if_axe.c revision 1.112 1 1.112 mrg /* $NetBSD: if_axe.c,v 1.112 2019/08/11 05:14:41 mrg Exp $ */
2 1.76 skrll /* $OpenBSD: if_axe.c,v 1.137 2016/04/13 11:03:37 mpi Exp $ */
3 1.35 pgoyette
4 1.35 pgoyette /*
5 1.35 pgoyette * Copyright (c) 2005, 2006, 2007 Jonathan Gray <jsg (at) openbsd.org>
6 1.35 pgoyette *
7 1.35 pgoyette * Permission to use, copy, modify, and distribute this software for any
8 1.35 pgoyette * purpose with or without fee is hereby granted, provided that the above
9 1.35 pgoyette * copyright notice and this permission notice appear in all copies.
10 1.35 pgoyette *
11 1.35 pgoyette * THE SOFTWARE IS PROVIDED "AS IS" AND THE AUTHOR DISCLAIMS ALL WARRANTIES
12 1.35 pgoyette * WITH REGARD TO THIS SOFTWARE INCLUDING ALL IMPLIED WARRANTIES OF
13 1.35 pgoyette * MERCHANTABILITY AND FITNESS. IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR
14 1.35 pgoyette * ANY SPECIAL, DIRECT, INDIRECT, OR CONSEQUENTIAL DAMAGES OR ANY DAMAGES
15 1.35 pgoyette * WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR PROFITS, WHETHER IN AN
16 1.35 pgoyette * ACTION OF CONTRACT, NEGLIGENCE OR OTHER TORTIOUS ACTION, ARISING OUT OF
17 1.35 pgoyette * OR IN CONNECTION WITH THE USE OR PERFORMANCE OF THIS SOFTWARE.
18 1.35 pgoyette */
19 1.1 augustss
20 1.1 augustss /*
21 1.1 augustss * Copyright (c) 1997, 1998, 1999, 2000-2003
22 1.1 augustss * Bill Paul <wpaul (at) windriver.com>. All rights reserved.
23 1.1 augustss *
24 1.1 augustss * Redistribution and use in source and binary forms, with or without
25 1.1 augustss * modification, are permitted provided that the following conditions
26 1.1 augustss * are met:
27 1.1 augustss * 1. Redistributions of source code must retain the above copyright
28 1.1 augustss * notice, this list of conditions and the following disclaimer.
29 1.1 augustss * 2. Redistributions in binary form must reproduce the above copyright
30 1.1 augustss * notice, this list of conditions and the following disclaimer in the
31 1.1 augustss * documentation and/or other materials provided with the distribution.
32 1.1 augustss * 3. All advertising materials mentioning features or use of this software
33 1.1 augustss * must display the following acknowledgement:
34 1.1 augustss * This product includes software developed by Bill Paul.
35 1.1 augustss * 4. Neither the name of the author nor the names of any co-contributors
36 1.1 augustss * may be used to endorse or promote products derived from this software
37 1.1 augustss * without specific prior written permission.
38 1.1 augustss *
39 1.1 augustss * THIS SOFTWARE IS PROVIDED BY Bill Paul AND CONTRIBUTORS ``AS IS'' AND
40 1.1 augustss * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
41 1.1 augustss * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
42 1.1 augustss * ARE DISCLAIMED. IN NO EVENT SHALL Bill Paul OR THE VOICES IN HIS HEAD
43 1.1 augustss * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
44 1.1 augustss * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
45 1.1 augustss * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
46 1.1 augustss * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
47 1.1 augustss * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
48 1.1 augustss * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF
49 1.1 augustss * THE POSSIBILITY OF SUCH DAMAGE.
50 1.1 augustss */
51 1.1 augustss
52 1.1 augustss /*
53 1.76 skrll * ASIX Electronics AX88172/AX88178/AX88778 USB 2.0 ethernet driver.
54 1.76 skrll * Used in the LinkSys USB200M and various other adapters.
55 1.1 augustss *
56 1.1 augustss * Written by Bill Paul <wpaul (at) windriver.com>
57 1.1 augustss * Senior Engineer
58 1.1 augustss * Wind River Systems
59 1.1 augustss */
60 1.1 augustss
61 1.1 augustss /*
62 1.1 augustss * The AX88172 provides USB ethernet supports at 10 and 100Mbps.
63 1.1 augustss * It uses an external PHY (reference designs use a RealTek chip),
64 1.1 augustss * and has a 64-bit multicast hash filter. There is some information
65 1.1 augustss * missing from the manual which one needs to know in order to make
66 1.1 augustss * the chip function:
67 1.1 augustss *
68 1.1 augustss * - You must set bit 7 in the RX control register, otherwise the
69 1.1 augustss * chip won't receive any packets.
70 1.1 augustss * - You must initialize all 3 IPG registers, or you won't be able
71 1.1 augustss * to send any packets.
72 1.1 augustss *
73 1.1 augustss * Note that this device appears to only support loading the station
74 1.76 skrll * address via autoload from the EEPROM (i.e. there's no way to manually
75 1.1 augustss * set it).
76 1.1 augustss *
77 1.1 augustss * (Adam Weinberger wanted me to name this driver if_gir.c.)
78 1.1 augustss */
79 1.1 augustss
80 1.1 augustss /*
81 1.76 skrll * Ax88178 and Ax88772 support backported from the OpenBSD driver.
82 1.76 skrll * 2007/02/12, J.R. Oldroyd, fbsd (at) opal.com
83 1.76 skrll *
84 1.76 skrll * Manual here:
85 1.76 skrll * http://www.asix.com.tw/FrootAttach/datasheet/AX88178_datasheet_Rev10.pdf
86 1.76 skrll * http://www.asix.com.tw/FrootAttach/datasheet/AX88772_datasheet_Rev10.pdf
87 1.1 augustss */
88 1.1 augustss
89 1.1 augustss #include <sys/cdefs.h>
90 1.112 mrg __KERNEL_RCSID(0, "$NetBSD: if_axe.c,v 1.112 2019/08/11 05:14:41 mrg Exp $");
91 1.1 augustss
92 1.62 christos #ifdef _KERNEL_OPT
93 1.75 skrll #include "opt_usb.h"
94 1.81 msaitoh #include "opt_net_mpsafe.h"
95 1.1 augustss #endif
96 1.1 augustss
97 1.1 augustss #include <sys/param.h>
98 1.35 pgoyette #include <sys/kernel.h>
99 1.48 pgoyette #include <sys/module.h>
100 1.1 augustss #include <sys/socket.h>
101 1.35 pgoyette #include <sys/sockio.h>
102 1.35 pgoyette #include <sys/systm.h>
103 1.1 augustss
104 1.104 mrg #include <dev/usb/usbnet.h>
105 1.76 skrll #include <dev/usb/usbhist.h>
106 1.1 augustss #include <dev/usb/if_axereg.h>
107 1.1 augustss
108 1.99 mrg struct axe_type {
109 1.99 mrg struct usb_devno axe_dev;
110 1.99 mrg uint16_t axe_flags;
111 1.99 mrg };
112 1.99 mrg
113 1.104 mrg struct axe_softc {
114 1.104 mrg struct usbnet axe_un;
115 1.99 mrg
116 1.108 mrg /* usbnet:un_flags values */
117 1.99 mrg #define AX178 __BIT(0) /* AX88178 */
118 1.99 mrg #define AX772 __BIT(1) /* AX88772 */
119 1.99 mrg #define AX772A __BIT(2) /* AX88772A */
120 1.99 mrg #define AX772B __BIT(3) /* AX88772B */
121 1.99 mrg #define AXSTD_FRAME __BIT(12)
122 1.99 mrg #define AXCSUM_FRAME __BIT(13)
123 1.99 mrg
124 1.99 mrg uint8_t axe_ipgs[3];
125 1.99 mrg uint8_t axe_phyaddrs[2];
126 1.99 mrg uint16_t sc_pwrcfg;
127 1.99 mrg uint16_t sc_lenmask;
128 1.99 mrg
129 1.99 mrg };
130 1.99 mrg
131 1.108 mrg #define AXE_IS_178_FAMILY(un) \
132 1.108 mrg ((un)->un_flags & (AX772 | AX772A | AX772B | AX178))
133 1.99 mrg
134 1.108 mrg #define AXE_IS_772(un) \
135 1.108 mrg ((un)->un_flags & (AX772 | AX772A | AX772B))
136 1.99 mrg
137 1.99 mrg #define AX_RXCSUM \
138 1.99 mrg (IFCAP_CSUM_IPv4_Rx | \
139 1.99 mrg IFCAP_CSUM_TCPv4_Rx | IFCAP_CSUM_UDPv4_Rx | \
140 1.99 mrg IFCAP_CSUM_TCPv6_Rx | IFCAP_CSUM_UDPv6_Rx)
141 1.99 mrg
142 1.99 mrg #define AX_TXCSUM \
143 1.99 mrg (IFCAP_CSUM_IPv4_Tx | \
144 1.99 mrg IFCAP_CSUM_TCPv4_Tx | IFCAP_CSUM_UDPv4_Tx | \
145 1.99 mrg IFCAP_CSUM_TCPv6_Tx | IFCAP_CSUM_UDPv6_Tx)
146 1.99 mrg
147 1.76 skrll /*
148 1.76 skrll * AXE_178_MAX_FRAME_BURST
149 1.76 skrll * max frame burst size for Ax88178 and Ax88772
150 1.76 skrll * 0 2048 bytes
151 1.76 skrll * 1 4096 bytes
152 1.76 skrll * 2 8192 bytes
153 1.76 skrll * 3 16384 bytes
154 1.76 skrll * use the largest your system can handle without USB stalling.
155 1.76 skrll *
156 1.76 skrll * NB: 88772 parts appear to generate lots of input errors with
157 1.76 skrll * a 2K rx buffer and 8K is only slightly faster than 4K on an
158 1.76 skrll * EHCI port on a T42 so change at your own risk.
159 1.76 skrll */
160 1.76 skrll #define AXE_178_MAX_FRAME_BURST 1
161 1.76 skrll
162 1.76 skrll
163 1.76 skrll #ifdef USB_DEBUG
164 1.76 skrll #ifndef AXE_DEBUG
165 1.76 skrll #define axedebug 0
166 1.1 augustss #else
167 1.76 skrll static int axedebug = 20;
168 1.76 skrll
169 1.76 skrll SYSCTL_SETUP(sysctl_hw_axe_setup, "sysctl hw.axe setup")
170 1.76 skrll {
171 1.76 skrll int err;
172 1.76 skrll const struct sysctlnode *rnode;
173 1.76 skrll const struct sysctlnode *cnode;
174 1.76 skrll
175 1.76 skrll err = sysctl_createv(clog, 0, NULL, &rnode,
176 1.76 skrll CTLFLAG_PERMANENT, CTLTYPE_NODE, "axe",
177 1.76 skrll SYSCTL_DESCR("axe global controls"),
178 1.76 skrll NULL, 0, NULL, 0, CTL_HW, CTL_CREATE, CTL_EOL);
179 1.76 skrll
180 1.76 skrll if (err)
181 1.76 skrll goto fail;
182 1.76 skrll
183 1.76 skrll /* control debugging printfs */
184 1.76 skrll err = sysctl_createv(clog, 0, &rnode, &cnode,
185 1.96 msaitoh CTLFLAG_PERMANENT | CTLFLAG_READWRITE, CTLTYPE_INT,
186 1.76 skrll "debug", SYSCTL_DESCR("Enable debugging output"),
187 1.76 skrll NULL, 0, &axedebug, sizeof(axedebug), CTL_CREATE, CTL_EOL);
188 1.76 skrll if (err)
189 1.76 skrll goto fail;
190 1.76 skrll
191 1.76 skrll return;
192 1.76 skrll fail:
193 1.76 skrll aprint_error("%s: sysctl_createv failed (err = %d)\n", __func__, err);
194 1.76 skrll }
195 1.76 skrll
196 1.76 skrll #endif /* AXE_DEBUG */
197 1.76 skrll #endif /* USB_DEBUG */
198 1.76 skrll
199 1.76 skrll #define DPRINTF(FMT,A,B,C,D) USBHIST_LOGN(axedebug,1,FMT,A,B,C,D)
200 1.76 skrll #define DPRINTFN(N,FMT,A,B,C,D) USBHIST_LOGN(axedebug,N,FMT,A,B,C,D)
201 1.76 skrll #define AXEHIST_FUNC() USBHIST_FUNC()
202 1.76 skrll #define AXEHIST_CALLED(name) USBHIST_CALLED(axedebug)
203 1.1 augustss
204 1.1 augustss /*
205 1.1 augustss * Various supported device vendors/products.
206 1.1 augustss */
207 1.35 pgoyette static const struct axe_type axe_devs[] = {
208 1.35 pgoyette { { USB_VENDOR_ABOCOM, USB_PRODUCT_ABOCOM_UFE2000}, 0 },
209 1.35 pgoyette { { USB_VENDOR_ACERCM, USB_PRODUCT_ACERCM_EP1427X2}, 0 },
210 1.35 pgoyette { { USB_VENDOR_APPLE, USB_PRODUCT_APPLE_ETHERNET }, AX772 },
211 1.1 augustss { { USB_VENDOR_ASIX, USB_PRODUCT_ASIX_AX88172}, 0 },
212 1.35 pgoyette { { USB_VENDOR_ASIX, USB_PRODUCT_ASIX_AX88772}, AX772 },
213 1.35 pgoyette { { USB_VENDOR_ASIX, USB_PRODUCT_ASIX_AX88772A}, AX772 },
214 1.76 skrll { { USB_VENDOR_ASIX, USB_PRODUCT_ASIX_AX88772B}, AX772B },
215 1.76 skrll { { USB_VENDOR_ASIX, USB_PRODUCT_ASIX_AX88772B_1}, AX772B },
216 1.35 pgoyette { { USB_VENDOR_ASIX, USB_PRODUCT_ASIX_AX88178}, AX178 },
217 1.35 pgoyette { { USB_VENDOR_ATEN, USB_PRODUCT_ATEN_UC210T}, 0 },
218 1.35 pgoyette { { USB_VENDOR_BELKIN, USB_PRODUCT_BELKIN_F5D5055 }, AX178 },
219 1.35 pgoyette { { USB_VENDOR_BILLIONTON, USB_PRODUCT_BILLIONTON_USB2AR}, 0},
220 1.76 skrll { { USB_VENDOR_CISCOLINKSYS, USB_PRODUCT_CISCOLINKSYS_USB200MV2}, AX772A },
221 1.1 augustss { { USB_VENDOR_COREGA, USB_PRODUCT_COREGA_FETHER_USB2_TX }, 0},
222 1.1 augustss { { USB_VENDOR_DLINK, USB_PRODUCT_DLINK_DUBE100}, 0 },
223 1.35 pgoyette { { USB_VENDOR_DLINK, USB_PRODUCT_DLINK_DUBE100B1 }, AX772 },
224 1.74 skrll { { USB_VENDOR_DLINK2, USB_PRODUCT_DLINK2_DUBE100B1 }, AX772 },
225 1.76 skrll { { USB_VENDOR_DLINK, USB_PRODUCT_DLINK_DUBE100C1 }, AX772B },
226 1.35 pgoyette { { USB_VENDOR_GOODWAY, USB_PRODUCT_GOODWAY_GWUSB2E}, 0 },
227 1.35 pgoyette { { USB_VENDOR_IODATA, USB_PRODUCT_IODATA_ETGUS2 }, AX178 },
228 1.35 pgoyette { { USB_VENDOR_JVC, USB_PRODUCT_JVC_MP_PRX1}, 0 },
229 1.76 skrll { { USB_VENDOR_LENOVO, USB_PRODUCT_LENOVO_ETHERNET }, AX772B },
230 1.97 msaitoh { { USB_VENDOR_LINKSYS, USB_PRODUCT_LINKSYS_HG20F9}, AX772B },
231 1.1 augustss { { USB_VENDOR_LINKSYS2, USB_PRODUCT_LINKSYS2_USB200M}, 0 },
232 1.35 pgoyette { { USB_VENDOR_LINKSYS4, USB_PRODUCT_LINKSYS4_USB1000 }, AX178 },
233 1.35 pgoyette { { USB_VENDOR_LOGITEC, USB_PRODUCT_LOGITEC_LAN_GTJU2}, AX178 },
234 1.35 pgoyette { { USB_VENDOR_MELCO, USB_PRODUCT_MELCO_LUAU2GT}, AX178 },
235 1.2 augustss { { USB_VENDOR_MELCO, USB_PRODUCT_MELCO_LUAU2KTX}, 0 },
236 1.35 pgoyette { { USB_VENDOR_MSI, USB_PRODUCT_MSI_AX88772A}, AX772 },
237 1.1 augustss { { USB_VENDOR_NETGEAR, USB_PRODUCT_NETGEAR_FA120}, 0 },
238 1.35 pgoyette { { USB_VENDOR_OQO, USB_PRODUCT_OQO_ETHER01PLUS }, AX772 },
239 1.35 pgoyette { { USB_VENDOR_PLANEX3, USB_PRODUCT_PLANEX3_GU1000T }, AX178 },
240 1.76 skrll { { USB_VENDOR_SITECOM, USB_PRODUCT_SITECOM_LN029}, 0 },
241 1.76 skrll { { USB_VENDOR_SITECOMEU, USB_PRODUCT_SITECOMEU_LN028 }, AX178 },
242 1.76 skrll { { USB_VENDOR_SITECOMEU, USB_PRODUCT_SITECOMEU_LN031 }, AX178 },
243 1.35 pgoyette { { USB_VENDOR_SYSTEMTALKS, USB_PRODUCT_SYSTEMTALKS_SGCX2UL}, 0 },
244 1.1 augustss };
245 1.9 christos #define axe_lookup(v, p) ((const struct axe_type *)usb_lookup(axe_devs, v, p))
246 1.1 augustss
247 1.76 skrll static const struct ax88772b_mfb ax88772b_mfb_table[] = {
248 1.76 skrll { 0x8000, 0x8001, 2048 },
249 1.76 skrll { 0x8100, 0x8147, 4096 },
250 1.76 skrll { 0x8200, 0x81EB, 6144 },
251 1.76 skrll { 0x8300, 0x83D7, 8192 },
252 1.76 skrll { 0x8400, 0x851E, 16384 },
253 1.76 skrll { 0x8500, 0x8666, 20480 },
254 1.76 skrll { 0x8600, 0x87AE, 24576 },
255 1.76 skrll { 0x8700, 0x8A3D, 32768 }
256 1.76 skrll };
257 1.76 skrll
258 1.35 pgoyette int axe_match(device_t, cfdata_t, void *);
259 1.35 pgoyette void axe_attach(device_t, device_t, void *);
260 1.35 pgoyette
261 1.35 pgoyette CFATTACH_DECL_NEW(axe, sizeof(struct axe_softc),
262 1.104 mrg axe_match, axe_attach, usbnet_detach, usbnet_activate);
263 1.35 pgoyette
264 1.110 mrg static void axe_stop(struct ifnet *, int);
265 1.110 mrg static int axe_ioctl(struct ifnet *, u_long, void *);
266 1.107 mrg static int axe_init(struct ifnet *);
267 1.107 mrg static usbd_status axe_mii_read_reg(struct usbnet *, int, int, uint16_t *);
268 1.107 mrg static usbd_status axe_mii_write_reg(struct usbnet *, int, int, uint16_t);
269 1.110 mrg static void axe_mii_statchg(struct ifnet *);
270 1.110 mrg static void axe_rx_loop(struct usbnet *, struct usbd_xfer *,
271 1.110 mrg struct usbnet_chain *, uint32_t);
272 1.110 mrg static unsigned axe_tx_prepare(struct usbnet *, struct mbuf *,
273 1.110 mrg struct usbnet_chain *);
274 1.35 pgoyette
275 1.35 pgoyette static void axe_ax88178_init(struct axe_softc *);
276 1.35 pgoyette static void axe_ax88772_init(struct axe_softc *);
277 1.82 ozaki static void axe_ax88772a_init(struct axe_softc *);
278 1.82 ozaki static void axe_ax88772b_init(struct axe_softc *);
279 1.1 augustss
280 1.107 mrg static struct usbnet_ops axe_ops = {
281 1.110 mrg .uno_stop = axe_stop,
282 1.110 mrg .uno_ioctl = axe_ioctl,
283 1.107 mrg .uno_read_reg = axe_mii_read_reg,
284 1.107 mrg .uno_write_reg = axe_mii_write_reg,
285 1.110 mrg .uno_statchg = axe_mii_statchg,
286 1.110 mrg .uno_tx_prepare = axe_tx_prepare,
287 1.110 mrg .uno_rx_loop = axe_rx_loop,
288 1.107 mrg .uno_init = axe_init,
289 1.107 mrg };
290 1.107 mrg
291 1.104 mrg static usbd_status
292 1.1 augustss axe_cmd(struct axe_softc *sc, int cmd, int index, int val, void *buf)
293 1.1 augustss {
294 1.76 skrll AXEHIST_FUNC(); AXEHIST_CALLED();
295 1.104 mrg struct usbnet * const un = &sc->axe_un;
296 1.38 tsutsui usb_device_request_t req;
297 1.38 tsutsui usbd_status err;
298 1.1 augustss
299 1.104 mrg usbnet_isowned_mii(un);
300 1.21 ad
301 1.107 mrg if (usbnet_isdying(un))
302 1.86 christos return -1;
303 1.1 augustss
304 1.83 pgoyette DPRINTFN(20, "cmd %#jx index %#jx val %#jx", cmd, index, val, 0);
305 1.76 skrll
306 1.1 augustss if (AXE_CMD_DIR(cmd))
307 1.1 augustss req.bmRequestType = UT_WRITE_VENDOR_DEVICE;
308 1.1 augustss else
309 1.1 augustss req.bmRequestType = UT_READ_VENDOR_DEVICE;
310 1.1 augustss req.bRequest = AXE_CMD_CMD(cmd);
311 1.1 augustss USETW(req.wValue, val);
312 1.1 augustss USETW(req.wIndex, index);
313 1.1 augustss USETW(req.wLength, AXE_CMD_LEN(cmd));
314 1.1 augustss
315 1.104 mrg err = usbd_do_request(un->un_udev, &req, buf);
316 1.104 mrg if (err)
317 1.104 mrg DPRINTF("cmd %jd err %jd", cmd, err, 0, 0);
318 1.1 augustss
319 1.104 mrg return err;
320 1.1 augustss }
321 1.1 augustss
322 1.104 mrg static usbd_status
323 1.104 mrg axe_mii_read_reg(struct usbnet *un, int phy, int reg, uint16_t *val)
324 1.1 augustss {
325 1.77 skrll AXEHIST_FUNC(); AXEHIST_CALLED();
326 1.104 mrg struct axe_softc * const sc = usbnet_softc(un);
327 1.38 tsutsui usbd_status err;
328 1.95 msaitoh uint16_t data;
329 1.1 augustss
330 1.83 pgoyette DPRINTFN(30, "phy 0x%jx reg 0x%jx\n", phy, reg, 0, 0);
331 1.76 skrll
332 1.66 roy axe_cmd(sc, AXE_CMD_MII_OPMODE_SW, 0, 0, NULL);
333 1.76 skrll
334 1.95 msaitoh err = axe_cmd(sc, AXE_CMD_MII_READ_REG, reg, phy, &data);
335 1.66 roy axe_cmd(sc, AXE_CMD_MII_OPMODE_HW, 0, 0, NULL);
336 1.100 mrg
337 1.66 roy if (err) {
338 1.104 mrg aprint_error_dev(un->un_dev, "read PHY failed\n");
339 1.95 msaitoh return err;
340 1.66 roy }
341 1.66 roy
342 1.95 msaitoh *val = le16toh(data);
343 1.108 mrg if (AXE_IS_772(un) && reg == MII_BMSR) {
344 1.66 roy /*
345 1.76 skrll * BMSR of AX88772 indicates that it supports extended
346 1.66 roy * capability but the extended status register is
347 1.76 skrll * reserved for embedded ethernet PHY. So clear the
348 1.66 roy * extended capability bit of BMSR.
349 1.66 roy */
350 1.95 msaitoh *val &= ~BMSR_EXTCAP;
351 1.1 augustss }
352 1.1 augustss
353 1.95 msaitoh DPRINTFN(30, "phy 0x%jx reg 0x%jx val %#jx", phy, reg, *val, 0);
354 1.66 roy
355 1.104 mrg return USBD_NORMAL_COMPLETION;
356 1.1 augustss }
357 1.1 augustss
358 1.104 mrg static usbd_status
359 1.104 mrg axe_mii_write_reg(struct usbnet *un, int phy, int reg, uint16_t val)
360 1.1 augustss {
361 1.104 mrg struct axe_softc * const sc = usbnet_softc(un);
362 1.38 tsutsui usbd_status err;
363 1.104 mrg uint16_t aval;
364 1.1 augustss
365 1.104 mrg aval = htole16(val);
366 1.1 augustss
367 1.1 augustss axe_cmd(sc, AXE_CMD_MII_OPMODE_SW, 0, 0, NULL);
368 1.104 mrg err = axe_cmd(sc, AXE_CMD_MII_WRITE_REG, reg, phy, &aval);
369 1.1 augustss axe_cmd(sc, AXE_CMD_MII_OPMODE_HW, 0, 0, NULL);
370 1.1 augustss
371 1.104 mrg return err;
372 1.66 roy }
373 1.66 roy
374 1.66 roy static void
375 1.110 mrg axe_mii_statchg(struct ifnet *ifp)
376 1.1 augustss {
377 1.76 skrll AXEHIST_FUNC(); AXEHIST_CALLED();
378 1.76 skrll
379 1.104 mrg struct usbnet * const un = ifp->if_softc;
380 1.104 mrg struct axe_softc * const sc = usbnet_softc(un);
381 1.107 mrg struct mii_data *mii = usbnet_mii(un);
382 1.5 augustss int val, err;
383 1.5 augustss
384 1.107 mrg if (usbnet_isdying(un))
385 1.100 mrg return;
386 1.100 mrg
387 1.76 skrll val = 0;
388 1.109 mrg usbnet_set_link(un, false);
389 1.76 skrll if ((IFM_OPTIONS(mii->mii_media_active) & IFM_FDX) != 0) {
390 1.76 skrll val |= AXE_MEDIA_FULL_DUPLEX;
391 1.108 mrg if (AXE_IS_178_FAMILY(un)) {
392 1.76 skrll if ((IFM_OPTIONS(mii->mii_media_active) &
393 1.76 skrll IFM_ETH_TXPAUSE) != 0)
394 1.76 skrll val |= AXE_178_MEDIA_TXFLOW_CONTROL_EN;
395 1.76 skrll if ((IFM_OPTIONS(mii->mii_media_active) &
396 1.76 skrll IFM_ETH_RXPAUSE) != 0)
397 1.76 skrll val |= AXE_178_MEDIA_RXFLOW_CONTROL_EN;
398 1.76 skrll }
399 1.76 skrll }
400 1.108 mrg if (AXE_IS_178_FAMILY(un)) {
401 1.76 skrll val |= AXE_178_MEDIA_RX_EN | AXE_178_MEDIA_MAGIC;
402 1.108 mrg if (un->un_flags & AX178)
403 1.66 roy val |= AXE_178_MEDIA_ENCK;
404 1.35 pgoyette switch (IFM_SUBTYPE(mii->mii_media_active)) {
405 1.38 tsutsui case IFM_1000_T:
406 1.35 pgoyette val |= AXE_178_MEDIA_GMII | AXE_178_MEDIA_ENCK;
407 1.109 mrg usbnet_set_link(un, true);
408 1.35 pgoyette break;
409 1.35 pgoyette case IFM_100_TX:
410 1.35 pgoyette val |= AXE_178_MEDIA_100TX;
411 1.109 mrg usbnet_set_link(un, true);
412 1.35 pgoyette break;
413 1.35 pgoyette case IFM_10_T:
414 1.109 mrg usbnet_set_link(un, true);
415 1.35 pgoyette break;
416 1.35 pgoyette }
417 1.35 pgoyette }
418 1.35 pgoyette
419 1.83 pgoyette DPRINTF("val=0x%jx", val, 0, 0, 0);
420 1.104 mrg usbnet_lock_mii(un);
421 1.5 augustss err = axe_cmd(sc, AXE_CMD_WRITE_MEDIA, 0, val, NULL);
422 1.104 mrg usbnet_unlock_mii(un);
423 1.104 mrg if (err)
424 1.104 mrg aprint_error_dev(un->un_dev, "media change failed\n");
425 1.1 augustss }
426 1.1 augustss
427 1.35 pgoyette static void
428 1.104 mrg axe_setiff_locked(struct usbnet *un)
429 1.1 augustss {
430 1.76 skrll AXEHIST_FUNC(); AXEHIST_CALLED();
431 1.104 mrg struct axe_softc * const sc = usbnet_softc(un);
432 1.104 mrg struct ifnet * const ifp = usbnet_ifp(un);
433 1.104 mrg struct ethercom *ec = usbnet_ec(un);
434 1.38 tsutsui struct ether_multi *enm;
435 1.38 tsutsui struct ether_multistep step;
436 1.38 tsutsui uint32_t h = 0;
437 1.38 tsutsui uint16_t rxmode;
438 1.38 tsutsui uint8_t hashtbl[8] = { 0, 0, 0, 0, 0, 0, 0, 0 };
439 1.1 augustss
440 1.104 mrg usbnet_isowned_mii(un);
441 1.100 mrg
442 1.107 mrg if (usbnet_isdying(un))
443 1.1 augustss return;
444 1.1 augustss
445 1.86 christos if (axe_cmd(sc, AXE_CMD_RXCTL_READ, 0, 0, &rxmode)) {
446 1.104 mrg aprint_error_dev(un->un_dev, "can't read rxmode");
447 1.86 christos return;
448 1.86 christos }
449 1.10 tron rxmode = le16toh(rxmode);
450 1.1 augustss
451 1.76 skrll rxmode &=
452 1.76 skrll ~(AXE_RXCMD_ALLMULTI | AXE_RXCMD_PROMISC |
453 1.76 skrll AXE_RXCMD_BROADCAST | AXE_RXCMD_MULTICAST);
454 1.76 skrll
455 1.76 skrll rxmode |=
456 1.76 skrll (ifp->if_flags & IFF_BROADCAST) ? AXE_RXCMD_BROADCAST : 0;
457 1.76 skrll
458 1.76 skrll if (ifp->if_flags & (IFF_ALLMULTI | IFF_PROMISC)) {
459 1.76 skrll if (ifp->if_flags & IFF_PROMISC)
460 1.76 skrll rxmode |= AXE_RXCMD_PROMISC;
461 1.35 pgoyette goto allmulti;
462 1.35 pgoyette }
463 1.1 augustss
464 1.35 pgoyette /* Now program new ones */
465 1.98 msaitoh ETHER_LOCK(ec);
466 1.98 msaitoh ETHER_FIRST_MULTI(step, ec, enm);
467 1.1 augustss while (enm != NULL) {
468 1.1 augustss if (memcmp(enm->enm_addrlo, enm->enm_addrhi,
469 1.98 msaitoh ETHER_ADDR_LEN) != 0) {
470 1.98 msaitoh ETHER_UNLOCK(ec);
471 1.1 augustss goto allmulti;
472 1.98 msaitoh }
473 1.1 augustss
474 1.1 augustss h = ether_crc32_be(enm->enm_addrlo, ETHER_ADDR_LEN) >> 26;
475 1.35 pgoyette hashtbl[h >> 3] |= 1U << (h & 7);
476 1.1 augustss ETHER_NEXT_MULTI(step, enm);
477 1.1 augustss }
478 1.98 msaitoh ETHER_UNLOCK(ec);
479 1.1 augustss ifp->if_flags &= ~IFF_ALLMULTI;
480 1.76 skrll rxmode |= AXE_RXCMD_MULTICAST;
481 1.76 skrll
482 1.86 christos axe_cmd(sc, AXE_CMD_WRITE_MCAST, 0, 0, hashtbl);
483 1.1 augustss axe_cmd(sc, AXE_CMD_RXCTL_WRITE, 0, rxmode, NULL);
484 1.1 augustss return;
485 1.35 pgoyette
486 1.35 pgoyette allmulti:
487 1.35 pgoyette ifp->if_flags |= IFF_ALLMULTI;
488 1.35 pgoyette rxmode |= AXE_RXCMD_ALLMULTI;
489 1.35 pgoyette axe_cmd(sc, AXE_CMD_RXCTL_WRITE, 0, rxmode, NULL);
490 1.100 mrg }
491 1.100 mrg
492 1.100 mrg static void
493 1.104 mrg axe_setiff(struct usbnet *un)
494 1.100 mrg {
495 1.104 mrg usbnet_lock_mii(un);
496 1.104 mrg axe_setiff_locked(un);
497 1.104 mrg usbnet_unlock_mii(un);
498 1.1 augustss }
499 1.1 augustss
500 1.88 christos static void
501 1.104 mrg axe_ax_init(struct usbnet *un)
502 1.88 christos {
503 1.104 mrg struct axe_softc * const sc = usbnet_softc(un);
504 1.104 mrg
505 1.89 christos int cmd = AXE_178_CMD_READ_NODEID;
506 1.89 christos
507 1.108 mrg if (un->un_flags & AX178) {
508 1.88 christos axe_ax88178_init(sc);
509 1.108 mrg } else if (un->un_flags & AX772) {
510 1.88 christos axe_ax88772_init(sc);
511 1.108 mrg } else if (un->un_flags & AX772A) {
512 1.88 christos axe_ax88772a_init(sc);
513 1.108 mrg } else if (un->un_flags & AX772B) {
514 1.88 christos axe_ax88772b_init(sc);
515 1.89 christos return;
516 1.89 christos } else {
517 1.89 christos cmd = AXE_172_CMD_READ_NODEID;
518 1.89 christos }
519 1.89 christos
520 1.104 mrg if (axe_cmd(sc, cmd, 0, 0, un->un_eaddr)) {
521 1.104 mrg aprint_error_dev(un->un_dev,
522 1.89 christos "failed to read ethernet address\n");
523 1.88 christos }
524 1.88 christos }
525 1.88 christos
526 1.76 skrll
527 1.35 pgoyette static void
528 1.104 mrg axe_reset(struct usbnet *un)
529 1.1 augustss {
530 1.38 tsutsui
531 1.104 mrg usbnet_isowned_mii(un);
532 1.104 mrg
533 1.107 mrg if (usbnet_isdying(un))
534 1.1 augustss return;
535 1.76 skrll
536 1.76 skrll /*
537 1.76 skrll * softnet_lock can be taken when NET_MPAFE is not defined when calling
538 1.100 mrg * if_addr_init -> if_init. This doesn't mix well with the
539 1.76 skrll * usbd_delay_ms calls in the init routines as things like nd6_slowtimo
540 1.76 skrll * can fire during the wait and attempt to take softnet_lock and then
541 1.104 mrg * block the softclk thread meaning the wait never ends.
542 1.76 skrll */
543 1.76 skrll #ifndef NET_MPSAFE
544 1.1 augustss /* XXX What to reset? */
545 1.1 augustss
546 1.1 augustss /* Wait a little while for the chip to get its brains in order. */
547 1.1 augustss DELAY(1000);
548 1.76 skrll #else
549 1.104 mrg axe_ax_init(un);
550 1.76 skrll #endif
551 1.1 augustss }
552 1.1 augustss
553 1.66 roy static int
554 1.66 roy axe_get_phyno(struct axe_softc *sc, int sel)
555 1.66 roy {
556 1.66 roy int phyno;
557 1.66 roy
558 1.66 roy switch (AXE_PHY_TYPE(sc->axe_phyaddrs[sel])) {
559 1.66 roy case PHY_TYPE_100_HOME:
560 1.66 roy /* FALLTHROUGH */
561 1.66 roy case PHY_TYPE_GIG:
562 1.66 roy phyno = AXE_PHY_NO(sc->axe_phyaddrs[sel]);
563 1.66 roy break;
564 1.66 roy case PHY_TYPE_SPECIAL:
565 1.66 roy /* FALLTHROUGH */
566 1.66 roy case PHY_TYPE_RSVD:
567 1.66 roy /* FALLTHROUGH */
568 1.66 roy case PHY_TYPE_NON_SUP:
569 1.66 roy /* FALLTHROUGH */
570 1.66 roy default:
571 1.66 roy phyno = -1;
572 1.66 roy break;
573 1.66 roy }
574 1.66 roy
575 1.66 roy return phyno;
576 1.66 roy }
577 1.66 roy
578 1.66 roy #define AXE_GPIO_WRITE(x, y) do { \
579 1.66 roy axe_cmd(sc, AXE_CMD_WRITE_GPIO, 0, (x), NULL); \
580 1.104 mrg usbd_delay_ms(sc->axe_un.un_udev, hztoms(y)); \
581 1.66 roy } while (0)
582 1.66 roy
583 1.35 pgoyette static void
584 1.35 pgoyette axe_ax88178_init(struct axe_softc *sc)
585 1.35 pgoyette {
586 1.76 skrll AXEHIST_FUNC(); AXEHIST_CALLED();
587 1.104 mrg struct usbnet * const un = &sc->axe_un;
588 1.66 roy int gpio0, ledmode, phymode;
589 1.66 roy uint16_t eeprom, val;
590 1.35 pgoyette
591 1.35 pgoyette axe_cmd(sc, AXE_CMD_SROM_WR_ENABLE, 0, 0, NULL);
592 1.35 pgoyette /* XXX magic */
593 1.86 christos if (axe_cmd(sc, AXE_CMD_SROM_READ, 0, 0x0017, &eeprom) != 0)
594 1.86 christos eeprom = 0xffff;
595 1.35 pgoyette axe_cmd(sc, AXE_CMD_SROM_WR_DISABLE, 0, 0, NULL);
596 1.35 pgoyette
597 1.35 pgoyette eeprom = le16toh(eeprom);
598 1.35 pgoyette
599 1.83 pgoyette DPRINTF("EEPROM is 0x%jx", eeprom, 0, 0, 0);
600 1.35 pgoyette
601 1.35 pgoyette /* if EEPROM is invalid we have to use to GPIO0 */
602 1.35 pgoyette if (eeprom == 0xffff) {
603 1.66 roy phymode = AXE_PHY_MODE_MARVELL;
604 1.35 pgoyette gpio0 = 1;
605 1.66 roy ledmode = 0;
606 1.35 pgoyette } else {
607 1.66 roy phymode = eeprom & 0x7f;
608 1.35 pgoyette gpio0 = (eeprom & 0x80) ? 0 : 1;
609 1.66 roy ledmode = eeprom >> 8;
610 1.35 pgoyette }
611 1.35 pgoyette
612 1.83 pgoyette DPRINTF("use gpio0: %jd, phymode %jd", gpio0, phymode, 0, 0);
613 1.35 pgoyette
614 1.66 roy /* Program GPIOs depending on PHY hardware. */
615 1.66 roy switch (phymode) {
616 1.66 roy case AXE_PHY_MODE_MARVELL:
617 1.66 roy if (gpio0 == 1) {
618 1.66 roy AXE_GPIO_WRITE(AXE_GPIO_RELOAD_EEPROM | AXE_GPIO0_EN,
619 1.66 roy hz / 32);
620 1.66 roy AXE_GPIO_WRITE(AXE_GPIO0_EN | AXE_GPIO2 | AXE_GPIO2_EN,
621 1.66 roy hz / 32);
622 1.66 roy AXE_GPIO_WRITE(AXE_GPIO0_EN | AXE_GPIO2_EN, hz / 4);
623 1.66 roy AXE_GPIO_WRITE(AXE_GPIO0_EN | AXE_GPIO2 | AXE_GPIO2_EN,
624 1.66 roy hz / 32);
625 1.66 roy } else {
626 1.66 roy AXE_GPIO_WRITE(AXE_GPIO_RELOAD_EEPROM | AXE_GPIO1 |
627 1.66 roy AXE_GPIO1_EN, hz / 3);
628 1.66 roy if (ledmode == 1) {
629 1.66 roy AXE_GPIO_WRITE(AXE_GPIO1_EN, hz / 3);
630 1.66 roy AXE_GPIO_WRITE(AXE_GPIO1 | AXE_GPIO1_EN,
631 1.66 roy hz / 3);
632 1.66 roy } else {
633 1.66 roy AXE_GPIO_WRITE(AXE_GPIO1 | AXE_GPIO1_EN |
634 1.66 roy AXE_GPIO2 | AXE_GPIO2_EN, hz / 32);
635 1.66 roy AXE_GPIO_WRITE(AXE_GPIO1 | AXE_GPIO1_EN |
636 1.66 roy AXE_GPIO2_EN, hz / 4);
637 1.66 roy AXE_GPIO_WRITE(AXE_GPIO1 | AXE_GPIO1_EN |
638 1.66 roy AXE_GPIO2 | AXE_GPIO2_EN, hz / 32);
639 1.66 roy }
640 1.66 roy }
641 1.66 roy break;
642 1.66 roy case AXE_PHY_MODE_CICADA:
643 1.66 roy case AXE_PHY_MODE_CICADA_V2:
644 1.66 roy case AXE_PHY_MODE_CICADA_V2_ASIX:
645 1.66 roy if (gpio0 == 1)
646 1.66 roy AXE_GPIO_WRITE(AXE_GPIO_RELOAD_EEPROM | AXE_GPIO0 |
647 1.66 roy AXE_GPIO0_EN, hz / 32);
648 1.66 roy else
649 1.66 roy AXE_GPIO_WRITE(AXE_GPIO_RELOAD_EEPROM | AXE_GPIO1 |
650 1.66 roy AXE_GPIO1_EN, hz / 32);
651 1.66 roy break;
652 1.66 roy case AXE_PHY_MODE_AGERE:
653 1.66 roy AXE_GPIO_WRITE(AXE_GPIO_RELOAD_EEPROM | AXE_GPIO1 |
654 1.66 roy AXE_GPIO1_EN, hz / 32);
655 1.66 roy AXE_GPIO_WRITE(AXE_GPIO1 | AXE_GPIO1_EN | AXE_GPIO2 |
656 1.66 roy AXE_GPIO2_EN, hz / 32);
657 1.66 roy AXE_GPIO_WRITE(AXE_GPIO1 | AXE_GPIO1_EN | AXE_GPIO2_EN, hz / 4);
658 1.66 roy AXE_GPIO_WRITE(AXE_GPIO1 | AXE_GPIO1_EN | AXE_GPIO2 |
659 1.66 roy AXE_GPIO2_EN, hz / 32);
660 1.66 roy break;
661 1.66 roy case AXE_PHY_MODE_REALTEK_8211CL:
662 1.66 roy case AXE_PHY_MODE_REALTEK_8211BN:
663 1.66 roy case AXE_PHY_MODE_REALTEK_8251CL:
664 1.66 roy val = gpio0 == 1 ? AXE_GPIO0 | AXE_GPIO0_EN :
665 1.66 roy AXE_GPIO1 | AXE_GPIO1_EN;
666 1.66 roy AXE_GPIO_WRITE(val, hz / 32);
667 1.66 roy AXE_GPIO_WRITE(val | AXE_GPIO2 | AXE_GPIO2_EN, hz / 32);
668 1.66 roy AXE_GPIO_WRITE(val | AXE_GPIO2_EN, hz / 4);
669 1.66 roy AXE_GPIO_WRITE(val | AXE_GPIO2 | AXE_GPIO2_EN, hz / 32);
670 1.66 roy if (phymode == AXE_PHY_MODE_REALTEK_8211CL) {
671 1.104 mrg axe_mii_write_reg(un, un->un_phyno, 0x1F, 0x0005);
672 1.104 mrg axe_mii_write_reg(un, un->un_phyno, 0x0C, 0x0000);
673 1.104 mrg axe_mii_read_reg(un, un->un_phyno, 0x0001, &val);
674 1.104 mrg axe_mii_write_reg(un, un->un_phyno, 0x01, val | 0x0080);
675 1.104 mrg axe_mii_write_reg(un, un->un_phyno, 0x1F, 0x0000);
676 1.66 roy }
677 1.66 roy break;
678 1.66 roy default:
679 1.66 roy /* Unknown PHY model or no need to program GPIOs. */
680 1.66 roy break;
681 1.35 pgoyette }
682 1.35 pgoyette
683 1.35 pgoyette /* soft reset */
684 1.35 pgoyette axe_cmd(sc, AXE_CMD_SW_RESET_REG, 0, AXE_SW_RESET_CLEAR, NULL);
685 1.104 mrg usbd_delay_ms(un->un_udev, 150);
686 1.35 pgoyette axe_cmd(sc, AXE_CMD_SW_RESET_REG, 0,
687 1.35 pgoyette AXE_SW_RESET_PRL | AXE_178_RESET_MAGIC, NULL);
688 1.104 mrg usbd_delay_ms(un->un_udev, 150);
689 1.76 skrll /* Enable MII/GMII/RGMII interface to work with external PHY. */
690 1.35 pgoyette axe_cmd(sc, AXE_CMD_SW_PHY_SELECT, 0, 0, NULL);
691 1.104 mrg usbd_delay_ms(un->un_udev, 10);
692 1.35 pgoyette axe_cmd(sc, AXE_CMD_RXCTL_WRITE, 0, 0, NULL);
693 1.35 pgoyette }
694 1.35 pgoyette
695 1.35 pgoyette static void
696 1.35 pgoyette axe_ax88772_init(struct axe_softc *sc)
697 1.35 pgoyette {
698 1.76 skrll AXEHIST_FUNC(); AXEHIST_CALLED();
699 1.104 mrg struct usbnet * const un = &sc->axe_un;
700 1.35 pgoyette
701 1.35 pgoyette axe_cmd(sc, AXE_CMD_WRITE_GPIO, 0, 0x00b0, NULL);
702 1.104 mrg usbd_delay_ms(un->un_udev, 40);
703 1.35 pgoyette
704 1.104 mrg if (un->un_phyno == AXE_772_PHY_NO_EPHY) {
705 1.35 pgoyette /* ask for the embedded PHY */
706 1.76 skrll axe_cmd(sc, AXE_CMD_SW_PHY_SELECT, 0,
707 1.76 skrll AXE_SW_PHY_SELECT_EMBEDDED, NULL);
708 1.104 mrg usbd_delay_ms(un->un_udev, 10);
709 1.35 pgoyette
710 1.35 pgoyette /* power down and reset state, pin reset state */
711 1.35 pgoyette axe_cmd(sc, AXE_CMD_SW_RESET_REG, 0, AXE_SW_RESET_CLEAR, NULL);
712 1.104 mrg usbd_delay_ms(un->un_udev, 60);
713 1.35 pgoyette
714 1.35 pgoyette /* power down/reset state, pin operating state */
715 1.35 pgoyette axe_cmd(sc, AXE_CMD_SW_RESET_REG, 0,
716 1.35 pgoyette AXE_SW_RESET_IPPD | AXE_SW_RESET_PRL, NULL);
717 1.104 mrg usbd_delay_ms(un->un_udev, 150);
718 1.35 pgoyette
719 1.35 pgoyette /* power up, reset */
720 1.35 pgoyette axe_cmd(sc, AXE_CMD_SW_RESET_REG, 0, AXE_SW_RESET_PRL, NULL);
721 1.35 pgoyette
722 1.35 pgoyette /* power up, operating */
723 1.35 pgoyette axe_cmd(sc, AXE_CMD_SW_RESET_REG, 0,
724 1.35 pgoyette AXE_SW_RESET_IPRL | AXE_SW_RESET_PRL, NULL);
725 1.35 pgoyette } else {
726 1.35 pgoyette /* ask for external PHY */
727 1.76 skrll axe_cmd(sc, AXE_CMD_SW_PHY_SELECT, 0, AXE_SW_PHY_SELECT_EXT,
728 1.76 skrll NULL);
729 1.104 mrg usbd_delay_ms(un->un_udev, 10);
730 1.35 pgoyette
731 1.35 pgoyette /* power down internal PHY */
732 1.35 pgoyette axe_cmd(sc, AXE_CMD_SW_RESET_REG, 0,
733 1.35 pgoyette AXE_SW_RESET_IPPD | AXE_SW_RESET_PRL, NULL);
734 1.35 pgoyette }
735 1.35 pgoyette
736 1.104 mrg usbd_delay_ms(un->un_udev, 150);
737 1.35 pgoyette axe_cmd(sc, AXE_CMD_RXCTL_WRITE, 0, 0, NULL);
738 1.35 pgoyette }
739 1.35 pgoyette
740 1.76 skrll static void
741 1.76 skrll axe_ax88772_phywake(struct axe_softc *sc)
742 1.76 skrll {
743 1.76 skrll AXEHIST_FUNC(); AXEHIST_CALLED();
744 1.104 mrg struct usbnet * const un = &sc->axe_un;
745 1.76 skrll
746 1.104 mrg if (un->un_phyno == AXE_772_PHY_NO_EPHY) {
747 1.76 skrll /* Manually select internal(embedded) PHY - MAC mode. */
748 1.76 skrll axe_cmd(sc, AXE_CMD_SW_PHY_SELECT, 0,
749 1.86 christos AXE_SW_PHY_SELECT_EMBEDDED, NULL);
750 1.104 mrg usbd_delay_ms(un->un_udev, hztoms(hz / 32));
751 1.76 skrll } else {
752 1.76 skrll /*
753 1.76 skrll * Manually select external PHY - MAC mode.
754 1.76 skrll * Reverse MII/RMII is for AX88772A PHY mode.
755 1.76 skrll */
756 1.76 skrll axe_cmd(sc, AXE_CMD_SW_PHY_SELECT, 0, AXE_SW_PHY_SELECT_SS_ENB |
757 1.76 skrll AXE_SW_PHY_SELECT_EXT | AXE_SW_PHY_SELECT_SS_MII, NULL);
758 1.104 mrg usbd_delay_ms(un->un_udev, hztoms(hz / 32));
759 1.76 skrll }
760 1.76 skrll
761 1.76 skrll axe_cmd(sc, AXE_CMD_SW_RESET_REG, 0, AXE_SW_RESET_IPPD |
762 1.76 skrll AXE_SW_RESET_IPRL, NULL);
763 1.76 skrll
764 1.76 skrll /* T1 = min 500ns everywhere */
765 1.104 mrg usbd_delay_ms(un->un_udev, 150);
766 1.76 skrll
767 1.76 skrll /* Take PHY out of power down. */
768 1.104 mrg if (un->un_phyno == AXE_772_PHY_NO_EPHY) {
769 1.76 skrll axe_cmd(sc, AXE_CMD_SW_RESET_REG, 0, AXE_SW_RESET_IPRL, NULL);
770 1.76 skrll } else {
771 1.76 skrll axe_cmd(sc, AXE_CMD_SW_RESET_REG, 0, AXE_SW_RESET_PRTE, NULL);
772 1.76 skrll }
773 1.76 skrll
774 1.76 skrll /* 772 T2 is 60ms. 772A T2 is 160ms, 772B T2 is 600ms */
775 1.104 mrg usbd_delay_ms(un->un_udev, 600);
776 1.76 skrll
777 1.76 skrll axe_cmd(sc, AXE_CMD_SW_RESET_REG, 0, AXE_SW_RESET_CLEAR, NULL);
778 1.76 skrll
779 1.76 skrll /* T3 = 500ns everywhere */
780 1.104 mrg usbd_delay_ms(un->un_udev, hztoms(hz / 32));
781 1.76 skrll axe_cmd(sc, AXE_CMD_SW_RESET_REG, 0, AXE_SW_RESET_IPRL, NULL);
782 1.104 mrg usbd_delay_ms(un->un_udev, hztoms(hz / 32));
783 1.76 skrll }
784 1.76 skrll
785 1.76 skrll static void
786 1.76 skrll axe_ax88772a_init(struct axe_softc *sc)
787 1.76 skrll {
788 1.76 skrll AXEHIST_FUNC(); AXEHIST_CALLED();
789 1.76 skrll
790 1.76 skrll /* Reload EEPROM. */
791 1.76 skrll AXE_GPIO_WRITE(AXE_GPIO_RELOAD_EEPROM, hz / 32);
792 1.76 skrll axe_ax88772_phywake(sc);
793 1.76 skrll /* Stop MAC. */
794 1.76 skrll axe_cmd(sc, AXE_CMD_RXCTL_WRITE, 0, 0, NULL);
795 1.76 skrll }
796 1.76 skrll
797 1.76 skrll static void
798 1.76 skrll axe_ax88772b_init(struct axe_softc *sc)
799 1.76 skrll {
800 1.76 skrll AXEHIST_FUNC(); AXEHIST_CALLED();
801 1.104 mrg struct usbnet * const un = &sc->axe_un;
802 1.76 skrll uint16_t eeprom;
803 1.76 skrll int i;
804 1.76 skrll
805 1.76 skrll /* Reload EEPROM. */
806 1.76 skrll AXE_GPIO_WRITE(AXE_GPIO_RELOAD_EEPROM , hz / 32);
807 1.76 skrll
808 1.76 skrll /*
809 1.76 skrll * Save PHY power saving configuration(high byte) and
810 1.76 skrll * clear EEPROM checksum value(low byte).
811 1.76 skrll */
812 1.86 christos if (axe_cmd(sc, AXE_CMD_SROM_READ, 0, AXE_EEPROM_772B_PHY_PWRCFG,
813 1.86 christos &eeprom)) {
814 1.104 mrg aprint_error_dev(un->un_dev, "failed to read eeprom\n");
815 1.86 christos return;
816 1.86 christos }
817 1.86 christos
818 1.76 skrll sc->sc_pwrcfg = le16toh(eeprom) & 0xFF00;
819 1.76 skrll
820 1.76 skrll /*
821 1.76 skrll * Auto-loaded default station address from internal ROM is
822 1.76 skrll * 00:00:00:00:00:00 such that an explicit access to EEPROM
823 1.76 skrll * is required to get real station address.
824 1.76 skrll */
825 1.104 mrg uint8_t *eaddr = un->un_eaddr;
826 1.76 skrll for (i = 0; i < ETHER_ADDR_LEN / 2; i++) {
827 1.86 christos if (axe_cmd(sc, AXE_CMD_SROM_READ, 0,
828 1.86 christos AXE_EEPROM_772B_NODE_ID + i, &eeprom)) {
829 1.104 mrg aprint_error_dev(un->un_dev,
830 1.86 christos "failed to read eeprom\n");
831 1.86 christos eeprom = 0;
832 1.86 christos }
833 1.76 skrll eeprom = le16toh(eeprom);
834 1.76 skrll *eaddr++ = (uint8_t)(eeprom & 0xFF);
835 1.76 skrll *eaddr++ = (uint8_t)((eeprom >> 8) & 0xFF);
836 1.76 skrll }
837 1.76 skrll /* Wakeup PHY. */
838 1.76 skrll axe_ax88772_phywake(sc);
839 1.76 skrll /* Stop MAC. */
840 1.76 skrll axe_cmd(sc, AXE_CMD_RXCTL_WRITE, 0, 0, NULL);
841 1.76 skrll }
842 1.76 skrll
843 1.76 skrll #undef AXE_GPIO_WRITE
844 1.76 skrll
845 1.1 augustss /*
846 1.1 augustss * Probe for a AX88172 chip.
847 1.1 augustss */
848 1.27 dyoung int
849 1.27 dyoung axe_match(device_t parent, cfdata_t match, void *aux)
850 1.1 augustss {
851 1.27 dyoung struct usb_attach_arg *uaa = aux;
852 1.1 augustss
853 1.71 skrll return axe_lookup(uaa->uaa_vendor, uaa->uaa_product) != NULL ?
854 1.38 tsutsui UMATCH_VENDOR_PRODUCT : UMATCH_NONE;
855 1.1 augustss }
856 1.1 augustss
857 1.1 augustss /*
858 1.1 augustss * Attach the interface. Allocate softc structures, do ifmedia
859 1.1 augustss * setup and ethernet/BPF attach.
860 1.1 augustss */
861 1.27 dyoung void
862 1.27 dyoung axe_attach(device_t parent, device_t self, void *aux)
863 1.1 augustss {
864 1.76 skrll AXEHIST_FUNC(); AXEHIST_CALLED();
865 1.27 dyoung struct axe_softc *sc = device_private(self);
866 1.104 mrg struct usbnet * const un = &sc->axe_un;
867 1.27 dyoung struct usb_attach_arg *uaa = aux;
868 1.71 skrll struct usbd_device *dev = uaa->uaa_device;
869 1.1 augustss usbd_status err;
870 1.1 augustss usb_interface_descriptor_t *id;
871 1.1 augustss usb_endpoint_descriptor_t *ed;
872 1.8 augustss char *devinfop;
873 1.104 mrg unsigned bufsz;
874 1.100 mrg int i;
875 1.1 augustss
876 1.104 mrg /* Switch to usbnet for device_private() */
877 1.104 mrg self->dv_private = un;
878 1.104 mrg
879 1.28 dyoung aprint_naive("\n");
880 1.28 dyoung aprint_normal("\n");
881 1.29 plunky devinfop = usbd_devinfo_alloc(dev, 0);
882 1.29 plunky aprint_normal_dev(self, "%s\n", devinfop);
883 1.29 plunky usbd_devinfo_free(devinfop);
884 1.1 augustss
885 1.104 mrg un->un_dev = self;
886 1.104 mrg un->un_udev = dev;
887 1.104 mrg un->un_sc = sc;
888 1.107 mrg un->un_ops = &axe_ops;
889 1.109 mrg un->un_rx_xfer_flags = USBD_SHORT_XFER_OK;
890 1.109 mrg un->un_tx_xfer_flags = USBD_FORCE_SHORT_XFER;
891 1.109 mrg un->un_rx_list_cnt = AXE_RX_LIST_CNT;
892 1.109 mrg un->un_tx_list_cnt = AXE_TX_LIST_CNT;
893 1.104 mrg
894 1.1 augustss err = usbd_set_config_no(dev, AXE_CONFIG_NO, 1);
895 1.1 augustss if (err) {
896 1.61 skrll aprint_error_dev(self, "failed to set configuration"
897 1.61 skrll ", err=%s\n", usbd_errstr(err));
898 1.28 dyoung return;
899 1.1 augustss }
900 1.1 augustss
901 1.108 mrg un->un_flags = axe_lookup(uaa->uaa_vendor, uaa->uaa_product)->axe_flags;
902 1.35 pgoyette
903 1.104 mrg err = usbd_device2interface_handle(dev, AXE_IFACE_IDX, &un->un_iface);
904 1.1 augustss if (err) {
905 1.25 cube aprint_error_dev(self, "getting interface handle failed\n");
906 1.28 dyoung return;
907 1.1 augustss }
908 1.1 augustss
909 1.104 mrg id = usbd_get_interface_descriptor(un->un_iface);
910 1.1 augustss
911 1.35 pgoyette /* decide on what our bufsize will be */
912 1.108 mrg if (AXE_IS_178_FAMILY(un))
913 1.104 mrg bufsz = (un->un_udev->ud_speed == USB_SPEED_HIGH) ?
914 1.35 pgoyette AXE_178_MAX_BUFSZ : AXE_178_MIN_BUFSZ;
915 1.35 pgoyette else
916 1.104 mrg bufsz = AXE_172_BUFSZ;
917 1.109 mrg un->un_rx_bufsz = un->un_tx_bufsz = bufsz;
918 1.104 mrg
919 1.104 mrg un->un_ed[USBNET_ENDPT_RX] = 0;
920 1.104 mrg un->un_ed[USBNET_ENDPT_TX] = 0;
921 1.104 mrg un->un_ed[USBNET_ENDPT_INTR] = 0;
922 1.76 skrll
923 1.1 augustss /* Find endpoints. */
924 1.1 augustss for (i = 0; i < id->bNumEndpoints; i++) {
925 1.104 mrg ed = usbd_interface2endpoint_descriptor(un->un_iface, i);
926 1.38 tsutsui if (ed == NULL) {
927 1.25 cube aprint_error_dev(self, "couldn't get ep %d\n", i);
928 1.28 dyoung return;
929 1.1 augustss }
930 1.76 skrll const uint8_t xt = UE_GET_XFERTYPE(ed->bmAttributes);
931 1.76 skrll const uint8_t dir = UE_GET_DIR(ed->bEndpointAddress);
932 1.76 skrll
933 1.76 skrll if (dir == UE_DIR_IN && xt == UE_BULK &&
934 1.104 mrg un->un_ed[USBNET_ENDPT_RX] == 0) {
935 1.104 mrg un->un_ed[USBNET_ENDPT_RX] = ed->bEndpointAddress;
936 1.76 skrll } else if (dir == UE_DIR_OUT && xt == UE_BULK &&
937 1.104 mrg un->un_ed[USBNET_ENDPT_TX] == 0) {
938 1.104 mrg un->un_ed[USBNET_ENDPT_TX] = ed->bEndpointAddress;
939 1.76 skrll } else if (dir == UE_DIR_IN && xt == UE_INTERRUPT) {
940 1.104 mrg un->un_ed[USBNET_ENDPT_INTR] = ed->bEndpointAddress;
941 1.1 augustss }
942 1.1 augustss }
943 1.1 augustss
944 1.100 mrg /* Set these up now for axe_cmd(). */
945 1.109 mrg usbnet_attach(un, "axedet");
946 1.1 augustss
947 1.35 pgoyette /* We need the PHYID for init dance in some cases */
948 1.104 mrg usbnet_lock_mii(un);
949 1.86 christos if (axe_cmd(sc, AXE_CMD_READ_PHYID, 0, 0, &sc->axe_phyaddrs)) {
950 1.86 christos aprint_error_dev(self, "failed to read phyaddrs\n");
951 1.100 mrg
952 1.86 christos return;
953 1.86 christos }
954 1.35 pgoyette
955 1.83 pgoyette DPRINTF(" phyaddrs[0]: %jx phyaddrs[1]: %jx",
956 1.76 skrll sc->axe_phyaddrs[0], sc->axe_phyaddrs[1], 0, 0);
957 1.104 mrg un->un_phyno = axe_get_phyno(sc, AXE_PHY_SEL_PRI);
958 1.104 mrg if (un->un_phyno == -1)
959 1.104 mrg un->un_phyno = axe_get_phyno(sc, AXE_PHY_SEL_SEC);
960 1.104 mrg if (un->un_phyno == -1) {
961 1.76 skrll DPRINTF(" no valid PHY address found, assuming PHY address 0",
962 1.76 skrll 0, 0, 0, 0);
963 1.104 mrg un->un_phyno = 0;
964 1.66 roy }
965 1.35 pgoyette
966 1.76 skrll /* Initialize controller and get station address. */
967 1.76 skrll
968 1.104 mrg axe_ax_init(un);
969 1.86 christos
970 1.1 augustss /*
971 1.76 skrll * Fetch IPG values.
972 1.1 augustss */
973 1.108 mrg if (un->un_flags & (AX772A | AX772B)) {
974 1.76 skrll /* Set IPG values. */
975 1.76 skrll sc->axe_ipgs[0] = AXE_IPG0_DEFAULT;
976 1.76 skrll sc->axe_ipgs[1] = AXE_IPG1_DEFAULT;
977 1.76 skrll sc->axe_ipgs[2] = AXE_IPG2_DEFAULT;
978 1.86 christos } else {
979 1.86 christos if (axe_cmd(sc, AXE_CMD_READ_IPG012, 0, 0, sc->axe_ipgs)) {
980 1.86 christos aprint_error_dev(self, "failed to read ipg\n");
981 1.104 mrg usbnet_unlock_mii(un);
982 1.86 christos return;
983 1.86 christos }
984 1.86 christos }
985 1.1 augustss
986 1.104 mrg usbnet_unlock_mii(un);
987 1.1 augustss
988 1.108 mrg if (AXE_IS_178_FAMILY(un))
989 1.104 mrg usbnet_ec(un)->ec_capabilities = ETHERCAP_VLAN_MTU;
990 1.108 mrg if (un->un_flags & AX772B) {
991 1.104 mrg struct ifnet *ifp = usbnet_ifp(un);
992 1.104 mrg
993 1.76 skrll ifp->if_capabilities =
994 1.76 skrll IFCAP_CSUM_IPv4_Rx |
995 1.76 skrll IFCAP_CSUM_TCPv4_Rx | IFCAP_CSUM_UDPv4_Rx |
996 1.76 skrll IFCAP_CSUM_TCPv6_Rx | IFCAP_CSUM_UDPv6_Rx;
997 1.76 skrll /*
998 1.76 skrll * Checksum offloading of AX88772B also works with VLAN
999 1.76 skrll * tagged frames but there is no way to take advantage
1000 1.76 skrll * of the feature because vlan(4) assumes
1001 1.76 skrll * IFCAP_VLAN_HWTAGGING is prerequisite condition to
1002 1.76 skrll * support checksum offloading with VLAN. VLAN hardware
1003 1.76 skrll * tagging support of AX88772B is very limited so it's
1004 1.76 skrll * not possible to announce IFCAP_VLAN_HWTAGGING.
1005 1.76 skrll */
1006 1.76 skrll }
1007 1.76 skrll u_int adv_pause;
1008 1.108 mrg if (un->un_flags & (AX772A | AX772B | AX178))
1009 1.76 skrll adv_pause = MIIF_DOPAUSE;
1010 1.76 skrll else
1011 1.76 skrll adv_pause = 0;
1012 1.76 skrll adv_pause = 0;
1013 1.1 augustss
1014 1.104 mrg usbnet_attach_ifp(un, true, IFF_SIMPLEX | IFF_BROADCAST | IFF_MULTICAST,
1015 1.104 mrg 0, adv_pause);
1016 1.1 augustss }
1017 1.1 augustss
1018 1.35 pgoyette static void
1019 1.110 mrg axe_rx_loop(struct usbnet * un, struct usbd_xfer *xfer,
1020 1.110 mrg struct usbnet_chain *c, uint32_t total_len)
1021 1.1 augustss {
1022 1.76 skrll AXEHIST_FUNC(); AXEHIST_CALLED();
1023 1.104 mrg struct axe_softc * const sc = usbnet_softc(un);
1024 1.104 mrg struct ifnet *ifp = usbnet_ifp(un);
1025 1.104 mrg uint8_t *buf = c->unc_buf;
1026 1.1 augustss
1027 1.35 pgoyette do {
1028 1.76 skrll u_int pktlen = 0;
1029 1.76 skrll u_int rxlen = 0;
1030 1.76 skrll int flags = 0;
1031 1.104 mrg
1032 1.108 mrg if ((un->un_flags & AXSTD_FRAME) != 0) {
1033 1.76 skrll struct axe_sframe_hdr hdr;
1034 1.76 skrll
1035 1.35 pgoyette if (total_len < sizeof(hdr)) {
1036 1.35 pgoyette ifp->if_ierrors++;
1037 1.104 mrg break;
1038 1.35 pgoyette }
1039 1.35 pgoyette
1040 1.94 rin #if !defined(__NO_STRICT_ALIGNMENT) && __GNUC_PREREQ__(6, 1)
1041 1.94 rin /*
1042 1.94 rin * XXX hdr is 2-byte aligned in buf, not 4-byte.
1043 1.94 rin * For some architectures, __builtin_memcpy() of
1044 1.94 rin * GCC 6 attempts to copy sizeof(hdr) = 4 bytes
1045 1.94 rin * at onece, which results in alignment error.
1046 1.94 rin */
1047 1.94 rin hdr.len = *(uint16_t *)buf;
1048 1.94 rin hdr.ilen = *(uint16_t *)(buf + sizeof(uint16_t));
1049 1.94 rin #else
1050 1.35 pgoyette memcpy(&hdr, buf, sizeof(hdr));
1051 1.94 rin #endif
1052 1.76 skrll
1053 1.83 pgoyette DPRINTFN(20, "total_len %#jx len %jx ilen %#jx",
1054 1.76 skrll total_len,
1055 1.76 skrll (le16toh(hdr.len) & AXE_RH1M_RXLEN_MASK),
1056 1.76 skrll (le16toh(hdr.ilen) & AXE_RH1M_RXLEN_MASK), 0);
1057 1.76 skrll
1058 1.35 pgoyette total_len -= sizeof(hdr);
1059 1.42 tsutsui buf += sizeof(hdr);
1060 1.35 pgoyette
1061 1.58 christos if (((le16toh(hdr.len) & AXE_RH1M_RXLEN_MASK) ^
1062 1.62 christos (le16toh(hdr.ilen) & AXE_RH1M_RXLEN_MASK)) !=
1063 1.62 christos AXE_RH1M_RXLEN_MASK) {
1064 1.35 pgoyette ifp->if_ierrors++;
1065 1.104 mrg break;
1066 1.35 pgoyette }
1067 1.42 tsutsui
1068 1.63 christos rxlen = le16toh(hdr.len) & AXE_RH1M_RXLEN_MASK;
1069 1.42 tsutsui if (total_len < rxlen) {
1070 1.42 tsutsui pktlen = total_len;
1071 1.42 tsutsui total_len = 0;
1072 1.42 tsutsui } else {
1073 1.43 tsutsui pktlen = rxlen;
1074 1.43 tsutsui rxlen = roundup2(rxlen, 2);
1075 1.42 tsutsui total_len -= rxlen;
1076 1.35 pgoyette }
1077 1.35 pgoyette
1078 1.108 mrg } else if ((un->un_flags & AXCSUM_FRAME) != 0) {
1079 1.76 skrll struct axe_csum_hdr csum_hdr;
1080 1.76 skrll
1081 1.104 mrg if (total_len < sizeof(csum_hdr)) {
1082 1.76 skrll ifp->if_ierrors++;
1083 1.104 mrg break;
1084 1.76 skrll }
1085 1.76 skrll
1086 1.76 skrll memcpy(&csum_hdr, buf, sizeof(csum_hdr));
1087 1.76 skrll
1088 1.76 skrll csum_hdr.len = le16toh(csum_hdr.len);
1089 1.76 skrll csum_hdr.ilen = le16toh(csum_hdr.ilen);
1090 1.76 skrll csum_hdr.cstatus = le16toh(csum_hdr.cstatus);
1091 1.76 skrll
1092 1.83 pgoyette DPRINTFN(20, "total_len %#jx len %#jx ilen %#jx"
1093 1.83 pgoyette " cstatus %#jx", total_len,
1094 1.76 skrll csum_hdr.len, csum_hdr.ilen, csum_hdr.cstatus);
1095 1.76 skrll
1096 1.76 skrll if ((AXE_CSUM_RXBYTES(csum_hdr.len) ^
1097 1.76 skrll AXE_CSUM_RXBYTES(csum_hdr.ilen)) !=
1098 1.76 skrll sc->sc_lenmask) {
1099 1.76 skrll /* we lost sync */
1100 1.76 skrll ifp->if_ierrors++;
1101 1.83 pgoyette DPRINTFN(20, "len %#jx ilen %#jx lenmask %#jx "
1102 1.83 pgoyette "err",
1103 1.76 skrll AXE_CSUM_RXBYTES(csum_hdr.len),
1104 1.76 skrll AXE_CSUM_RXBYTES(csum_hdr.ilen),
1105 1.76 skrll sc->sc_lenmask, 0);
1106 1.104 mrg break;
1107 1.76 skrll }
1108 1.76 skrll /*
1109 1.76 skrll * Get total transferred frame length including
1110 1.76 skrll * checksum header. The length should be multiple
1111 1.76 skrll * of 4.
1112 1.76 skrll */
1113 1.76 skrll pktlen = AXE_CSUM_RXBYTES(csum_hdr.len);
1114 1.78 skrll u_int len = sizeof(csum_hdr) + pktlen;
1115 1.76 skrll len = (len + 3) & ~3;
1116 1.76 skrll if (total_len < len) {
1117 1.83 pgoyette DPRINTFN(20, "total_len %#jx < len %#jx",
1118 1.76 skrll total_len, len, 0, 0);
1119 1.76 skrll /* invalid length */
1120 1.76 skrll ifp->if_ierrors++;
1121 1.104 mrg break;
1122 1.76 skrll }
1123 1.76 skrll buf += sizeof(csum_hdr);
1124 1.76 skrll
1125 1.76 skrll const uint16_t cstatus = csum_hdr.cstatus;
1126 1.76 skrll
1127 1.76 skrll if (cstatus & AXE_CSUM_HDR_L3_TYPE_IPV4) {
1128 1.76 skrll if (cstatus & AXE_CSUM_HDR_L4_CSUM_ERR)
1129 1.76 skrll flags |= M_CSUM_TCP_UDP_BAD;
1130 1.76 skrll if (cstatus & AXE_CSUM_HDR_L3_CSUM_ERR)
1131 1.76 skrll flags |= M_CSUM_IPv4_BAD;
1132 1.76 skrll
1133 1.76 skrll const uint16_t l4type =
1134 1.76 skrll cstatus & AXE_CSUM_HDR_L4_TYPE_MASK;
1135 1.76 skrll
1136 1.76 skrll if (l4type == AXE_CSUM_HDR_L4_TYPE_TCP)
1137 1.76 skrll flags |= M_CSUM_TCPv4;
1138 1.76 skrll if (l4type == AXE_CSUM_HDR_L4_TYPE_UDP)
1139 1.76 skrll flags |= M_CSUM_UDPv4;
1140 1.76 skrll }
1141 1.76 skrll if (total_len < len) {
1142 1.76 skrll pktlen = total_len;
1143 1.76 skrll total_len = 0;
1144 1.76 skrll } else {
1145 1.76 skrll total_len -= len;
1146 1.76 skrll rxlen = len - sizeof(csum_hdr);
1147 1.76 skrll }
1148 1.83 pgoyette DPRINTFN(20, "total_len %#jx len %#jx pktlen %#jx"
1149 1.83 pgoyette " rxlen %#jx", total_len, len, pktlen, rxlen);
1150 1.35 pgoyette } else { /* AX172 */
1151 1.42 tsutsui pktlen = rxlen = total_len;
1152 1.35 pgoyette total_len = 0;
1153 1.35 pgoyette }
1154 1.35 pgoyette
1155 1.105 mrg usbnet_enqueue(un, buf, pktlen, flags, 0, 0);
1156 1.42 tsutsui buf += rxlen;
1157 1.1 augustss
1158 1.35 pgoyette } while (total_len > 0);
1159 1.1 augustss
1160 1.76 skrll DPRINTFN(10, "start rx", 0, 0, 0, 0);
1161 1.1 augustss }
1162 1.1 augustss
1163 1.104 mrg static unsigned
1164 1.110 mrg axe_tx_prepare(struct usbnet *un, struct mbuf *m, struct usbnet_chain *c)
1165 1.1 augustss {
1166 1.76 skrll AXEHIST_FUNC(); AXEHIST_CALLED();
1167 1.110 mrg struct axe_sframe_hdr hdr, tlr;
1168 1.110 mrg size_t hdr_len = 0, tlr_len = 0;
1169 1.38 tsutsui int length, boundary;
1170 1.1 augustss
1171 1.104 mrg usbnet_isowned_tx(un);
1172 1.1 augustss
1173 1.108 mrg if (AXE_IS_178_FAMILY(un)) {
1174 1.110 mrg /*
1175 1.110 mrg * Copy the mbuf data into a contiguous buffer, leaving two
1176 1.110 mrg * bytes at the beginning to hold the frame length.
1177 1.110 mrg */
1178 1.104 mrg boundary = (un->un_udev->ud_speed == USB_SPEED_HIGH) ? 512 : 64;
1179 1.35 pgoyette
1180 1.35 pgoyette hdr.len = htole16(m->m_pkthdr.len);
1181 1.35 pgoyette hdr.ilen = ~hdr.len;
1182 1.110 mrg hdr_len = sizeof(hdr);
1183 1.35 pgoyette
1184 1.110 mrg length = hdr_len + m->m_pkthdr.len;
1185 1.35 pgoyette
1186 1.35 pgoyette if ((length % boundary) == 0) {
1187 1.110 mrg tlr.len = 0x0000;
1188 1.110 mrg tlr.ilen = 0xffff;
1189 1.110 mrg tlr_len = sizeof(tlr);
1190 1.35 pgoyette }
1191 1.104 mrg DPRINTFN(20, "length %jx m_pkthdr.len %jx hdrsize %#jx",
1192 1.104 mrg length, m->m_pkthdr.len, sizeof(hdr), 0);
1193 1.35 pgoyette }
1194 1.1 augustss
1195 1.112 mrg if ((unsigned)m->m_pkthdr.len > un->un_tx_bufsz - hdr_len - tlr_len)
1196 1.111 mrg return 0;
1197 1.110 mrg length = hdr_len + m->m_pkthdr.len + tlr_len;
1198 1.110 mrg
1199 1.110 mrg if (hdr_len)
1200 1.110 mrg memcpy(c->unc_buf, &hdr, hdr_len);
1201 1.110 mrg m_copydata(m, 0, m->m_pkthdr.len, c->unc_buf + hdr_len);
1202 1.110 mrg if (tlr_len)
1203 1.110 mrg memcpy(c->unc_buf + length, &tlr, tlr_len);
1204 1.1 augustss
1205 1.104 mrg return length;
1206 1.1 augustss }
1207 1.1 augustss
1208 1.76 skrll static void
1209 1.76 skrll axe_csum_cfg(struct axe_softc *sc)
1210 1.76 skrll {
1211 1.104 mrg struct usbnet * const un = &sc->axe_un;
1212 1.104 mrg struct ifnet * const ifp = usbnet_ifp(un);
1213 1.76 skrll uint16_t csum1, csum2;
1214 1.76 skrll
1215 1.108 mrg if ((un->un_flags & AX772B) != 0) {
1216 1.76 skrll csum1 = 0;
1217 1.76 skrll csum2 = 0;
1218 1.76 skrll if ((ifp->if_capenable & IFCAP_CSUM_IPv4_Tx) != 0)
1219 1.76 skrll csum1 |= AXE_TXCSUM_IP;
1220 1.76 skrll if ((ifp->if_capenable & IFCAP_CSUM_TCPv4_Tx) != 0)
1221 1.76 skrll csum1 |= AXE_TXCSUM_TCP;
1222 1.76 skrll if ((ifp->if_capenable & IFCAP_CSUM_UDPv4_Tx) != 0)
1223 1.76 skrll csum1 |= AXE_TXCSUM_UDP;
1224 1.76 skrll if ((ifp->if_capenable & IFCAP_CSUM_TCPv6_Tx) != 0)
1225 1.76 skrll csum1 |= AXE_TXCSUM_TCPV6;
1226 1.76 skrll if ((ifp->if_capenable & IFCAP_CSUM_UDPv6_Tx) != 0)
1227 1.76 skrll csum1 |= AXE_TXCSUM_UDPV6;
1228 1.76 skrll axe_cmd(sc, AXE_772B_CMD_WRITE_TXCSUM, csum2, csum1, NULL);
1229 1.76 skrll csum1 = 0;
1230 1.76 skrll csum2 = 0;
1231 1.76 skrll
1232 1.76 skrll if ((ifp->if_capenable & IFCAP_CSUM_IPv4_Rx) != 0)
1233 1.76 skrll csum1 |= AXE_RXCSUM_IP;
1234 1.76 skrll if ((ifp->if_capenable & IFCAP_CSUM_TCPv4_Rx) != 0)
1235 1.76 skrll csum1 |= AXE_RXCSUM_TCP;
1236 1.76 skrll if ((ifp->if_capenable & IFCAP_CSUM_UDPv4_Rx) != 0)
1237 1.76 skrll csum1 |= AXE_RXCSUM_UDP;
1238 1.76 skrll if ((ifp->if_capenable & IFCAP_CSUM_TCPv6_Rx) != 0)
1239 1.76 skrll csum1 |= AXE_RXCSUM_TCPV6;
1240 1.76 skrll if ((ifp->if_capenable & IFCAP_CSUM_UDPv6_Rx) != 0)
1241 1.76 skrll csum1 |= AXE_RXCSUM_UDPV6;
1242 1.76 skrll axe_cmd(sc, AXE_772B_CMD_WRITE_RXCSUM, csum2, csum1, NULL);
1243 1.76 skrll }
1244 1.76 skrll }
1245 1.76 skrll
1246 1.35 pgoyette static int
1247 1.100 mrg axe_init_locked(struct ifnet *ifp)
1248 1.1 augustss {
1249 1.76 skrll AXEHIST_FUNC(); AXEHIST_CALLED();
1250 1.104 mrg struct usbnet * const un = ifp->if_softc;
1251 1.104 mrg struct axe_softc * const sc = usbnet_softc(un);
1252 1.38 tsutsui int rxmode;
1253 1.35 pgoyette
1254 1.104 mrg usbnet_isowned(un);
1255 1.100 mrg
1256 1.107 mrg if (usbnet_isdying(un))
1257 1.100 mrg return EIO;
1258 1.1 augustss
1259 1.100 mrg /* Cancel pending I/O */
1260 1.104 mrg usbnet_stop(un, ifp, 1);
1261 1.104 mrg
1262 1.104 mrg usbnet_lock_mii_un_locked(un);
1263 1.1 augustss
1264 1.100 mrg /* Reset the ethernet interface. */
1265 1.104 mrg axe_reset(un);
1266 1.35 pgoyette
1267 1.76 skrll #if 0
1268 1.76 skrll ret = asix_write_gpio(dev, AX_GPIO_RSE | AX_GPIO_GPO_2 |
1269 1.76 skrll AX_GPIO_GPO2EN, 5, in_pm);
1270 1.76 skrll #endif
1271 1.76 skrll /* Set MAC address and transmitter IPG values. */
1272 1.108 mrg if (AXE_IS_178_FAMILY(un)) {
1273 1.104 mrg axe_cmd(sc, AXE_178_CMD_WRITE_NODEID, 0, 0, un->un_eaddr);
1274 1.35 pgoyette axe_cmd(sc, AXE_178_CMD_WRITE_IPG012, sc->axe_ipgs[2],
1275 1.35 pgoyette (sc->axe_ipgs[1] << 8) | (sc->axe_ipgs[0]), NULL);
1276 1.76 skrll } else {
1277 1.104 mrg axe_cmd(sc, AXE_172_CMD_WRITE_NODEID, 0, 0, un->un_eaddr);
1278 1.35 pgoyette axe_cmd(sc, AXE_172_CMD_WRITE_IPG0, 0, sc->axe_ipgs[0], NULL);
1279 1.35 pgoyette axe_cmd(sc, AXE_172_CMD_WRITE_IPG1, 0, sc->axe_ipgs[1], NULL);
1280 1.35 pgoyette axe_cmd(sc, AXE_172_CMD_WRITE_IPG2, 0, sc->axe_ipgs[2], NULL);
1281 1.35 pgoyette }
1282 1.108 mrg if (AXE_IS_178_FAMILY(un)) {
1283 1.108 mrg un->un_flags &= ~(AXSTD_FRAME | AXCSUM_FRAME);
1284 1.108 mrg if ((un->un_flags & AX772B) != 0 &&
1285 1.76 skrll (ifp->if_capenable & AX_RXCSUM) != 0) {
1286 1.76 skrll sc->sc_lenmask = AXE_CSUM_HDR_LEN_MASK;
1287 1.108 mrg un->un_flags |= AXCSUM_FRAME;
1288 1.76 skrll } else {
1289 1.76 skrll sc->sc_lenmask = AXE_HDR_LEN_MASK;
1290 1.108 mrg un->un_flags |= AXSTD_FRAME;
1291 1.76 skrll }
1292 1.76 skrll }
1293 1.76 skrll
1294 1.76 skrll /* Configure TX/RX checksum offloading. */
1295 1.76 skrll axe_csum_cfg(sc);
1296 1.1 augustss
1297 1.108 mrg if (un->un_flags & AX772B) {
1298 1.76 skrll /* AX88772B uses different maximum frame burst configuration. */
1299 1.76 skrll axe_cmd(sc, AXE_772B_CMD_RXCTL_WRITE_CFG,
1300 1.76 skrll ax88772b_mfb_table[AX88772B_MFB_16K].threshold,
1301 1.76 skrll ax88772b_mfb_table[AX88772B_MFB_16K].byte_cnt, NULL);
1302 1.76 skrll }
1303 1.1 augustss /* Enable receiver, set RX mode */
1304 1.76 skrll rxmode = (AXE_RXCMD_MULTICAST | AXE_RXCMD_ENABLE);
1305 1.108 mrg if (AXE_IS_178_FAMILY(un)) {
1306 1.108 mrg if (un->un_flags & AX772B) {
1307 1.76 skrll /*
1308 1.76 skrll * Select RX header format type 1. Aligning IP
1309 1.76 skrll * header on 4 byte boundary is not needed when
1310 1.76 skrll * checksum offloading feature is not used
1311 1.76 skrll * because we always copy the received frame in
1312 1.76 skrll * RX handler. When RX checksum offloading is
1313 1.76 skrll * active, aligning IP header is required to
1314 1.76 skrll * reflect actual frame length including RX
1315 1.76 skrll * header size.
1316 1.76 skrll */
1317 1.76 skrll rxmode |= AXE_772B_RXCMD_HDR_TYPE_1;
1318 1.108 mrg if (un->un_flags & AXCSUM_FRAME)
1319 1.76 skrll rxmode |= AXE_772B_RXCMD_IPHDR_ALIGN;
1320 1.76 skrll } else {
1321 1.76 skrll /*
1322 1.76 skrll * Default Rx buffer size is too small to get
1323 1.76 skrll * maximum performance.
1324 1.76 skrll */
1325 1.76 skrll #if 0
1326 1.104 mrg if (un->un_udev->ud_speed == USB_SPEED_HIGH) {
1327 1.76 skrll /* Largest possible USB buffer size for AX88178 */
1328 1.100 mrg }
1329 1.76 skrll #endif
1330 1.76 skrll rxmode |= AXE_178_RXCMD_MFB_16384;
1331 1.35 pgoyette }
1332 1.76 skrll } else {
1333 1.35 pgoyette rxmode |= AXE_172_RXCMD_UNICAST;
1334 1.76 skrll }
1335 1.76 skrll
1336 1.1 augustss
1337 1.1 augustss /* If we want promiscuous mode, set the allframes bit. */
1338 1.1 augustss if (ifp->if_flags & IFF_PROMISC)
1339 1.1 augustss rxmode |= AXE_RXCMD_PROMISC;
1340 1.1 augustss
1341 1.1 augustss if (ifp->if_flags & IFF_BROADCAST)
1342 1.1 augustss rxmode |= AXE_RXCMD_BROADCAST;
1343 1.1 augustss
1344 1.83 pgoyette DPRINTF("rxmode 0x%#jx", rxmode, 0, 0, 0);
1345 1.76 skrll
1346 1.1 augustss axe_cmd(sc, AXE_CMD_RXCTL_WRITE, 0, rxmode, NULL);
1347 1.1 augustss
1348 1.1 augustss /* Load the multicast filter. */
1349 1.104 mrg axe_setiff_locked(un);
1350 1.1 augustss
1351 1.104 mrg usbnet_unlock_mii_un_locked(un);
1352 1.1 augustss
1353 1.107 mrg return usbnet_init_rx_tx(un);
1354 1.1 augustss }
1355 1.1 augustss
1356 1.35 pgoyette static int
1357 1.100 mrg axe_init(struct ifnet *ifp)
1358 1.100 mrg {
1359 1.104 mrg struct usbnet * const un = ifp->if_softc;
1360 1.100 mrg
1361 1.104 mrg usbnet_lock(un);
1362 1.100 mrg int ret = axe_init_locked(ifp);
1363 1.104 mrg usbnet_unlock(un);
1364 1.100 mrg
1365 1.100 mrg return ret;
1366 1.100 mrg }
1367 1.100 mrg
1368 1.100 mrg static int
1369 1.110 mrg axe_ioctl(struct ifnet *ifp, u_long cmd, void *data)
1370 1.1 augustss {
1371 1.104 mrg struct usbnet * const un = ifp->if_softc;
1372 1.1 augustss
1373 1.96 msaitoh switch (cmd) {
1374 1.104 mrg case SIOCADDMULTI:
1375 1.104 mrg case SIOCDELMULTI:
1376 1.104 mrg axe_setiff(un);
1377 1.1 augustss break;
1378 1.35 pgoyette default:
1379 1.104 mrg break;
1380 1.1 augustss }
1381 1.1 augustss
1382 1.104 mrg return 0;
1383 1.100 mrg }
1384 1.71 skrll
1385 1.100 mrg static void
1386 1.110 mrg axe_stop(struct ifnet *ifp, int disable)
1387 1.100 mrg {
1388 1.104 mrg struct usbnet * const un = ifp->if_softc;
1389 1.100 mrg
1390 1.104 mrg usbnet_lock_mii_un_locked(un);
1391 1.104 mrg axe_reset(un);
1392 1.104 mrg usbnet_unlock_mii_un_locked(un);
1393 1.1 augustss }
1394 1.48 pgoyette
1395 1.104 mrg MODULE(MODULE_CLASS_DRIVER, if_axe, "usbnet");
1396 1.48 pgoyette
1397 1.48 pgoyette #ifdef _MODULE
1398 1.48 pgoyette #include "ioconf.c"
1399 1.48 pgoyette #endif
1400 1.48 pgoyette
1401 1.48 pgoyette static int
1402 1.48 pgoyette if_axe_modcmd(modcmd_t cmd, void *aux)
1403 1.48 pgoyette {
1404 1.48 pgoyette int error = 0;
1405 1.48 pgoyette
1406 1.48 pgoyette switch (cmd) {
1407 1.48 pgoyette case MODULE_CMD_INIT:
1408 1.48 pgoyette #ifdef _MODULE
1409 1.49 pgoyette error = config_init_component(cfdriver_ioconf_axe,
1410 1.49 pgoyette cfattach_ioconf_axe, cfdata_ioconf_axe);
1411 1.48 pgoyette #endif
1412 1.48 pgoyette return error;
1413 1.48 pgoyette case MODULE_CMD_FINI:
1414 1.48 pgoyette #ifdef _MODULE
1415 1.49 pgoyette error = config_fini_component(cfdriver_ioconf_axe,
1416 1.49 pgoyette cfattach_ioconf_axe, cfdata_ioconf_axe);
1417 1.48 pgoyette #endif
1418 1.48 pgoyette return error;
1419 1.48 pgoyette default:
1420 1.48 pgoyette return ENOTTY;
1421 1.48 pgoyette }
1422 1.48 pgoyette }
1423