach(ifp);
    502      1.16     ozaki 	if_deferred_start_init(ifp, NULL);
    503       1.1  hsuenaga 
    504       1.1  hsuenaga 	ether_ifattach(ifp, sc->sc_enaddr);
    505       1.1  hsuenaga 	ether_set_ifflags_cb(&sc->sc_ethercom, mvxpe_ifflags_cb);
    506       1.1  hsuenaga 
    507       1.1  hsuenaga 	sysctl_mvxpe_init(sc);
    508       1.1  hsuenaga 	mvxpe_evcnt_attach(sc);
    509       1.1  hsuenaga 	rnd_attach_source(&sc->sc_rnd_source, device_xname(sc->sc_dev),
    510       1.1  hsuenaga 	    RND_TYPE_NET, RND_FLAG_DEFAULT);
    511       1.1  hsuenaga 
    512       1.1  hsuenaga 	return;
    513       1.1  hsuenaga 
    514       1.1  hsuenaga fail:
    515       1.1  hsuenaga 	for (q = 0; q < MVXPE_QUEUE_SIZE; q++)
    516       1.1  hsuenaga 		mvxpe_ring_dealloc_queue(sc, q);
    517       1.1  hsuenaga 	if (sc->sc_sysctl_mib)
    518       1.1  hsuenaga 		kmem_free(sc->sc_sysctl_mib, sc->sc_sysctl_mib_size);
    519       1.1  hsuenaga 
    520       1.1  hsuenaga 	return;
    521       1.1  hsuenaga }
    522       1.1  hsuenaga 
    523       1.1  hsuenaga STATIC int
    524       1.1  hsuenaga mvxpe_evcnt_attach(struct mvxpe_softc *sc)
    525       1.1  hsuenaga {
    526       1.2  hsuenaga #ifdef MVXPE_EVENT_COUNTERS
    527       1.1  hsuenaga 	int q;
    528       1.1  hsuenaga 
    529       1.1  hsuenaga 	/* Master Interrupt Handler */
    530       1.1  hsuenaga 	evcnt_attach_dynamic(&sc->sc_ev.ev_i_rxtxth, EVCNT_TYPE_INTR,
    531       1.1  hsuenaga 	    NULL, device_xname(sc->sc_dev), "RxTxTH Intr.");
    532       1.1  hsuenaga 	evcnt_attach_dynamic(&sc->sc_ev.ev_i_rxtx, EVCNT_TYPE_INTR,
    533       1.1  hsuenaga 	    NULL, device_xname(sc->sc_dev), "RxTx Intr.");
    534       1.1  hsuenaga 	evcnt_attach_dynamic(&sc->sc_ev.ev_i_misc, EVCNT_TYPE_INTR,
    535       1.1  hsuenaga 	    NULL, device_xname(sc->sc_dev), "MISC Intr.");
    536       1.1  hsuenaga 
    537       1.1  hsuenaga 	/* RXTXTH Interrupt */
    538       1.1  hsuenaga 	evcnt_attach_dynamic(&sc->sc_ev.ev_rxtxth_txerr, EVCNT_TYPE_INTR,
    539       1.1  hsuenaga 	    NULL, device_xname(sc->sc_dev), "RxTxTH Tx error summary");
    540       1.1  hsuenaga 
    541       1.1  hsuenaga 	/* MISC Interrupt */
    542       1.1  hsuenaga 	evcnt_attach_dynamic(&sc->sc_ev.ev_misc_phystatuschng, EVCNT_TYPE_INTR,
    543       1.1  hsuenaga 	    NULL, device_xname(sc->sc_dev), "MISC phy status changed");
    544       1.1  hsuenaga 	evcnt_attach_dynamic(&sc->sc_ev.ev_misc_linkchange, EVCNT_TYPE_INTR,
    545       1.1  hsuenaga 	    NULL, device_xname(sc->sc_dev), "MISC link status changed");
    546       1.1  hsuenaga 	evcnt_attach_dynamic(&sc->sc_ev.ev_misc_iae, EVCNT_TYPE_INTR,
    547       1.1  hsuenaga 	    NULL, device_xname(sc->sc_dev), "MISC internal address error");
    548       1.1  hsuenaga 	evcnt_attach_dynamic(&sc->sc_ev.ev_misc_rxoverrun, EVCNT_TYPE_INTR,
    549       1.1  hsuenaga 	    NULL, device_xname(sc->sc_dev), "MISC Rx FIFO overrun");
    550       1.1  hsuenaga 	evcnt_attach_dynamic(&sc->sc_ev.ev_misc_rxcrc, EVCNT_TYPE_INTR,
    551       1.1  hsuenaga 	    NULL, device_xname(sc->sc_dev), "MISC Rx CRC error");
    552       1.1  hsuenaga 	evcnt_attach_dynamic(&sc->sc_ev.ev_misc_rxlargepacket, EVCNT_TYPE_INTR,
    553       1.1  hsuenaga 	    NULL, device_xname(sc->sc_dev), "MISC Rx too large frame");
    554       1.1  hsuenaga 	evcnt_attach_dynamic(&sc->sc_ev.ev_misc_txunderrun, EVCNT_TYPE_INTR,
    555       1.1  hsuenaga 	    NULL, device_xname(sc->sc_dev), "MISC Tx FIFO underrun");
    556       1.1  hsuenaga 	evcnt_attach_dynamic(&sc->sc_ev.ev_misc_prbserr, EVCNT_TYPE_INTR,
    557       1.1  hsuenaga 	    NULL, device_xname(sc->sc_dev), "MISC SERDES loopback test err");
    558       1.1  hsuenaga 	evcnt_attach_dynamic(&sc->sc_ev.ev_misc_srse, EVCNT_TYPE_INTR,
    559       1.1  hsuenaga 	    NULL, device_xname(sc->sc_dev), "MISC SERDES sync error");
    560       1.1  hsuenaga 	evcnt_attach_dynamic(&sc->sc_ev.ev_misc_txreq, EVCNT_TYPE_INTR,
    561  1.19.2.2    martin 	    NULL, device_xname(sc->sc_dev), "MISC Tx resource error");
    562       1.1  hsuenaga 
    563       1.1  hsuenaga 	/* RxTx Interrupt */
    564       1.1  hsuenaga 	evcnt_attach_dynamic(&sc->sc_ev.ev_rxtx_rreq, EVCNT_TYPE_INTR,
    565  1.19.2.2    martin 	    NULL, device_xname(sc->sc_dev), "RxTx Rx resource error");
    566       1.1  hsuenaga 	evcnt_attach_dynamic(&sc->sc_ev.ev_rxtx_rpq, EVCNT_TYPE_INTR,
    567  1.19.2.1  christos 	    NULL, device_xname(sc->sc_dev), "RxTx Rx packet");
    568       1.1  hsuenaga 	evcnt_attach_dynamic(&sc->sc_ev.ev_rxtx_tbrq, EVCNT_TYPE_INTR,
    569       1.1  hsuenaga 	    NULL, device_xname(sc->sc_dev), "RxTx Tx complete");
    570       1.1  hsuenaga 	evcnt_attach_dynamic(&sc->sc_ev.ev_rxtx_rxtxth, EVCNT_TYPE_INTR,
    571       1.1  hsuenaga 	    NULL, device_xname(sc->sc_dev), "RxTx RxTxTH summary");
    572       1.1  hsuenaga 	evcnt_attach_dynamic(&sc->sc_ev.ev_rxtx_txerr, EVCNT_TYPE_INTR,
    573       1.1  hsuenaga 	    NULL, device_xname(sc->sc_dev), "RxTx Tx error summary");
    574       1.1  hsuenaga 	evcnt_attach_dynamic(&sc->sc_ev.ev_rxtx_misc, EVCNT_TYPE_INTR,
    575       1.1  hsuenaga 	    NULL, device_xname(sc->sc_dev), "RxTx MISC summary");
    576       1.1  hsuenaga 
    577       1.1  hsuenaga 	/* Link */
    578       1.1  hsuenaga 	evcnt_attach_dynamic(&sc->sc_ev.ev_link_up, EVCNT_TYPE_MISC,
    579       1.1  hsuenaga 	    NULL, device_xname(sc->sc_dev), "link up");
    580       1.1  hsuenaga 	evcnt_attach_dynamic(&sc->sc_ev.ev_link_down, EVCNT_TYPE_MISC,
    581       1.1  hsuenaga 	    NULL, device_xname(sc->sc_dev), "link down");
    582       1.1  hsuenaga 
    583       1.1  hsuenaga 	/* Rx Descriptor */
    584       1.1  hsuenaga 	evcnt_attach_dynamic(&sc->sc_ev.ev_rxd_ce, EVCNT_TYPE_MISC,
    585       1.1  hsuenaga 	    NULL, device_xname(sc->sc_dev), "Rx CRC error counter");
    586       1.1  hsuenaga 	evcnt_attach_dynamic(&sc->sc_ev.ev_rxd_or, EVCNT_TYPE_MISC,
    587       1.1  hsuenaga 	    NULL, device_xname(sc->sc_dev), "Rx FIFO overrun counter");
    588       1.1  hsuenaga 	evcnt_attach_dynamic(&sc->sc_ev.ev_rxd_mf, EVCNT_TYPE_MISC,
    589       1.1  hsuenaga 	    NULL, device_xname(sc->sc_dev), "Rx too large frame counter");
    590       1.1  hsuenaga 	evcnt_attach_dynamic(&sc->sc_ev.ev_rxd_re, EVCNT_TYPE_MISC,
    591       1.1  hsuenaga 	    NULL, device_xname(sc->sc_dev), "Rx resource error counter");
    592       1.1  hsuenaga 	evcnt_attach_dynamic(&sc->sc_ev.ev_rxd_scat, EVCNT_TYPE_MISC,
    593       1.1  hsuenaga 	    NULL, device_xname(sc->sc_dev), "Rx unexpected scatter bufs");
    594       1.1  hsuenaga 
    595       1.1  hsuenaga 	/* Tx Descriptor */
    596       1.1  hsuenaga 	evcnt_attach_dynamic(&sc->sc_ev.ev_txd_lc, EVCNT_TYPE_MISC,
    597       1.1  hsuenaga 	    NULL, device_xname(sc->sc_dev), "Tx late collision counter");
    598       1.1  hsuenaga 	evcnt_attach_dynamic(&sc->sc_ev.ev_txd_rl, EVCNT_TYPE_MISC,
    599       1.1  hsuenaga 	    NULL, device_xname(sc->sc_dev), "Tx excess. collision counter");
    600       1.1  hsuenaga 	evcnt_attach_dynamic(&sc->sc_ev.ev_txd_ur, EVCNT_TYPE_MISC,
    601       1.1  hsuenaga 	    NULL, device_xname(sc->sc_dev), "Tx FIFO underrun counter");
    602       1.1  hsuenaga 	evcnt_attach_dynamic(&sc->sc_ev.ev_txd_oth, EVCNT_TYPE_MISC,
    603  1.19.2.2    martin 	    NULL, device_xname(sc->sc_dev), "Tx unknown error counter");
    604       1.1  hsuenaga 
    605       1.1  hsuenaga 	/* Status Registers */
    606       1.1  hsuenaga 	evcnt_attach_dynamic(&sc->sc_ev.ev_reg_pdfc, EVCNT_TYPE_MISC,
    607       1.1  hsuenaga 	    NULL, device_xname(sc->sc_dev), "Rx discard counter");
    608       1.1  hsuenaga 	evcnt_attach_dynamic(&sc->sc_ev.ev_reg_pofc, EVCNT_TYPE_MISC,
    609       1.1  hsuenaga 	    NULL, device_xname(sc->sc_dev), "Rx overrun counter");
    610       1.1  hsuenaga 	evcnt_attach_dynamic(&sc->sc_ev.ev_reg_txbadfcs, EVCNT_TYPE_MISC,
    611       1.1  hsuenaga 	    NULL, device_xname(sc->sc_dev), "Tx bad FCS counter");
    612       1.1  hsuenaga 	evcnt_attach_dynamic(&sc->sc_ev.ev_reg_txdropped, EVCNT_TYPE_MISC,
    613  1.19.2.2    martin 	    NULL, device_xname(sc->sc_dev), "Tx dropped counter");
    614       1.1  hsuenaga 	evcnt_attach_dynamic(&sc->sc_ev.ev_reg_lpic, EVCNT_TYPE_MISC,
    615       1.1  hsuenaga 	    NULL, device_xname(sc->sc_dev), "LP_IDLE counter");
    616       1.1  hsuenaga 
    617       1.1  hsuenaga 	/* Device Driver Errors */
    618       1.1  hsuenaga 	evcnt_attach_dynamic(&sc->sc_ev.ev_drv_wdogsoft, EVCNT_TYPE_MISC,
    619       1.1  hsuenaga 	    NULL, device_xname(sc->sc_dev), "watchdog timer expired");
    620       1.1  hsuenaga 	evcnt_attach_dynamic(&sc->sc_ev.ev_drv_txerr, EVCNT_TYPE_MISC,
    621       1.1  hsuenaga 	    NULL, device_xname(sc->sc_dev), "Tx descriptor alloc failed");
    622       1.1  hsuenaga #define MVXPE_QUEUE_DESC(q) "Rx success in queue " # q
    623       1.1  hsuenaga 	for (q = 0; q < MVXPE_QUEUE_SIZE; q++) {
    624       1.1  hsuenaga 		static const char *rxq_desc[] = {
    625       1.1  hsuenaga 			MVXPE_QUEUE_DESC(0), MVXPE_QUEUE_DESC(1),
    626       1.1  hsuenaga 			MVXPE_QUEUE_DESC(2), MVXPE_QUEUE_DESC(3),
    627       1.1  hsuenaga 			MVXPE_QUEUE_DESC(4), MVXPE_QUEUE_DESC(5),
    628       1.1  hsuenaga 			MVXPE_QUEUE_DESC(6), MVXPE_QUEUE_DESC(7),
    629       1.1  hsuenaga 		};
    630       1.1  hsuenaga 		evcnt_attach_dynamic(&sc->sc_ev.ev_drv_rxq[q], EVCNT_TYPE_MISC,
    631       1.1  hsuenaga 		    NULL, device_xname(sc->sc_dev), rxq_desc[q]);
    632       1.1  hsuenaga 	}
    633       1.1  hsuenaga #undef MVXPE_QUEUE_DESC
    634       1.1  hsuenaga #define MVXPE_QUEUE_DESC(q) "Tx success in queue " # q
    635       1.1  hsuenaga 	for (q = 0; q < MVXPE_QUEUE_SIZE; q++) {
    636       1.1  hsuenaga 		static const char *txq_desc[] = {
    637       1.1  hsuenaga 			MVXPE_QUEUE_DESC(0), MVXPE_QUEUE_DESC(1),
    638       1.1  hsuenaga 			MVXPE_QUEUE_DESC(2), MVXPE_QUEUE_DESC(3),
    639       1.1  hsuenaga 			MVXPE_QUEUE_DESC(4), MVXPE_QUEUE_DESC(5),
    640       1.1  hsuenaga 			MVXPE_QUEUE_DESC(6), MVXPE_QUEUE_DESC(7),
    641       1.1  hsuenaga 		};
    642       1.1  hsuenaga 		evcnt_attach_dynamic(&sc->sc_ev.ev_drv_txq[q], EVCNT_TYPE_MISC,
    643       1.1  hsuenaga 		    NULL, device_xname(sc->sc_dev), txq_desc[q]);
    644       1.1  hsuenaga 	}
    645       1.1  hsuenaga #undef MVXPE_QUEUE_DESC
    646       1.1  hsuenaga #define MVXPE_QUEUE_DESC(q) "Rx error in queue " # q
    647       1.1  hsuenaga 	for (q = 0; q < MVXPE_QUEUE_SIZE; q++) {
    648       1.1  hsuenaga 		static const char *rxqe_desc[] = {
    649       1.1  hsuenaga 			MVXPE_QUEUE_DESC(0), MVXPE_QUEUE_DESC(1),
    650       1.1  hsuenaga 			MVXPE_QUEUE_DESC(2), MVXPE_QUEUE_DESC(3),
    651       1.1  hsuenaga 			MVXPE_QUEUE_DESC(4), MVXPE_QUEUE_DESC(5),
    652       1.1  hsuenaga 			MVXPE_QUEUE_DESC(6), MVXPE_QUEUE_DESC(7),
    653       1.1  hsuenaga 		};
    654       1.1  hsuenaga 		evcnt_attach_dynamic(&sc->sc_ev.ev_drv_rxqe[q], EVCNT_TYPE_MISC,
    655       1.1  hsuenaga 		    NULL, device_xname(sc->sc_dev), rxqe_desc[q]);
    656       1.1  hsuenaga 	}
    657       1.1  hsuenaga #undef MVXPE_QUEUE_DESC
    658       1.1  hsuenaga #define MVXPE_QUEUE_DESC(q) "Tx error in queue " # q
    659       1.1  hsuenaga 	for (q = 0; q < MVXPE_QUEUE_SIZE; q++) {
    660       1.1  hsuenaga 		static const char *txqe_desc[] = {
    661       1.1  hsuenaga 			MVXPE_QUEUE_DESC(0), MVXPE_QUEUE_DESC(1),
    662       1.1  hsuenaga 			MVXPE_QUEUE_DESC(2), MVXPE_QUEUE_DESC(3),
    663       1.1  hsuenaga 			MVXPE_QUEUE_DESC(4), MVXPE_QUEUE_DESC(5),
    664       1.1  hsuenaga 			MVXPE_QUEUE_DESC(6), MVXPE_QUEUE_DESC(7),
    665       1.1  hsuenaga 		};
    666       1.1  hsuenaga 		evcnt_attach_dynamic(&sc->sc_ev.ev_drv_txqe[q], EVCNT_TYPE_MISC,
    667       1.1  hsuenaga 		    NULL, device_xname(sc->sc_dev), txqe_desc[q]);
    668       1.1  hsuenaga 	}
    669       1.1  hsuenaga #undef MVXPE_QUEUE_DESC
    670       1.1  hsuenaga 
    671       1.1  hsuenaga #endif /* MVXPE_EVENT_COUNTERS */
    672       1.1  hsuenaga 	return 0;
    673       1.1  hsuenaga }
    674       1.1  hsuenaga 
    675       1.1  hsuenaga STATIC void
    676       1.1  hsuenaga mvxpe_sc_lock(struct mvxpe_softc *sc)
    677       1.1  hsuenaga {
    678       1.1  hsuenaga 	mutex_enter(&sc->sc_mtx);
    679       1.1  hsuenaga }
    680       1.1  hsuenaga 
    681       1.1  hsuenaga STATIC void
    682       1.1  hsuenaga mvxpe_sc_unlock(struct mvxpe_softc *sc)
    683       1.1  hsuenaga {
    684       1.1  hsuenaga 	mutex_exit(&sc->sc_mtx);
    685       1.1  hsuenaga }
    686       1.1  hsuenaga 
    687       1.1  hsuenaga /*
    688       1.1  hsuenaga  * MII
    689       1.1  hsuenaga  */
    690       1.1  hsuenaga STATIC int
    691  1.19.2.1  christos mvxpe_miibus_readreg(device_t dev, int phy, int reg, uint16_t *val)
    692       1.1  hsuenaga {
    693       1.1  hsuenaga 	struct mvxpe_softc *sc = device_private(dev);
    694       1.1  hsuenaga 	struct ifnet *ifp = &sc->sc_ethercom.ec_if;
    695  1.19.2.1  christos 	uint32_t smi;
    696  1.19.2.1  christos 	int i, rv = 0;
    697       1.1  hsuenaga 
    698       1.1  hsuenaga 	mutex_enter(&mii_mutex);
    699       1.1  hsuenaga 
    700       1.1  hsuenaga 	for (i = 0; i < MVXPE_PHY_TIMEOUT; i++) {
    701       1.1  hsuenaga 		DELAY(1);
    702       1.1  hsuenaga 		if (!(MVXPE_READ(sc, MVXPE_SMI) & MVXPE_SMI_BUSY))
    703       1.1  hsuenaga 			break;
    704       1.1  hsuenaga 	}
    705       1.1  hsuenaga 	if (i == MVXPE_PHY_TIMEOUT) {
    706       1.1  hsuenaga 		aprint_error_ifnet(ifp, "SMI busy timeout\n");
    707  1.19.2.1  christos 		rv = ETIMEDOUT;
    708  1.19.2.1  christos 		goto out;
    709       1.1  hsuenaga 	}
    710       1.1  hsuenaga 
    711       1.1  hsuenaga 	smi =
    712       1.1  hsuenaga 	    MVXPE_SMI_PHYAD(phy) | MVXPE_SMI_REGAD(reg) | MVXPE_SMI_OPCODE_READ;
    713       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_SMI, smi);
    714       1.1  hsuenaga 
    715       1.1  hsuenaga 	for (i = 0; i < MVXPE_PHY_TIMEOUT; i++) {
    716       1.1  hsuenaga 		DELAY(1);
    717       1.1  hsuenaga 		smi = MVXPE_READ(sc, MVXPE_SMI);
    718  1.19.2.1  christos 		if (smi & MVXPE_SMI_READVALID) {
    719  1.19.2.1  christos 			*val = smi & MVXPE_SMI_DATA_MASK;
    720       1.1  hsuenaga 			break;
    721  1.19.2.1  christos 		}
    722       1.1  hsuenaga 	}
    723       1.1  hsuenaga 	DPRINTDEV(dev, 9, "i=%d, timeout=%d\n", i, MVXPE_PHY_TIMEOUT);
    724  1.19.2.1  christos 	if (i >= MVXPE_PHY_TIMEOUT)
    725  1.19.2.1  christos 		rv = ETIMEDOUT;
    726       1.1  hsuenaga 
    727  1.19.2.1  christos out:
    728  1.19.2.1  christos 	mutex_exit(&mii_mutex);
    729       1.1  hsuenaga 
    730  1.19.2.1  christos 	DPRINTDEV(dev, 9, "phy=%d, reg=%#x, val=%#hx\n", phy, reg, *val);
    731       1.1  hsuenaga 
    732  1.19.2.1  christos 	return rv;
    733       1.1  hsuenaga }
    734       1.1  hsuenaga 
    735  1.19.2.1  christos STATIC int
    736  1.19.2.1  christos mvxpe_miibus_writereg(device_t dev, int phy, int reg, uint16_t val)
    737       1.1  hsuenaga {
    738       1.1  hsuenaga 	struct mvxpe_softc *sc = device_private(dev);
    739       1.1  hsuenaga 	struct ifnet *ifp = &sc->sc_ethercom.ec_if;
    740       1.1  hsuenaga 	uint32_t smi;
    741  1.19.2.1  christos 	int i, rv = 0;
    742       1.1  hsuenaga 
    743  1.19.2.1  christos 	DPRINTDEV(dev, 9, "phy=%d reg=%#x val=%#hx\n", phy, reg, val);
    744       1.1  hsuenaga 
    745       1.1  hsuenaga 	mutex_enter(&mii_mutex);
    746       1.1  hsuenaga 
    747       1.1  hsuenaga 	for (i = 0; i < MVXPE_PHY_TIMEOUT; i++) {
    748       1.1  hsuenaga 		DELAY(1);
    749       1.1  hsuenaga 		if (!(MVXPE_READ(sc, MVXPE_SMI) & MVXPE_SMI_BUSY))
    750       1.1  hsuenaga 			break;
    751       1.1  hsuenaga 	}
    752       1.1  hsuenaga 	if (i == MVXPE_PHY_TIMEOUT) {
    753       1.1  hsuenaga 		aprint_error_ifnet(ifp, "SMI busy timeout\n");
    754  1.19.2.1  christos 		rv = ETIMEDOUT;
    755  1.19.2.1  christos 		goto out;
    756       1.1  hsuenaga 	}
    757       1.1  hsuenaga 
    758       1.1  hsuenaga 	smi = MVXPE_SMI_PHYAD(phy) | MVXPE_SMI_REGAD(reg) |
    759       1.1  hsuenaga 	    MVXPE_SMI_OPCODE_WRITE | (val & MVXPE_SMI_DATA_MASK);
    760       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_SMI, smi);
    761       1.1  hsuenaga 
    762       1.1  hsuenaga 	for (i = 0; i < MVXPE_PHY_TIMEOUT; i++) {
    763       1.1  hsuenaga 		DELAY(1);
    764       1.1  hsuenaga 		if (!(MVXPE_READ(sc, MVXPE_SMI) & MVXPE_SMI_BUSY))
    765       1.1  hsuenaga 			break;
    766       1.1  hsuenaga 	}
    767       1.1  hsuenaga 
    768  1.19.2.1  christos 	if (i == MVXPE_PHY_TIMEOUT) {
    769  1.19.2.1  christos 		aprint_error_ifnet(ifp, "phy write timed out\n");
    770  1.19.2.1  christos 		rv = ETIMEDOUT;
    771  1.19.2.1  christos 	}
    772  1.19.2.1  christos 
    773  1.19.2.1  christos out:
    774       1.1  hsuenaga 	mutex_exit(&mii_mutex);
    775       1.1  hsuenaga 
    776  1.19.2.1  christos 	return rv;
    777       1.1  hsuenaga }
    778       1.1  hsuenaga 
    779       1.1  hsuenaga STATIC void
    780       1.1  hsuenaga mvxpe_miibus_statchg(struct ifnet *ifp)
    781       1.1  hsuenaga {
    782       1.1  hsuenaga 
    783       1.1  hsuenaga 	/* nothing to do */
    784       1.1  hsuenaga }
    785       1.1  hsuenaga 
    786       1.1  hsuenaga /*
    787       1.1  hsuenaga  * Address Decoding Window
    788       1.1  hsuenaga  */
    789       1.1  hsuenaga STATIC void
    790       1.1  hsuenaga mvxpe_wininit(struct mvxpe_softc *sc, enum marvell_tags *tags)
    791       1.1  hsuenaga {
    792       1.1  hsuenaga 	device_t pdev = device_parent(sc->sc_dev);
    793       1.1  hsuenaga 	uint64_t base;
    794       1.1  hsuenaga 	uint32_t en, ac, size;
    795       1.1  hsuenaga 	int window, target, attr, rv, i;
    796       1.1  hsuenaga 
    797       1.1  hsuenaga 	/* First disable all address decode windows */
    798       1.1  hsuenaga 	en = MVXPE_BARE_EN_MASK;
    799       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_BARE, en);
    800       1.1  hsuenaga 
    801       1.1  hsuenaga 	ac = 0;
    802       1.1  hsuenaga 	for (window = 0, i = 0;
    803       1.1  hsuenaga 	    tags[i] != MARVELL_TAG_UNDEFINED && window < MVXPE_NWINDOW; i++) {
    804       1.1  hsuenaga 		rv = marvell_winparams_by_tag(pdev, tags[i],
    805       1.1  hsuenaga 		    &target, &attr, &base, &size);
    806       1.1  hsuenaga 		if (rv != 0 || size == 0)
    807       1.1  hsuenaga 			continue;
    808       1.1  hsuenaga 
    809       1.1  hsuenaga 		if (base > 0xffffffffULL) {
    810       1.1  hsuenaga 			if (window >= MVXPE_NREMAP) {
    811       1.1  hsuenaga 				aprint_error_dev(sc->sc_dev,
    812       1.1  hsuenaga 				    "can't remap window %d\n", window);
    813       1.1  hsuenaga 				continue;
    814       1.1  hsuenaga 			}
    815       1.1  hsuenaga 			MVXPE_WRITE(sc, MVXPE_HA(window),
    816       1.1  hsuenaga 			    (base >> 32) & 0xffffffff);
    817       1.1  hsuenaga 		}
    818       1.1  hsuenaga 
    819       1.1  hsuenaga 		MVXPE_WRITE(sc, MVXPE_BASEADDR(window),
    820       1.1  hsuenaga 		    MVXPE_BASEADDR_TARGET(target)	|
    821       1.1  hsuenaga 		    MVXPE_BASEADDR_ATTR(attr)		|
    822       1.1  hsuenaga 		    MVXPE_BASEADDR_BASE(base));
    823       1.1  hsuenaga 		MVXPE_WRITE(sc, MVXPE_S(window), MVXPE_S_SIZE(size));
    824       1.1  hsuenaga 
    825       1.1  hsuenaga 		DPRINTSC(sc, 1, "Window %d Base 0x%016llx: Size 0x%08x\n",
    826       1.1  hsuenaga 				window, base, size);
    827       1.1  hsuenaga 
    828       1.1  hsuenaga 		en &= ~(1 << window);
    829       1.1  hsuenaga 		/* set full access (r/w) */
    830       1.1  hsuenaga 		ac |= MVXPE_EPAP_EPAR(window, MVXPE_EPAP_AC_FA);
    831       1.1  hsuenaga 		window++;
    832       1.1  hsuenaga 	}
    833       1.1  hsuenaga 	/* allow to access decode window */
    834       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_EPAP, ac);
    835       1.1  hsuenaga 
    836       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_BARE, en);
    837       1.1  hsuenaga }
    838       1.1  hsuenaga 
    839       1.1  hsuenaga /*
    840       1.1  hsuenaga  * Device Register Initialization
    841       1.1  hsuenaga  *  reset device registers to device driver default value.
    842       1.1  hsuenaga  *  the device is not enabled here.
    843       1.1  hsuenaga  */
    844       1.1  hsuenaga STATIC int
    845       1.1  hsuenaga mvxpe_initreg(struct ifnet *ifp)
    846       1.1  hsuenaga {
    847       1.1  hsuenaga 	struct mvxpe_softc *sc = ifp->if_softc;
    848       1.1  hsuenaga 	int serdes = 0;
    849       1.1  hsuenaga 	uint32_t reg;
    850       1.1  hsuenaga 	int q, i;
    851       1.1  hsuenaga 
    852       1.1  hsuenaga 	DPRINTIFNET(ifp, 1, "initializing device register\n");
    853       1.1  hsuenaga 
    854       1.1  hsuenaga 	/* Init TX/RX Queue Registers */
    855       1.1  hsuenaga 	for (q = 0; q < MVXPE_QUEUE_SIZE; q++) {
    856       1.1  hsuenaga 		mvxpe_rx_lockq(sc, q);
    857       1.1  hsuenaga 		if (mvxpe_rx_queue_init(ifp, q) != 0) {
    858       1.1  hsuenaga 			aprint_error_ifnet(ifp,
    859       1.1  hsuenaga 			    "initialization failed: cannot initialize queue\n");
    860       1.1  hsuenaga 			mvxpe_rx_unlockq(sc, q);
    861       1.1  hsuenaga 			return ENOBUFS;
    862       1.1  hsuenaga 		}
    863       1.1  hsuenaga 		mvxpe_rx_unlockq(sc, q);
    864       1.1  hsuenaga 
    865       1.1  hsuenaga 		mvxpe_tx_lockq(sc, q);
    866       1.1  hsuenaga 		if (mvxpe_tx_queue_init(ifp, q) != 0) {
    867       1.1  hsuenaga 			aprint_error_ifnet(ifp,
    868       1.1  hsuenaga 			    "initialization failed: cannot initialize queue\n");
    869       1.1  hsuenaga 			mvxpe_tx_unlockq(sc, q);
    870       1.1  hsuenaga 			return ENOBUFS;
    871       1.1  hsuenaga 		}
    872       1.1  hsuenaga 		mvxpe_tx_unlockq(sc, q);
    873       1.1  hsuenaga 	}
    874       1.1  hsuenaga 
    875       1.1  hsuenaga 	/* Tx MTU Limit */
    876       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_TXMTU, MVXPE_MTU);
    877       1.1  hsuenaga 
    878       1.1  hsuenaga 	/* Check SGMII or SERDES(asume IPL/U-BOOT initialize this) */
    879       1.1  hsuenaga 	reg = MVXPE_READ(sc, MVXPE_PMACC0);
    880       1.1  hsuenaga 	if ((reg & MVXPE_PMACC0_PORTTYPE) != 0)
    881       1.1  hsuenaga 		serdes = 1;
    882       1.1  hsuenaga 
    883       1.1  hsuenaga 	/* Ethernet Unit Control */
    884       1.1  hsuenaga 	reg = MVXPE_READ(sc, MVXPE_EUC);
    885       1.1  hsuenaga 	reg |= MVXPE_EUC_POLLING;
    886       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_EUC, reg);
    887       1.1  hsuenaga 
    888       1.1  hsuenaga 	/* Auto Negotiation */
    889       1.1  hsuenaga 	reg  = MVXPE_PANC_MUSTSET;	/* must write 0x1 */
    890       1.1  hsuenaga 	reg |= MVXPE_PANC_FORCELINKFAIL;/* force link state down */
    891       1.1  hsuenaga 	reg |= MVXPE_PANC_ANSPEEDEN;	/* interface speed negotiation */
    892       1.1  hsuenaga 	reg |= MVXPE_PANC_ANDUPLEXEN;	/* negotiate duplex mode */
    893       1.1  hsuenaga 	if (serdes) {
    894       1.1  hsuenaga 		reg |= MVXPE_PANC_INBANDANEN; /* In Band negotiation */
    895       1.1  hsuenaga 		reg |= MVXPE_PANC_INBANDANBYPASSEN; /* bypass negotiation */
    896       1.1  hsuenaga 		reg |= MVXPE_PANC_SETFULLDX; /* set full-duplex on failure */
    897       1.1  hsuenaga 	}
    898       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_PANC, reg);
    899       1.1  hsuenaga 
    900       1.1  hsuenaga 	/* EEE: Low Power Idle */
    901       1.1  hsuenaga 	reg  = MVXPE_LPIC0_LILIMIT(MVXPE_LPI_LI);
    902       1.1  hsuenaga 	reg |= MVXPE_LPIC0_TSLIMIT(MVXPE_LPI_TS);
    903       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_LPIC0, reg);
    904       1.1  hsuenaga 
    905       1.1  hsuenaga 	reg  = MVXPE_LPIC1_TWLIMIT(MVXPE_LPI_TS);
    906       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_LPIC1, reg);
    907       1.1  hsuenaga 
    908       1.1  hsuenaga 	reg = MVXPE_LPIC2_MUSTSET;
    909       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_LPIC2, reg);
    910       1.1  hsuenaga 
    911       1.1  hsuenaga 	/* Port MAC Control set 0 */
    912       1.1  hsuenaga 	reg  = MVXPE_PMACC0_MUSTSET;	/* must write 0x1 */
    913       1.1  hsuenaga 	reg &= ~MVXPE_PMACC0_PORTEN;	/* port is still disabled */
    914       1.1  hsuenaga 	reg |= MVXPE_PMACC0_FRAMESIZELIMIT(MVXPE_MRU);
    915       1.1  hsuenaga 	if (serdes)
    916       1.1  hsuenaga 		reg |= MVXPE_PMACC0_PORTTYPE;
    917       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_PMACC0, reg);
    918       1.1  hsuenaga 
    919       1.1  hsuenaga 	/* Port MAC Control set 1 is only used for loop-back test */
    920       1.1  hsuenaga 
    921  1.19.2.1  christos 	/* Port MAC Control set 2 */
    922       1.1  hsuenaga 	reg = MVXPE_READ(sc, MVXPE_PMACC2);
    923       1.1  hsuenaga 	reg &= (MVXPE_PMACC2_PCSEN | MVXPE_PMACC2_RGMIIEN);
    924       1.1  hsuenaga 	reg |= MVXPE_PMACC2_MUSTSET;
    925       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_PMACC2, reg);
    926       1.1  hsuenaga 
    927       1.1  hsuenaga 	/* Port MAC Control set 3 is used for IPG tune */
    928       1.1  hsuenaga 
    929       1.1  hsuenaga 	/* Port MAC Control set 4 is not used */
    930       1.1  hsuenaga 
    931      1.12    hikaru 	/* Port Configuration */
    932      1.12    hikaru 	/* Use queue 0 only */
    933      1.12    hikaru 	reg = MVXPE_READ(sc, MVXPE_PXC);
    934      1.12    hikaru 	reg &= ~(MVXPE_PXC_RXQ_MASK | MVXPE_PXC_RXQARP_MASK |
    935      1.12    hikaru 	    MVXPE_PXC_TCPQ_MASK | MVXPE_PXC_UDPQ_MASK | MVXPE_PXC_BPDUQ_MASK);
    936      1.12    hikaru 	MVXPE_WRITE(sc, MVXPE_PXC, reg);
    937      1.12    hikaru 
    938       1.1  hsuenaga 	/* Port Configuration Extended: enable Tx CRC generation */
    939       1.1  hsuenaga 	reg = MVXPE_READ(sc, MVXPE_PXCX);
    940       1.1  hsuenaga 	reg &= ~MVXPE_PXCX_TXCRCDIS;
    941       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_PXCX, reg);
    942       1.1  hsuenaga 
    943       1.1  hsuenaga 	/* clear MIB counter registers(clear by read) */
    944       1.1  hsuenaga 	for (i = 0; i < __arraycount(mvxpe_mib_list); i++)
    945       1.1  hsuenaga 		MVXPE_READ_MIB(sc, (mvxpe_mib_list[i].regnum));
    946       1.1  hsuenaga 
    947       1.1  hsuenaga 	/* Set SDC register except IPGINT bits */
    948       1.1  hsuenaga 	reg  = MVXPE_SDC_RXBSZ_16_64BITWORDS;
    949       1.1  hsuenaga 	reg |= MVXPE_SDC_TXBSZ_16_64BITWORDS;
    950       1.1  hsuenaga 	reg |= MVXPE_SDC_BLMR;
    951       1.1  hsuenaga 	reg |= MVXPE_SDC_BLMT;
    952       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_SDC, reg);
    953       1.1  hsuenaga 
    954       1.1  hsuenaga 	return 0;
    955       1.1  hsuenaga }
    956       1.1  hsuenaga 
    957       1.1  hsuenaga /*
    958       1.1  hsuenaga  * Descriptor Ring Controls for each of queues
    959       1.1  hsuenaga  */
    960       1.1  hsuenaga STATIC void *
    961       1.1  hsuenaga mvxpe_dma_memalloc(struct mvxpe_softc *sc, bus_dmamap_t *map, size_t size)
    962       1.1  hsuenaga {
    963       1.1  hsuenaga 	bus_dma_segment_t segs;
    964       1.1  hsuenaga 	void *kva = NULL;
    965       1.1  hsuenaga 	int nsegs;
    966       1.1  hsuenaga 
    967       1.1  hsuenaga 	/*
    968       1.1  hsuenaga 	 * Allocate the descriptor queues.
    969       1.1  hsuenaga 	 * struct mvxpe_ring_data contians array of descriptor per queue.
    970       1.1  hsuenaga 	 */
    971       1.1  hsuenaga 	if (bus_dmamem_alloc(sc->sc_dmat,
    972       1.1  hsuenaga 	    size, PAGE_SIZE, 0, &segs, 1, &nsegs, BUS_DMA_NOWAIT)) {
    973       1.1  hsuenaga 		aprint_error_dev(sc->sc_dev,
    974       1.1  hsuenaga 		    "can't alloc device memory (%zu bytes)\n", size);
    975       1.1  hsuenaga 		return NULL;
    976       1.1  hsuenaga 	}
    977       1.1  hsuenaga 	if (bus_dmamem_map(sc->sc_dmat,
    978       1.1  hsuenaga 	    &segs, nsegs, size, &kva, BUS_DMA_NOWAIT)) {
    979       1.1  hsuenaga 		aprint_error_dev(sc->sc_dev,
    980       1.1  hsuenaga 		    "can't map dma buffers (%zu bytes)\n", size);
    981       1.1  hsuenaga 		goto fail1;
    982       1.1  hsuenaga 	}
    983       1.1  hsuenaga 
    984       1.1  hsuenaga 	if (bus_dmamap_create(sc->sc_dmat,
    985       1.1  hsuenaga 	    size, 1, size, 0, BUS_DMA_NOWAIT, map)) {
    986       1.1  hsuenaga 		aprint_error_dev(sc->sc_dev, "can't create dma map\n");
    987       1.1  hsuenaga 		goto fail2;
    988       1.1  hsuenaga 	}
    989       1.1  hsuenaga 	if (bus_dmamap_load(sc->sc_dmat,
    990       1.1  hsuenaga 	    *map, kva, size, NULL, BUS_DMA_NOWAIT)) {
    991       1.1  hsuenaga 		aprint_error_dev(sc->sc_dev, "can't load dma map\n");
    992       1.1  hsuenaga 		goto fail3;
    993       1.1  hsuenaga 	}
    994       1.1  hsuenaga 	memset(kva, 0, size);
    995       1.1  hsuenaga 	return kva;
    996       1.1  hsuenaga 
    997       1.1  hsuenaga fail3:
    998       1.1  hsuenaga 	bus_dmamap_destroy(sc->sc_dmat, *map);
    999       1.1  hsuenaga 	memset(map, 0, sizeof(*map));
   1000       1.1  hsuenaga fail2:
   1001       1.1  hsuenaga 	bus_dmamem_unmap(sc->sc_dmat, kva, size);
   1002       1.1  hsuenaga fail1:
   1003       1.1  hsuenaga 	bus_dmamem_free(sc->sc_dmat, &segs, nsegs);
   1004       1.1  hsuenaga 	return NULL;
   1005       1.1  hsuenaga }
   1006       1.1  hsuenaga 
   1007       1.1  hsuenaga STATIC int
   1008       1.1  hsuenaga mvxpe_ring_alloc_queue(struct mvxpe_softc *sc, int q)
   1009       1.1  hsuenaga {
   1010       1.1  hsuenaga 	struct mvxpe_rx_ring *rx = MVXPE_RX_RING(sc, q);
   1011       1.1  hsuenaga 	struct mvxpe_tx_ring *tx = MVXPE_TX_RING(sc, q);
   1012       1.1  hsuenaga 
   1013       1.1  hsuenaga 	/*
   1014       1.1  hsuenaga 	 * MVXPE_RX_RING_CNT and MVXPE_TX_RING_CNT is a hard limit of
   1015       1.1  hsuenaga 	 * queue length. real queue length is limited by
   1016       1.1  hsuenaga 	 * sc->sc_rx_ring[q].rx_queue_len and sc->sc_tx_ring[q].tx_queue_len.
   1017       1.1  hsuenaga 	 *
   1018       1.1  hsuenaga 	 * because descriptor ring reallocation needs reprogramming of
   1019       1.1  hsuenaga 	 * DMA registers, we allocate enough descriptor for hard limit
   1020       1.1  hsuenaga 	 * of queue length.
   1021       1.1  hsuenaga 	 */
   1022       1.1  hsuenaga 	rx->rx_descriptors =
   1023       1.1  hsuenaga 	    mvxpe_dma_memalloc(sc, &rx->rx_descriptors_map,
   1024       1.1  hsuenaga 		(sizeof(struct mvxpe_rx_desc) * MVXPE_RX_RING_CNT));
   1025       1.1  hsuenaga 	if (rx->rx_descriptors == NULL)
   1026       1.1  hsuenaga 		goto fail;
   1027       1.1  hsuenaga 
   1028       1.1  hsuenaga 	tx->tx_descriptors =
   1029       1.1  hsuenaga 	    mvxpe_dma_memalloc(sc, &tx->tx_descriptors_map,
   1030       1.1  hsuenaga 		(sizeof(struct mvxpe_tx_desc) * MVXPE_TX_RING_CNT));
   1031       1.1  hsuenaga 	if (tx->tx_descriptors == NULL)
   1032       1.1  hsuenaga 		goto fail;
   1033       1.1  hsuenaga 
   1034       1.1  hsuenaga 	return 0;
   1035       1.1  hsuenaga fail:
   1036       1.1  hsuenaga 	mvxpe_ring_dealloc_queue(sc, q);
   1037       1.1  hsuenaga 	aprint_error_dev(sc->sc_dev, "DMA Ring buffer allocation failure.\n");
   1038       1.1  hsuenaga 	return ENOMEM;
   1039       1.1  hsuenaga }
   1040       1.1  hsuenaga 
   1041       1.1  hsuenaga STATIC void
   1042       1.1  hsuenaga mvxpe_ring_dealloc_queue(struct mvxpe_softc *sc, int q)
   1043       1.1  hsuenaga {
   1044       1.1  hsuenaga 	struct mvxpe_rx_ring *rx = MVXPE_RX_RING(sc, q);
   1045       1.1  hsuenaga 	struct mvxpe_tx_ring *tx = MVXPE_TX_RING(sc, q);
   1046       1.1  hsuenaga 	bus_dma_segment_t *segs;
   1047       1.1  hsuenaga 	bus_size_t size;
   1048       1.1  hsuenaga 	void *kva;
   1049       1.1  hsuenaga 	int nsegs;
   1050       1.1  hsuenaga 
   1051       1.1  hsuenaga 	/* Rx */
   1052       1.1  hsuenaga 	kva = (void *)MVXPE_RX_RING_MEM_VA(sc, q);
   1053       1.1  hsuenaga 	if (kva) {
   1054       1.1  hsuenaga 		segs = MVXPE_RX_RING_MEM_MAP(sc, q)->dm_segs;
   1055       1.1  hsuenaga 		nsegs = MVXPE_RX_RING_MEM_MAP(sc, q)->dm_nsegs;
   1056       1.1  hsuenaga 		size = MVXPE_RX_RING_MEM_MAP(sc, q)->dm_mapsize;
   1057       1.1  hsuenaga 
   1058       1.1  hsuenaga 		bus_dmamap_unload(sc->sc_dmat, MVXPE_RX_RING_MEM_MAP(sc, q));
   1059       1.1  hsuenaga 		bus_dmamap_destroy(sc->sc_dmat, MVXPE_RX_RING_MEM_MAP(sc, q));
   1060       1.1  hsuenaga 		bus_dmamem_unmap(sc->sc_dmat, kva, size);
   1061       1.1  hsuenaga 		bus_dmamem_free(sc->sc_dmat, segs, nsegs);
   1062       1.1  hsuenaga 	}
   1063       1.1  hsuenaga 
   1064       1.1  hsuenaga 	/* Tx */
   1065       1.1  hsuenaga 	kva = (void *)MVXPE_TX_RING_MEM_VA(sc, q);
   1066       1.1  hsuenaga 	if (kva) {
   1067       1.1  hsuenaga 		segs = MVXPE_TX_RING_MEM_MAP(sc, q)->dm_segs;
   1068       1.1  hsuenaga 		nsegs = MVXPE_TX_RING_MEM_MAP(sc, q)->dm_nsegs;
   1069       1.1  hsuenaga 		size = MVXPE_TX_RING_MEM_MAP(sc, q)->dm_mapsize;
   1070       1.1  hsuenaga 
   1071       1.1  hsuenaga 		bus_dmamap_unload(sc->sc_dmat, MVXPE_TX_RING_MEM_MAP(sc, q));
   1072       1.1  hsuenaga 		bus_dmamap_destroy(sc->sc_dmat, MVXPE_TX_RING_MEM_MAP(sc, q));
   1073       1.1  hsuenaga 		bus_dmamem_unmap(sc->sc_dmat, kva, size);
   1074       1.1  hsuenaga 		bus_dmamem_free(sc->sc_dmat, segs, nsegs);
   1075       1.1  hsuenaga 	}
   1076       1.1  hsuenaga 
   1077       1.1  hsuenaga 	/* Clear doungling pointers all */
   1078       1.1  hsuenaga 	memset(rx, 0, sizeof(*rx));
   1079       1.1  hsuenaga 	memset(tx, 0, sizeof(*tx));
   1080       1.1  hsuenaga }
   1081       1.1  hsuenaga 
   1082       1.1  hsuenaga STATIC void
   1083       1.1  hsuenaga mvxpe_ring_init_queue(struct mvxpe_softc *sc, int q)
   1084       1.1  hsuenaga {
   1085       1.1  hsuenaga 	struct mvxpe_rx_desc *rxd = MVXPE_RX_RING_MEM_VA(sc, q);
   1086       1.1  hsuenaga 	struct mvxpe_tx_desc *txd = MVXPE_TX_RING_MEM_VA(sc, q);
   1087       1.1  hsuenaga 	struct mvxpe_rx_ring *rx = MVXPE_RX_RING(sc, q);
   1088       1.1  hsuenaga 	struct mvxpe_tx_ring *tx = MVXPE_TX_RING(sc, q);
   1089       1.1  hsuenaga 	static const int rx_default_queue_len[] = {
   1090       1.1  hsuenaga 		MVXPE_RX_QUEUE_LIMIT_0, MVXPE_RX_QUEUE_LIMIT_1,
   1091       1.1  hsuenaga 		MVXPE_RX_QUEUE_LIMIT_2, MVXPE_RX_QUEUE_LIMIT_3,
   1092       1.1  hsuenaga 		MVXPE_RX_QUEUE_LIMIT_4, MVXPE_RX_QUEUE_LIMIT_5,
   1093       1.1  hsuenaga 		MVXPE_RX_QUEUE_LIMIT_6, MVXPE_RX_QUEUE_LIMIT_7,
   1094       1.1  hsuenaga 	};
   1095       1.1  hsuenaga 	static const int tx_default_queue_len[] = {
   1096       1.1  hsuenaga 		MVXPE_TX_QUEUE_LIMIT_0, MVXPE_TX_QUEUE_LIMIT_1,
   1097       1.1  hsuenaga 		MVXPE_TX_QUEUE_LIMIT_2, MVXPE_TX_QUEUE_LIMIT_3,
   1098       1.1  hsuenaga 		MVXPE_TX_QUEUE_LIMIT_4, MVXPE_TX_QUEUE_LIMIT_5,
   1099       1.1  hsuenaga 		MVXPE_TX_QUEUE_LIMIT_6, MVXPE_TX_QUEUE_LIMIT_7,
   1100       1.1  hsuenaga 	};
   1101       1.1  hsuenaga 	extern uint32_t mvTclk;
   1102       1.1  hsuenaga 	int i;
   1103       1.1  hsuenaga 
   1104       1.1  hsuenaga 	/* Rx handle */
   1105       1.1  hsuenaga 	for (i = 0; i < MVXPE_RX_RING_CNT; i++) {
   1106       1.1  hsuenaga 		MVXPE_RX_DESC(sc, q, i) = &rxd[i];
   1107       1.1  hsuenaga 		MVXPE_RX_DESC_OFF(sc, q, i) = sizeof(struct mvxpe_rx_desc) * i;
   1108       1.1  hsuenaga 		MVXPE_RX_PKTBUF(sc, q, i) = NULL;
   1109       1.1  hsuenaga 	}
   1110       1.1  hsuenaga 	mutex_init(&rx->rx_ring_mtx, MUTEX_DEFAULT, IPL_NET);
   1111       1.1  hsuenaga 	rx->rx_dma = rx->rx_cpu = 0;
   1112       1.1  hsuenaga 	rx->rx_queue_len = rx_default_queue_len[q];
   1113       1.1  hsuenaga 	if (rx->rx_queue_len > MVXPE_RX_RING_CNT)
   1114       1.1  hsuenaga 		rx->rx_queue_len = MVXPE_RX_RING_CNT;
   1115       1.2  hsuenaga 	rx->rx_queue_th_received = rx->rx_queue_len / MVXPE_RXTH_RATIO;
   1116       1.2  hsuenaga 	rx->rx_queue_th_free = rx->rx_queue_len / MVXPE_RXTH_REFILL_RATIO;
   1117       1.1  hsuenaga 	rx->rx_queue_th_time = (mvTclk / 1000) / 2; /* 0.5 [ms] */
   1118       1.1  hsuenaga 
   1119       1.1  hsuenaga 	/* Tx handle */
   1120       1.1  hsuenaga 	for (i = 0; i < MVXPE_TX_RING_CNT; i++) {
   1121       1.1  hsuenaga 		MVXPE_TX_DESC(sc, q, i) = &txd[i];
   1122       1.1  hsuenaga 		MVXPE_TX_DESC_OFF(sc, q, i) = sizeof(struct mvxpe_tx_desc) * i;
   1123       1.1  hsuenaga 		MVXPE_TX_MBUF(sc, q, i) = NULL;
   1124       1.1  hsuenaga 		/* Tx handle needs DMA map for busdma_load_mbuf() */
   1125       1.2  hsuenaga 		if (bus_dmamap_create(sc->sc_dmat,
   1126       1.2  hsuenaga 		    mvxpbm_chunk_size(sc->sc_bm),
   1127       1.2  hsuenaga 		    MVXPE_TX_SEGLIMIT, mvxpbm_chunk_size(sc->sc_bm), 0,
   1128  1.19.2.1  christos 		    BUS_DMA_NOWAIT | BUS_DMA_ALLOCNOW,
   1129       1.1  hsuenaga 		    &MVXPE_TX_MAP(sc, q, i))) {
   1130       1.1  hsuenaga 			aprint_error_dev(sc->sc_dev,
   1131       1.1  hsuenaga 			    "can't create dma map (tx ring %d)\n", i);
   1132       1.1  hsuenaga 		}
   1133       1.1  hsuenaga 	}
   1134       1.1  hsuenaga 	mutex_init(&tx->tx_ring_mtx, MUTEX_DEFAULT, IPL_NET);
   1135       1.1  hsuenaga 	tx->tx_dma = tx->tx_cpu = 0;
   1136       1.1  hsuenaga 	tx->tx_queue_len = tx_default_queue_len[q];
   1137       1.1  hsuenaga 	if (tx->tx_queue_len > MVXPE_TX_RING_CNT)
   1138       1.1  hsuenaga 		tx->tx_queue_len = MVXPE_TX_RING_CNT;
   1139  1.19.2.1  christos 	tx->tx_used = 0;
   1140       1.2  hsuenaga 	tx->tx_queue_th_free = tx->tx_queue_len / MVXPE_TXTH_RATIO;
   1141       1.1  hsuenaga }
   1142       1.1  hsuenaga 
   1143       1.1  hsuenaga STATIC void
   1144       1.1  hsuenaga mvxpe_ring_flush_queue(struct mvxpe_softc *sc, int q)
   1145       1.1  hsuenaga {
   1146       1.1  hsuenaga 	struct mvxpe_rx_ring *rx = MVXPE_RX_RING(sc, q);
   1147       1.1  hsuenaga 	struct mvxpe_tx_ring *tx = MVXPE_TX_RING(sc, q);
   1148      1.14  kiyohara 	struct mbuf *m;
   1149       1.1  hsuenaga 	int i;
   1150       1.1  hsuenaga 
   1151       1.1  hsuenaga 	KASSERT_RX_MTX(sc, q);
   1152       1.1  hsuenaga 	KASSERT_TX_MTX(sc, q);
   1153       1.1  hsuenaga 
   1154       1.1  hsuenaga 	/* Rx handle */
   1155       1.1  hsuenaga 	for (i = 0; i < MVXPE_RX_RING_CNT; i++) {
   1156       1.1  hsuenaga 		if (MVXPE_RX_PKTBUF(sc, q, i) == NULL)
   1157       1.1  hsuenaga 			continue;
   1158       1.2  hsuenaga 		mvxpbm_free_chunk(MVXPE_RX_PKTBUF(sc, q, i));
   1159       1.1  hsuenaga 		MVXPE_RX_PKTBUF(sc, q, i) = NULL;
   1160       1.1  hsuenaga 	}
   1161       1.1  hsuenaga 	rx->rx_dma = rx->rx_cpu = 0;
   1162       1.1  hsuenaga 
   1163       1.1  hsuenaga 	/* Tx handle */
   1164       1.1  hsuenaga 	for (i = 0; i < MVXPE_TX_RING_CNT; i++) {
   1165      1.14  kiyohara 		m = MVXPE_TX_MBUF(sc, q, i);
   1166      1.14  kiyohara 		if (m == NULL)
   1167       1.1  hsuenaga 			continue;
   1168      1.14  kiyohara 		MVXPE_TX_MBUF(sc, q, i) = NULL;
   1169      1.14  kiyohara 		bus_dmamap_sync(sc->sc_dmat,
   1170      1.14  kiyohara 		    MVXPE_TX_MAP(sc, q, i), 0, m->m_pkthdr.len,
   1171      1.14  kiyohara 		    BUS_DMASYNC_POSTWRITE);
   1172       1.1  hsuenaga 		bus_dmamap_unload(sc->sc_dmat, MVXPE_TX_MAP(sc, q, i));
   1173      1.14  kiyohara 		m_freem(m);
   1174       1.1  hsuenaga 	}
   1175       1.1  hsuenaga 	tx->tx_dma = tx->tx_cpu = 0;
   1176  1.19.2.1  christos 	tx->tx_used = 0;
   1177       1.1  hsuenaga }
   1178       1.1  hsuenaga 
   1179       1.1  hsuenaga STATIC void
   1180       1.1  hsuenaga mvxpe_ring_sync_rx(struct mvxpe_softc *sc, int q, int idx, int count, int ops)
   1181       1.1  hsuenaga {
   1182       1.1  hsuenaga 	int wrap;
   1183       1.1  hsuenaga 
   1184       1.1  hsuenaga 	KASSERT_RX_MTX(sc, q);
   1185       1.1  hsuenaga 	KASSERT(count > 0 && count <= MVXPE_RX_RING_CNT);
   1186       1.1  hsuenaga 	KASSERT(idx >= 0 && idx < MVXPE_RX_RING_CNT);
   1187       1.1  hsuenaga 
   1188       1.1  hsuenaga 	wrap = (idx + count) - MVXPE_RX_RING_CNT;
   1189       1.1  hsuenaga 	if (wrap > 0) {
   1190       1.1  hsuenaga 		count -= wrap;
   1191       1.1  hsuenaga 		KASSERT(count > 0);
   1192       1.1  hsuenaga 		bus_dmamap_sync(sc->sc_dmat, MVXPE_RX_RING_MEM_MAP(sc, q),
   1193       1.1  hsuenaga 		    0, sizeof(struct mvxpe_rx_desc) * wrap, ops);
   1194       1.1  hsuenaga 	}
   1195       1.1  hsuenaga 	bus_dmamap_sync(sc->sc_dmat, MVXPE_RX_RING_MEM_MAP(sc, q),
   1196       1.1  hsuenaga 	    MVXPE_RX_DESC_OFF(sc, q, idx),
   1197       1.1  hsuenaga 	    sizeof(struct mvxpe_rx_desc) * count, ops);
   1198       1.1  hsuenaga }
   1199       1.1  hsuenaga 
   1200       1.1  hsuenaga STATIC void
   1201       1.1  hsuenaga mvxpe_ring_sync_tx(struct mvxpe_softc *sc, int q, int idx, int count, int ops)
   1202       1.1  hsuenaga {
   1203       1.1  hsuenaga 	int wrap = 0;
   1204       1.1  hsuenaga 
   1205       1.1  hsuenaga 	KASSERT_TX_MTX(sc, q);
   1206       1.1  hsuenaga 	KASSERT(count > 0 && count <= MVXPE_TX_RING_CNT);
   1207       1.1  hsuenaga 	KASSERT(idx >= 0 && idx < MVXPE_TX_RING_CNT);
   1208       1.1  hsuenaga 
   1209       1.1  hsuenaga 	wrap = (idx + count) - MVXPE_TX_RING_CNT;
   1210  1.19.2.1  christos 	if (wrap > 0) {
   1211       1.1  hsuenaga 		count -= wrap;
   1212       1.1  hsuenaga 		bus_dmamap_sync(sc->sc_dmat, MVXPE_TX_RING_MEM_MAP(sc, q),
   1213       1.1  hsuenaga 		    0, sizeof(struct mvxpe_tx_desc) * wrap, ops);
   1214       1.1  hsuenaga 	}
   1215       1.1  hsuenaga 	bus_dmamap_sync(sc->sc_dmat, MVXPE_TX_RING_MEM_MAP(sc, q),
   1216       1.1  hsuenaga 	    MVXPE_TX_DESC_OFF(sc, q, idx),
   1217       1.1  hsuenaga 	    sizeof(struct mvxpe_tx_desc) * count, ops);
   1218       1.1  hsuenaga }
   1219       1.1  hsuenaga 
   1220       1.1  hsuenaga /*
   1221       1.1  hsuenaga  * Rx/Tx Queue Control
   1222       1.1  hsuenaga  */
   1223       1.1  hsuenaga STATIC int
   1224       1.1  hsuenaga mvxpe_rx_queue_init(struct ifnet *ifp, int q)
   1225       1.1  hsuenaga {
   1226       1.1  hsuenaga 	struct mvxpe_softc *sc = ifp->if_softc;
   1227       1.1  hsuenaga 	uint32_t reg;
   1228       1.1  hsuenaga 
   1229       1.1  hsuenaga 	KASSERT_RX_MTX(sc, q);
   1230       1.1  hsuenaga 	KASSERT(MVXPE_RX_RING_MEM_PA(sc, q) != 0);
   1231       1.1  hsuenaga 
   1232       1.1  hsuenaga 	/* descriptor address */
   1233       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_PRXDQA(q), MVXPE_RX_RING_MEM_PA(sc, q));
   1234       1.1  hsuenaga 
   1235       1.1  hsuenaga 	/* Rx buffer size and descriptor ring size */
   1236       1.2  hsuenaga 	reg  = MVXPE_PRXDQS_BUFFERSIZE(mvxpbm_chunk_size(sc->sc_bm) >> 3);
   1237       1.1  hsuenaga 	reg |= MVXPE_PRXDQS_DESCRIPTORSQUEUESIZE(MVXPE_RX_RING_CNT);
   1238       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_PRXDQS(q), reg);
   1239       1.1  hsuenaga 	DPRINTIFNET(ifp, 1, "PRXDQS(%d): %#x\n",
   1240       1.1  hsuenaga 	    q, MVXPE_READ(sc, MVXPE_PRXDQS(q)));
   1241       1.1  hsuenaga 
   1242       1.1  hsuenaga 	/* Rx packet offset address */
   1243       1.2  hsuenaga 	reg = MVXPE_PRXC_PACKETOFFSET(mvxpbm_packet_offset(sc->sc_bm) >> 3);
   1244       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_PRXC(q), reg);
   1245       1.1  hsuenaga 	DPRINTIFNET(ifp, 1, "PRXC(%d): %#x\n",
   1246       1.1  hsuenaga 	    q, MVXPE_READ(sc, MVXPE_PRXC(q)));
   1247       1.1  hsuenaga 
   1248       1.2  hsuenaga 	/* Rx DMA SNOOP */
   1249       1.2  hsuenaga 	reg  = MVXPE_PRXSNP_SNOOPNOOFBYTES(MVXPE_MRU);
   1250       1.2  hsuenaga 	reg |= MVXPE_PRXSNP_L2DEPOSITNOOFBYTES(MVXPE_MRU);
   1251       1.2  hsuenaga 	MVXPE_WRITE(sc, MVXPE_PRXSNP(q), reg);
   1252       1.2  hsuenaga 
   1253       1.1  hsuenaga 	/* if DMA is not working, register is not updated */
   1254       1.1  hsuenaga 	KASSERT(MVXPE_READ(sc, MVXPE_PRXDQA(q)) == MVXPE_RX_RING_MEM_PA(sc, q));
   1255       1.1  hsuenaga 	return 0;
   1256       1.1  hsuenaga }
   1257       1.1  hsuenaga 
   1258       1.1  hsuenaga STATIC int
   1259       1.1  hsuenaga mvxpe_tx_queue_init(struct ifnet *ifp, int q)
   1260       1.1  hsuenaga {
   1261       1.1  hsuenaga 	struct mvxpe_softc *sc = ifp->if_softc;
   1262       1.1  hsuenaga 	struct mvxpe_tx_ring *tx = MVXPE_TX_RING(sc, q);
   1263       1.1  hsuenaga 	uint32_t reg;
   1264       1.1  hsuenaga 
   1265       1.1  hsuenaga 	KASSERT_TX_MTX(sc, q);
   1266       1.1  hsuenaga 	KASSERT(MVXPE_TX_RING_MEM_PA(sc, q) != 0);
   1267       1.1  hsuenaga 
   1268       1.1  hsuenaga 	/* descriptor address */
   1269       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_PTXDQA(q), MVXPE_TX_RING_MEM_PA(sc, q));
   1270       1.1  hsuenaga 
   1271       1.1  hsuenaga 	/* Tx threshold, and descriptor ring size */
   1272       1.1  hsuenaga 	reg  = MVXPE_PTXDQS_TBT(tx->tx_queue_th_free);
   1273       1.1  hsuenaga 	reg |= MVXPE_PTXDQS_DQS(MVXPE_TX_RING_CNT);
   1274       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_PTXDQS(q), reg);
   1275       1.1  hsuenaga 	DPRINTIFNET(ifp, 1, "PTXDQS(%d): %#x\n",
   1276       1.1  hsuenaga 	    q, MVXPE_READ(sc, MVXPE_PTXDQS(q)));
   1277       1.1  hsuenaga 
   1278       1.1  hsuenaga 	/* if DMA is not working, register is not updated */
   1279       1.1  hsuenaga 	KASSERT(MVXPE_READ(sc, MVXPE_PTXDQA(q)) == MVXPE_TX_RING_MEM_PA(sc, q));
   1280       1.1  hsuenaga 	return 0;
   1281       1.1  hsuenaga }
   1282       1.1  hsuenaga 
   1283       1.1  hsuenaga STATIC int
   1284       1.1  hsuenaga mvxpe_rx_queue_enable(struct ifnet *ifp, int q)
   1285       1.1  hsuenaga {
   1286       1.1  hsuenaga 	struct mvxpe_softc *sc = ifp->if_softc;
   1287       1.1  hsuenaga 	struct mvxpe_rx_ring *rx = MVXPE_RX_RING(sc, q);
   1288       1.1  hsuenaga 	uint32_t reg;
   1289       1.1  hsuenaga 
   1290       1.1  hsuenaga 	KASSERT_RX_MTX(sc, q);
   1291       1.1  hsuenaga 
   1292       1.1  hsuenaga 	/* Set Rx interrupt threshold */
   1293       1.1  hsuenaga 	reg  = MVXPE_PRXDQTH_ODT(rx->rx_queue_th_received);
   1294       1.1  hsuenaga 	reg |= MVXPE_PRXDQTH_NODT(rx->rx_queue_th_free);
   1295       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_PRXDQTH(q), reg);
   1296       1.1  hsuenaga 
   1297       1.1  hsuenaga 	reg  = MVXPE_PRXITTH_RITT(rx->rx_queue_th_time);
   1298       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_PRXITTH(q), reg);
   1299       1.1  hsuenaga 
   1300       1.1  hsuenaga 	/* Unmask RXTX_TH Intr. */
   1301       1.1  hsuenaga 	reg = MVXPE_READ(sc, MVXPE_PRXTXTIM);
   1302       1.1  hsuenaga 	reg |= MVXPE_PRXTXTI_RBICTAPQ(q); /* Rx Buffer Interrupt Coalese */
   1303       1.1  hsuenaga 	reg |= MVXPE_PRXTXTI_RDTAQ(q); /* Rx Descriptor Alart */
   1304       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_PRXTXTIM, reg);
   1305       1.1  hsuenaga 
   1306       1.1  hsuenaga 	/* Enable Rx queue */
   1307       1.1  hsuenaga 	reg = MVXPE_READ(sc, MVXPE_RQC) & MVXPE_RQC_EN_MASK;
   1308       1.1  hsuenaga 	reg |= MVXPE_RQC_ENQ(q);
   1309       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_RQC, reg);
   1310       1.1  hsuenaga 
   1311       1.1  hsuenaga 	return 0;
   1312       1.1  hsuenaga }
   1313       1.1  hsuenaga 
   1314       1.1  hsuenaga STATIC int
   1315       1.1  hsuenaga mvxpe_tx_queue_enable(struct ifnet *ifp, int q)
   1316       1.1  hsuenaga {
   1317       1.1  hsuenaga 	struct mvxpe_softc *sc = ifp->if_softc;
   1318       1.1  hsuenaga 	struct mvxpe_tx_ring *tx = MVXPE_TX_RING(sc, q);
   1319       1.1  hsuenaga 	uint32_t reg;
   1320       1.1  hsuenaga 
   1321       1.1  hsuenaga 	KASSERT_TX_MTX(sc, q);
   1322       1.1  hsuenaga 
   1323       1.1  hsuenaga 	/* Set Tx interrupt threshold */
   1324       1.1  hsuenaga 	reg  = MVXPE_READ(sc, MVXPE_PTXDQS(q));
   1325       1.1  hsuenaga 	reg &= ~MVXPE_PTXDQS_TBT_MASK; /* keep queue size */
   1326       1.1  hsuenaga 	reg |= MVXPE_PTXDQS_TBT(tx->tx_queue_th_free);
   1327       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_PTXDQS(q), reg);
   1328       1.1  hsuenaga 
   1329       1.1  hsuenaga 	/* Unmask RXTX_TH Intr. */
   1330       1.1  hsuenaga 	reg = MVXPE_READ(sc, MVXPE_PRXTXTIM);
   1331       1.1  hsuenaga 	reg |= MVXPE_PRXTXTI_TBTCQ(q); /* Tx Threshold cross */
   1332       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_PRXTXTIM, reg);
   1333       1.1  hsuenaga 
   1334       1.1  hsuenaga 	/* Don't update MVXPE_TQC here, there is no packet yet. */
   1335       1.1  hsuenaga 	return 0;
   1336       1.1  hsuenaga }
   1337       1.1  hsuenaga 
   1338       1.1  hsuenaga STATIC void
   1339       1.1  hsuenaga mvxpe_rx_lockq(struct mvxpe_softc *sc, int q)
   1340       1.1  hsuenaga {
   1341       1.1  hsuenaga 	KASSERT(q >= 0);
   1342       1.1  hsuenaga 	KASSERT(q < MVXPE_QUEUE_SIZE);
   1343       1.1  hsuenaga 	mutex_enter(&sc->sc_rx_ring[q].rx_ring_mtx);
   1344       1.1  hsuenaga }
   1345       1.1  hsuenaga 
   1346       1.1  hsuenaga STATIC void
   1347       1.1  hsuenaga mvxpe_rx_unlockq(struct mvxpe_softc *sc, int q)
   1348       1.1  hsuenaga {
   1349       1.1  hsuenaga 	KASSERT(q >= 0);
   1350       1.1  hsuenaga 	KASSERT(q < MVXPE_QUEUE_SIZE);
   1351       1.1  hsuenaga 	mutex_exit(&sc->sc_rx_ring[q].rx_ring_mtx);
   1352       1.1  hsuenaga }
   1353       1.1  hsuenaga 
   1354       1.1  hsuenaga STATIC void
   1355       1.1  hsuenaga mvxpe_tx_lockq(struct mvxpe_softc *sc, int q)
   1356       1.1  hsuenaga {
   1357       1.1  hsuenaga 	KASSERT(q >= 0);
   1358       1.1  hsuenaga 	KASSERT(q < MVXPE_QUEUE_SIZE);
   1359       1.1  hsuenaga 	mutex_enter(&sc->sc_tx_ring[q].tx_ring_mtx);
   1360       1.1  hsuenaga }
   1361       1.1  hsuenaga 
   1362       1.1  hsuenaga STATIC void
   1363       1.1  hsuenaga mvxpe_tx_unlockq(struct mvxpe_softc *sc, int q)
   1364       1.1  hsuenaga {
   1365       1.1  hsuenaga 	KASSERT(q >= 0);
   1366       1.1  hsuenaga 	KASSERT(q < MVXPE_QUEUE_SIZE);
   1367       1.1  hsuenaga 	mutex_exit(&sc->sc_tx_ring[q].tx_ring_mtx);
   1368       1.1  hsuenaga }
   1369       1.1  hsuenaga 
   1370       1.1  hsuenaga /*
   1371       1.1  hsuenaga  * Interrupt Handlers
   1372       1.1  hsuenaga  */
   1373       1.1  hsuenaga STATIC void
   1374       1.1  hsuenaga mvxpe_disable_intr(struct mvxpe_softc *sc)
   1375       1.1  hsuenaga {
   1376       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_EUIM, 0);
   1377       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_EUIC, 0);
   1378       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_PRXTXTIM, 0);
   1379       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_PRXTXTIC, 0);
   1380       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_PRXTXIM, 0);
   1381       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_PRXTXIC, 0);
   1382       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_PMIM, 0);
   1383       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_PMIC, 0);
   1384       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_PIE, 0);
   1385       1.1  hsuenaga }
   1386       1.1  hsuenaga 
   1387       1.1  hsuenaga STATIC void
   1388       1.1  hsuenaga mvxpe_enable_intr(struct mvxpe_softc *sc)
   1389       1.1  hsuenaga {
   1390       1.1  hsuenaga 	uint32_t reg;
   1391       1.1  hsuenaga 
   1392       1.1  hsuenaga 	/* Enable Port MISC Intr. (via RXTX_TH_Summary bit) */
   1393       1.1  hsuenaga 	reg  = MVXPE_READ(sc, MVXPE_PMIM);
   1394       1.1  hsuenaga 	reg |= MVXPE_PMI_PHYSTATUSCHNG;
   1395       1.1  hsuenaga 	reg |= MVXPE_PMI_LINKCHANGE;
   1396       1.1  hsuenaga 	reg |= MVXPE_PMI_IAE;
   1397       1.1  hsuenaga 	reg |= MVXPE_PMI_RXOVERRUN;
   1398       1.1  hsuenaga 	reg |= MVXPE_PMI_RXCRCERROR;
   1399       1.1  hsuenaga 	reg |= MVXPE_PMI_RXLARGEPACKET;
   1400       1.1  hsuenaga 	reg |= MVXPE_PMI_TXUNDRN;
   1401       1.6    hikaru #if 0
   1402       1.6    hikaru 	/*
   1403       1.6    hikaru 	 * The device may raise false interrupts for SERDES even if the device
   1404       1.6    hikaru 	 * is not configured to use SERDES connection.
   1405       1.6    hikaru 	 */
   1406       1.6    hikaru 	reg |= MVXPE_PMI_PRBSERROR;
   1407       1.6    hikaru 	reg |= MVXPE_PMI_SRSE;
   1408       1.6    hikaru #else
   1409       1.6    hikaru 	reg &= ~MVXPE_PMI_PRBSERROR;
   1410       1.6    hikaru 	reg &= ~MVXPE_PMI_SRSE;
   1411       1.6    hikaru #endif
   1412       1.1  hsuenaga 	reg |= MVXPE_PMI_TREQ_MASK;
   1413       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_PMIM, reg);
   1414       1.1  hsuenaga 
   1415       1.1  hsuenaga 	/* Enable Summary Bit to check all interrupt cause. */
   1416       1.1  hsuenaga 	reg  = MVXPE_READ(sc, MVXPE_PRXTXTIM);
   1417       1.1  hsuenaga 	reg |= MVXPE_PRXTXTI_PMISCICSUMMARY;
   1418       1.1  hsuenaga 	reg |= MVXPE_PRXTXTI_PTXERRORSUMMARY;
   1419       1.1  hsuenaga 	reg |= MVXPE_PRXTXTI_PRXTXICSUMMARY;
   1420       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_PRXTXTIM, reg);
   1421       1.1  hsuenaga 
   1422       1.1  hsuenaga 	/* Enable All Queue Interrupt */
   1423       1.1  hsuenaga 	reg  = MVXPE_READ(sc, MVXPE_PIE);
   1424       1.1  hsuenaga 	reg |= MVXPE_PIE_RXPKTINTRPTENB_MASK;
   1425       1.1  hsuenaga 	reg |= MVXPE_PIE_TXPKTINTRPTENB_MASK;
   1426       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_PIE, reg);
   1427       1.1  hsuenaga }
   1428       1.1  hsuenaga 
   1429       1.1  hsuenaga STATIC int
   1430       1.1  hsuenaga mvxpe_rxtxth_intr(void *arg)
   1431       1.1  hsuenaga {
   1432       1.1  hsuenaga 	struct mvxpe_softc *sc = arg;
   1433       1.1  hsuenaga 	struct ifnet *ifp = &sc->sc_ethercom.ec_if;
   1434       1.2  hsuenaga 	uint32_t ic, queues, datum = 0;
   1435       1.1  hsuenaga 
   1436       1.1  hsuenaga 	DPRINTSC(sc, 2, "got RXTX_TH_Intr\n");
   1437       1.1  hsuenaga 	MVXPE_EVCNT_INCR(&sc->sc_ev.ev_i_rxtxth);
   1438       1.1  hsuenaga 
   1439       1.1  hsuenaga 	mvxpe_sc_lock(sc);
   1440       1.2  hsuenaga 	ic = MVXPE_READ(sc, MVXPE_PRXTXTIC);
   1441       1.4    hikaru 	if (ic == 0) {
   1442       1.4    hikaru 		mvxpe_sc_unlock(sc);
   1443       1.2  hsuenaga 		return 0;
   1444       1.4    hikaru 	}
   1445       1.2  hsuenaga 	MVXPE_WRITE(sc, MVXPE_PRXTXTIC, ~ic);
   1446       1.2  hsuenaga 	datum = datum ^ ic;
   1447       1.1  hsuenaga 
   1448       1.2  hsuenaga 	DPRINTIFNET(ifp, 2, "PRXTXTIC: %#x\n", ic);
   1449       1.1  hsuenaga 
   1450       1.2  hsuenaga 	/* ack maintance interrupt first */
   1451       1.2  hsuenaga 	if (ic & MVXPE_PRXTXTI_PTXERRORSUMMARY) {
   1452       1.2  hsuenaga 		DPRINTIFNET(ifp, 1, "PRXTXTIC: +PTXERRORSUMMARY\n");
   1453       1.2  hsuenaga 		MVXPE_EVCNT_INCR(&sc->sc_ev.ev_rxtxth_txerr);
   1454       1.2  hsuenaga 	}
   1455       1.2  hsuenaga 	if ((ic & MVXPE_PRXTXTI_PMISCICSUMMARY)) {
   1456       1.2  hsuenaga 		DPRINTIFNET(ifp, 2, "PTXTXTIC: +PMISCICSUMMARY\n");
   1457       1.2  hsuenaga 		mvxpe_misc_intr(sc);
   1458       1.2  hsuenaga 	}
   1459       1.2  hsuenaga 	if (ic & MVXPE_PRXTXTI_PRXTXICSUMMARY) {
   1460       1.2  hsuenaga 		DPRINTIFNET(ifp, 2, "PTXTXTIC: +PRXTXICSUMMARY\n");
   1461       1.2  hsuenaga 		mvxpe_rxtx_intr(sc);
   1462       1.2  hsuenaga 	}
   1463       1.4    hikaru 	if (!(ifp->if_flags & IFF_RUNNING)) {
   1464       1.4    hikaru 		mvxpe_sc_unlock(sc);
   1465       1.2  hsuenaga 		return 1;
   1466       1.4    hikaru 	}
   1467       1.2  hsuenaga 
   1468       1.2  hsuenaga 	/* RxTxTH interrupt */
   1469       1.2  hsuenaga 	queues = MVXPE_PRXTXTI_GET_RBICTAPQ(ic);
   1470       1.2  hsuenaga 	if (queues) {
   1471       1.2  hsuenaga 		DPRINTIFNET(ifp, 2, "PRXTXTIC: +RXEOF\n");
   1472       1.2  hsuenaga 		mvxpe_rx(sc, queues);
   1473       1.2  hsuenaga 	}
   1474       1.2  hsuenaga 	queues = MVXPE_PRXTXTI_GET_TBTCQ(ic);
   1475       1.2  hsuenaga 	if (queues) {
   1476       1.2  hsuenaga 		DPRINTIFNET(ifp, 2, "PRXTXTIC: +TBTCQ\n");
   1477       1.2  hsuenaga 		mvxpe_tx_complete(sc, queues);
   1478       1.2  hsuenaga 	}
   1479       1.2  hsuenaga 	queues = MVXPE_PRXTXTI_GET_RDTAQ(ic);
   1480       1.2  hsuenaga 	if (queues) {
   1481       1.2  hsuenaga 		DPRINTIFNET(ifp, 2, "PRXTXTIC: +RDTAQ\n");
   1482       1.2  hsuenaga 		mvxpe_rx_refill(sc, queues);
   1483       1.1  hsuenaga 	}
   1484       1.1  hsuenaga 	mvxpe_sc_unlock(sc);
   1485       1.1  hsuenaga 
   1486      1.16     ozaki 	if_schedule_deferred_start(ifp);
   1487       1.1  hsuenaga 
   1488       1.1  hsuenaga 	rnd_add_uint32(&sc->sc_rnd_source, datum);
   1489       1.1  hsuenaga 
   1490       1.2  hsuenaga 	return 1;
   1491       1.1  hsuenaga }
   1492       1.1  hsuenaga 
   1493       1.1  hsuenaga STATIC int
   1494       1.1  hsuenaga mvxpe_misc_intr(void *arg)
   1495       1.1  hsuenaga {
   1496       1.1  hsuenaga 	struct mvxpe_softc *sc = arg;
   1497       1.1  hsuenaga #ifdef MVXPE_DEBUG
   1498       1.1  hsuenaga 	struct ifnet *ifp = &sc->sc_ethercom.ec_if;
   1499       1.1  hsuenaga #endif
   1500       1.1  hsuenaga 	uint32_t ic;
   1501       1.1  hsuenaga 	uint32_t datum = 0;
   1502       1.1  hsuenaga 	int claimed = 0;
   1503       1.1  hsuenaga 
   1504       1.1  hsuenaga 	DPRINTSC(sc, 2, "got MISC_INTR\n");
   1505       1.1  hsuenaga 	MVXPE_EVCNT_INCR(&sc->sc_ev.ev_i_misc);
   1506       1.1  hsuenaga 
   1507       1.1  hsuenaga 	KASSERT_SC_MTX(sc);
   1508       1.1  hsuenaga 
   1509       1.1  hsuenaga 	for (;;) {
   1510       1.1  hsuenaga 		ic = MVXPE_READ(sc, MVXPE_PMIC);
   1511       1.1  hsuenaga 		ic &= MVXPE_READ(sc, MVXPE_PMIM);
   1512       1.1  hsuenaga 		if (ic == 0)
   1513       1.1  hsuenaga 			break;
   1514       1.1  hsuenaga 		MVXPE_WRITE(sc, MVXPE_PMIC, ~ic);
   1515       1.1  hsuenaga 		datum = datum ^ ic;
   1516       1.1  hsuenaga 		claimed = 1;
   1517       1.1  hsuenaga 
   1518       1.1  hsuenaga 		DPRINTIFNET(ifp, 2, "PMIC=%#x\n", ic);
   1519       1.1  hsuenaga 		if (ic & MVXPE_PMI_PHYSTATUSCHNG) {
   1520       1.1  hsuenaga 			DPRINTIFNET(ifp, 2, "+PHYSTATUSCHNG\n");
   1521       1.1  hsuenaga 			MVXPE_EVCNT_INCR(&sc->sc_ev.ev_misc_phystatuschng);
   1522       1.1  hsuenaga 		}
   1523       1.1  hsuenaga 		if (ic & MVXPE_PMI_LINKCHANGE) {
   1524       1.1  hsuenaga 			DPRINTIFNET(ifp, 2, "+LINKCHANGE\n");
   1525       1.1  hsuenaga 			MVXPE_EVCNT_INCR(&sc->sc_ev.ev_misc_linkchange);
   1526       1.1  hsuenaga 			mvxpe_linkupdate(sc);
   1527       1.1  hsuenaga 		}
   1528       1.1  hsuenaga 		if (ic & MVXPE_PMI_IAE) {
   1529       1.1  hsuenaga 			DPRINTIFNET(ifp, 2, "+IAE\n");
   1530       1.1  hsuenaga 			MVXPE_EVCNT_INCR(&sc->sc_ev.ev_misc_iae);
   1531       1.1  hsuenaga 		}
   1532       1.1  hsuenaga 		if (ic & MVXPE_PMI_RXOVERRUN) {
   1533       1.1  hsuenaga 			DPRINTIFNET(ifp, 2, "+RXOVERRUN\n");
   1534       1.1  hsuenaga 			MVXPE_EVCNT_INCR(&sc->sc_ev.ev_misc_rxoverrun);
   1535       1.1  hsuenaga 		}
   1536       1.1  hsuenaga 		if (ic & MVXPE_PMI_RXCRCERROR) {
   1537       1.1  hsuenaga 			DPRINTIFNET(ifp, 2, "+RXCRCERROR\n");
   1538       1.1  hsuenaga 			MVXPE_EVCNT_INCR(&sc->sc_ev.ev_misc_rxcrc);
   1539       1.1  hsuenaga 		}
   1540       1.1  hsuenaga 		if (ic & MVXPE_PMI_RXLARGEPACKET) {
   1541       1.1  hsuenaga 			DPRINTIFNET(ifp, 2, "+RXLARGEPACKET\n");
   1542       1.1  hsuenaga 			MVXPE_EVCNT_INCR(&sc->sc_ev.ev_misc_rxlargepacket);
   1543       1.1  hsuenaga 		}
   1544       1.1  hsuenaga 		if (ic & MVXPE_PMI_TXUNDRN) {
   1545       1.1  hsuenaga 			DPRINTIFNET(ifp, 2, "+TXUNDRN\n");
   1546       1.1  hsuenaga 			MVXPE_EVCNT_INCR(&sc->sc_ev.ev_misc_txunderrun);
   1547       1.1  hsuenaga 		}
   1548       1.1  hsuenaga 		if (ic & MVXPE_PMI_PRBSERROR) {
   1549       1.1  hsuenaga 			DPRINTIFNET(ifp, 2, "+PRBSERROR\n");
   1550       1.1  hsuenaga 			MVXPE_EVCNT_INCR(&sc->sc_ev.ev_misc_prbserr);
   1551       1.1  hsuenaga 		}
   1552       1.1  hsuenaga 		if (ic & MVXPE_PMI_TREQ_MASK) {
   1553       1.1  hsuenaga 			DPRINTIFNET(ifp, 2, "+TREQ\n");
   1554       1.1  hsuenaga 			MVXPE_EVCNT_INCR(&sc->sc_ev.ev_misc_txreq);
   1555       1.1  hsuenaga 		}
   1556       1.1  hsuenaga 	}
   1557       1.1  hsuenaga 	if (datum)
   1558       1.1  hsuenaga 		rnd_add_uint32(&sc->sc_rnd_source, datum);
   1559       1.1  hsuenaga 
   1560       1.1  hsuenaga 	return claimed;
   1561       1.1  hsuenaga }
   1562       1.1  hsuenaga 
   1563       1.1  hsuenaga STATIC int
   1564       1.1  hsuenaga mvxpe_rxtx_intr(void *arg)
   1565       1.1  hsuenaga {
   1566       1.1  hsuenaga 	struct mvxpe_softc *sc = arg;
   1567       1.1  hsuenaga #ifdef MVXPE_DEBUG
   1568       1.1  hsuenaga 	struct ifnet *ifp = &sc->sc_ethercom.ec_if;
   1569       1.1  hsuenaga #endif
   1570       1.1  hsuenaga 	uint32_t datum = 0;
   1571       1.1  hsuenaga 	uint32_t prxtxic;
   1572       1.1  hsuenaga 	int claimed = 0;
   1573       1.1  hsuenaga 
   1574       1.1  hsuenaga 	DPRINTSC(sc, 2, "got RXTX_Intr\n");
   1575       1.1  hsuenaga 	MVXPE_EVCNT_INCR(&sc->sc_ev.ev_i_rxtx);
   1576       1.1  hsuenaga 
   1577       1.1  hsuenaga 	KASSERT_SC_MTX(sc);
   1578       1.1  hsuenaga 
   1579       1.1  hsuenaga 	for (;;) {
   1580       1.1  hsuenaga 		prxtxic = MVXPE_READ(sc, MVXPE_PRXTXIC);
   1581       1.1  hsuenaga 		prxtxic &= MVXPE_READ(sc, MVXPE_PRXTXIM);
   1582       1.1  hsuenaga 		if (prxtxic == 0)
   1583       1.1  hsuenaga 			break;
   1584       1.1  hsuenaga 		MVXPE_WRITE(sc, MVXPE_PRXTXIC, ~prxtxic);
   1585       1.1  hsuenaga 		datum = datum ^ prxtxic;
   1586       1.1  hsuenaga 		claimed = 1;
   1587       1.1  hsuenaga 
   1588       1.1  hsuenaga 		DPRINTSC(sc, 2, "PRXTXIC: %#x\n", prxtxic);
   1589       1.1  hsuenaga 
   1590       1.1  hsuenaga 		if (prxtxic & MVXPE_PRXTXI_RREQ_MASK) {
   1591       1.1  hsuenaga 			DPRINTIFNET(ifp, 1, "Rx Resource Error.\n");
   1592       1.1  hsuenaga 			MVXPE_EVCNT_INCR(&sc->sc_ev.ev_rxtx_rreq);
   1593       1.1  hsuenaga 		}
   1594       1.1  hsuenaga 		if (prxtxic & MVXPE_PRXTXI_RPQ_MASK) {
   1595       1.1  hsuenaga 			DPRINTIFNET(ifp, 1, "Rx Packet in Queue.\n");
   1596       1.1  hsuenaga 			MVXPE_EVCNT_INCR(&sc->sc_ev.ev_rxtx_rpq);
   1597       1.1  hsuenaga 		}
   1598       1.1  hsuenaga 		if (prxtxic & MVXPE_PRXTXI_TBRQ_MASK) {
   1599       1.1  hsuenaga 			DPRINTIFNET(ifp, 1, "Tx Buffer Return.\n");
   1600       1.1  hsuenaga 			MVXPE_EVCNT_INCR(&sc->sc_ev.ev_rxtx_tbrq);
   1601       1.1  hsuenaga 		}
   1602       1.1  hsuenaga 		if (prxtxic & MVXPE_PRXTXI_PRXTXTHICSUMMARY) {
   1603       1.1  hsuenaga 			DPRINTIFNET(ifp, 1, "PRXTXTHIC Sumary\n");
   1604       1.1  hsuenaga 			MVXPE_EVCNT_INCR(&sc->sc_ev.ev_rxtx_rxtxth);
   1605       1.1  hsuenaga 		}
   1606       1.1  hsuenaga 		if (prxtxic & MVXPE_PRXTXI_PTXERRORSUMMARY) {
   1607       1.1  hsuenaga 			DPRINTIFNET(ifp, 1, "PTXERROR Sumary\n");
   1608       1.1  hsuenaga 			MVXPE_EVCNT_INCR(&sc->sc_ev.ev_rxtx_txerr);
   1609       1.1  hsuenaga 		}
   1610       1.1  hsuenaga 		if (prxtxic & MVXPE_PRXTXI_PMISCICSUMMARY) {
   1611       1.1  hsuenaga 			DPRINTIFNET(ifp, 1, "PMISCIC Sumary\n");
   1612       1.1  hsuenaga 			MVXPE_EVCNT_INCR(&sc->sc_ev.ev_rxtx_misc);
   1613       1.1  hsuenaga 		}
   1614       1.1  hsuenaga 	}
   1615       1.1  hsuenaga 	if (datum)
   1616       1.1  hsuenaga 		rnd_add_uint32(&sc->sc_rnd_source, datum);
   1617       1.1  hsuenaga 
   1618       1.1  hsuenaga 	return claimed;
   1619       1.1  hsuenaga }
   1620       1.1  hsuenaga 
   1621       1.1  hsuenaga STATIC void
   1622       1.1  hsuenaga mvxpe_tick(void *arg)
   1623       1.1  hsuenaga {
   1624       1.1  hsuenaga 	struct mvxpe_softc *sc = arg;
   1625       1.1  hsuenaga 	struct mii_data *mii = &sc->sc_mii;
   1626       1.1  hsuenaga 
   1627       1.1  hsuenaga 	mvxpe_sc_lock(sc);
   1628       1.1  hsuenaga 
   1629       1.1  hsuenaga 	mii_tick(mii);
   1630       1.1  hsuenaga 	mii_pollstat(&sc->sc_mii);
   1631       1.1  hsuenaga 
   1632      1.15     skrll 	/* read mib registers(clear by read) */
   1633       1.1  hsuenaga 	mvxpe_update_mib(sc);
   1634       1.1  hsuenaga 
   1635       1.1  hsuenaga 	/* read counter registers(clear by read) */
   1636       1.1  hsuenaga 	MVXPE_EVCNT_ADD(&sc->sc_ev.ev_reg_pdfc,
   1637       1.1  hsuenaga 	    MVXPE_READ(sc, MVXPE_PDFC));
   1638       1.1  hsuenaga 	MVXPE_EVCNT_ADD(&sc->sc_ev.ev_reg_pofc,
   1639       1.1  hsuenaga 	    MVXPE_READ(sc, MVXPE_POFC));
   1640       1.1  hsuenaga 	MVXPE_EVCNT_ADD(&sc->sc_ev.ev_reg_txbadfcs,
   1641       1.1  hsuenaga 	    MVXPE_READ(sc, MVXPE_TXBADFCS));
   1642       1.1  hsuenaga 	MVXPE_EVCNT_ADD(&sc->sc_ev.ev_reg_txdropped,
   1643       1.1  hsuenaga 	    MVXPE_READ(sc, MVXPE_TXDROPPED));
   1644       1.1  hsuenaga 	MVXPE_EVCNT_ADD(&sc->sc_ev.ev_reg_lpic,
   1645       1.1  hsuenaga 	    MVXPE_READ(sc, MVXPE_LPIC));
   1646       1.1  hsuenaga 
   1647       1.1  hsuenaga 	mvxpe_sc_unlock(sc);
   1648       1.1  hsuenaga 
   1649       1.1  hsuenaga 	callout_schedule(&sc->sc_tick_ch, hz);
   1650       1.1  hsuenaga }
   1651       1.1  hsuenaga 
   1652       1.1  hsuenaga 
   1653       1.1  hsuenaga /*
   1654       1.1  hsuenaga  * struct ifnet and mii callbacks
   1655       1.1  hsuenaga  */
   1656       1.1  hsuenaga STATIC void
   1657       1.1  hsuenaga mvxpe_start(struct ifnet *ifp)
   1658       1.1  hsuenaga {
   1659       1.1  hsuenaga 	struct mvxpe_softc *sc = ifp->if_softc;
   1660       1.1  hsuenaga 	struct mbuf *m;
   1661       1.1  hsuenaga 	int q;
   1662       1.1  hsuenaga 
   1663  1.19.2.1  christos 	if ((ifp->if_flags & (IFF_RUNNING | IFF_OACTIVE)) != IFF_RUNNING) {
   1664       1.1  hsuenaga 		DPRINTIFNET(ifp, 1, "not running\n");
   1665       1.1  hsuenaga 		return;
   1666       1.1  hsuenaga 	}
   1667       1.1  hsuenaga 
   1668       1.1  hsuenaga 	mvxpe_sc_lock(sc);
   1669       1.1  hsuenaga 	if (!MVXPE_IS_LINKUP(sc)) {
   1670       1.1  hsuenaga 		/* If Link is DOWN, can't start TX */
   1671       1.1  hsuenaga 		DPRINTIFNET(ifp, 1, "link fail\n");
   1672       1.1  hsuenaga 		for (;;) {
   1673       1.1  hsuenaga 			/*
   1674       1.1  hsuenaga 			 * discard stale packets all.
   1675       1.1  hsuenaga 			 * these may confuse DAD, ARP or timer based protocols.
   1676       1.1  hsuenaga 			 */
   1677       1.1  hsuenaga 			IFQ_DEQUEUE(&ifp->if_snd, m);
   1678       1.1  hsuenaga 			if (m == NULL)
   1679       1.1  hsuenaga 				break;
   1680       1.1  hsuenaga 			m_freem(m);
   1681       1.1  hsuenaga 		}
   1682       1.1  hsuenaga 		mvxpe_sc_unlock(sc);
   1683       1.1  hsuenaga 		return;
   1684       1.1  hsuenaga 	}
   1685       1.1  hsuenaga 	for (;;) {
   1686       1.1  hsuenaga 		/*
   1687       1.1  hsuenaga 		 * don't use IFQ_POLL().
   1688       1.1  hsuenaga 		 * there is lock problem between IFQ_POLL and IFQ_DEQUEUE
   1689       1.1  hsuenaga 		 * on SMP enabled networking stack.
   1690  1.19.2.1  christos 		 */
   1691       1.1  hsuenaga 		IFQ_DEQUEUE(&ifp->if_snd, m);
   1692       1.1  hsuenaga 		if (m == NULL)
   1693       1.1  hsuenaga 			break;
   1694       1.1  hsuenaga 
   1695       1.1  hsuenaga 		q = mvxpe_tx_queue_select(sc, m);
   1696       1.1  hsuenaga 		if (q < 0)
   1697       1.1  hsuenaga 			break;
   1698       1.1  hsuenaga 		/* mutex is held in mvxpe_tx_queue_select() */
   1699       1.1  hsuenaga 
   1700       1.1  hsuenaga 		if (mvxpe_tx_queue(sc, m, q) != 0) {
   1701       1.1  hsuenaga 			DPRINTIFNET(ifp, 1, "cannot add packet to tx ring\n");
   1702       1.1  hsuenaga 			MVXPE_EVCNT_INCR(&sc->sc_ev.ev_drv_txerr);
   1703       1.1  hsuenaga 			mvxpe_tx_unlockq(sc, q);
   1704       1.1  hsuenaga 			break;
   1705       1.1  hsuenaga 		}
   1706       1.1  hsuenaga 		mvxpe_tx_unlockq(sc, q);
   1707       1.2  hsuenaga 		KASSERT(sc->sc_tx_ring[q].tx_used >= 0);
   1708       1.2  hsuenaga 		KASSERT(sc->sc_tx_ring[q].tx_used <=
   1709       1.1  hsuenaga 		    sc->sc_tx_ring[q].tx_queue_len);
   1710       1.1  hsuenaga 		DPRINTIFNET(ifp, 1, "a packet is added to tx ring\n");
   1711       1.1  hsuenaga 		sc->sc_tx_pending++;
   1712  1.19.2.2    martin 		if_statinc(ifp, if_opackets);
   1713       1.1  hsuenaga 		ifp->if_timer = 1;
   1714       1.1  hsuenaga 		sc->sc_wdogsoft = 1;
   1715      1.19   msaitoh 		bpf_mtap(ifp, m, BPF_D_OUT);
   1716       1.1  hsuenaga 	}
   1717       1.1  hsuenaga 	mvxpe_sc_unlock(sc);
   1718       1.1  hsuenaga 
   1719       1.1  hsuenaga 	return;
   1720       1.1  hsuenaga }
   1721       1.1  hsuenaga 
   1722       1.1  hsuenaga STATIC int
   1723       1.1  hsuenaga mvxpe_ioctl(struct ifnet *ifp, u_long cmd, void *data)
   1724       1.1  hsuenaga {
   1725       1.1  hsuenaga 	struct mvxpe_softc *sc = ifp->if_softc;
   1726       1.1  hsuenaga 	int error = 0;
   1727       1.1  hsuenaga 
   1728       1.1  hsuenaga 	switch (cmd) {
   1729       1.1  hsuenaga 	default:
   1730       1.1  hsuenaga 		DPRINTIFNET(ifp, 2, "mvxpe_ioctl ETHER\n");
   1731       1.1  hsuenaga 		error = ether_ioctl(ifp, cmd, data);
   1732       1.1  hsuenaga 		if (error == ENETRESET) {
   1733       1.1  hsuenaga 			if (ifp->if_flags & IFF_RUNNING) {
   1734       1.1  hsuenaga 				mvxpe_sc_lock(sc);
   1735       1.1  hsuenaga 				mvxpe_filter_setup(sc);
   1736       1.1  hsuenaga 				mvxpe_sc_unlock(sc);
   1737       1.1  hsuenaga 			}
   1738       1.1  hsuenaga 			error = 0;
   1739       1.1  hsuenaga 		}
   1740       1.1  hsuenaga 		break;
   1741       1.1  hsuenaga 	}
   1742       1.1  hsuenaga 
   1743       1.1  hsuenaga 	return error;
   1744       1.1  hsuenaga }
   1745       1.1  hsuenaga 
   1746       1.1  hsuenaga STATIC int
   1747       1.1  hsuenaga mvxpe_init(struct ifnet *ifp)
   1748       1.1  hsuenaga {
   1749       1.1  hsuenaga 	struct mvxpe_softc *sc = ifp->if_softc;
   1750       1.1  hsuenaga 	struct mii_data *mii = &sc->sc_mii;
   1751       1.1  hsuenaga 	uint32_t reg;
   1752       1.1  hsuenaga 	int q;
   1753       1.1  hsuenaga 
   1754       1.1  hsuenaga 	mvxpe_sc_lock(sc);
   1755       1.1  hsuenaga 
   1756       1.1  hsuenaga 	/* Start DMA Engine */
   1757       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_PRXINIT, 0x00000000);
   1758       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_PTXINIT, 0x00000000);
   1759       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_PACC, MVXPE_PACC_ACCELERATIONMODE_EDM);
   1760       1.1  hsuenaga 
   1761       1.1  hsuenaga 	/* Enable port */
   1762       1.1  hsuenaga 	reg  = MVXPE_READ(sc, MVXPE_PMACC0);
   1763       1.1  hsuenaga 	reg |= MVXPE_PMACC0_PORTEN;
   1764       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_PMACC0, reg);
   1765       1.1  hsuenaga 
   1766       1.1  hsuenaga 	/* Link up */
   1767       1.1  hsuenaga 	mvxpe_linkup(sc);
   1768       1.1  hsuenaga 
   1769       1.1  hsuenaga 	/* Enable All Queue and interrupt of each Queue */
   1770       1.1  hsuenaga 	for (q = 0; q < MVXPE_QUEUE_SIZE; q++) {
   1771       1.1  hsuenaga 		mvxpe_rx_lockq(sc, q);
   1772       1.1  hsuenaga 		mvxpe_rx_queue_enable(ifp, q);
   1773       1.2  hsuenaga 		mvxpe_rx_queue_refill(sc, q);
   1774       1.1  hsuenaga 		mvxpe_rx_unlockq(sc, q);
   1775       1.1  hsuenaga 
   1776       1.1  hsuenaga 		mvxpe_tx_lockq(sc, q);
   1777       1.1  hsuenaga 		mvxpe_tx_queue_enable(ifp, q);
   1778       1.1  hsuenaga 		mvxpe_tx_unlockq(sc, q);
   1779       1.1  hsuenaga 	}
   1780       1.1  hsuenaga 
   1781       1.1  hsuenaga 	/* Enable interrupt */
   1782       1.1  hsuenaga 	mvxpe_enable_intr(sc);
   1783       1.1  hsuenaga 
   1784       1.1  hsuenaga 	/* Set Counter */
   1785       1.1  hsuenaga 	callout_schedule(&sc->sc_tick_ch, hz);
   1786       1.1  hsuenaga 
   1787       1.1  hsuenaga 	/* Media check */
   1788       1.1  hsuenaga 	mii_mediachg(mii);
   1789       1.1  hsuenaga 
   1790       1.1  hsuenaga 	ifp->if_flags |= IFF_RUNNING;
   1791       1.1  hsuenaga 	ifp->if_flags &= ~IFF_OACTIVE;
   1792       1.1  hsuenaga 
   1793       1.1  hsuenaga 	mvxpe_sc_unlock(sc);
   1794       1.1  hsuenaga 	return 0;
   1795       1.1  hsuenaga }
   1796       1.1  hsuenaga 
   1797       1.1  hsuenaga /* ARGSUSED */
   1798       1.1  hsuenaga STATIC void
   1799       1.1  hsuenaga mvxpe_stop(struct ifnet *ifp, int disable)
   1800       1.1  hsuenaga {
   1801       1.1  hsuenaga 	struct mvxpe_softc *sc = ifp->if_softc;
   1802       1.1  hsuenaga 	uint32_t reg;
   1803       1.1  hsuenaga 	int q, cnt;
   1804       1.1  hsuenaga 
   1805       1.1  hsuenaga 	DPRINTIFNET(ifp, 1, "stop device dma and interrupts.\n");
   1806       1.1  hsuenaga 
   1807       1.1  hsuenaga 	mvxpe_sc_lock(sc);
   1808       1.1  hsuenaga 
   1809       1.1  hsuenaga 	callout_stop(&sc->sc_tick_ch);
   1810       1.1  hsuenaga 
   1811       1.1  hsuenaga 	/* Link down */
   1812       1.1  hsuenaga 	mvxpe_linkdown(sc);
   1813       1.1  hsuenaga 
   1814       1.1  hsuenaga 	/* Disable Rx interrupt */
   1815       1.1  hsuenaga 	reg  = MVXPE_READ(sc, MVXPE_PIE);
   1816       1.1  hsuenaga 	reg &= ~MVXPE_PIE_RXPKTINTRPTENB_MASK;
   1817       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_PIE, reg);
   1818       1.1  hsuenaga 
   1819       1.1  hsuenaga 	reg  = MVXPE_READ(sc, MVXPE_PRXTXTIM);
   1820       1.1  hsuenaga 	reg &= ~MVXPE_PRXTXTI_RBICTAPQ_MASK;
   1821       1.1  hsuenaga 	reg &= ~MVXPE_PRXTXTI_RDTAQ_MASK;
   1822       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_PRXTXTIM, reg);
   1823       1.1  hsuenaga 
   1824       1.1  hsuenaga 	/* Wait for all Rx activity to terminate. */
   1825       1.1  hsuenaga 	reg = MVXPE_READ(sc, MVXPE_RQC) & MVXPE_RQC_EN_MASK;
   1826       1.1  hsuenaga 	reg = MVXPE_RQC_DIS(reg);
   1827       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_RQC, reg);
   1828       1.1  hsuenaga 	cnt = 0;
   1829       1.1  hsuenaga 	do {
   1830       1.1  hsuenaga 		if (cnt >= RX_DISABLE_TIMEOUT) {
   1831       1.1  hsuenaga 			aprint_error_ifnet(ifp,
   1832       1.1  hsuenaga 			    "timeout for RX stopped. rqc 0x%x\n", reg);
   1833       1.1  hsuenaga 			break;
   1834       1.1  hsuenaga 		}
   1835       1.1  hsuenaga 		cnt++;
   1836       1.1  hsuenaga 		reg = MVXPE_READ(sc, MVXPE_RQC);
   1837       1.1  hsuenaga 	} while (reg & MVXPE_RQC_EN_MASK);
   1838       1.1  hsuenaga 
   1839       1.1  hsuenaga 	/* Wait for all Tx activety to terminate. */
   1840       1.1  hsuenaga 	reg  = MVXPE_READ(sc, MVXPE_PIE);
   1841       1.1  hsuenaga 	reg &= ~MVXPE_PIE_TXPKTINTRPTENB_MASK;
   1842       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_PIE, reg);
   1843       1.1  hsuenaga 
   1844       1.1  hsuenaga 	reg  = MVXPE_READ(sc, MVXPE_PRXTXTIM);
   1845       1.1  hsuenaga 	reg &= ~MVXPE_PRXTXTI_TBTCQ_MASK;
   1846       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_PRXTXTIM, reg);
   1847       1.1  hsuenaga 
   1848       1.1  hsuenaga 	reg = MVXPE_READ(sc, MVXPE_TQC) & MVXPE_TQC_EN_MASK;
   1849       1.1  hsuenaga 	reg = MVXPE_TQC_DIS(reg);
   1850       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_TQC, reg);
   1851       1.1  hsuenaga 	cnt = 0;
   1852       1.1  hsuenaga 	do {
   1853       1.1  hsuenaga 		if (cnt >= TX_DISABLE_TIMEOUT) {
   1854       1.1  hsuenaga 			aprint_error_ifnet(ifp,
   1855       1.1  hsuenaga 			    "timeout for TX stopped. tqc 0x%x\n", reg);
   1856       1.1  hsuenaga 			break;
   1857       1.1  hsuenaga 		}
   1858       1.1  hsuenaga 		cnt++;
   1859       1.1  hsuenaga 		reg = MVXPE_READ(sc, MVXPE_TQC);
   1860       1.1  hsuenaga 	} while (reg & MVXPE_TQC_EN_MASK);
   1861       1.1  hsuenaga 
   1862       1.1  hsuenaga 	/* Wait for all Tx FIFO is empty */
   1863       1.1  hsuenaga 	cnt = 0;
   1864       1.1  hsuenaga 	do {
   1865       1.1  hsuenaga 		if (cnt >= TX_FIFO_EMPTY_TIMEOUT) {
   1866       1.1  hsuenaga 			aprint_error_ifnet(ifp,
   1867       1.1  hsuenaga 			    "timeout for TX FIFO drained. ps0 0x%x\n", reg);
   1868       1.1  hsuenaga 			break;
   1869       1.1  hsuenaga 		}
   1870       1.1  hsuenaga 		cnt++;
   1871       1.1  hsuenaga 		reg = MVXPE_READ(sc, MVXPE_PS0);
   1872       1.1  hsuenaga 	} while (!(reg & MVXPE_PS0_TXFIFOEMP) && (reg & MVXPE_PS0_TXINPROG));
   1873       1.1  hsuenaga 
   1874       1.1  hsuenaga 	/* Reset the MAC Port Enable bit */
   1875       1.1  hsuenaga 	reg = MVXPE_READ(sc, MVXPE_PMACC0);
   1876       1.1  hsuenaga 	reg &= ~MVXPE_PMACC0_PORTEN;
   1877       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_PMACC0, reg);
   1878       1.1  hsuenaga 
   1879       1.1  hsuenaga 	/* Disable each of queue */
   1880       1.1  hsuenaga 	for (q = 0; q < MVXPE_QUEUE_SIZE; q++) {
   1881       1.1  hsuenaga 		struct mvxpe_rx_ring *rx = MVXPE_RX_RING(sc, q);
   1882       1.1  hsuenaga 
   1883       1.1  hsuenaga 		mvxpe_rx_lockq(sc, q);
   1884       1.1  hsuenaga 		mvxpe_tx_lockq(sc, q);
   1885       1.1  hsuenaga 
   1886       1.2  hsuenaga 		/* Disable Rx packet buffer refill request */
   1887       1.1  hsuenaga 		reg  = MVXPE_PRXDQTH_ODT(rx->rx_queue_th_received);
   1888       1.1  hsuenaga 		reg |= MVXPE_PRXDQTH_NODT(0);
   1889       1.1  hsuenaga 		MVXPE_WRITE(sc, MVXPE_PRXITTH(q), reg);
   1890       1.1  hsuenaga 
   1891       1.1  hsuenaga 		if (disable) {
   1892       1.1  hsuenaga 			/*
   1893  1.19.2.1  christos 			 * Hold Reset state of DMA Engine
   1894       1.1  hsuenaga 			 * (must write 0x0 to restart it)
   1895       1.1  hsuenaga 			 */
   1896       1.1  hsuenaga 			MVXPE_WRITE(sc, MVXPE_PRXINIT, 0x00000001);
   1897       1.1  hsuenaga 			MVXPE_WRITE(sc, MVXPE_PTXINIT, 0x00000001);
   1898       1.1  hsuenaga 			mvxpe_ring_flush_queue(sc, q);
   1899       1.1  hsuenaga 		}
   1900       1.1  hsuenaga 
   1901       1.1  hsuenaga 		mvxpe_tx_unlockq(sc, q);
   1902       1.1  hsuenaga 		mvxpe_rx_unlockq(sc, q);
   1903       1.1  hsuenaga 	}
   1904       1.1  hsuenaga 
   1905       1.1  hsuenaga 	ifp->if_flags &= ~(IFF_RUNNING | IFF_OACTIVE);
   1906       1.1  hsuenaga 
   1907       1.1  hsuenaga 	mvxpe_sc_unlock(sc);
   1908       1.1  hsuenaga }
   1909       1.1  hsuenaga 
   1910       1.1  hsuenaga STATIC void
   1911       1.1  hsuenaga mvxpe_watchdog(struct ifnet *ifp)
   1912       1.1  hsuenaga {
   1913       1.1  hsuenaga 	struct mvxpe_softc *sc = ifp->if_softc;
   1914       1.1  hsuenaga 	int q;
   1915       1.1  hsuenaga 
   1916       1.1  hsuenaga 	mvxpe_sc_lock(sc);
   1917       1.1  hsuenaga 
   1918       1.1  hsuenaga 	/*
   1919       1.1  hsuenaga 	 * Reclaim first as there is a possibility of losing Tx completion
   1920       1.1  hsuenaga 	 * interrupts.
   1921       1.1  hsuenaga 	 */
   1922       1.2  hsuenaga 	mvxpe_tx_complete(sc, 0xff);
   1923       1.1  hsuenaga 	for (q = 0; q < MVXPE_QUEUE_SIZE; q++) {
   1924       1.1  hsuenaga 		struct mvxpe_tx_ring *tx = MVXPE_TX_RING(sc, q);
   1925       1.1  hsuenaga 
   1926       1.1  hsuenaga 		if (tx->tx_dma != tx->tx_cpu) {
   1927       1.1  hsuenaga 			if (sc->sc_wdogsoft) {
   1928       1.1  hsuenaga 				/*
   1929       1.1  hsuenaga 				 * There is race condition between CPU and DMA
   1930       1.1  hsuenaga 				 * engine. When DMA engine encounters queue end,
   1931       1.1  hsuenaga 				 * it clears MVXPE_TQC_ENQ bit.
   1932       1.1  hsuenaga 				 * XXX: how about enhanced mode?
   1933       1.1  hsuenaga 				 */
   1934       1.1  hsuenaga 				MVXPE_WRITE(sc, MVXPE_TQC, MVXPE_TQC_ENQ(q));
   1935       1.1  hsuenaga 				ifp->if_timer = 5;
   1936       1.1  hsuenaga 				sc->sc_wdogsoft = 0;
   1937       1.1  hsuenaga 				MVXPE_EVCNT_INCR(&sc->sc_ev.ev_drv_wdogsoft);
   1938       1.1  hsuenaga 			} else {
   1939       1.1  hsuenaga 				aprint_error_ifnet(ifp, "watchdog timeout\n");
   1940  1.19.2.2    martin 				if_statinc(ifp, if_oerrors);
   1941       1.1  hsuenaga 				mvxpe_linkreset(sc);
   1942       1.1  hsuenaga 				mvxpe_sc_unlock(sc);
   1943       1.1  hsuenaga 
   1944       1.1  hsuenaga 				/* trigger reinitialize sequence */
   1945       1.1  hsuenaga 				mvxpe_stop(ifp, 1);
   1946       1.1  hsuenaga 				mvxpe_init(ifp);
   1947       1.1  hsuenaga 
   1948       1.1  hsuenaga 				mvxpe_sc_lock(sc);
   1949       1.1  hsuenaga 			}
   1950       1.1  hsuenaga 		}
   1951       1.1  hsuenaga 	}
   1952       1.1  hsuenaga 	mvxpe_sc_unlock(sc);
   1953       1.1  hsuenaga }
   1954       1.1  hsuenaga 
   1955       1.1  hsuenaga STATIC int
   1956       1.1  hsuenaga mvxpe_ifflags_cb(struct ethercom *ec)
   1957       1.1  hsuenaga {
   1958       1.1  hsuenaga 	struct ifnet *ifp = &ec->ec_if;
   1959       1.1  hsuenaga 	struct mvxpe_softc *sc = ifp->if_softc;
   1960  1.19.2.3    martin 	u_short change = ifp->if_flags ^ sc->sc_if_flags;
   1961       1.1  hsuenaga 
   1962       1.1  hsuenaga 	mvxpe_sc_lock(sc);
   1963       1.1  hsuenaga 
   1964       1.1  hsuenaga 	if (change != 0)
   1965       1.1  hsuenaga 		sc->sc_if_flags = ifp->if_flags;
   1966       1.1  hsuenaga 
   1967  1.19.2.1  christos 	if ((change & ~(IFF_CANTCHANGE | IFF_DEBUG)) != 0) {
   1968       1.1  hsuenaga 		mvxpe_sc_unlock(sc);
   1969       1.1  hsuenaga 		return ENETRESET;
   1970       1.1  hsuenaga 	}
   1971       1.1  hsuenaga 
   1972       1.1  hsuenaga 	if ((change & IFF_PROMISC) != 0)
   1973       1.1  hsuenaga 		mvxpe_filter_setup(sc);
   1974       1.1  hsuenaga 
   1975       1.1  hsuenaga 	if ((change & IFF_UP) != 0)
   1976       1.1  hsuenaga 		mvxpe_linkreset(sc);
   1977       1.1  hsuenaga 
   1978       1.1  hsuenaga 	mvxpe_sc_unlock(sc);
   1979       1.1  hsuenaga 	return 0;
   1980       1.1  hsuenaga }
   1981       1.1  hsuenaga 
   1982       1.1  hsuenaga STATIC int
   1983       1.1  hsuenaga mvxpe_mediachange(struct ifnet *ifp)
   1984       1.1  hsuenaga {
   1985       1.1  hsuenaga 	return ether_mediachange(ifp);
   1986       1.1  hsuenaga }
   1987       1.1  hsuenaga 
   1988       1.1  hsuenaga STATIC void
   1989       1.1  hsuenaga mvxpe_mediastatus(struct ifnet *ifp, struct ifmediareq *ifmr)
   1990       1.1  hsuenaga {
   1991       1.1  hsuenaga 	ether_mediastatus(ifp, ifmr);
   1992       1.1  hsuenaga }
   1993       1.1  hsuenaga 
   1994       1.1  hsuenaga /*
   1995       1.1  hsuenaga  * Link State Notify
   1996       1.1  hsuenaga  */
   1997       1.1  hsuenaga STATIC void mvxpe_linkupdate(struct mvxpe_softc *sc)
   1998       1.1  hsuenaga {
   1999       1.1  hsuenaga 	int linkup; /* bool */
   2000       1.1  hsuenaga 
   2001       1.1  hsuenaga 	KASSERT_SC_MTX(sc);
   2002       1.1  hsuenaga 
   2003       1.1  hsuenaga 	/* tell miibus */
   2004       1.1  hsuenaga 	mii_pollstat(&sc->sc_mii);
   2005       1.1  hsuenaga 
   2006       1.1  hsuenaga 	/* syslog */
   2007       1.1  hsuenaga 	linkup = MVXPE_IS_LINKUP(sc);
   2008       1.1  hsuenaga 	if (sc->sc_linkstate == linkup)
   2009       1.1  hsuenaga 		return;
   2010       1.1  hsuenaga 
   2011       1.2  hsuenaga #ifdef DEBUG
   2012       1.2  hsuenaga 	log(LOG_DEBUG,
   2013       1.2  hsuenaga 	    "%s: link %s\n", device_xname(sc->sc_dev), linkup ? "up" : "down");
   2014       1.2  hsuenaga #endif
   2015       1.1  hsuenaga 	if (linkup)
   2016       1.1  hsuenaga 		MVXPE_EVCNT_INCR(&sc->sc_ev.ev_link_up);
   2017       1.1  hsuenaga 	else
   2018       1.1  hsuenaga 		MVXPE_EVCNT_INCR(&sc->sc_ev.ev_link_down);
   2019       1.1  hsuenaga 
   2020       1.1  hsuenaga 	sc->sc_linkstate = linkup;
   2021       1.1  hsuenaga }
   2022       1.1  hsuenaga 
   2023       1.1  hsuenaga STATIC void
   2024       1.1  hsuenaga mvxpe_linkup(struct mvxpe_softc *sc)
   2025       1.1  hsuenaga {
   2026       1.1  hsuenaga 	uint32_t reg;
   2027       1.1  hsuenaga 
   2028       1.1  hsuenaga 	KASSERT_SC_MTX(sc);
   2029       1.1  hsuenaga 
   2030       1.1  hsuenaga 	/* set EEE parameters */
   2031       1.1  hsuenaga 	reg = MVXPE_READ(sc, MVXPE_LPIC1);
   2032       1.1  hsuenaga 	if (sc->sc_cf.cf_lpi)
   2033       1.1  hsuenaga 		reg |= MVXPE_LPIC1_LPIRE;
   2034       1.1  hsuenaga 	else
   2035       1.1  hsuenaga 		reg &= ~MVXPE_LPIC1_LPIRE;
   2036       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_LPIC1, reg);
   2037       1.1  hsuenaga 
   2038       1.1  hsuenaga 	/* set auto-negotiation parameters */
   2039       1.1  hsuenaga 	reg  = MVXPE_READ(sc, MVXPE_PANC);
   2040       1.1  hsuenaga 	if (sc->sc_cf.cf_fc) {
   2041       1.1  hsuenaga 		/* flow control negotiation */
   2042       1.1  hsuenaga 		reg |= MVXPE_PANC_PAUSEADV;
   2043       1.1  hsuenaga 		reg |= MVXPE_PANC_ANFCEN;
   2044       1.1  hsuenaga 	}
   2045       1.1  hsuenaga 	else {
   2046       1.1  hsuenaga 		reg &= ~MVXPE_PANC_PAUSEADV;
   2047       1.1  hsuenaga 		reg &= ~MVXPE_PANC_ANFCEN;
   2048       1.1  hsuenaga 	}
   2049       1.1  hsuenaga 	reg &= ~MVXPE_PANC_FORCELINKFAIL;
   2050       1.1  hsuenaga 	reg &= ~MVXPE_PANC_FORCELINKPASS;
   2051       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_PANC, reg);
   2052       1.1  hsuenaga 
   2053       1.1  hsuenaga 	mii_mediachg(&sc->sc_mii);
   2054       1.1  hsuenaga }
   2055       1.1  hsuenaga 
   2056       1.1  hsuenaga STATIC void
   2057       1.1  hsuenaga mvxpe_linkdown(struct mvxpe_softc *sc)
   2058       1.1  hsuenaga {
   2059       1.1  hsuenaga 	struct mii_softc *mii;
   2060       1.1  hsuenaga 	uint32_t reg;
   2061       1.1  hsuenaga 
   2062       1.1  hsuenaga 	KASSERT_SC_MTX(sc);
   2063       1.1  hsuenaga 	return;
   2064       1.1  hsuenaga 
   2065       1.1  hsuenaga 	reg  = MVXPE_READ(sc, MVXPE_PANC);
   2066       1.1  hsuenaga 	reg |= MVXPE_PANC_FORCELINKFAIL;
   2067       1.1  hsuenaga 	reg &= MVXPE_PANC_FORCELINKPASS;
   2068       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_PANC, reg);
   2069       1.1  hsuenaga 
   2070       1.1  hsuenaga 	mii = LIST_FIRST(&sc->sc_mii.mii_phys);
   2071       1.1  hsuenaga 	if (mii)
   2072       1.1  hsuenaga 		mii_phy_down(mii);
   2073       1.1  hsuenaga }
   2074       1.1  hsuenaga 
   2075       1.1  hsuenaga STATIC void
   2076       1.1  hsuenaga mvxpe_linkreset(struct mvxpe_softc *sc)
   2077       1.1  hsuenaga {
   2078       1.1  hsuenaga 	struct mii_softc *mii;
   2079       1.1  hsuenaga 
   2080       1.1  hsuenaga 	KASSERT_SC_MTX(sc);
   2081       1.1  hsuenaga 
   2082       1.1  hsuenaga 	/* force reset PHY first */
   2083       1.1  hsuenaga 	mii = LIST_FIRST(&sc->sc_mii.mii_phys);
   2084       1.1  hsuenaga 	if (mii)
   2085       1.1  hsuenaga 		mii_phy_reset(mii);
   2086       1.1  hsuenaga 
   2087       1.1  hsuenaga 	/* reinit MAC and PHY */
   2088       1.1  hsuenaga 	mvxpe_linkdown(sc);
   2089       1.1  hsuenaga 	if ((sc->sc_if_flags & IFF_UP) != 0)
   2090       1.1  hsuenaga 		mvxpe_linkup(sc);
   2091       1.1  hsuenaga }
   2092       1.1  hsuenaga 
   2093       1.1  hsuenaga /*
   2094       1.1  hsuenaga  * Tx Subroutines
   2095       1.1  hsuenaga  */
   2096       1.1  hsuenaga STATIC int
   2097       1.1  hsuenaga mvxpe_tx_queue_select(struct mvxpe_softc *sc, struct mbuf *m)
   2098       1.1  hsuenaga {
   2099       1.1  hsuenaga 	int q = 0;
   2100       1.1  hsuenaga 
   2101       1.1  hsuenaga 	/* XXX: get attribute from ALTQ framework? */
   2102       1.1  hsuenaga 	mvxpe_tx_lockq(sc, q);
   2103       1.1  hsuenaga 	return 0;
   2104       1.1  hsuenaga }
   2105       1.1  hsuenaga 
   2106       1.1  hsuenaga STATIC int
   2107       1.1  hsuenaga mvxpe_tx_queue(struct mvxpe_softc *sc, struct mbuf *m, int q)
   2108       1.1  hsuenaga {
   2109       1.1  hsuenaga 	struct ifnet *ifp = &sc->sc_ethercom.ec_if;
   2110       1.1  hsuenaga 	bus_dma_segment_t *txsegs;
   2111       1.1  hsuenaga 	struct mvxpe_tx_ring *tx = MVXPE_TX_RING(sc, q);
   2112       1.1  hsuenaga 	struct mvxpe_tx_desc *t = NULL;
   2113       1.1  hsuenaga 	uint32_t ptxsu;
   2114       1.1  hsuenaga 	int txnsegs;
   2115       1.1  hsuenaga 	int start, used;
   2116       1.1  hsuenaga 	int i;
   2117       1.1  hsuenaga 
   2118       1.2  hsuenaga 	KASSERT_TX_MTX(sc, q);
   2119       1.2  hsuenaga 	KASSERT(tx->tx_used >= 0);
   2120       1.2  hsuenaga 	KASSERT(tx->tx_used <= tx->tx_queue_len);
   2121       1.1  hsuenaga 
   2122       1.1  hsuenaga 	/* load mbuf using dmamap of 1st descriptor */
   2123       1.1  hsuenaga 	if (bus_dmamap_load_mbuf(sc->sc_dmat,
   2124       1.1  hsuenaga 	    MVXPE_TX_MAP(sc, q, tx->tx_cpu), m, BUS_DMA_NOWAIT) != 0) {
   2125       1.1  hsuenaga 		m_freem(m);
   2126       1.1  hsuenaga 		return ENOBUFS;
   2127       1.1  hsuenaga 	}
   2128       1.1  hsuenaga 	txsegs = MVXPE_TX_MAP(sc, q, tx->tx_cpu)->dm_segs;
   2129       1.1  hsuenaga 	txnsegs = MVXPE_TX_MAP(sc, q, tx->tx_cpu)->dm_nsegs;
   2130       1.2  hsuenaga 	if (txnsegs <= 0 || (txnsegs + tx->tx_used) > tx->tx_queue_len) {
   2131       1.1  hsuenaga 		/* we have no enough descriptors or mbuf is broken */
   2132       1.1  hsuenaga 		bus_dmamap_unload(sc->sc_dmat, MVXPE_TX_MAP(sc, q, tx->tx_cpu));
   2133       1.1  hsuenaga 		m_freem(m);
   2134       1.1  hsuenaga 		return ENOBUFS;
   2135       1.1  hsuenaga 	}
   2136       1.1  hsuenaga 	DPRINTSC(sc, 2, "send packet %p descriptor %d\n", m, tx->tx_cpu);
   2137       1.1  hsuenaga 	KASSERT(MVXPE_TX_MBUF(sc, q, tx->tx_cpu) == NULL);
   2138       1.1  hsuenaga 
   2139       1.1  hsuenaga 	/* remember mbuf using 1st descriptor */
   2140       1.1  hsuenaga 	MVXPE_TX_MBUF(sc, q, tx->tx_cpu) = m;
   2141       1.1  hsuenaga 	bus_dmamap_sync(sc->sc_dmat,
   2142       1.1  hsuenaga 	    MVXPE_TX_MAP(sc, q, tx->tx_cpu), 0, m->m_pkthdr.len,
   2143      1.14  kiyohara 	    BUS_DMASYNC_PREWRITE);
   2144       1.1  hsuenaga 
   2145       1.1  hsuenaga 	/* load to tx descriptors */
   2146       1.1  hsuenaga 	start = tx->tx_cpu;
   2147       1.1  hsuenaga 	used = 0;
   2148       1.1  hsuenaga 	for (i = 0; i < txnsegs; i++) {
   2149       1.1  hsuenaga 		if (__predict_false(txsegs[i].ds_len == 0))
   2150       1.1  hsuenaga 			continue;
   2151       1.1  hsuenaga 		t = MVXPE_TX_DESC(sc, q, tx->tx_cpu);
   2152       1.1  hsuenaga 		t->command = 0;
   2153       1.1  hsuenaga 		t->l4ichk = 0;
   2154       1.1  hsuenaga 		t->flags = 0;
   2155       1.1  hsuenaga 		if (i == 0) {
   2156       1.1  hsuenaga 			/* 1st descriptor */
   2157       1.1  hsuenaga 			t->command |= MVXPE_TX_CMD_W_PACKET_OFFSET(0);
   2158       1.1  hsuenaga 			t->command |= MVXPE_TX_CMD_PADDING;
   2159       1.1  hsuenaga 			t->command |= MVXPE_TX_CMD_F;
   2160       1.1  hsuenaga 			mvxpe_tx_set_csumflag(ifp, t, m);
   2161       1.1  hsuenaga 		}
   2162       1.1  hsuenaga 		t->bufptr = txsegs[i].ds_addr;
   2163       1.1  hsuenaga 		t->bytecnt = txsegs[i].ds_len;
   2164       1.1  hsuenaga 		tx->tx_cpu = tx_counter_adv(tx->tx_cpu, 1);
   2165       1.2  hsuenaga 		tx->tx_used++;
   2166       1.1  hsuenaga 		used++;
   2167       1.1  hsuenaga 	}
   2168       1.1  hsuenaga 	/* t is last descriptor here */
   2169       1.1  hsuenaga 	KASSERT(t != NULL);
   2170       1.1  hsuenaga 	t->command |= MVXPE_TX_CMD_L;
   2171       1.1  hsuenaga 
   2172       1.1  hsuenaga 	DPRINTSC(sc, 2, "queue %d, %d descriptors used\n", q, used);
   2173       1.1  hsuenaga #ifdef MVXPE_DEBUG
   2174       1.1  hsuenaga 	if (mvxpe_debug > 2)
   2175       1.1  hsuenaga 		for (i = start; i <= tx->tx_cpu; i++) {
   2176       1.1  hsuenaga 			t = MVXPE_TX_DESC(sc, q, i);
   2177       1.1  hsuenaga 			mvxpe_dump_txdesc(t, i);
   2178       1.1  hsuenaga 		}
   2179       1.1  hsuenaga #endif
   2180       1.1  hsuenaga 	mvxpe_ring_sync_tx(sc, q, start, used,
   2181  1.19.2.1  christos 	    BUS_DMASYNC_PREREAD | BUS_DMASYNC_PREWRITE);
   2182       1.1  hsuenaga 
   2183       1.1  hsuenaga 	while (used > 255) {
   2184       1.1  hsuenaga 		ptxsu = MVXPE_PTXSU_NOWD(255);
   2185       1.1  hsuenaga 		MVXPE_WRITE(sc, MVXPE_PTXSU(q), ptxsu);
   2186       1.1  hsuenaga 		used -= 255;
   2187       1.1  hsuenaga 	}
   2188       1.1  hsuenaga 	if (used > 0) {
   2189       1.1  hsuenaga 		ptxsu = MVXPE_PTXSU_NOWD(used);
   2190       1.1  hsuenaga 		MVXPE_WRITE(sc, MVXPE_PTXSU(q), ptxsu);
   2191       1.1  hsuenaga 	}
   2192       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_TQC, MVXPE_TQC_ENQ(q));
   2193       1.1  hsuenaga 
   2194       1.1  hsuenaga 	DPRINTSC(sc, 2,
   2195       1.1  hsuenaga 	    "PTXDQA: queue %d, %#x\n", q, MVXPE_READ(sc, MVXPE_PTXDQA(q)));
   2196       1.1  hsuenaga 	DPRINTSC(sc, 2,
   2197       1.1  hsuenaga 	    "PTXDQS: queue %d, %#x\n", q, MVXPE_READ(sc, MVXPE_PTXDQS(q)));
   2198       1.1  hsuenaga 	DPRINTSC(sc, 2,
   2199       1.1  hsuenaga 	    "PTXS: queue %d, %#x\n", q, MVXPE_READ(sc, MVXPE_PTXS(q)));
   2200       1.1  hsuenaga 	DPRINTSC(sc, 2,
   2201       1.1  hsuenaga 	    "PTXDI: queue %d, %d\n", q, MVXPE_READ(sc, MVXPE_PTXDI(q)));
   2202       1.1  hsuenaga 	DPRINTSC(sc, 2, "TQC: %#x\n", MVXPE_READ(sc, MVXPE_TQC));
   2203       1.1  hsuenaga 	DPRINTIFNET(ifp, 2,
   2204       1.2  hsuenaga 	    "Tx: tx_cpu = %d, tx_dma = %d, tx_used = %d\n",
   2205       1.2  hsuenaga 	    tx->tx_cpu, tx->tx_dma, tx->tx_used);
   2206       1.1  hsuenaga 	return 0;
   2207       1.1  hsuenaga }
   2208       1.1  hsuenaga 
   2209       1.1  hsuenaga STATIC void
   2210       1.1  hsuenaga mvxpe_tx_set_csumflag(struct ifnet *ifp,
   2211       1.1  hsuenaga     struct mvxpe_tx_desc *t, struct mbuf *m)
   2212       1.1  hsuenaga {
   2213       1.2  hsuenaga 	struct ether_header *eh;
   2214       1.1  hsuenaga 	int csum_flags;
   2215       1.1  hsuenaga 	uint32_t iphl = 0, ipoff = 0;
   2216       1.1  hsuenaga 
   2217  1.19.2.1  christos 	csum_flags = ifp->if_csum_flags_tx & m->m_pkthdr.csum_flags;
   2218       1.1  hsuenaga 
   2219       1.2  hsuenaga 	eh = mtod(m, struct ether_header *);
   2220       1.2  hsuenaga 	switch (htons(eh->ether_type)) {
   2221       1.2  hsuenaga 	case ETHERTYPE_IP:
   2222       1.2  hsuenaga 	case ETHERTYPE_IPV6:
   2223       1.2  hsuenaga 		ipoff = ETHER_HDR_LEN;
   2224       1.2  hsuenaga 		break;
   2225       1.2  hsuenaga 	case ETHERTYPE_VLAN:
   2226       1.2  hsuenaga 		ipoff = ETHER_HDR_LEN + ETHER_VLAN_ENCAP_LEN;
   2227       1.2  hsuenaga 		break;
   2228       1.2  hsuenaga 	}
   2229       1.2  hsuenaga 
   2230  1.19.2.1  christos 	if (csum_flags & (M_CSUM_IPv4 | M_CSUM_TCPv4 | M_CSUM_UDPv4)) {
   2231       1.1  hsuenaga 		iphl = M_CSUM_DATA_IPv4_IPHL(m->m_pkthdr.csum_data);
   2232       1.2  hsuenaga 		t->command |= MVXPE_TX_CMD_L3_IP4;
   2233       1.1  hsuenaga 	}
   2234  1.19.2.1  christos 	else if (csum_flags & (M_CSUM_TCPv6 | M_CSUM_UDPv6)) {
   2235      1.18      maxv 		iphl = M_CSUM_DATA_IPv6_IPHL(m->m_pkthdr.csum_data);
   2236       1.2  hsuenaga 		t->command |= MVXPE_TX_CMD_L3_IP6;
   2237       1.1  hsuenaga 	}
   2238       1.1  hsuenaga 	else {
   2239       1.1  hsuenaga 		t->command |= MVXPE_TX_CMD_L4_CHECKSUM_NONE;
   2240       1.1  hsuenaga 		return;
   2241       1.1  hsuenaga 	}
   2242       1.1  hsuenaga 
   2243       1.2  hsuenaga 
   2244       1.1  hsuenaga 	/* L3 */
   2245       1.1  hsuenaga 	if (csum_flags & M_CSUM_IPv4) {
   2246       1.1  hsuenaga 		t->command |= MVXPE_TX_CMD_IP4_CHECKSUM;
   2247       1.1  hsuenaga 	}
   2248       1.1  hsuenaga 
   2249       1.1  hsuenaga 	/* L4 */
   2250  1.19.2.1  christos 	if ((csum_flags &
   2251  1.19.2.1  christos 	    (M_CSUM_TCPv4 | M_CSUM_UDPv4 | M_CSUM_TCPv6 | M_CSUM_UDPv6)) == 0) {
   2252       1.2  hsuenaga 		t->command |= MVXPE_TX_CMD_L4_CHECKSUM_NONE;
   2253       1.2  hsuenaga 	}
   2254       1.2  hsuenaga 	else if (csum_flags & M_CSUM_TCPv4) {
   2255       1.2  hsuenaga 		t->command |= MVXPE_TX_CMD_L4_CHECKSUM_NOFRAG;
   2256       1.1  hsuenaga 		t->command |= MVXPE_TX_CMD_L4_TCP;
   2257       1.1  hsuenaga 	}
   2258       1.1  hsuenaga 	else if (csum_flags & M_CSUM_UDPv4) {
   2259       1.2  hsuenaga 		t->command |= MVXPE_TX_CMD_L4_CHECKSUM_NOFRAG;
   2260       1.1  hsuenaga 		t->command |= MVXPE_TX_CMD_L4_UDP;
   2261       1.1  hsuenaga 	}
   2262       1.1  hsuenaga 	else if (csum_flags & M_CSUM_TCPv6) {
   2263       1.2  hsuenaga 		t->command |= MVXPE_TX_CMD_L4_CHECKSUM_NOFRAG;
   2264       1.1  hsuenaga 		t->command |= MVXPE_TX_CMD_L4_TCP;
   2265       1.1  hsuenaga 	}
   2266       1.1  hsuenaga 	else if (csum_flags & M_CSUM_UDPv6) {
   2267       1.2  hsuenaga 		t->command |= MVXPE_TX_CMD_L4_CHECKSUM_NOFRAG;
   2268       1.1  hsuenaga 		t->command |= MVXPE_TX_CMD_L4_UDP;
   2269       1.1  hsuenaga 	}
   2270       1.1  hsuenaga 
   2271       1.1  hsuenaga 	t->l4ichk = 0;
   2272       1.2  hsuenaga 	t->command |= MVXPE_TX_CMD_IP_HEADER_LEN(iphl >> 2);
   2273       1.2  hsuenaga 	t->command |= MVXPE_TX_CMD_L3_OFFSET(ipoff);
   2274       1.1  hsuenaga }
   2275       1.1  hsuenaga 
   2276       1.1  hsuenaga STATIC void
   2277       1.2  hsuenaga mvxpe_tx_complete(struct mvxpe_softc *sc, uint32_t queues)
   2278       1.1  hsuenaga {
   2279       1.1  hsuenaga 	struct ifnet *ifp = &sc->sc_ethercom.ec_if;
   2280       1.1  hsuenaga 	int q;
   2281       1.1  hsuenaga 
   2282       1.1  hsuenaga 	DPRINTSC(sc, 2, "tx completed.\n");
   2283       1.1  hsuenaga 
   2284       1.1  hsuenaga 	KASSERT_SC_MTX(sc);
   2285       1.1  hsuenaga 
   2286       1.1  hsuenaga 	for (q = 0; q < MVXPE_QUEUE_SIZE; q++) {
   2287       1.2  hsuenaga 		if (!MVXPE_IS_QUEUE_BUSY(queues, q))
   2288       1.2  hsuenaga 			continue;
   2289       1.1  hsuenaga 		mvxpe_tx_lockq(sc, q);
   2290       1.2  hsuenaga 		mvxpe_tx_queue_complete(sc, q);
   2291       1.1  hsuenaga 		mvxpe_tx_unlockq(sc, q);
   2292       1.1  hsuenaga 	}
   2293       1.1  hsuenaga 	KASSERT(sc->sc_tx_pending >= 0);
   2294       1.1  hsuenaga 	if (sc->sc_tx_pending == 0)
   2295       1.1  hsuenaga 		ifp->if_timer = 0;
   2296       1.1  hsuenaga }
   2297       1.1  hsuenaga 
   2298       1.1  hsuenaga STATIC void
   2299       1.2  hsuenaga mvxpe_tx_queue_complete(struct mvxpe_softc *sc, int q)
   2300       1.1  hsuenaga {
   2301       1.1  hsuenaga 	struct mvxpe_tx_ring *tx = MVXPE_TX_RING(sc, q);
   2302       1.1  hsuenaga 	struct mvxpe_tx_desc *t;
   2303      1.14  kiyohara 	struct mbuf *m;
   2304       1.1  hsuenaga 	uint32_t ptxs, ptxsu, ndesc;
   2305       1.1  hsuenaga 	int i;
   2306       1.1  hsuenaga 
   2307       1.1  hsuenaga 	KASSERT_TX_MTX(sc, q);
   2308       1.1  hsuenaga 
   2309       1.1  hsuenaga 	ptxs = MVXPE_READ(sc, MVXPE_PTXS(q));
   2310       1.1  hsuenaga 	ndesc = MVXPE_PTXS_GET_TBC(ptxs);
   2311       1.1  hsuenaga 	if (ndesc == 0)
   2312       1.1  hsuenaga 		return;
   2313       1.1  hsuenaga 
   2314       1.1  hsuenaga 	DPRINTSC(sc, 2,
   2315       1.1  hsuenaga 	    "tx complete queue %d, %d descriptors.\n", q, ndesc);
   2316       1.1  hsuenaga 
   2317       1.1  hsuenaga 	mvxpe_ring_sync_tx(sc, q, tx->tx_dma, ndesc,
   2318  1.19.2.1  christos 	    BUS_DMASYNC_POSTREAD | BUS_DMASYNC_POSTWRITE);
   2319       1.1  hsuenaga 
   2320       1.1  hsuenaga 	for (i = 0; i < ndesc; i++) {
   2321       1.1  hsuenaga 		int error = 0;
   2322       1.1  hsuenaga 
   2323       1.1  hsuenaga 		t = MVXPE_TX_DESC(sc, q, tx->tx_dma);
   2324       1.1  hsuenaga 		if (t->flags & MVXPE_TX_F_ES) {
   2325       1.1  hsuenaga 			DPRINTSC(sc, 1,
   2326       1.1  hsuenaga 			    "tx error queue %d desc %d\n",
   2327       1.1  hsuenaga 			    q, tx->tx_dma);
   2328       1.1  hsuenaga 			switch (t->flags & MVXPE_TX_F_EC_MASK) {
   2329       1.1  hsuenaga 			case MVXPE_TX_F_EC_LC:
   2330       1.1  hsuenaga 				MVXPE_EVCNT_INCR(&sc->sc_ev.ev_txd_lc);
   2331       1.4    hikaru 				break;
   2332       1.1  hsuenaga 			case MVXPE_TX_F_EC_UR:
   2333       1.1  hsuenaga 				MVXPE_EVCNT_INCR(&sc->sc_ev.ev_txd_ur);
   2334       1.4    hikaru 				break;
   2335       1.1  hsuenaga 			case MVXPE_TX_F_EC_RL:
   2336       1.1  hsuenaga 				MVXPE_EVCNT_INCR(&sc->sc_ev.ev_txd_rl);
   2337       1.4    hikaru 				break;
   2338       1.1  hsuenaga 			default:
   2339       1.1  hsuenaga 				MVXPE_EVCNT_INCR(&sc->sc_ev.ev_txd_oth);
   2340       1.4    hikaru 				break;
   2341       1.1  hsuenaga 			}
   2342       1.1  hsuenaga 			error = 1;
   2343       1.1  hsuenaga 		}
   2344      1.14  kiyohara 		m = MVXPE_TX_MBUF(sc, q, tx->tx_dma);
   2345      1.14  kiyohara 		if (m != NULL) {
   2346       1.1  hsuenaga 			KASSERT((t->command & MVXPE_TX_CMD_F) != 0);
   2347      1.14  kiyohara 			MVXPE_TX_MBUF(sc, q, tx->tx_dma) = NULL;
   2348      1.14  kiyohara 			bus_dmamap_sync(sc->sc_dmat,
   2349      1.14  kiyohara 			    MVXPE_TX_MAP(sc, q, tx->tx_dma), 0, m->m_pkthdr.len,
   2350      1.14  kiyohara 			    BUS_DMASYNC_POSTWRITE);
   2351       1.1  hsuenaga 			bus_dmamap_unload(sc->sc_dmat,
   2352       1.1  hsuenaga 			    MVXPE_TX_MAP(sc, q, tx->tx_dma));
   2353      1.14  kiyohara 			m_freem(m);
   2354       1.1  hsuenaga 			sc->sc_tx_pending--;
   2355       1.1  hsuenaga 		}
   2356       1.1  hsuenaga 		else
   2357       1.1  hsuenaga 			KASSERT((t->flags & MVXPE_TX_CMD_F) == 0);
   2358       1.1  hsuenaga 		tx->tx_dma = tx_counter_adv(tx->tx_dma, 1);
   2359       1.2  hsuenaga 		tx->tx_used--;
   2360       1.1  hsuenaga 		if (error)
   2361       1.1  hsuenaga 			MVXPE_EVCNT_INCR(&sc->sc_ev.ev_drv_txqe[q]);
   2362       1.1  hsuenaga 		else
   2363       1.1  hsuenaga 			MVXPE_EVCNT_INCR(&sc->sc_ev.ev_drv_txq[q]);
   2364       1.1  hsuenaga 	}
   2365       1.2  hsuenaga 	KASSERT(tx->tx_used >= 0);
   2366       1.2  hsuenaga 	KASSERT(tx->tx_used <= tx->tx_queue_len);
   2367       1.1  hsuenaga 	while (ndesc > 255) {
   2368       1.1  hsuenaga 		ptxsu = MVXPE_PTXSU_NORB(255);
   2369       1.1  hsuenaga 		MVXPE_WRITE(sc, MVXPE_PTXSU(q), ptxsu);
   2370       1.1  hsuenaga 		ndesc -= 255;
   2371       1.1  hsuenaga 	}
   2372       1.1  hsuenaga 	if (ndesc > 0) {
   2373       1.1  hsuenaga 		ptxsu = MVXPE_PTXSU_NORB(ndesc);
   2374       1.1  hsuenaga 		MVXPE_WRITE(sc, MVXPE_PTXSU(q), ptxsu);
   2375       1.1  hsuenaga 	}
   2376       1.1  hsuenaga 	DPRINTSC(sc, 2,
   2377       1.2  hsuenaga 	    "Tx complete q %d, tx_cpu = %d, tx_dma = %d, tx_used = %d\n",
   2378       1.2  hsuenaga 	    q, tx->tx_cpu, tx->tx_dma, tx->tx_used);
   2379       1.1  hsuenaga }
   2380       1.1  hsuenaga 
   2381       1.1  hsuenaga /*
   2382       1.1  hsuenaga  * Rx Subroutines
   2383       1.1  hsuenaga  */
   2384       1.1  hsuenaga STATIC void
   2385       1.2  hsuenaga mvxpe_rx(struct mvxpe_softc *sc, uint32_t queues)
   2386       1.1  hsuenaga {
   2387       1.1  hsuenaga 	int q, npkt;
   2388       1.1  hsuenaga 
   2389       1.1  hsuenaga 	KASSERT_SC_MTX(sc);
   2390       1.1  hsuenaga 
   2391       1.2  hsuenaga 	while ( (npkt = mvxpe_rx_queue_select(sc, queues, &q))) {
   2392       1.2  hsuenaga 		/* mutex is held by rx_queue_select */
   2393       1.1  hsuenaga 		mvxpe_rx_queue(sc, q, npkt);
   2394       1.1  hsuenaga 		mvxpe_rx_unlockq(sc, q);
   2395       1.1  hsuenaga 	}
   2396       1.1  hsuenaga }
   2397       1.1  hsuenaga 
   2398       1.1  hsuenaga STATIC void
   2399       1.1  hsuenaga mvxpe_rx_queue(struct mvxpe_softc *sc, int q, int npkt)
   2400       1.1  hsuenaga {
   2401       1.1  hsuenaga 	struct ifnet *ifp = &sc->sc_ethercom.ec_if;
   2402       1.1  hsuenaga 	struct mvxpe_rx_ring *rx = MVXPE_RX_RING(sc, q);
   2403       1.1  hsuenaga 	struct mvxpe_rx_desc *r;
   2404       1.2  hsuenaga 	struct mvxpbm_chunk *chunk;
   2405       1.1  hsuenaga 	struct mbuf *m;
   2406       1.1  hsuenaga 	uint32_t prxsu;
   2407       1.1  hsuenaga 	int error = 0;
   2408       1.1  hsuenaga 	int i;
   2409       1.1  hsuenaga 
   2410       1.1  hsuenaga 	KASSERT_RX_MTX(sc, q);
   2411       1.1  hsuenaga 
   2412       1.1  hsuenaga 	mvxpe_ring_sync_rx(sc, q, rx->rx_dma, npkt,
   2413  1.19.2.1  christos 	    BUS_DMASYNC_POSTREAD | BUS_DMASYNC_POSTWRITE);
   2414       1.1  hsuenaga 
   2415       1.1  hsuenaga 	for (i = 0; i < npkt; i++) {
   2416       1.1  hsuenaga 		/* get descriptor and packet */
   2417       1.1  hsuenaga 		chunk = MVXPE_RX_PKTBUF(sc, q, rx->rx_dma);
   2418       1.1  hsuenaga 		MVXPE_RX_PKTBUF(sc, q, rx->rx_dma) = NULL;
   2419       1.1  hsuenaga 		r = MVXPE_RX_DESC(sc, q, rx->rx_dma);
   2420       1.2  hsuenaga 		mvxpbm_dmamap_sync(chunk, r->bytecnt, BUS_DMASYNC_POSTREAD);
   2421       1.1  hsuenaga 
   2422       1.1  hsuenaga 		/* check errors */
   2423       1.1  hsuenaga 		if (r->status & MVXPE_RX_ES) {
   2424       1.1  hsuenaga 			switch (r->status & MVXPE_RX_EC_MASK) {
   2425       1.1  hsuenaga 			case MVXPE_RX_EC_CE:
   2426       1.1  hsuenaga 				DPRINTIFNET(ifp, 1, "CRC error\n");
   2427       1.1  hsuenaga 				MVXPE_EVCNT_INCR(&sc->sc_ev.ev_rxd_ce);
   2428       1.1  hsuenaga 				break;
   2429       1.1  hsuenaga 			case MVXPE_RX_EC_OR:
   2430       1.1  hsuenaga 				DPRINTIFNET(ifp, 1, "Rx FIFO overrun\n");
   2431       1.1  hsuenaga 				MVXPE_EVCNT_INCR(&sc->sc_ev.ev_rxd_or);
   2432       1.1  hsuenaga 				break;
   2433       1.1  hsuenaga 			case MVXPE_RX_EC_MF:
   2434       1.1  hsuenaga 				DPRINTIFNET(ifp, 1, "Rx too large frame\n");
   2435       1.1  hsuenaga 				MVXPE_EVCNT_INCR(&sc->sc_ev.ev_rxd_mf);
   2436       1.1  hsuenaga 				break;
   2437       1.1  hsuenaga 			case MVXPE_RX_EC_RE:
   2438       1.1  hsuenaga 				DPRINTIFNET(ifp, 1, "Rx resource error\n");
   2439       1.1  hsuenaga 				MVXPE_EVCNT_INCR(&sc->sc_ev.ev_rxd_re);
   2440       1.1  hsuenaga 				break;
   2441       1.1  hsuenaga 			}
   2442       1.1  hsuenaga 			error = 1;
   2443       1.1  hsuenaga 			goto rx_done;
   2444       1.1  hsuenaga 		}
   2445       1.1  hsuenaga 		if (!(r->status & MVXPE_RX_F) || !(r->status & MVXPE_RX_L)) {
   2446       1.1  hsuenaga 			DPRINTIFNET(ifp, 1, "not support scatter buf\n");
   2447       1.1  hsuenaga 			MVXPE_EVCNT_INCR(&sc->sc_ev.ev_rxd_scat);
   2448       1.1  hsuenaga 			error = 1;
   2449       1.1  hsuenaga 			goto rx_done;
   2450       1.1  hsuenaga 		}
   2451       1.1  hsuenaga 
   2452       1.1  hsuenaga 		if (chunk == NULL) {
   2453       1.1  hsuenaga 			device_printf(sc->sc_dev,
   2454       1.1  hsuenaga 			    "got rx interrupt, but no chunk\n");
   2455       1.1  hsuenaga 			error = 1;
   2456       1.1  hsuenaga 			goto rx_done;
   2457       1.1  hsuenaga 		}
   2458       1.1  hsuenaga 
   2459       1.1  hsuenaga 		/* extract packet buffer */
   2460       1.2  hsuenaga 		if (mvxpbm_init_mbuf_hdr(chunk) != 0) {
   2461       1.2  hsuenaga 			error = 1;
   2462       1.2  hsuenaga 			goto rx_done;
   2463       1.2  hsuenaga 		}
   2464       1.1  hsuenaga 		m = chunk->m;
   2465      1.13     ozaki 		m_set_rcvif(m, ifp);
   2466       1.1  hsuenaga 		m->m_pkthdr.len = m->m_len = r->bytecnt - ETHER_CRC_LEN;
   2467       1.1  hsuenaga 		m_adj(m, MVXPE_HWHEADER_SIZE); /* strip MH */
   2468       1.1  hsuenaga 		mvxpe_rx_set_csumflag(ifp, r, m);
   2469       1.3     ozaki 		if_percpuq_enqueue(ifp->if_percpuq, m);
   2470       1.1  hsuenaga 		chunk = NULL; /* the BM chunk goes to networking stack now */
   2471       1.1  hsuenaga rx_done:
   2472       1.1  hsuenaga 		if (chunk) {
   2473       1.1  hsuenaga 			/* rx error. just return the chunk to BM. */
   2474       1.2  hsuenaga 			mvxpbm_free_chunk(chunk);
   2475       1.1  hsuenaga 		}
   2476       1.1  hsuenaga 		if (error)
   2477       1.1  hsuenaga 			MVXPE_EVCNT_INCR(&sc->sc_ev.ev_drv_rxqe[q]);
   2478       1.1  hsuenaga 		else
   2479       1.1  hsuenaga 			MVXPE_EVCNT_INCR(&sc->sc_ev.ev_drv_rxq[q]);
   2480       1.1  hsuenaga 		rx->rx_dma = rx_counter_adv(rx->rx_dma, 1);
   2481       1.1  hsuenaga 	}
   2482       1.1  hsuenaga 	/* DMA status update */
   2483       1.1  hsuenaga 	DPRINTSC(sc, 2, "%d packets received from queue %d\n", npkt, q);
   2484       1.1  hsuenaga 	while (npkt > 255) {
   2485       1.1  hsuenaga 		prxsu = MVXPE_PRXSU_NOOFPROCESSEDDESCRIPTORS(255);
   2486       1.1  hsuenaga 		MVXPE_WRITE(sc, MVXPE_PRXSU(q), prxsu);
   2487       1.1  hsuenaga 		npkt -= 255;
   2488       1.1  hsuenaga 	}
   2489       1.1  hsuenaga 	if (npkt > 0) {
   2490       1.1  hsuenaga 		prxsu = MVXPE_PRXSU_NOOFPROCESSEDDESCRIPTORS(npkt);
   2491       1.1  hsuenaga 		MVXPE_WRITE(sc, MVXPE_PRXSU(q), prxsu);
   2492       1.1  hsuenaga 	}
   2493       1.1  hsuenaga 
   2494       1.1  hsuenaga 	DPRINTSC(sc, 2,
   2495       1.1  hsuenaga 	    "PRXDQA: queue %d, %#x\n", q, MVXPE_READ(sc, MVXPE_PRXDQA(q)));
   2496       1.1  hsuenaga 	DPRINTSC(sc, 2,
   2497       1.1  hsuenaga 	    "PRXDQS: queue %d, %#x\n", q, MVXPE_READ(sc, MVXPE_PRXDQS(q)));
   2498       1.1  hsuenaga 	DPRINTSC(sc, 2,
   2499       1.1  hsuenaga 	    "PRXS: queue %d, %#x\n", q, MVXPE_READ(sc, MVXPE_PRXS(q)));
   2500       1.1  hsuenaga 	DPRINTSC(sc, 2,
   2501       1.1  hsuenaga 	    "PRXDI: queue %d, %d\n", q, MVXPE_READ(sc, MVXPE_PRXDI(q)));
   2502       1.1  hsuenaga 	DPRINTSC(sc, 2, "RQC: %#x\n", MVXPE_READ(sc, MVXPE_RQC));
   2503       1.1  hsuenaga 	DPRINTIFNET(ifp, 2, "Rx: rx_cpu = %d, rx_dma = %d\n",
   2504       1.1  hsuenaga 	    rx->rx_cpu, rx->rx_dma);
   2505       1.1  hsuenaga }
   2506       1.1  hsuenaga 
   2507       1.1  hsuenaga STATIC int
   2508       1.2  hsuenaga mvxpe_rx_queue_select(struct mvxpe_softc *sc, uint32_t queues, int *queue)
   2509       1.1  hsuenaga {
   2510       1.1  hsuenaga 	uint32_t prxs, npkt;
   2511       1.1  hsuenaga 	int q;
   2512       1.1  hsuenaga 
   2513       1.1  hsuenaga 	KASSERT_SC_MTX(sc);
   2514       1.1  hsuenaga 	KASSERT(queue != NULL);
   2515       1.1  hsuenaga 	DPRINTSC(sc, 2, "selecting rx queue\n");
   2516       1.1  hsuenaga 
   2517       1.1  hsuenaga 	for (q = MVXPE_QUEUE_SIZE - 1; q >= 0; q--) {
   2518       1.2  hsuenaga 		if (!MVXPE_IS_QUEUE_BUSY(queues, q))
   2519       1.2  hsuenaga 			continue;
   2520       1.2  hsuenaga 
   2521       1.1  hsuenaga 		prxs = MVXPE_READ(sc, MVXPE_PRXS(q));
   2522       1.1  hsuenaga 		npkt = MVXPE_PRXS_GET_ODC(prxs);
   2523       1.1  hsuenaga 		if (npkt == 0)
   2524       1.1  hsuenaga 			continue;
   2525       1.1  hsuenaga 
   2526  1.19.2.1  christos 		DPRINTSC(sc, 2,
   2527  1.19.2.1  christos 		    "queue %d selected: prxs=%#x, %u packet received.\n",
   2528       1.1  hsuenaga 		    q, prxs, npkt);
   2529       1.1  hsuenaga 		*queue = q;
   2530       1.1  hsuenaga 		mvxpe_rx_lockq(sc, q);
   2531       1.1  hsuenaga 		return npkt;
   2532       1.1  hsuenaga 	}
   2533       1.1  hsuenaga 
   2534       1.1  hsuenaga 	return 0;
   2535       1.1  hsuenaga }
   2536       1.1  hsuenaga 
   2537       1.1  hsuenaga STATIC void
   2538       1.2  hsuenaga mvxpe_rx_refill(struct mvxpe_softc *sc, uint32_t queues)
   2539       1.1  hsuenaga {
   2540       1.1  hsuenaga 	int q;
   2541       1.1  hsuenaga 
   2542       1.1  hsuenaga 	KASSERT_SC_MTX(sc);
   2543       1.1  hsuenaga 
   2544       1.1  hsuenaga 	/* XXX: check rx bit array */
   2545       1.1  hsuenaga 	for (q = 0; q < MVXPE_QUEUE_SIZE; q++) {
   2546       1.2  hsuenaga 		if (!MVXPE_IS_QUEUE_BUSY(queues, q))
   2547       1.2  hsuenaga 			continue;
   2548       1.2  hsuenaga 
   2549       1.1  hsuenaga 		mvxpe_rx_lockq(sc, q);
   2550       1.2  hsuenaga 		mvxpe_rx_queue_refill(sc, q);
   2551       1.1  hsuenaga 		mvxpe_rx_unlockq(sc, q);
   2552       1.1  hsuenaga 	}
   2553       1.1  hsuenaga }
   2554       1.1  hsuenaga 
   2555       1.1  hsuenaga STATIC void
   2556       1.2  hsuenaga mvxpe_rx_queue_refill(struct mvxpe_softc *sc, int q)
   2557       1.1  hsuenaga {
   2558       1.1  hsuenaga 	struct mvxpe_rx_ring *rx = MVXPE_RX_RING(sc, q);
   2559       1.1  hsuenaga 	uint32_t prxs, prxsu, ndesc;
   2560       1.2  hsuenaga 	int idx, refill = 0;
   2561       1.1  hsuenaga 	int npkt;
   2562       1.1  hsuenaga 
   2563       1.1  hsuenaga 	KASSERT_RX_MTX(sc, q);
   2564       1.1  hsuenaga 
   2565       1.1  hsuenaga 	prxs = MVXPE_READ(sc, MVXPE_PRXS(q));
   2566       1.1  hsuenaga 	ndesc = MVXPE_PRXS_GET_NODC(prxs) + MVXPE_PRXS_GET_ODC(prxs);
   2567       1.2  hsuenaga 	refill = rx->rx_queue_len - ndesc;
   2568       1.2  hsuenaga 	if (refill <= 0)
   2569       1.1  hsuenaga 		return;
   2570       1.1  hsuenaga 	DPRINTPRXS(2, q);
   2571       1.2  hsuenaga 	DPRINTSC(sc, 2, "%d buffers to refill.\n", refill);
   2572       1.1  hsuenaga 
   2573       1.1  hsuenaga 	idx = rx->rx_cpu;
   2574       1.2  hsuenaga 	for (npkt = 0; npkt < refill; npkt++)
   2575       1.1  hsuenaga 		if (mvxpe_rx_queue_add(sc, q) != 0)
   2576       1.1  hsuenaga 			break;
   2577       1.2  hsuenaga 	DPRINTSC(sc, 2, "queue %d, %d buffer refilled.\n", q, npkt);
   2578       1.1  hsuenaga 	if (npkt == 0)
   2579       1.1  hsuenaga 		return;
   2580       1.1  hsuenaga 
   2581       1.1  hsuenaga 	mvxpe_ring_sync_rx(sc, q, idx, npkt,
   2582       1.1  hsuenaga 	    BUS_DMASYNC_PREREAD | BUS_DMASYNC_PREWRITE);
   2583       1.1  hsuenaga 
   2584       1.1  hsuenaga 	while (npkt > 255) {
   2585       1.1  hsuenaga 		prxsu = MVXPE_PRXSU_NOOFNEWDESCRIPTORS(255);
   2586       1.1  hsuenaga 		MVXPE_WRITE(sc, MVXPE_PRXSU(q), prxsu);
   2587       1.1  hsuenaga 		npkt -= 255;
   2588       1.1  hsuenaga 	}
   2589       1.1  hsuenaga 	if (npkt > 0) {
   2590       1.1  hsuenaga 		prxsu = MVXPE_PRXSU_NOOFNEWDESCRIPTORS(npkt);
   2591       1.1  hsuenaga 		MVXPE_WRITE(sc, MVXPE_PRXSU(q), prxsu);
   2592       1.1  hsuenaga 	}
   2593       1.1  hsuenaga 	DPRINTPRXS(2, q);
   2594       1.1  hsuenaga 	return;
   2595       1.1  hsuenaga }
   2596       1.1  hsuenaga 
   2597       1.1  hsuenaga STATIC int
   2598       1.1  hsuenaga mvxpe_rx_queue_add(struct mvxpe_softc *sc, int q)
   2599       1.1  hsuenaga {
   2600       1.1  hsuenaga 	struct mvxpe_rx_ring *rx = MVXPE_RX_RING(sc, q);
   2601       1.1  hsuenaga 	struct mvxpe_rx_desc *r;
   2602       1.2  hsuenaga 	struct mvxpbm_chunk *chunk = NULL;
   2603       1.1  hsuenaga 
   2604       1.1  hsuenaga 	KASSERT_RX_MTX(sc, q);
   2605       1.1  hsuenaga 
   2606       1.1  hsuenaga 	/* Allocate the packet buffer */
   2607       1.2  hsuenaga 	chunk = mvxpbm_alloc(sc->sc_bm);
   2608       1.1  hsuenaga 	if (chunk == NULL) {
   2609       1.1  hsuenaga 		DPRINTSC(sc, 1, "BM chunk allocation failed.\n");
   2610       1.1  hsuenaga 		return ENOBUFS;
   2611       1.1  hsuenaga 	}
   2612       1.1  hsuenaga 
   2613       1.1  hsuenaga 	/* Add the packet to descritor */
   2614       1.1  hsuenaga 	KASSERT(MVXPE_RX_PKTBUF(sc, q, rx->rx_cpu) == NULL);
   2615       1.1  hsuenaga 	MVXPE_RX_PKTBUF(sc, q, rx->rx_cpu) = chunk;
   2616       1.2  hsuenaga 	mvxpbm_dmamap_sync(chunk, BM_SYNC_ALL, BUS_DMASYNC_PREREAD);
   2617       1.1  hsuenaga 
   2618       1.1  hsuenaga 	r = MVXPE_RX_DESC(sc, q, rx->rx_cpu);
   2619       1.1  hsuenaga 	r->bufptr = chunk->buf_pa;
   2620       1.1  hsuenaga 	DPRINTSC(sc, 9, "chunk added to index %d\n", rx->rx_cpu);
   2621       1.1  hsuenaga 	rx->rx_cpu = rx_counter_adv(rx->rx_cpu, 1);
   2622       1.1  hsuenaga 	return 0;
   2623       1.1  hsuenaga }
   2624       1.1  hsuenaga 
   2625       1.1  hsuenaga STATIC void
   2626       1.1  hsuenaga mvxpe_rx_set_csumflag(struct ifnet *ifp,
   2627       1.1  hsuenaga     struct mvxpe_rx_desc *r, struct mbuf *m0)
   2628       1.1  hsuenaga {
   2629       1.1  hsuenaga 	uint32_t csum_flags = 0;
   2630       1.1  hsuenaga 
   2631  1.19.2.1  christos 	if ((r->status & (MVXPE_RX_IP_HEADER_OK | MVXPE_RX_L3_IP)) == 0)
   2632       1.1  hsuenaga 		return; /* not a IP packet */
   2633       1.1  hsuenaga 
   2634       1.1  hsuenaga 	/* L3 */
   2635       1.1  hsuenaga 	if (r->status & MVXPE_RX_L3_IP) {
   2636       1.8    hikaru 		csum_flags |= M_CSUM_IPv4 & ifp->if_csum_flags_rx;
   2637       1.8    hikaru 		if ((r->status & MVXPE_RX_IP_HEADER_OK) == 0 &&
   2638       1.9    hikaru 		    (csum_flags & M_CSUM_IPv4) != 0) {
   2639       1.1  hsuenaga 			csum_flags |= M_CSUM_IPv4_BAD;
   2640       1.1  hsuenaga 			goto finish;
   2641       1.1  hsuenaga 		}
   2642       1.1  hsuenaga 		else if (r->status & MVXPE_RX_IPV4_FRAGMENT) {
   2643       1.1  hsuenaga 			/*
   2644       1.1  hsuenaga 			 * r->l4chk has partial checksum of each framgment.
   2645       1.1  hsuenaga 			 * but there is no way to use it in NetBSD.
   2646       1.1  hsuenaga 			 */
   2647       1.1  hsuenaga 			return;
   2648       1.1  hsuenaga 		}
   2649       1.1  hsuenaga 	}
   2650       1.1  hsuenaga 
   2651       1.1  hsuenaga 	/* L4 */
   2652       1.1  hsuenaga 	switch (r->status & MVXPE_RX_L4_MASK) {
   2653       1.1  hsuenaga 	case MVXPE_RX_L4_TCP:
   2654       1.1  hsuenaga 		if (r->status & MVXPE_RX_L3_IP)
   2655       1.8    hikaru 			csum_flags |= M_CSUM_TCPv4 & ifp->if_csum_flags_rx;
   2656       1.1  hsuenaga 		else
   2657       1.8    hikaru 			csum_flags |= M_CSUM_TCPv6 & ifp->if_csum_flags_rx;
   2658       1.1  hsuenaga 		break;
   2659       1.1  hsuenaga 	case MVXPE_RX_L4_UDP:
   2660       1.1  hsuenaga 		if (r->status & MVXPE_RX_L3_IP)
   2661       1.8    hikaru 			csum_flags |= M_CSUM_UDPv4 & ifp->if_csum_flags_rx;
   2662       1.1  hsuenaga 		else
   2663       1.8    hikaru 			csum_flags |= M_CSUM_UDPv6 & ifp->if_csum_flags_rx;
   2664       1.1  hsuenaga 		break;
   2665       1.1  hsuenaga 	case MVXPE_RX_L4_OTH:
   2666       1.1  hsuenaga 	default:
   2667       1.1  hsuenaga 		break;
   2668       1.1  hsuenaga 	}
   2669       1.8    hikaru 	if ((r->status & MVXPE_RX_L4_CHECKSUM_OK) == 0 && (csum_flags &
   2670       1.9    hikaru 	    (M_CSUM_TCPv4 | M_CSUM_TCPv6 | M_CSUM_UDPv4 | M_CSUM_UDPv6)) != 0)
   2671       1.8    hikaru 		csum_flags |= M_CSUM_TCP_UDP_BAD;
   2672       1.1  hsuenaga finish:
   2673       1.8    hikaru 	m0->m_pkthdr.csum_flags = csum_flags;
   2674       1.1  hsuenaga }
   2675       1.1  hsuenaga 
   2676       1.1  hsuenaga /*
   2677       1.1  hsuenaga  * MAC address filter
   2678       1.1  hsuenaga  */
   2679       1.1  hsuenaga STATIC uint8_t
   2680       1.1  hsuenaga mvxpe_crc8(const uint8_t *data, size_t size)
   2681       1.1  hsuenaga {
   2682       1.1  hsuenaga 	int bit;
   2683       1.1  hsuenaga 	uint8_t byte;
   2684       1.1  hsuenaga 	uint8_t crc = 0;
   2685       1.1  hsuenaga 	const uint8_t poly = 0x07;
   2686       1.1  hsuenaga 
   2687  1.19.2.1  christos 	while (size--)
   2688       1.1  hsuenaga 	  for (byte = *data++, bit = NBBY-1; bit >= 0; bit--)
   2689       1.1  hsuenaga 	    crc = (crc << 1) ^ ((((crc >> 7) ^ (byte >> bit)) & 1) ? poly : 0);
   2690       1.1  hsuenaga 
   2691       1.1  hsuenaga 	return crc;
   2692       1.1  hsuenaga }
   2693       1.1  hsuenaga 
   2694       1.1  hsuenaga CTASSERT(MVXPE_NDFSMT == MVXPE_NDFOMT);
   2695       1.1  hsuenaga 
   2696       1.1  hsuenaga STATIC void
   2697       1.1  hsuenaga mvxpe_filter_setup(struct mvxpe_softc *sc)
   2698       1.1  hsuenaga {
   2699       1.1  hsuenaga 	struct ethercom *ec = &sc->sc_ethercom;
   2700       1.1  hsuenaga 	struct ifnet *ifp= &sc->sc_ethercom.ec_if;
   2701       1.1  hsuenaga 	struct ether_multi *enm;
   2702       1.1  hsuenaga 	struct ether_multistep step;
   2703       1.1  hsuenaga 	uint32_t dfut[MVXPE_NDFUT], dfsmt[MVXPE_NDFSMT], dfomt[MVXPE_NDFOMT];
   2704       1.1  hsuenaga 	uint32_t pxc;
   2705       1.1  hsuenaga 	int i;
   2706       1.1  hsuenaga 	const uint8_t special[ETHER_ADDR_LEN] = {0x01,0x00,0x5e,0x00,0x00,0x00};
   2707       1.1  hsuenaga 
   2708       1.1  hsuenaga 	KASSERT_SC_MTX(sc);
   2709       1.1  hsuenaga 
   2710       1.1  hsuenaga 	memset(dfut, 0, sizeof(dfut));
   2711       1.1  hsuenaga 	memset(dfsmt, 0, sizeof(dfsmt));
   2712       1.1  hsuenaga 	memset(dfomt, 0, sizeof(dfomt));
   2713       1.1  hsuenaga 
   2714  1.19.2.1  christos 	if (ifp->if_flags & (IFF_ALLMULTI | IFF_PROMISC)) {
   2715       1.1  hsuenaga 		goto allmulti;
   2716       1.1  hsuenaga 	}
   2717       1.1  hsuenaga 
   2718  1.19.2.1  christos 	ETHER_LOCK(ec);
   2719       1.1  hsuenaga 	ETHER_FIRST_MULTI(step, ec, enm);
   2720       1.1  hsuenaga 	while (enm != NULL) {
   2721       1.1  hsuenaga 		if (memcmp(enm->enm_addrlo, enm->enm_addrhi, ETHER_ADDR_LEN)) {
   2722       1.1  hsuenaga 			/* ranges are complex and somewhat rare */
   2723  1.19.2.1  christos 			ETHER_UNLOCK(ec);
   2724       1.1  hsuenaga 			goto allmulti;
   2725       1.1  hsuenaga 		}
   2726       1.1  hsuenaga 		/* chip handles some IPv4 multicast specially */
   2727       1.1  hsuenaga 		if (memcmp(enm->enm_addrlo, special, 5) == 0) {
   2728       1.1  hsuenaga 			i = enm->enm_addrlo[5];
   2729       1.1  hsuenaga 			dfsmt[i>>2] |=
   2730      1.12    hikaru 			    MVXPE_DF(i&3, MVXPE_DF_QUEUE(0) | MVXPE_DF_PASS);
   2731       1.1  hsuenaga 		} else {
   2732       1.1  hsuenaga 			i = mvxpe_crc8(enm->enm_addrlo, ETHER_ADDR_LEN);
   2733       1.1  hsuenaga 			dfomt[i>>2] |=
   2734      1.12    hikaru 			    MVXPE_DF(i&3, MVXPE_DF_QUEUE(0) | MVXPE_DF_PASS);
   2735       1.1  hsuenaga 		}
   2736       1.1  hsuenaga 
   2737       1.1  hsuenaga 		ETHER_NEXT_MULTI(step, enm);
   2738       1.1  hsuenaga 	}
   2739  1.19.2.1  christos 	ETHER_UNLOCK(ec);
   2740       1.1  hsuenaga 	goto set;
   2741       1.1  hsuenaga 
   2742       1.1  hsuenaga allmulti:
   2743  1.19.2.1  christos 	if (ifp->if_flags & (IFF_ALLMULTI | IFF_PROMISC)) {
   2744       1.1  hsuenaga 		for (i = 0; i < MVXPE_NDFSMT; i++) {
   2745  1.19.2.1  christos 			dfsmt[i] = dfomt[i] =
   2746      1.12    hikaru 			    MVXPE_DF(0, MVXPE_DF_QUEUE(0) | MVXPE_DF_PASS) |
   2747      1.12    hikaru 			    MVXPE_DF(1, MVXPE_DF_QUEUE(0) | MVXPE_DF_PASS) |
   2748      1.12    hikaru 			    MVXPE_DF(2, MVXPE_DF_QUEUE(0) | MVXPE_DF_PASS) |
   2749      1.12    hikaru 			    MVXPE_DF(3, MVXPE_DF_QUEUE(0) | MVXPE_DF_PASS);
   2750       1.1  hsuenaga 		}
   2751       1.1  hsuenaga 	}
   2752       1.1  hsuenaga 
   2753       1.1  hsuenaga set:
   2754       1.1  hsuenaga 	pxc = MVXPE_READ(sc, MVXPE_PXC);
   2755       1.1  hsuenaga 	pxc &= ~MVXPE_PXC_UPM;
   2756       1.1  hsuenaga 	pxc |= MVXPE_PXC_RB | MVXPE_PXC_RBIP | MVXPE_PXC_RBARP;
   2757       1.1  hsuenaga 	if (ifp->if_flags & IFF_BROADCAST) {
   2758       1.1  hsuenaga 		pxc &= ~(MVXPE_PXC_RB | MVXPE_PXC_RBIP | MVXPE_PXC_RBARP);
   2759       1.1  hsuenaga 	}
   2760       1.1  hsuenaga 	if (ifp->if_flags & IFF_PROMISC) {
   2761       1.1  hsuenaga 		pxc |= MVXPE_PXC_UPM;
   2762       1.1  hsuenaga 	}
   2763       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_PXC, pxc);
   2764       1.1  hsuenaga 
   2765       1.1  hsuenaga 	/* Set Destination Address Filter Unicast Table */
   2766      1.12    hikaru 	if (ifp->if_flags & IFF_PROMISC) {
   2767      1.12    hikaru 		/* pass all unicast addresses */
   2768      1.12    hikaru 		for (i = 0; i < MVXPE_NDFUT; i++) {
   2769      1.12    hikaru 			dfut[i] =
   2770      1.12    hikaru 			    MVXPE_DF(0, MVXPE_DF_QUEUE(0) | MVXPE_DF_PASS) |
   2771      1.12    hikaru 			    MVXPE_DF(1, MVXPE_DF_QUEUE(0) | MVXPE_DF_PASS) |
   2772      1.12    hikaru 			    MVXPE_DF(2, MVXPE_DF_QUEUE(0) | MVXPE_DF_PASS) |
   2773      1.12    hikaru 			    MVXPE_DF(3, MVXPE_DF_QUEUE(0) | MVXPE_DF_PASS);
   2774      1.12    hikaru 		}
   2775      1.12    hikaru 	}
   2776      1.12    hikaru 	else {
   2777  1.19.2.1  christos 		i = sc->sc_enaddr[5] & 0xf;		/* last nibble */
   2778      1.12    hikaru 		dfut[i>>2] = MVXPE_DF(i&3, MVXPE_DF_QUEUE(0) | MVXPE_DF_PASS);
   2779      1.12    hikaru 	}
   2780       1.1  hsuenaga 	MVXPE_WRITE_REGION(sc, MVXPE_DFUT(0), dfut, MVXPE_NDFUT);
   2781       1.1  hsuenaga 
   2782       1.1  hsuenaga 	/* Set Destination Address Filter Multicast Tables */
   2783       1.1  hsuenaga 	MVXPE_WRITE_REGION(sc, MVXPE_DFSMT(0), dfsmt, MVXPE_NDFSMT);
   2784       1.1  hsuenaga 	MVXPE_WRITE_REGION(sc, MVXPE_DFOMT(0), dfomt, MVXPE_NDFOMT);
   2785       1.1  hsuenaga }
   2786       1.1  hsuenaga 
   2787       1.1  hsuenaga /*
   2788       1.1  hsuenaga  * sysctl(9)
   2789       1.1  hsuenaga  */
   2790       1.1  hsuenaga SYSCTL_SETUP(sysctl_mvxpe, "sysctl mvxpe subtree setup")
   2791       1.1  hsuenaga {
   2792       1.1  hsuenaga 	int rc;
   2793       1.1  hsuenaga 	const struct sysctlnode *node;
   2794       1.1  hsuenaga 
   2795       1.1  hsuenaga 	if ((rc = sysctl_createv(clog, 0, NULL, &node,
   2796       1.1  hsuenaga 	    0, CTLTYPE_NODE, "mvxpe",
   2797       1.1  hsuenaga 	    SYSCTL_DESCR("mvxpe interface controls"),
   2798       1.1  hsuenaga 	    NULL, 0, NULL, 0,
   2799       1.1  hsuenaga 	    CTL_HW, CTL_CREATE, CTL_EOL)) != 0) {
   2800       1.1  hsuenaga 		goto err;
   2801       1.1  hsuenaga 	}
   2802       1.1  hsuenaga 
   2803       1.1  hsuenaga 	mvxpe_root_num = node->sysctl_num;
   2804       1.1  hsuenaga 	return;
   2805       1.1  hsuenaga 
   2806       1.1  hsuenaga err:
   2807       1.1  hsuenaga 	aprint_error("%s: syctl_createv failed (rc = %d)\n", __func__, rc);
   2808       1.1  hsuenaga }
   2809       1.1  hsuenaga 
   2810       1.1  hsuenaga STATIC int
   2811       1.1  hsuenaga sysctl_read_mib(SYSCTLFN_ARGS)
   2812       1.1  hsuenaga {
   2813       1.1  hsuenaga 	struct mvxpe_sysctl_mib *arg;
   2814       1.1  hsuenaga 	struct mvxpe_softc *sc;
   2815       1.1  hsuenaga 	struct sysctlnode node;
   2816       1.1  hsuenaga 	uint64_t val;
   2817       1.1  hsuenaga 	int err;
   2818       1.1  hsuenaga 
   2819       1.1  hsuenaga 	node = *rnode;
   2820       1.1  hsuenaga 	arg = (struct mvxpe_sysctl_mib *)rnode->sysctl_data;
   2821       1.1  hsuenaga 	if (arg == NULL)
   2822       1.1  hsuenaga 		return EINVAL;
   2823       1.1  hsuenaga 
   2824       1.1  hsuenaga 	sc = arg->sc;
   2825       1.1  hsuenaga 	if (sc == NULL)
   2826       1.1  hsuenaga 		return EINVAL;
   2827       1.1  hsuenaga 	if (arg->index < 0 || arg->index > __arraycount(mvxpe_mib_list))
   2828       1.1  hsuenaga 		return EINVAL;
   2829  1.19.2.1  christos 
   2830       1.1  hsuenaga 	mvxpe_sc_lock(sc);
   2831       1.1  hsuenaga 	val = arg->counter;
   2832       1.1  hsuenaga 	mvxpe_sc_unlock(sc);
   2833       1.1  hsuenaga 
   2834       1.1  hsuenaga 	node.sysctl_data = &val;
   2835       1.1  hsuenaga 	err = sysctl_lookup(SYSCTLFN_CALL(&node));
   2836       1.1  hsuenaga 	if (err)
   2837       1.1  hsuenaga 	       return err;
   2838       1.1  hsuenaga 	if (newp)
   2839       1.1  hsuenaga 		return EINVAL;
   2840       1.1  hsuenaga 
   2841       1.1  hsuenaga 	return 0;
   2842       1.1  hsuenaga }
   2843       1.1  hsuenaga 
   2844       1.1  hsuenaga 
   2845       1.1  hsuenaga STATIC int
   2846       1.1  hsuenaga sysctl_clear_mib(SYSCTLFN_ARGS)
   2847       1.1  hsuenaga {
   2848       1.1  hsuenaga 	struct mvxpe_softc *sc;
   2849       1.1  hsuenaga 	struct sysctlnode node;
   2850       1.1  hsuenaga 	int val;
   2851       1.1  hsuenaga 	int err;
   2852       1.1  hsuenaga 
   2853       1.1  hsuenaga 	node = *rnode;
   2854       1.1  hsuenaga 	sc = (struct mvxpe_softc *)rnode->sysctl_data;
   2855       1.1  hsuenaga 	if (sc == NULL)
   2856       1.1  hsuenaga 		return EINVAL;
   2857       1.1  hsuenaga 
   2858       1.1  hsuenaga 	val = 0;
   2859       1.1  hsuenaga 	node.sysctl_data = &val;
   2860       1.1  hsuenaga 	err = sysctl_lookup(SYSCTLFN_CALL(&node));
   2861       1.1  hsuenaga 	if (err || newp == NULL)
   2862       1.1  hsuenaga 		return err;
   2863       1.1  hsuenaga 	if (val < 0 || val > 1)
   2864       1.1  hsuenaga 		return EINVAL;
   2865       1.1  hsuenaga 	if (val == 1) {
   2866       1.1  hsuenaga 		mvxpe_sc_lock(sc);
   2867       1.1  hsuenaga 		mvxpe_clear_mib(sc);
   2868       1.1  hsuenaga 		mvxpe_sc_unlock(sc);
   2869       1.1  hsuenaga 	}
   2870       1.1  hsuenaga 
   2871       1.1  hsuenaga 	return 0;
   2872       1.1  hsuenaga }
   2873       1.1  hsuenaga 
   2874       1.1  hsuenaga STATIC int
   2875       1.1  hsuenaga sysctl_set_queue_length(SYSCTLFN_ARGS)
   2876       1.1  hsuenaga {
   2877       1.1  hsuenaga 	struct mvxpe_sysctl_queue *arg;
   2878       1.1  hsuenaga 	struct mvxpe_rx_ring *rx = NULL;
   2879       1.1  hsuenaga 	struct mvxpe_tx_ring *tx = NULL;
   2880       1.1  hsuenaga 	struct mvxpe_softc *sc;
   2881       1.1  hsuenaga 	struct sysctlnode node;
   2882       1.1  hsuenaga 	uint32_t reg;
   2883       1.1  hsuenaga 	int val;
   2884       1.1  hsuenaga 	int err;
   2885       1.1  hsuenaga 
   2886       1.1  hsuenaga 	node = *rnode;
   2887       1.1  hsuenaga 
   2888       1.1  hsuenaga 	arg = (struct mvxpe_sysctl_queue *)rnode->sysctl_data;
   2889       1.1  hsuenaga 	if (arg == NULL)
   2890       1.1  hsuenaga 		return EINVAL;
   2891       1.1  hsuenaga 	if (arg->queue < 0 || arg->queue > MVXPE_RX_RING_CNT)
   2892       1.1  hsuenaga 		return EINVAL;
   2893       1.1  hsuenaga 	if (arg->rxtx != MVXPE_SYSCTL_RX && arg->rxtx != MVXPE_SYSCTL_TX)
   2894       1.1  hsuenaga 		return EINVAL;
   2895       1.1  hsuenaga 
   2896       1.1  hsuenaga 	sc = arg->sc;
   2897       1.1  hsuenaga 	if (sc == NULL)
   2898       1.1  hsuenaga 		return EINVAL;
   2899       1.1  hsuenaga 
   2900       1.1  hsuenaga 	/* read queue length */
   2901       1.1  hsuenaga 	mvxpe_sc_lock(sc);
   2902       1.1  hsuenaga 	switch (arg->rxtx) {
   2903       1.1  hsuenaga 	case  MVXPE_SYSCTL_RX:
   2904       1.1  hsuenaga 		mvxpe_rx_lockq(sc, arg->queue);
   2905       1.1  hsuenaga 		rx = MVXPE_RX_RING(sc, arg->queue);
   2906       1.1  hsuenaga 		val = rx->rx_queue_len;
   2907       1.1  hsuenaga 		mvxpe_rx_unlockq(sc, arg->queue);
   2908       1.1  hsuenaga 		break;
   2909       1.1  hsuenaga 	case  MVXPE_SYSCTL_TX:
   2910       1.1  hsuenaga 		mvxpe_tx_lockq(sc, arg->queue);
   2911       1.1  hsuenaga 		tx = MVXPE_TX_RING(sc, arg->queue);
   2912       1.1  hsuenaga 		val = tx->tx_queue_len;
   2913       1.1  hsuenaga 		mvxpe_tx_unlockq(sc, arg->queue);
   2914       1.1  hsuenaga 		break;
   2915       1.1  hsuenaga 	}
   2916       1.1  hsuenaga 
   2917       1.1  hsuenaga 	node.sysctl_data = &val;
   2918       1.1  hsuenaga 	err = sysctl_lookup(SYSCTLFN_CALL(&node));
   2919       1.1  hsuenaga 	if (err || newp == NULL) {
   2920       1.1  hsuenaga 		mvxpe_sc_unlock(sc);
   2921       1.1  hsuenaga 		return err;
   2922       1.1  hsuenaga 	}
   2923       1.1  hsuenaga 
   2924       1.1  hsuenaga 	/* update queue length */
   2925       1.1  hsuenaga 	if (val < 8 || val > MVXPE_RX_RING_CNT) {
   2926       1.1  hsuenaga 		mvxpe_sc_unlock(sc);
   2927       1.1  hsuenaga 		return EINVAL;
   2928       1.1  hsuenaga 	}
   2929       1.1  hsuenaga 	switch (arg->rxtx) {
   2930       1.1  hsuenaga 	case  MVXPE_SYSCTL_RX:
   2931       1.1  hsuenaga 		mvxpe_rx_lockq(sc, arg->queue);
   2932       1.1  hsuenaga 		rx->rx_queue_len = val;
   2933  1.19.2.1  christos 		rx->rx_queue_th_received =
   2934       1.2  hsuenaga 		    rx->rx_queue_len / MVXPE_RXTH_RATIO;
   2935  1.19.2.1  christos 		rx->rx_queue_th_free =
   2936       1.2  hsuenaga 		    rx->rx_queue_len / MVXPE_RXTH_REFILL_RATIO;
   2937       1.1  hsuenaga 
   2938       1.1  hsuenaga 		reg  = MVXPE_PRXDQTH_ODT(rx->rx_queue_th_received);
   2939       1.1  hsuenaga 		reg |= MVXPE_PRXDQTH_NODT(rx->rx_queue_th_free);
   2940       1.1  hsuenaga 		MVXPE_WRITE(sc, MVXPE_PRXDQTH(arg->queue), reg);
   2941       1.1  hsuenaga 
   2942       1.1  hsuenaga 		mvxpe_rx_unlockq(sc, arg->queue);
   2943       1.1  hsuenaga 		break;
   2944       1.1  hsuenaga 	case  MVXPE_SYSCTL_TX:
   2945       1.1  hsuenaga 		mvxpe_tx_lockq(sc, arg->queue);
   2946       1.1  hsuenaga 		tx->tx_queue_len = val;
   2947       1.2  hsuenaga 		tx->tx_queue_th_free =
   2948       1.2  hsuenaga 		    tx->tx_queue_len / MVXPE_TXTH_RATIO;
   2949       1.1  hsuenaga 
   2950       1.1  hsuenaga 		reg  = MVXPE_PTXDQS_TBT(tx->tx_queue_th_free);
   2951       1.1  hsuenaga 		reg |= MVXPE_PTXDQS_DQS(MVXPE_TX_RING_CNT);
   2952       1.1  hsuenaga 		MVXPE_WRITE(sc, MVXPE_PTXDQS(arg->queue), reg);
   2953       1.1  hsuenaga 
   2954       1.1  hsuenaga 		mvxpe_tx_unlockq(sc, arg->queue);
   2955       1.1  hsuenaga 		break;
   2956       1.1  hsuenaga 	}
   2957       1.1  hsuenaga 	mvxpe_sc_unlock(sc);
   2958       1.1  hsuenaga 
   2959       1.1  hsuenaga 	return 0;
   2960       1.1  hsuenaga }
   2961       1.1  hsuenaga 
   2962       1.1  hsuenaga STATIC int
   2963       1.1  hsuenaga sysctl_set_queue_rxthtime(SYSCTLFN_ARGS)
   2964       1.1  hsuenaga {
   2965       1.1  hsuenaga 	struct mvxpe_sysctl_queue *arg;
   2966       1.1  hsuenaga 	struct mvxpe_rx_ring *rx = NULL;
   2967       1.1  hsuenaga 	struct mvxpe_softc *sc;
   2968       1.1  hsuenaga 	struct sysctlnode node;
   2969       1.1  hsuenaga 	extern uint32_t mvTclk;
   2970       1.1  hsuenaga 	uint32_t reg, time_mvtclk;
   2971       1.1  hsuenaga 	int time_us;
   2972       1.1  hsuenaga 	int err;
   2973       1.1  hsuenaga 
   2974       1.1  hsuenaga 	node = *rnode;
   2975       1.1  hsuenaga 
   2976       1.1  hsuenaga 	arg = (struct mvxpe_sysctl_queue *)rnode->sysctl_data;
   2977       1.1  hsuenaga 	if (arg == NULL)
   2978       1.1  hsuenaga 		return EINVAL;
   2979       1.1  hsuenaga 	if (arg->queue < 0 || arg->queue > MVXPE_RX_RING_CNT)
   2980       1.1  hsuenaga 		return EINVAL;
   2981       1.1  hsuenaga 	if (arg->rxtx != MVXPE_SYSCTL_RX)
   2982       1.1  hsuenaga 		return EINVAL;
   2983       1.1  hsuenaga 
   2984       1.1  hsuenaga 	sc = arg->sc;
   2985       1.1  hsuenaga 	if (sc == NULL)
   2986       1.1  hsuenaga 		return EINVAL;
   2987       1.1  hsuenaga 
   2988       1.1  hsuenaga 	/* read queue length */
   2989       1.1  hsuenaga 	mvxpe_sc_lock(sc);
   2990       1.1  hsuenaga 	mvxpe_rx_lockq(sc, arg->queue);
   2991       1.1  hsuenaga 	rx = MVXPE_RX_RING(sc, arg->queue);
   2992       1.1  hsuenaga 	time_mvtclk = rx->rx_queue_th_time;
   2993       1.1  hsuenaga 	time_us = ((uint64_t)time_mvtclk * 1000ULL * 1000ULL) / mvTclk;
   2994       1.1  hsuenaga 	node.sysctl_data = &time_us;
   2995       1.1  hsuenaga 	DPRINTSC(sc, 1, "RXITTH(%d) => %#x\n",
   2996       1.1  hsuenaga 	    arg->queue, MVXPE_READ(sc, MVXPE_PRXITTH(arg->queue)));
   2997       1.1  hsuenaga 	err = sysctl_lookup(SYSCTLFN_CALL(&node));
   2998       1.1  hsuenaga 	if (err || newp == NULL) {
   2999       1.1  hsuenaga 		mvxpe_rx_unlockq(sc, arg->queue);
   3000       1.1  hsuenaga 		mvxpe_sc_unlock(sc);
   3001       1.1  hsuenaga 		return err;
   3002       1.1  hsuenaga 	}
   3003       1.1  hsuenaga 
   3004       1.1  hsuenaga 	/* update queue length (0[sec] - 1[sec]) */
   3005       1.1  hsuenaga 	if (time_us < 0 || time_us > (1000 * 1000)) {
   3006       1.1  hsuenaga 		mvxpe_rx_unlockq(sc, arg->queue);
   3007       1.1  hsuenaga 		mvxpe_sc_unlock(sc);
   3008       1.1  hsuenaga 		return EINVAL;
   3009       1.1  hsuenaga 	}
   3010       1.1  hsuenaga 	time_mvtclk =
   3011       1.1  hsuenaga 	    (uint64_t)mvTclk * (uint64_t)time_us / (1000ULL * 1000ULL);
   3012       1.1  hsuenaga 	rx->rx_queue_th_time = time_mvtclk;
   3013       1.1  hsuenaga 	reg = MVXPE_PRXITTH_RITT(rx->rx_queue_th_time);
   3014       1.1  hsuenaga 	MVXPE_WRITE(sc, MVXPE_PRXITTH(arg->queue), reg);
   3015       1.1  hsuenaga 	DPRINTSC(sc, 1, "RXITTH(%d) => %#x\n", arg->queue, reg);
   3016       1.1  hsuenaga 	mvxpe_rx_unlockq(sc, arg->queue);
   3017       1.1  hsuenaga 	mvxpe_sc_unlock(sc);
   3018       1.1  hsuenaga 
   3019       1.1  hsuenaga 	return 0;
   3020       1.1  hsuenaga }
   3021       1.1  hsuenaga 
   3022       1.1  hsuenaga 
   3023       1.1  hsuenaga STATIC void
   3024       1.1  hsuenaga sysctl_mvxpe_init(struct mvxpe_softc *sc)
   3025       1.1  hsuenaga {
   3026       1.1  hsuenaga 	struct ifnet *ifp = &sc->sc_ethercom.ec_if;
   3027       1.1  hsuenaga 	const struct sysctlnode *node;
   3028       1.1  hsuenaga 	int mvxpe_nodenum;
   3029       1.1  hsuenaga 	int mvxpe_mibnum;
   3030       1.1  hsuenaga 	int mvxpe_rxqueuenum;
   3031       1.1  hsuenaga 	int mvxpe_txqueuenum;
   3032       1.1  hsuenaga 	int q, i;
   3033       1.1  hsuenaga 
   3034       1.1  hsuenaga 	/* hw.mvxpe.mvxpe[unit] */
   3035       1.1  hsuenaga 	if (sysctl_createv(&sc->sc_mvxpe_clog, 0, NULL, &node,
   3036       1.1  hsuenaga 	    0, CTLTYPE_NODE, ifp->if_xname,
   3037       1.1  hsuenaga 	    SYSCTL_DESCR("mvxpe per-controller controls"),
   3038       1.1  hsuenaga 	    NULL, 0, NULL, 0,
   3039       1.1  hsuenaga 	    CTL_HW, mvxpe_root_num, CTL_CREATE,
   3040       1.1  hsuenaga 	    CTL_EOL) != 0) {
   3041       1.1  hsuenaga 		aprint_normal_dev(sc->sc_dev, "couldn't create sysctl node\n");
   3042       1.1  hsuenaga 		return;
   3043       1.1  hsuenaga 	}
   3044       1.1  hsuenaga 	mvxpe_nodenum = node->sysctl_num;
   3045       1.1  hsuenaga 
   3046       1.1  hsuenaga 	/* hw.mvxpe.mvxpe[unit].mib */
   3047       1.1  hsuenaga 	if (sysctl_createv(&sc->sc_mvxpe_clog, 0, NULL, &node,
   3048       1.1  hsuenaga 	    0, CTLTYPE_NODE, "mib",
   3049       1.1  hsuenaga 	    SYSCTL_DESCR("mvxpe per-controller MIB counters"),
   3050       1.1  hsuenaga 	    NULL, 0, NULL, 0,
   3051       1.1  hsuenaga 	    CTL_HW, mvxpe_root_num, mvxpe_nodenum, CTL_CREATE,
   3052       1.1  hsuenaga 	    CTL_EOL) != 0) {
   3053       1.1  hsuenaga 		aprint_normal_dev(sc->sc_dev, "couldn't create sysctl node\n");
   3054       1.1  hsuenaga 		return;
   3055       1.1  hsuenaga 	}
   3056       1.1  hsuenaga 	mvxpe_mibnum = node->sysctl_num;
   3057       1.1  hsuenaga 
   3058       1.1  hsuenaga 	/* hw.mvxpe.mvxpe[unit].rx */
   3059       1.1  hsuenaga 	if (sysctl_createv(&sc->sc_mvxpe_clog, 0, NULL, &node,
   3060       1.1  hsuenaga 	    0, CTLTYPE_NODE, "rx",
   3061       1.1  hsuenaga 	    SYSCTL_DESCR("Rx Queues"),
   3062       1.1  hsuenaga 	    NULL, 0, NULL, 0,
   3063       1.1  hsuenaga 	    CTL_HW, mvxpe_root_num, mvxpe_nodenum, CTL_CREATE, CTL_EOL) != 0) {
   3064       1.1  hsuenaga 		aprint_normal_dev(sc->sc_dev, "couldn't create sysctl node\n");
   3065       1.1  hsuenaga 		return;
   3066       1.1  hsuenaga 	}
   3067       1.1  hsuenaga 	mvxpe_rxqueuenum = node->sysctl_num;
   3068       1.1  hsuenaga 
   3069       1.1  hsuenaga 	/* hw.mvxpe.mvxpe[unit].tx */
   3070       1.1  hsuenaga 	if (sysctl_createv(&sc->sc_mvxpe_clog, 0, NULL, &node,
   3071       1.1  hsuenaga 	    0, CTLTYPE_NODE, "tx",
   3072       1.1  hsuenaga 	    SYSCTL_DESCR("Tx Queues"),
   3073       1.1  hsuenaga 	    NULL, 0, NULL, 0,
   3074       1.1  hsuenaga 	    CTL_HW, mvxpe_root_num, mvxpe_nodenum, CTL_CREATE, CTL_EOL) != 0) {
   3075       1.1  hsuenaga 		aprint_normal_dev(sc->sc_dev, "couldn't create sysctl node\n");
   3076       1.1  hsuenaga 		return;
   3077       1.1  hsuenaga 	}
   3078       1.1  hsuenaga 	mvxpe_txqueuenum = node->sysctl_num;
   3079       1.1  hsuenaga 
   3080       1.1  hsuenaga #ifdef MVXPE_DEBUG
   3081       1.1  hsuenaga 	/* hw.mvxpe.debug */
   3082       1.1  hsuenaga 	if (sysctl_createv(&sc->sc_mvxpe_clog, 0, NULL, &node,
   3083       1.1  hsuenaga 	    CTLFLAG_READWRITE, CTLTYPE_INT, "debug",
   3084      1.11    hikaru 	    SYSCTL_DESCR("mvxpe device driver debug control"),
   3085       1.1  hsuenaga 	    NULL, 0, &mvxpe_debug, 0,
   3086       1.1  hsuenaga 	    CTL_HW, mvxpe_root_num, CTL_CREATE, CTL_EOL) != 0) {
   3087       1.1  hsuenaga 		aprint_normal_dev(sc->sc_dev, "couldn't create sysctl node\n");
   3088       1.1  hsuenaga 		return;
   3089       1.1  hsuenaga 	}
   3090       1.1  hsuenaga #endif
   3091       1.1  hsuenaga 	/*
   3092       1.1  hsuenaga 	 * MIB access
   3093       1.1  hsuenaga 	 */
   3094       1.1  hsuenaga 	/* hw.mvxpe.mvxpe[unit].mib.<mibs> */
   3095       1.1  hsuenaga 	for (i = 0; i < __arraycount(mvxpe_mib_list); i++) {
   3096       1.1  hsuenaga 		const char *name = mvxpe_mib_list[i].sysctl_name;
   3097       1.1  hsuenaga 		const char *desc = mvxpe_mib_list[i].desc;
   3098       1.1  hsuenaga 		struct mvxpe_sysctl_mib *mib_arg = &sc->sc_sysctl_mib[i];
   3099       1.1  hsuenaga 
   3100       1.1  hsuenaga 		mib_arg->sc = sc;
   3101  1.19.2.1  christos 		mib_arg->index = i;
   3102       1.1  hsuenaga 		if (sysctl_createv(&sc->sc_mvxpe_clog, 0, NULL, &node,
   3103       1.1  hsuenaga 		    CTLFLAG_READONLY, CTLTYPE_QUAD, name, desc,
   3104       1.1  hsuenaga 		    sysctl_read_mib, 0, (void *)mib_arg, 0,
   3105       1.1  hsuenaga 		    CTL_HW, mvxpe_root_num, mvxpe_nodenum, mvxpe_mibnum,
   3106       1.1  hsuenaga 		    CTL_CREATE, CTL_EOL) != 0) {
   3107       1.1  hsuenaga 			aprint_normal_dev(sc->sc_dev,
   3108       1.1  hsuenaga 			    "couldn't create sysctl node\n");
   3109       1.1  hsuenaga 			break;
   3110       1.1  hsuenaga 		}
   3111       1.1  hsuenaga 	}
   3112       1.1  hsuenaga 
   3113       1.1  hsuenaga 	for (q = 0; q < MVXPE_QUEUE_SIZE; q++) {
   3114       1.1  hsuenaga 		struct mvxpe_sysctl_queue *rxarg = &sc->sc_sysctl_rx_queue[q];
   3115       1.1  hsuenaga 		struct mvxpe_sysctl_queue *txarg = &sc->sc_sysctl_tx_queue[q];
   3116       1.1  hsuenaga #define MVXPE_SYSCTL_NAME(num) "queue" # num
   3117       1.1  hsuenaga 		static const char *sysctl_queue_names[] = {
   3118       1.1  hsuenaga 			MVXPE_SYSCTL_NAME(0), MVXPE_SYSCTL_NAME(1),
   3119       1.1  hsuenaga 			MVXPE_SYSCTL_NAME(2), MVXPE_SYSCTL_NAME(3),
   3120       1.1  hsuenaga 			MVXPE_SYSCTL_NAME(4), MVXPE_SYSCTL_NAME(5),
   3121       1.1  hsuenaga 			MVXPE_SYSCTL_NAME(6), MVXPE_SYSCTL_NAME(7),
   3122       1.1  hsuenaga 		};
   3123       1.1  hsuenaga #undef MVXPE_SYSCTL_NAME
   3124       1.1  hsuenaga #ifdef SYSCTL_INCLUDE_DESCR
   3125       1.1  hsuenaga #define MVXPE_SYSCTL_DESCR(num) "configuration parameters for queue " # num
   3126       1.1  hsuenaga 		static const char *sysctl_queue_descrs[] = {
   3127      1.11    hikaru 			MVXPE_SYSCTL_DESCR(0), MVXPE_SYSCTL_DESCR(1),
   3128      1.11    hikaru 			MVXPE_SYSCTL_DESCR(2), MVXPE_SYSCTL_DESCR(3),
   3129      1.11    hikaru 			MVXPE_SYSCTL_DESCR(4), MVXPE_SYSCTL_DESCR(5),
   3130      1.11    hikaru 			MVXPE_SYSCTL_DESCR(6), MVXPE_SYSCTL_DESCR(7),
   3131       1.1  hsuenaga 		};
   3132       1.1  hsuenaga #undef MVXPE_SYSCTL_DESCR
   3133       1.1  hsuenaga #endif /* SYSCTL_INCLUDE_DESCR */
   3134       1.1  hsuenaga 		int mvxpe_curnum;
   3135       1.1  hsuenaga 
   3136       1.1  hsuenaga 		rxarg->sc = txarg->sc = sc;
   3137       1.1  hsuenaga 		rxarg->queue = txarg->queue = q;
   3138       1.1  hsuenaga 		rxarg->rxtx = MVXPE_SYSCTL_RX;
   3139       1.1  hsuenaga 		txarg->rxtx = MVXPE_SYSCTL_TX;
   3140       1.1  hsuenaga 
   3141       1.1  hsuenaga 		/* hw.mvxpe.mvxpe[unit].rx.[queue] */
   3142       1.1  hsuenaga 		if (sysctl_createv(&sc->sc_mvxpe_clog, 0, NULL, &node,
   3143       1.1  hsuenaga 		    0, CTLTYPE_NODE,
   3144       1.1  hsuenaga 		    sysctl_queue_names[q], SYSCTL_DESCR(sysctl_queue_descrs[q]),
   3145       1.1  hsuenaga 		    NULL, 0, NULL, 0,
   3146       1.1  hsuenaga 		    CTL_HW, mvxpe_root_num, mvxpe_nodenum, mvxpe_rxqueuenum,
   3147       1.1  hsuenaga 		    CTL_CREATE, CTL_EOL) != 0) {
   3148       1.1  hsuenaga 			aprint_normal_dev(sc->sc_dev,
   3149       1.1  hsuenaga 			    "couldn't create sysctl node\n");
   3150       1.1  hsuenaga 			break;
   3151       1.1  hsuenaga 		}
   3152       1.1  hsuenaga 		mvxpe_curnum = node->sysctl_num;
   3153       1.1  hsuenaga 
   3154       1.1  hsuenaga 		/* hw.mvxpe.mvxpe[unit].rx.[queue].length */
   3155       1.1  hsuenaga 		if (sysctl_createv(&sc->sc_mvxpe_clog, 0, NULL, &node,
   3156       1.1  hsuenaga 		    CTLFLAG_READWRITE, CTLTYPE_INT, "length",
   3157       1.1  hsuenaga 		    SYSCTL_DESCR("maximum length of the queue"),
   3158       1.1  hsuenaga 		    sysctl_set_queue_length, 0, (void *)rxarg, 0,
   3159       1.1  hsuenaga 		    CTL_HW, mvxpe_root_num, mvxpe_nodenum, mvxpe_rxqueuenum,
   3160       1.1  hsuenaga 		    mvxpe_curnum, CTL_CREATE, CTL_EOL) != 0) {
   3161       1.1  hsuenaga 			aprint_normal_dev(sc->sc_dev,
   3162       1.1  hsuenaga 			    "couldn't create sysctl node\n");
   3163       1.1  hsuenaga 			break;
   3164       1.1  hsuenaga 		}
   3165       1.1  hsuenaga 
   3166       1.1  hsuenaga 		/* hw.mvxpe.mvxpe[unit].rx.[queue].threshold_timer_us */
   3167       1.1  hsuenaga 		if (sysctl_createv(&sc->sc_mvxpe_clog, 0, NULL, &node,
   3168       1.1  hsuenaga 		    CTLFLAG_READWRITE, CTLTYPE_INT, "threshold_timer_us",
   3169       1.1  hsuenaga 		    SYSCTL_DESCR("interrupt coalescing threshold timer [us]"),
   3170       1.1  hsuenaga 		    sysctl_set_queue_rxthtime, 0, (void *)rxarg, 0,
   3171       1.1  hsuenaga 		    CTL_HW, mvxpe_root_num, mvxpe_nodenum, mvxpe_rxqueuenum,
   3172       1.1  hsuenaga 		    mvxpe_curnum, CTL_CREATE, CTL_EOL) != 0) {
   3173       1.1  hsuenaga 			aprint_normal_dev(sc->sc_dev,
   3174       1.1  hsuenaga 			    "couldn't create sysctl node\n");
   3175       1.1  hsuenaga 			break;
   3176       1.1  hsuenaga 		}
   3177       1.1  hsuenaga 
   3178       1.1  hsuenaga 		/* hw.mvxpe.mvxpe[unit].tx.[queue] */
   3179       1.1  hsuenaga 		if (sysctl_createv(&sc->sc_mvxpe_clog, 0, NULL, &node,
   3180       1.1  hsuenaga 		    0, CTLTYPE_NODE,
   3181       1.1  hsuenaga 		    sysctl_queue_names[q], SYSCTL_DESCR(sysctl_queue_descs[q]),
   3182       1.1  hsuenaga 		    NULL, 0, NULL, 0,
   3183       1.1  hsuenaga 		    CTL_HW, mvxpe_root_num, mvxpe_nodenum, mvxpe_txqueuenum,
   3184       1.1  hsuenaga 		    CTL_CREATE, CTL_EOL) != 0) {
   3185       1.1  hsuenaga 			aprint_normal_dev(sc->sc_dev,
   3186       1.1  hsuenaga 			    "couldn't create sysctl node\n");
   3187       1.1  hsuenaga 			break;
   3188       1.1  hsuenaga 		}
   3189       1.1  hsuenaga 		mvxpe_curnum = node->sysctl_num;
   3190       1.1  hsuenaga 
   3191       1.1  hsuenaga 		/* hw.mvxpe.mvxpe[unit].tx.length[queue] */
   3192       1.1  hsuenaga 		if (sysctl_createv(&sc->sc_mvxpe_clog, 0, NULL, &node,
   3193       1.1  hsuenaga 		    CTLFLAG_READWRITE, CTLTYPE_INT, "length",
   3194       1.1  hsuenaga 		    SYSCTL_DESCR("maximum length of the queue"),
   3195       1.1  hsuenaga 		    sysctl_set_queue_length, 0, (void *)txarg, 0,
   3196       1.1  hsuenaga 		    CTL_HW, mvxpe_root_num, mvxpe_nodenum, mvxpe_txqueuenum,
   3197       1.1  hsuenaga 		    mvxpe_curnum, CTL_CREATE, CTL_EOL) != 0) {
   3198       1.1  hsuenaga 			aprint_normal_dev(sc->sc_dev,
   3199       1.1  hsuenaga 			    "couldn't create sysctl node\n");
   3200       1.1  hsuenaga 			break;
   3201       1.1  hsuenaga 		}
   3202       1.1  hsuenaga 	}
   3203       1.1  hsuenaga 
   3204       1.1  hsuenaga 	/* hw.mvxpe.mvxpe[unit].clear_mib */
   3205       1.1  hsuenaga 	if (sysctl_createv(&sc->sc_mvxpe_clog, 0, NULL, &node,
   3206       1.1  hsuenaga 	    CTLFLAG_READWRITE, CTLTYPE_INT, "clear_mib",
   3207      1.11    hikaru 	    SYSCTL_DESCR("mvxpe device driver debug control"),
   3208       1.1  hsuenaga 	    sysctl_clear_mib, 0, (void *)sc, 0,
   3209       1.1  hsuenaga 	    CTL_HW, mvxpe_root_num, mvxpe_nodenum, CTL_CREATE,
   3210       1.1  hsuenaga 	    CTL_EOL) != 0) {
   3211       1.1  hsuenaga 		aprint_normal_dev(sc->sc_dev, "couldn't create sysctl node\n");
   3212       1.1  hsuenaga 		return;
   3213       1.1  hsuenaga 	}
   3214       1.1  hsuenaga 
   3215       1.1  hsuenaga }
   3216       1.1  hsuenaga 
   3217       1.1  hsuenaga /*
   3218       1.1  hsuenaga  * MIB
   3219       1.1  hsuenaga  */
   3220       1.1  hsuenaga STATIC void
   3221       1.1  hsuenaga mvxpe_clear_mib(struct mvxpe_softc *sc)
   3222       1.1  hsuenaga {
   3223       1.1  hsuenaga 	int i;
   3224       1.1  hsuenaga 
   3225       1.1  hsuenaga 	KASSERT_SC_MTX(sc);
   3226       1.1  hsuenaga 
   3227       1.1  hsuenaga 	for (i = 0; i < __arraycount(mvxpe_mib_list); i++) {
   3228       1.1  hsuenaga 		if (mvxpe_mib_list[i].reg64)
   3229       1.1  hsuenaga 			MVXPE_READ_MIB(sc, (mvxpe_mib_list[i].regnum + 4));
   3230       1.1  hsuenaga 		MVXPE_READ_MIB(sc, mvxpe_mib_list[i].regnum);
   3231       1.1  hsuenaga 		sc->sc_sysctl_mib[i].counter = 0;
   3232       1.1  hsuenaga 	}
   3233       1.1  hsuenaga }
   3234       1.1  hsuenaga 
   3235       1.1  hsuenaga STATIC void
   3236       1.1  hsuenaga mvxpe_update_mib(struct mvxpe_softc *sc)
   3237       1.1  hsuenaga {
   3238      1.10    hikaru 	struct ifnet *ifp = &sc->sc_ethercom.ec_if;
   3239       1.1  hsuenaga 	int i;
   3240       1.1  hsuenaga 
   3241       1.1  hsuenaga 	KASSERT_SC_MTX(sc);
   3242       1.1  hsuenaga 
   3243       1.1  hsuenaga 	for (i = 0; i < __arraycount(mvxpe_mib_list); i++) {
   3244       1.1  hsuenaga 		uint32_t val_hi;
   3245       1.1  hsuenaga 		uint32_t val_lo;
   3246      1.10    hikaru 		uint64_t val;
   3247       1.1  hsuenaga 
   3248       1.1  hsuenaga 		if (mvxpe_mib_list[i].reg64) {
   3249       1.1  hsuenaga 			/* XXX: implement bus_space_read_8() */
   3250       1.1  hsuenaga 			val_lo = MVXPE_READ_MIB(sc,
   3251       1.1  hsuenaga 			    (mvxpe_mib_list[i].regnum + 4));
   3252       1.1  hsuenaga 			val_hi = MVXPE_READ_MIB(sc, mvxpe_mib_list[i].regnum);
   3253       1.1  hsuenaga 		}
   3254       1.1  hsuenaga 		else {
   3255       1.1  hsuenaga 			val_lo = MVXPE_READ_MIB(sc, mvxpe_mib_list[i].regnum);
   3256       1.1  hsuenaga 			val_hi = 0;
   3257       1.1  hsuenaga 		}
   3258       1.1  hsuenaga 
   3259       1.1  hsuenaga 		if ((val_lo | val_hi) == 0)
   3260       1.1  hsuenaga 			continue;
   3261       1.1  hsuenaga 
   3262      1.10    hikaru 		val = ((uint64_t)val_hi << 32) | (uint64_t)val_lo;
   3263      1.10    hikaru 		sc->sc_sysctl_mib[i].counter += val;
   3264      1.10    hikaru 
   3265      1.10    hikaru 		switch (mvxpe_mib_list[i].ext) {
   3266      1.10    hikaru 		case MVXPE_MIBEXT_IF_OERRORS:
   3267  1.19.2.2    martin 			if_statadd(ifp, if_oerrors,  val);
   3268      1.10    hikaru 			break;
   3269      1.10    hikaru 		case MVXPE_MIBEXT_IF_IERRORS:
   3270  1.19.2.2    martin 			if_statadd(ifp, if_ierrors,  val);
   3271      1.10    hikaru 			break;
   3272      1.10    hikaru 		case MVXPE_MIBEXT_IF_COLLISIONS:
   3273  1.19.2.2    martin 			if_statadd(ifp, if_collisions, val);
   3274      1.10    hikaru 			break;
   3275      1.10    hikaru 		default:
   3276      1.10    hikaru 			break;
   3277      1.10    hikaru 		}
   3278      1.10    hikaru 
   3279       1.1  hsuenaga 	}
   3280       1.1  hsuenaga }
   3281       1.1  hsuenaga 
   3282       1.1  hsuenaga /*
   3283       1.1  hsuenaga  * for Debug
   3284       1.1  hsuenaga  */
   3285       1.1  hsuenaga STATIC void
   3286       1.1  hsuenaga mvxpe_dump_txdesc(struct mvxpe_tx_desc *desc, int idx)
   3287       1.1  hsuenaga {
   3288       1.1  hsuenaga #define DESC_PRINT(X)					\
   3289       1.1  hsuenaga 	if (X)						\
   3290       1.1  hsuenaga 		printf("txdesc[%d]." #X "=%#x\n", idx, X);
   3291       1.1  hsuenaga 
   3292       1.1  hsuenaga        DESC_PRINT(desc->command);
   3293       1.1  hsuenaga        DESC_PRINT(desc->l4ichk);
   3294       1.1  hsuenaga        DESC_PRINT(desc->bytecnt);
   3295       1.1  hsuenaga        DESC_PRINT(desc->bufptr);
   3296       1.1  hsuenaga        DESC_PRINT(desc->flags);
   3297       1.1  hsuenaga #undef DESC_PRINT
   3298       1.1  hsuenaga }
   3299       1.1  hsuenaga 
   3300       1.1  hsuenaga STATIC void
   3301       1.1  hsuenaga mvxpe_dump_rxdesc(struct mvxpe_rx_desc *desc, int idx)
   3302       1.1  hsuenaga {
   3303       1.1  hsuenaga #define DESC_PRINT(X)					\
   3304       1.1  hsuenaga 	if (X)						\
   3305       1.1  hsuenaga 		printf("rxdesc[%d]." #X "=%#x\n", idx, X);
   3306       1.1  hsuenaga 
   3307       1.1  hsuenaga        DESC_PRINT(desc->status);
   3308       1.1  hsuenaga        DESC_PRINT(desc->bytecnt);
   3309       1.1  hsuenaga        DESC_PRINT(desc->bufptr);
   3310       1.1  hsuenaga        DESC_PRINT(desc->l4chk);
   3311       1.1  hsuenaga #undef DESC_PRINT
   3312       1.1  hsuenaga }
   3313