if_smsc.c revision 1.22.2.29 1 /* $NetBSD: if_smsc.c,v 1.22.2.29 2017/02/02 07:40:51 skrll Exp $ */
2
3 /* $OpenBSD: if_smsc.c,v 1.4 2012/09/27 12:38:11 jsg Exp $ */
4 /* $FreeBSD: src/sys/dev/usb/net/if_smsc.c,v 1.1 2012/08/15 04:03:55 gonzo Exp $ */
5 /*-
6 * Copyright (c) 2012
7 * Ben Gray <bgray (at) freebsd.org>.
8 * All rights reserved.
9 *
10 * Redistribution and use in source and binary forms, with or without
11 * modification, are permitted provided that the following conditions
12 * are met:
13 * 1. Redistributions of source code must retain the above copyright
14 * notice, this list of conditions and the following disclaimer.
15 * 2. Redistributions in binary form must reproduce the above copyright
16 * notice, this list of conditions and the following disclaimer in the
17 * documentation and/or other materials provided with the distribution.
18 *
19 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
20 * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
21 * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
22 * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
23 * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
24 * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
25 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
26 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
27 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
28 * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
29 */
30
31 /*
32 * SMSC LAN9xxx devices (http://www.smsc.com/)
33 *
34 * The LAN9500 & LAN9500A devices are stand-alone USB to Ethernet chips that
35 * support USB 2.0 and 10/100 Mbps Ethernet.
36 *
37 * The LAN951x devices are an integrated USB hub and USB to Ethernet adapter.
38 * The driver only covers the Ethernet part, the standard USB hub driver
39 * supports the hub part.
40 *
41 * This driver is closely modelled on the Linux driver written and copyrighted
42 * by SMSC.
43 *
44 * H/W TCP & UDP Checksum Offloading
45 * ---------------------------------
46 * The chip supports both tx and rx offloading of UDP & TCP checksums, this
47 * feature can be dynamically enabled/disabled.
48 *
49 * RX checksuming is performed across bytes after the IPv4 header to the end of
50 * the Ethernet frame, this means if the frame is padded with non-zero values
51 * the H/W checksum will be incorrect, however the rx code compensates for this.
52 *
53 * TX checksuming is more complicated, the device requires a special header to
54 * be prefixed onto the start of the frame which indicates the start and end
55 * positions of the UDP or TCP frame. This requires the driver to manually
56 * go through the packet data and decode the headers prior to sending.
57 * On Linux they generally provide cues to the location of the csum and the
58 * area to calculate it over, on FreeBSD we seem to have to do it all ourselves,
59 * hence this is not as optimal and therefore h/w TX checksum is currently not
60 * implemented.
61 */
62
63 #ifdef _KERNEL_OPT
64 #include "opt_usb.h"
65 #include "opt_inet.h"
66 #endif
67
68 #include <sys/param.h>
69 #include <sys/bus.h>
70 #include <sys/device.h>
71 #include <sys/kernel.h>
72 #include <sys/mbuf.h>
73 #include <sys/mutex.h>
74 #include <sys/proc.h>
75 #include <sys/rndsource.h>
76 #include <sys/socket.h>
77 #include <sys/sockio.h>
78 #include <sys/systm.h>
79
80 #include <net/if.h>
81 #include <net/if_dl.h>
82 #include <net/if_media.h>
83 #include <net/if_ether.h>
84
85 #include <net/bpf.h>
86
87 #ifdef INET
88 #include <netinet/in.h>
89 #include <netinet/if_inarp.h>
90 #endif
91
92 #include <dev/mii/mii.h>
93 #include <dev/mii/miivar.h>
94
95 #include <dev/usb/usb.h>
96 #include <dev/usb/usbdi.h>
97 #include <dev/usb/usbdi_util.h>
98 #include <dev/usb/usbdivar.h>
99 #include <dev/usb/usbdevs.h>
100
101 #include <dev/usb/if_smscreg.h>
102 #include <dev/usb/if_smscvar.h>
103
104 #include "ioconf.h"
105
106 #ifdef USB_DEBUG
107 int smsc_debug = 0;
108 #endif
109
110 #define ETHER_ALIGN 2
111 /*
112 * Various supported device vendors/products.
113 */
114 static const struct usb_devno smsc_devs[] = {
115 { USB_VENDOR_SMSC, USB_PRODUCT_SMSC_LAN89530 },
116 { USB_VENDOR_SMSC, USB_PRODUCT_SMSC_LAN9530 },
117 { USB_VENDOR_SMSC, USB_PRODUCT_SMSC_LAN9730 },
118 { USB_VENDOR_SMSC, USB_PRODUCT_SMSC_SMSC9500 },
119 { USB_VENDOR_SMSC, USB_PRODUCT_SMSC_SMSC9500A },
120 { USB_VENDOR_SMSC, USB_PRODUCT_SMSC_SMSC9500A_ALT },
121 { USB_VENDOR_SMSC, USB_PRODUCT_SMSC_SMSC9500A_HAL },
122 { USB_VENDOR_SMSC, USB_PRODUCT_SMSC_SMSC9500A_SAL10 },
123 { USB_VENDOR_SMSC, USB_PRODUCT_SMSC_SMSC9500_ALT },
124 { USB_VENDOR_SMSC, USB_PRODUCT_SMSC_SMSC9500_SAL10 },
125 { USB_VENDOR_SMSC, USB_PRODUCT_SMSC_SMSC9505 },
126 { USB_VENDOR_SMSC, USB_PRODUCT_SMSC_SMSC9505A },
127 { USB_VENDOR_SMSC, USB_PRODUCT_SMSC_SMSC9505A_HAL },
128 { USB_VENDOR_SMSC, USB_PRODUCT_SMSC_SMSC9505A_SAL10 },
129 { USB_VENDOR_SMSC, USB_PRODUCT_SMSC_SMSC9505_SAL10 },
130 { USB_VENDOR_SMSC, USB_PRODUCT_SMSC_SMSC9512_14 },
131 { USB_VENDOR_SMSC, USB_PRODUCT_SMSC_SMSC9512_14_ALT },
132 { USB_VENDOR_SMSC, USB_PRODUCT_SMSC_SMSC9512_14_SAL10 }
133 };
134
135 #ifdef USB_DEBUG
136 #define smsc_dbg_printf(sc, fmt, args...) \
137 do { \
138 if (smsc_debug > 0) \
139 printf("debug: " fmt, ##args); \
140 } while(0)
141 #else
142 #define smsc_dbg_printf(sc, fmt, args...)
143 #endif
144
145 #define smsc_warn_printf(sc, fmt, args...) \
146 printf("%s: warning: " fmt, device_xname((sc)->sc_dev), ##args)
147
148 #define smsc_err_printf(sc, fmt, args...) \
149 printf("%s: error: " fmt, device_xname((sc)->sc_dev), ##args)
150
151 /* Function declarations */
152 int smsc_chip_init(struct smsc_softc *);
153 void smsc_setmulti(struct smsc_softc *);
154 int smsc_setmacaddress(struct smsc_softc *, const uint8_t *);
155
156 int smsc_match(device_t, cfdata_t, void *);
157 void smsc_attach(device_t, device_t, void *);
158 int smsc_detach(device_t, int);
159 int smsc_activate(device_t, enum devact);
160
161 int smsc_init(struct ifnet *);
162 int smsc_init_locked(struct ifnet *);
163 void smsc_start(struct ifnet *);
164 void smsc_start_locked(struct ifnet *);
165 int smsc_ioctl(struct ifnet *, u_long, void *);
166 void smsc_stop(struct ifnet *, int);
167 void smsc_stop_locked(struct ifnet *, int);
168
169 void smsc_reset(struct smsc_softc *);
170 struct mbuf *smsc_newbuf(void);
171
172 void smsc_tick(void *);
173 void smsc_tick_task(void *);
174 void smsc_miibus_statchg(struct ifnet *);
175 int smsc_miibus_readreg(device_t, int, int);
176 void smsc_miibus_writereg(device_t, int, int, int);
177 int smsc_ifmedia_upd(struct ifnet *);
178 void smsc_ifmedia_sts(struct ifnet *, struct ifmediareq *);
179 void smsc_lock_mii(struct smsc_softc *);
180 void smsc_unlock_mii(struct smsc_softc *);
181
182 int smsc_tx_list_init(struct smsc_softc *);
183 void smsc_tx_list_free(struct smsc_softc *);
184 int smsc_rx_list_init(struct smsc_softc *);
185 void smsc_rx_list_free(struct smsc_softc *);
186 int smsc_encap(struct smsc_softc *, struct mbuf *, int);
187 void smsc_rxeof(struct usbd_xfer *, void *, usbd_status);
188 void smsc_txeof(struct usbd_xfer *, void *, usbd_status);
189
190 int smsc_read_reg(struct smsc_softc *, uint32_t, uint32_t *);
191 int smsc_write_reg(struct smsc_softc *, uint32_t, uint32_t);
192 int smsc_wait_for_bits(struct smsc_softc *, uint32_t, uint32_t);
193 int smsc_sethwcsum(struct smsc_softc *);
194
195 CFATTACH_DECL_NEW(usmsc, sizeof(struct smsc_softc), smsc_match, smsc_attach,
196 smsc_detach, smsc_activate);
197
198 int
199 smsc_read_reg(struct smsc_softc *sc, uint32_t off, uint32_t *data)
200 {
201 usb_device_request_t req;
202 uint32_t buf;
203 usbd_status err;
204
205 req.bmRequestType = UT_READ_VENDOR_DEVICE;
206 req.bRequest = SMSC_UR_READ_REG;
207 USETW(req.wValue, 0);
208 USETW(req.wIndex, off);
209 USETW(req.wLength, 4);
210
211 err = usbd_do_request(sc->sc_udev, &req, &buf);
212 if (err != 0)
213 smsc_warn_printf(sc, "Failed to read register 0x%0x\n", off);
214
215 *data = le32toh(buf);
216
217 return err;
218 }
219
220 int
221 smsc_write_reg(struct smsc_softc *sc, uint32_t off, uint32_t data)
222 {
223 usb_device_request_t req;
224 uint32_t buf;
225 usbd_status err;
226
227 buf = htole32(data);
228
229 req.bmRequestType = UT_WRITE_VENDOR_DEVICE;
230 req.bRequest = SMSC_UR_WRITE_REG;
231 USETW(req.wValue, 0);
232 USETW(req.wIndex, off);
233 USETW(req.wLength, 4);
234
235 err = usbd_do_request(sc->sc_udev, &req, &buf);
236 if (err != 0)
237 smsc_warn_printf(sc, "Failed to write register 0x%0x\n", off);
238
239 return err;
240 }
241
242 int
243 smsc_wait_for_bits(struct smsc_softc *sc, uint32_t reg, uint32_t bits)
244 {
245 uint32_t val;
246 int err, i;
247
248 for (i = 0; i < 100; i++) {
249 if ((err = smsc_read_reg(sc, reg, &val)) != 0)
250 return err;
251 if (!(val & bits))
252 return 0;
253 DELAY(5);
254 }
255
256 return 1;
257 }
258
259 int
260 smsc_miibus_readreg(device_t dev, int phy, int reg)
261 {
262 struct smsc_softc * const sc = device_private(dev);
263 uint32_t addr;
264 uint32_t val = 0;
265
266 smsc_lock_mii(sc);
267 if (smsc_wait_for_bits(sc, SMSC_MII_ADDR, SMSC_MII_BUSY) != 0) {
268 smsc_warn_printf(sc, "MII is busy\n");
269 goto done;
270 }
271
272 addr = (phy << 11) | (reg << 6) | SMSC_MII_READ;
273 smsc_write_reg(sc, SMSC_MII_ADDR, addr);
274
275 if (smsc_wait_for_bits(sc, SMSC_MII_ADDR, SMSC_MII_BUSY) != 0)
276 smsc_warn_printf(sc, "MII read timeout\n");
277
278 smsc_read_reg(sc, SMSC_MII_DATA, &val);
279
280 done:
281 smsc_unlock_mii(sc);
282
283 return val & 0xffff;
284 }
285
286 void
287 smsc_miibus_writereg(device_t dev, int phy, int reg, int val)
288 {
289 struct smsc_softc * const sc = device_private(dev);
290 uint32_t addr;
291
292 if (sc->sc_phyno != phy)
293 return;
294
295 smsc_lock_mii(sc);
296 if (smsc_wait_for_bits(sc, SMSC_MII_ADDR, SMSC_MII_BUSY) != 0) {
297 smsc_warn_printf(sc, "MII is busy\n");
298 smsc_unlock_mii(sc);
299 return;
300 }
301
302 smsc_write_reg(sc, SMSC_MII_DATA, val);
303
304 addr = (phy << 11) | (reg << 6) | SMSC_MII_WRITE;
305 smsc_write_reg(sc, SMSC_MII_ADDR, addr);
306 smsc_unlock_mii(sc);
307
308 if (smsc_wait_for_bits(sc, SMSC_MII_ADDR, SMSC_MII_BUSY) != 0)
309 smsc_warn_printf(sc, "MII write timeout\n");
310 }
311
312 void
313 smsc_miibus_statchg(struct ifnet *ifp)
314 {
315 struct smsc_softc * const sc = ifp->if_softc;
316 struct mii_data * const mii = &sc->sc_mii;
317 int err;
318 uint32_t flow;
319 uint32_t afc_cfg;
320
321 if (mii == NULL || ifp == NULL ||
322 (ifp->if_flags & IFF_RUNNING) == 0)
323 return;
324
325 /* Use the MII status to determine link status */
326 sc->sc_flags &= ~SMSC_FLAG_LINK;
327 if ((mii->mii_media_status & (IFM_ACTIVE | IFM_AVALID)) ==
328 (IFM_ACTIVE | IFM_AVALID)) {
329 switch (IFM_SUBTYPE(mii->mii_media_active)) {
330 case IFM_10_T:
331 case IFM_100_TX:
332 sc->sc_flags |= SMSC_FLAG_LINK;
333 break;
334 case IFM_1000_T:
335 /* Gigabit ethernet not supported by chipset */
336 break;
337 default:
338 break;
339 }
340 }
341
342 /* Lost link, do nothing. */
343 if ((sc->sc_flags & SMSC_FLAG_LINK) == 0) {
344 smsc_dbg_printf(sc, "link flag not set\n");
345 return;
346 }
347
348 err = smsc_read_reg(sc, SMSC_AFC_CFG, &afc_cfg);
349 if (err) {
350 smsc_warn_printf(sc, "failed to read initial AFC_CFG, "
351 "error %d\n", err);
352 return;
353 }
354
355 /* Enable/disable full duplex operation and TX/RX pause */
356 if ((IFM_OPTIONS(mii->mii_media_active) & IFM_FDX) != 0) {
357 smsc_dbg_printf(sc, "full duplex operation\n");
358 sc->sc_mac_csr &= ~SMSC_MAC_CSR_RCVOWN;
359 sc->sc_mac_csr |= SMSC_MAC_CSR_FDPX;
360
361 if ((IFM_OPTIONS(mii->mii_media_active) & IFM_ETH_RXPAUSE) != 0)
362 flow = 0xffff0002;
363 else
364 flow = 0;
365
366 if ((IFM_OPTIONS(mii->mii_media_active) & IFM_ETH_TXPAUSE) != 0)
367 afc_cfg |= 0xf;
368 else
369 afc_cfg &= ~0xf;
370 } else {
371 smsc_dbg_printf(sc, "half duplex operation\n");
372 sc->sc_mac_csr &= ~SMSC_MAC_CSR_FDPX;
373 sc->sc_mac_csr |= SMSC_MAC_CSR_RCVOWN;
374
375 flow = 0;
376 afc_cfg |= 0xf;
377 }
378
379 err = smsc_write_reg(sc, SMSC_MAC_CSR, sc->sc_mac_csr);
380 err += smsc_write_reg(sc, SMSC_FLOW, flow);
381 err += smsc_write_reg(sc, SMSC_AFC_CFG, afc_cfg);
382 if (err)
383 smsc_warn_printf(sc, "media change failed, error %d\n", err);
384 }
385
386 int
387 smsc_ifmedia_upd(struct ifnet *ifp)
388 {
389 struct smsc_softc * const sc = ifp->if_softc;
390 struct mii_data * const mii = &sc->sc_mii;
391 int err;
392
393 if (mii->mii_instance) {
394 struct mii_softc *miisc;
395
396 LIST_FOREACH(miisc, &mii->mii_phys, mii_list)
397 mii_phy_reset(miisc);
398 }
399 err = mii_mediachg(mii);
400 return err;
401 }
402
403 void
404 smsc_ifmedia_sts(struct ifnet *ifp, struct ifmediareq *ifmr)
405 {
406 struct smsc_softc * const sc = ifp->if_softc;
407 struct mii_data * const mii = &sc->sc_mii;
408
409 mii_pollstat(mii);
410
411 ifmr->ifm_active = mii->mii_media_active;
412 ifmr->ifm_status = mii->mii_media_status;
413 }
414
415 static inline uint32_t
416 smsc_hash(uint8_t addr[ETHER_ADDR_LEN])
417 {
418 return (ether_crc32_be(addr, ETHER_ADDR_LEN) >> 26) & 0x3f;
419 }
420
421 void
422 smsc_setmulti(struct smsc_softc *sc)
423 {
424 struct ifnet * const ifp = &sc->sc_ec.ec_if;
425 struct ether_multi *enm;
426 struct ether_multistep step;
427 uint32_t hashtbl[2] = { 0, 0 };
428 uint32_t hash;
429
430 if (sc->sc_dying)
431 return;
432
433 if (ifp->if_flags & (IFF_ALLMULTI | IFF_PROMISC)) {
434 allmulti:
435 smsc_dbg_printf(sc, "receive all multicast enabled\n");
436 sc->sc_mac_csr |= SMSC_MAC_CSR_MCPAS;
437 sc->sc_mac_csr &= ~SMSC_MAC_CSR_HPFILT;
438 smsc_write_reg(sc, SMSC_MAC_CSR, sc->sc_mac_csr);
439 return;
440 } else {
441 sc->sc_mac_csr |= SMSC_MAC_CSR_HPFILT;
442 sc->sc_mac_csr &= ~(SMSC_MAC_CSR_PRMS | SMSC_MAC_CSR_MCPAS);
443 }
444
445 ETHER_FIRST_MULTI(step, &sc->sc_ec, enm);
446 while (enm != NULL) {
447 if (memcmp(enm->enm_addrlo, enm->enm_addrhi,
448 ETHER_ADDR_LEN) != 0)
449 goto allmulti;
450
451 hash = smsc_hash(enm->enm_addrlo);
452 hashtbl[hash >> 5] |= 1 << (hash & 0x1F);
453 ETHER_NEXT_MULTI(step, enm);
454 }
455
456 /* Debug */
457 if (sc->sc_mac_csr & SMSC_MAC_CSR_HPFILT) {
458 smsc_dbg_printf(sc, "receive select group of macs\n");
459 } else {
460 smsc_dbg_printf(sc, "receive own packets only\n");
461 }
462
463 /* Write the hash table and mac control registers */
464 ifp->if_flags &= ~IFF_ALLMULTI;
465 smsc_write_reg(sc, SMSC_HASHH, hashtbl[1]);
466 smsc_write_reg(sc, SMSC_HASHL, hashtbl[0]);
467 smsc_write_reg(sc, SMSC_MAC_CSR, sc->sc_mac_csr);
468 }
469
470 int
471 smsc_sethwcsum(struct smsc_softc *sc)
472 {
473 struct ifnet * const ifp = &sc->sc_ec.ec_if;
474 uint32_t val;
475 int err;
476
477 err = smsc_read_reg(sc, SMSC_COE_CTRL, &val);
478 if (err != 0) {
479 smsc_warn_printf(sc, "failed to read SMSC_COE_CTRL (err=%d)\n",
480 err);
481 return err;
482 }
483
484 /* Enable/disable the Rx checksum */
485 if (ifp->if_capenable & (IFCAP_CSUM_TCPv4_Rx|IFCAP_CSUM_UDPv4_Rx))
486 val |= (SMSC_COE_CTRL_RX_EN | SMSC_COE_CTRL_RX_MODE);
487 else
488 val &= ~(SMSC_COE_CTRL_RX_EN | SMSC_COE_CTRL_RX_MODE);
489
490 /* Enable/disable the Tx checksum (currently not supported) */
491 if (ifp->if_capenable & (IFCAP_CSUM_TCPv4_Tx|IFCAP_CSUM_UDPv4_Tx))
492 val |= SMSC_COE_CTRL_TX_EN;
493 else
494 val &= ~SMSC_COE_CTRL_TX_EN;
495
496 sc->sc_coe_ctrl = val;
497
498 err = smsc_write_reg(sc, SMSC_COE_CTRL, val);
499 if (err != 0) {
500 smsc_warn_printf(sc, "failed to write SMSC_COE_CTRL (err=%d)\n",
501 err);
502 return err;
503 }
504
505 return 0;
506 }
507
508 int
509 smsc_setmacaddress(struct smsc_softc *sc, const uint8_t *addr)
510 {
511 int err;
512 uint32_t val;
513
514 smsc_dbg_printf(sc, "setting mac address to "
515 "%02x:%02x:%02x:%02x:%02x:%02x\n",
516 addr[0], addr[1], addr[2], addr[3], addr[4], addr[5]);
517
518 val = (addr[3] << 24) | (addr[2] << 16) | (addr[1] << 8) | addr[0];
519 if ((err = smsc_write_reg(sc, SMSC_MAC_ADDRL, val)) != 0)
520 goto done;
521
522 val = (addr[5] << 8) | addr[4];
523 err = smsc_write_reg(sc, SMSC_MAC_ADDRH, val);
524
525 done:
526 return err;
527 }
528
529 void
530 smsc_reset(struct smsc_softc *sc)
531 {
532 if (sc->sc_dying)
533 return;
534
535 /* Wait a little while for the chip to get its brains in order. */
536 DELAY(1000);
537
538 /* Reinitialize controller to achieve full reset. */
539 smsc_chip_init(sc);
540 }
541
542 int
543 smsc_init(struct ifnet *ifp)
544 {
545 struct smsc_softc * const sc = ifp->if_softc;
546
547 mutex_enter(&sc->sc_lock);
548 int ret = smsc_init_locked(ifp);
549 mutex_exit(&sc->sc_lock);
550
551 return ret;
552 }
553
554 int
555 smsc_init_locked(struct ifnet *ifp)
556 {
557 struct smsc_softc * const sc = ifp->if_softc;
558 usbd_status err;
559
560 if (sc->sc_dying)
561 return EIO;
562
563 /* Cancel pending I/O */
564 smsc_stop_locked(ifp, 1);
565
566 /* Reset the ethernet interface. */
567 smsc_reset(sc);
568
569 /* Load the multicast filter. */
570 smsc_setmulti(sc);
571
572 /* TCP/UDP checksum offload engines. */
573 smsc_sethwcsum(sc);
574
575 /* Open RX and TX pipes. */
576 err = usbd_open_pipe(sc->sc_iface, sc->sc_ed[SMSC_ENDPT_RX],
577 USBD_EXCLUSIVE_USE | USBD_MPSAFE, &sc->sc_ep[SMSC_ENDPT_RX]);
578 if (err) {
579 printf("%s: open rx pipe failed: %s\n",
580 device_xname(sc->sc_dev), usbd_errstr(err));
581 goto fail;
582 }
583
584 err = usbd_open_pipe(sc->sc_iface, sc->sc_ed[SMSC_ENDPT_TX],
585 USBD_EXCLUSIVE_USE | USBD_MPSAFE, &sc->sc_ep[SMSC_ENDPT_TX]);
586 if (err) {
587 printf("%s: open tx pipe failed: %s\n",
588 device_xname(sc->sc_dev), usbd_errstr(err));
589 goto fail1;
590 }
591
592 /* Init RX ring. */
593 if (smsc_rx_list_init(sc)) {
594 aprint_error_dev(sc->sc_dev, "rx list init failed\n");
595 goto fail2;
596 }
597
598 /* Init TX ring. */
599 if (smsc_tx_list_init(sc)) {
600 aprint_error_dev(sc->sc_dev, "tx list init failed\n");
601 goto fail3;
602 }
603
604 /* Start up the receive pipe. */
605 for (size_t i = 0; i < SMSC_RX_LIST_CNT; i++) {
606 struct smsc_chain *c = &sc->sc_cdata.rx_chain[i];
607 usbd_setup_xfer(c->sc_xfer, c, c->sc_buf, sc->sc_bufsz,
608 USBD_SHORT_XFER_OK, USBD_NO_TIMEOUT, smsc_rxeof);
609 usbd_transfer(c->sc_xfer);
610 }
611
612 sc->sc_stopping = false;
613
614 /* Indicate we are up and running. */
615 ifp->if_flags |= IFF_RUNNING;
616 ifp->if_flags &= ~IFF_OACTIVE;
617
618 callout_reset(&sc->sc_stat_ch, hz, smsc_tick, sc);
619
620 return 0;
621
622 fail3:
623 smsc_rx_list_free(sc);
624 fail2:
625 usbd_close_pipe(sc->sc_ep[SMSC_ENDPT_TX]);
626 fail1:
627 usbd_close_pipe(sc->sc_ep[SMSC_ENDPT_RX]);
628 fail:
629 return EIO;
630 }
631
632 void
633 smsc_start(struct ifnet *ifp)
634 {
635 struct smsc_softc * const sc = ifp->if_softc;
636 KASSERT(ifp->if_extflags & IFEF_START_MPSAFE);
637
638 mutex_enter(&sc->sc_txlock);
639 if (!sc->sc_stopping)
640 smsc_start_locked(ifp);
641 mutex_exit(&sc->sc_txlock);
642 }
643
644 void
645 smsc_start_locked(struct ifnet *ifp)
646 {
647 struct smsc_softc * const sc = ifp->if_softc;
648 struct mbuf *m_head = NULL;
649
650 KASSERT(mutex_owned(&sc->sc_txlock));
651
652 /* Don't send anything if there is no link or controller is busy. */
653 if ((sc->sc_flags & SMSC_FLAG_LINK) == 0) {
654 return;
655 }
656
657 if ((ifp->if_flags & (IFF_OACTIVE|IFF_RUNNING)) != IFF_RUNNING)
658 return;
659
660 IFQ_POLL(&ifp->if_snd, m_head);
661 if (m_head == NULL)
662 return;
663
664 if (smsc_encap(sc, m_head, 0)) {
665 return;
666 }
667 IFQ_DEQUEUE(&ifp->if_snd, m_head);
668
669 bpf_mtap(ifp, m_head);
670
671 ifp->if_flags |= IFF_OACTIVE;
672
673 /*
674 * Set a timeout in case the chip goes out to lunch.
675 */
676 ifp->if_timer = 5;
677 }
678
679 void
680 smsc_tick(void *xsc)
681 {
682 struct smsc_softc * const sc = xsc;
683
684 if (sc == NULL)
685 return;
686
687 if (sc->sc_dying)
688 return;
689
690 usb_add_task(sc->sc_udev, &sc->sc_tick_task, USB_TASKQ_DRIVER);
691 }
692
693 void
694 smsc_stop(struct ifnet *ifp, int disable)
695 {
696 struct smsc_softc * const sc = ifp->if_softc;
697
698 mutex_enter(&sc->sc_lock);
699 smsc_stop_locked(ifp, disable);
700 mutex_exit(&sc->sc_lock);
701 }
702
703 void
704 smsc_stop_locked(struct ifnet *ifp, int disable)
705 {
706 struct smsc_softc * const sc = ifp->if_softc;
707 usbd_status err;
708
709 KASSERT(mutex_owned(&sc->sc_lock));
710 mutex_enter(&sc->sc_rxlock);
711 mutex_enter(&sc->sc_txlock);
712 sc->sc_stopping = true;
713 mutex_exit(&sc->sc_txlock);
714 mutex_exit(&sc->sc_rxlock);
715
716 callout_stop(&sc->sc_stat_ch);
717
718 /* Stop transfers. */
719 if (sc->sc_ep[SMSC_ENDPT_RX] != NULL) {
720 err = usbd_abort_pipe(sc->sc_ep[SMSC_ENDPT_RX]);
721 if (err) {
722 printf("%s: abort rx pipe failed: %s\n",
723 device_xname(sc->sc_dev), usbd_errstr(err));
724 }
725 }
726
727 if (sc->sc_ep[SMSC_ENDPT_TX] != NULL) {
728 err = usbd_abort_pipe(sc->sc_ep[SMSC_ENDPT_TX]);
729 if (err) {
730 printf("%s: abort tx pipe failed: %s\n",
731 device_xname(sc->sc_dev), usbd_errstr(err));
732 }
733 }
734
735 if (sc->sc_ep[SMSC_ENDPT_INTR] != NULL) {
736 err = usbd_abort_pipe(sc->sc_ep[SMSC_ENDPT_INTR]);
737 if (err) {
738 printf("%s: abort intr pipe failed: %s\n",
739 device_xname(sc->sc_dev), usbd_errstr(err));
740 }
741 }
742
743 smsc_rx_list_free(sc);
744
745 smsc_tx_list_free(sc);
746
747 /* Close pipes */
748 if (sc->sc_ep[SMSC_ENDPT_RX] != NULL) {
749 err = usbd_close_pipe(sc->sc_ep[SMSC_ENDPT_RX]);
750 if (err) {
751 printf("%s: close rx pipe failed: %s\n",
752 device_xname(sc->sc_dev), usbd_errstr(err));
753 }
754 sc->sc_ep[SMSC_ENDPT_RX] = NULL;
755 }
756
757 if (sc->sc_ep[SMSC_ENDPT_TX] != NULL) {
758 err = usbd_close_pipe(sc->sc_ep[SMSC_ENDPT_TX]);
759 if (err) {
760 printf("%s: close tx pipe failed: %s\n",
761 device_xname(sc->sc_dev), usbd_errstr(err));
762 }
763 sc->sc_ep[SMSC_ENDPT_TX] = NULL;
764 }
765
766 if (sc->sc_ep[SMSC_ENDPT_INTR] != NULL) {
767 err = usbd_close_pipe(sc->sc_ep[SMSC_ENDPT_INTR]);
768 if (err) {
769 printf("%s: close intr pipe failed: %s\n",
770 device_xname(sc->sc_dev), usbd_errstr(err));
771 }
772 sc->sc_ep[SMSC_ENDPT_INTR] = NULL;
773 }
774
775 ifp->if_timer = 0;
776 ifp->if_flags &= ~(IFF_RUNNING | IFF_OACTIVE);
777
778 if (disable) {
779 /* drain */
780 }
781 }
782
783 int
784 smsc_chip_init(struct smsc_softc *sc)
785 {
786 int err;
787 uint32_t reg_val;
788 int burst_cap;
789
790 /* Enter H/W config mode */
791 smsc_write_reg(sc, SMSC_HW_CFG, SMSC_HW_CFG_LRST);
792
793 if ((err = smsc_wait_for_bits(sc, SMSC_HW_CFG,
794 SMSC_HW_CFG_LRST)) != 0) {
795 smsc_warn_printf(sc, "timed-out waiting for reset to "
796 "complete\n");
797 goto init_failed;
798 }
799
800 /* Reset the PHY */
801 smsc_write_reg(sc, SMSC_PM_CTRL, SMSC_PM_CTRL_PHY_RST);
802
803 if ((err = smsc_wait_for_bits(sc, SMSC_PM_CTRL,
804 SMSC_PM_CTRL_PHY_RST)) != 0) {
805 smsc_warn_printf(sc, "timed-out waiting for phy reset to "
806 "complete\n");
807 goto init_failed;
808 }
809 usbd_delay_ms(sc->sc_udev, 40);
810
811 /* Set the mac address */
812 struct ifnet * const ifp = &sc->sc_ec.ec_if;
813 const char *eaddr = CLLADDR(ifp->if_sadl);
814 if ((err = smsc_setmacaddress(sc, eaddr)) != 0) {
815 smsc_warn_printf(sc, "failed to set the MAC address\n");
816 goto init_failed;
817 }
818
819 /*
820 * Don't know what the HW_CFG_BIR bit is, but following the reset
821 * sequence as used in the Linux driver.
822 */
823 if ((err = smsc_read_reg(sc, SMSC_HW_CFG, ®_val)) != 0) {
824 smsc_warn_printf(sc, "failed to read HW_CFG: %d\n", err);
825 goto init_failed;
826 }
827 reg_val |= SMSC_HW_CFG_BIR;
828 smsc_write_reg(sc, SMSC_HW_CFG, reg_val);
829
830 /*
831 * There is a so called 'turbo mode' that the linux driver supports, it
832 * seems to allow you to jam multiple frames per Rx transaction.
833 * By default this driver supports that and therefore allows multiple
834 * frames per USB transfer.
835 *
836 * The xfer buffer size needs to reflect this as well, therefore based
837 * on the calculations in the Linux driver the RX bufsize is set to
838 * 18944,
839 * bufsz = (16 * 1024 + 5 * 512)
840 *
841 * Burst capability is the number of URBs that can be in a burst of
842 * data/ethernet frames.
843 */
844
845 if (sc->sc_udev->ud_speed == USB_SPEED_HIGH)
846 burst_cap = 37;
847 else
848 burst_cap = 128;
849
850 smsc_write_reg(sc, SMSC_BURST_CAP, burst_cap);
851
852 /* Set the default bulk in delay (magic value from Linux driver) */
853 smsc_write_reg(sc, SMSC_BULK_IN_DLY, 0x00002000);
854
855 /*
856 * Initialise the RX interface
857 */
858 if ((err = smsc_read_reg(sc, SMSC_HW_CFG, ®_val)) < 0) {
859 smsc_warn_printf(sc, "failed to read HW_CFG: (err = %d)\n",
860 err);
861 goto init_failed;
862 }
863
864 /*
865 * The following settings are used for 'turbo mode', a.k.a multiple
866 * frames per Rx transaction (again info taken form Linux driver).
867 */
868 reg_val |= (SMSC_HW_CFG_MEF | SMSC_HW_CFG_BCE);
869
870 /*
871 * set Rx data offset to ETHER_ALIGN which will make the IP header
872 * align on a word boundary.
873 */
874 reg_val |= ETHER_ALIGN << SMSC_HW_CFG_RXDOFF_SHIFT;
875
876 smsc_write_reg(sc, SMSC_HW_CFG, reg_val);
877
878 /* Clear the status register ? */
879 smsc_write_reg(sc, SMSC_INTR_STATUS, 0xffffffff);
880
881 /* Read and display the revision register */
882 if ((err = smsc_read_reg(sc, SMSC_ID_REV, &sc->sc_rev_id)) < 0) {
883 smsc_warn_printf(sc, "failed to read ID_REV (err = %d)\n", err);
884 goto init_failed;
885 }
886
887 /* GPIO/LED setup */
888 reg_val = SMSC_LED_GPIO_CFG_SPD_LED | SMSC_LED_GPIO_CFG_LNK_LED |
889 SMSC_LED_GPIO_CFG_FDX_LED;
890 smsc_write_reg(sc, SMSC_LED_GPIO_CFG, reg_val);
891
892 /*
893 * Initialise the TX interface
894 */
895 smsc_write_reg(sc, SMSC_FLOW, 0);
896
897 smsc_write_reg(sc, SMSC_AFC_CFG, AFC_CFG_DEFAULT);
898
899 /* Read the current MAC configuration */
900 if ((err = smsc_read_reg(sc, SMSC_MAC_CSR, &sc->sc_mac_csr)) < 0) {
901 smsc_warn_printf(sc, "failed to read MAC_CSR (err=%d)\n", err);
902 goto init_failed;
903 }
904
905 /* disable pad stripping, collides with checksum offload */
906 sc->sc_mac_csr &= ~SMSC_MAC_CSR_PADSTR;
907
908 /* Vlan */
909 smsc_write_reg(sc, SMSC_VLAN1, (uint32_t)ETHERTYPE_VLAN);
910
911 /*
912 * Start TX
913 */
914 sc->sc_mac_csr |= SMSC_MAC_CSR_TXEN;
915 smsc_write_reg(sc, SMSC_MAC_CSR, sc->sc_mac_csr);
916 smsc_write_reg(sc, SMSC_TX_CFG, SMSC_TX_CFG_ON);
917
918 /*
919 * Start RX
920 */
921 sc->sc_mac_csr |= SMSC_MAC_CSR_RXEN;
922 smsc_write_reg(sc, SMSC_MAC_CSR, sc->sc_mac_csr);
923
924 return 0;
925
926 init_failed:
927 smsc_err_printf(sc, "smsc_chip_init failed (err=%d)\n", err);
928 return err;
929 }
930
931 static int
932 smsc_ifflags_cb(struct ethercom *ec)
933 {
934 struct ifnet *ifp = &ec->ec_if;
935 struct smsc_softc *sc = ifp->if_softc;
936 int rc = 0;
937
938 mutex_enter(&sc->sc_lock);
939
940 int change = ifp->if_flags ^ sc->sc_if_flags;
941 sc->sc_if_flags = ifp->if_flags;
942
943 if ((change & ~(IFF_CANTCHANGE | IFF_DEBUG)) != 0) {
944 rc = ENETRESET;
945 goto out;
946 }
947
948 if ((change & IFF_PROMISC) != 0) {
949 if (ifp->if_flags & IFF_PROMISC) {
950 sc->sc_mac_csr |= SMSC_MAC_CSR_PRMS;
951 smsc_write_reg(sc, SMSC_MAC_CSR, sc->sc_mac_csr);
952 } else if (!(ifp->if_flags & IFF_PROMISC)) {
953 sc->sc_mac_csr &= ~SMSC_MAC_CSR_PRMS;
954 smsc_write_reg(sc, SMSC_MAC_CSR, sc->sc_mac_csr);
955 }
956 smsc_setmulti(sc);
957 }
958
959 out:
960 mutex_exit(&sc->sc_lock);
961
962 return rc;
963 }
964
965
966 int
967 smsc_ioctl(struct ifnet *ifp, u_long cmd, void *data)
968 {
969 struct smsc_softc *sc = ifp->if_softc;
970 int s, error = 0;
971
972 if (sc->sc_dying)
973 return EIO;
974
975 s = splnet();
976 error = ether_ioctl(ifp, cmd, data);
977 splx(s);
978
979 if (error == ENETRESET) {
980 error = 0;
981 if (cmd != SIOCADDMULTI && cmd != SIOCDELMULTI)
982 ;
983 else if (ifp->if_flags & IFF_RUNNING) {
984 mutex_enter(&sc->sc_lock);
985 smsc_setmulti(sc);
986 mutex_exit(&sc->sc_lock);
987 }
988 }
989 return error;
990 }
991
992 int
993 smsc_match(device_t parent, cfdata_t match, void *aux)
994 {
995 struct usb_attach_arg *uaa = aux;
996
997 return (usb_lookup(smsc_devs, uaa->uaa_vendor, uaa->uaa_product) != NULL) ?
998 UMATCH_VENDOR_PRODUCT : UMATCH_NONE;
999 }
1000
1001 void
1002 smsc_attach(device_t parent, device_t self, void *aux)
1003 {
1004 struct smsc_softc *sc = device_private(self);
1005 struct usb_attach_arg *uaa = aux;
1006 struct usbd_device *dev = uaa->uaa_device;
1007 usb_interface_descriptor_t *id;
1008 usb_endpoint_descriptor_t *ed;
1009 char *devinfop;
1010 struct mii_data *mii;
1011 struct ifnet *ifp;
1012 int err, i;
1013 uint32_t mac_h, mac_l;
1014
1015 sc->sc_dev = self;
1016 sc->sc_udev = dev;
1017 sc->sc_stopping = false;
1018
1019 aprint_naive("\n");
1020 aprint_normal("\n");
1021
1022 devinfop = usbd_devinfo_alloc(sc->sc_udev, 0);
1023 aprint_normal_dev(self, "%s\n", devinfop);
1024 usbd_devinfo_free(devinfop);
1025
1026 err = usbd_set_config_no(dev, SMSC_CONFIG_INDEX, 1);
1027 if (err) {
1028 aprint_error_dev(self, "failed to set configuration"
1029 ", err=%s\n", usbd_errstr(err));
1030 return;
1031 }
1032
1033 /* Setup the endpoints for the SMSC LAN95xx device(s) */
1034 err = usbd_device2interface_handle(dev, SMSC_IFACE_IDX, &sc->sc_iface);
1035 if (err) {
1036 aprint_error_dev(self, "getting interface handle failed\n");
1037 return;
1038 }
1039
1040 id = usbd_get_interface_descriptor(sc->sc_iface);
1041
1042 if (sc->sc_udev->ud_speed >= USB_SPEED_HIGH)
1043 sc->sc_bufsz = SMSC_MAX_BUFSZ;
1044 else
1045 sc->sc_bufsz = SMSC_MIN_BUFSZ;
1046
1047 /* Find endpoints. */
1048 for (i = 0; i < id->bNumEndpoints; i++) {
1049 ed = usbd_interface2endpoint_descriptor(sc->sc_iface, i);
1050 if (!ed) {
1051 aprint_error_dev(self, "couldn't get ep %d\n", i);
1052 return;
1053 }
1054 if (UE_GET_DIR(ed->bEndpointAddress) == UE_DIR_IN &&
1055 UE_GET_XFERTYPE(ed->bmAttributes) == UE_BULK) {
1056 sc->sc_ed[SMSC_ENDPT_RX] = ed->bEndpointAddress;
1057 } else if (UE_GET_DIR(ed->bEndpointAddress) == UE_DIR_OUT &&
1058 UE_GET_XFERTYPE(ed->bmAttributes) == UE_BULK) {
1059 sc->sc_ed[SMSC_ENDPT_TX] = ed->bEndpointAddress;
1060 } else if (UE_GET_DIR(ed->bEndpointAddress) == UE_DIR_IN &&
1061 UE_GET_XFERTYPE(ed->bmAttributes) == UE_INTERRUPT) {
1062 sc->sc_ed[SMSC_ENDPT_INTR] = ed->bEndpointAddress;
1063 }
1064 }
1065
1066 usb_init_task(&sc->sc_tick_task, smsc_tick_task, sc, 0);
1067
1068 mutex_init(&sc->sc_lock, MUTEX_DEFAULT, IPL_NONE);
1069 mutex_init(&sc->sc_txlock, MUTEX_DEFAULT, IPL_SOFTUSB);
1070 mutex_init(&sc->sc_rxlock, MUTEX_DEFAULT, IPL_SOFTUSB);
1071 mutex_init(&sc->sc_mii_lock, MUTEX_DEFAULT, IPL_NONE);
1072
1073 ifp = &sc->sc_ec.ec_if;
1074 ifp->if_softc = sc;
1075 strlcpy(ifp->if_xname, device_xname(sc->sc_dev), IFNAMSIZ);
1076 ifp->if_flags = IFF_BROADCAST | IFF_SIMPLEX | IFF_MULTICAST;
1077 ifp->if_extflags = IFEF_START_MPSAFE;
1078 ifp->if_init = smsc_init;
1079 ifp->if_ioctl = smsc_ioctl;
1080 ifp->if_start = smsc_start;
1081 ifp->if_stop = smsc_stop;
1082
1083 #ifdef notyet
1084 /*
1085 * We can do TCPv4, and UDPv4 checksums in hardware.
1086 */
1087 ifp->if_capabilities |=
1088 /*IFCAP_CSUM_TCPv4_Tx |*/ IFCAP_CSUM_TCPv4_Rx |
1089 /*IFCAP_CSUM_UDPv4_Tx |*/ IFCAP_CSUM_UDPv4_Rx;
1090 #endif
1091
1092 sc->sc_ec.ec_capabilities = ETHERCAP_VLAN_MTU;
1093
1094 /* Setup some of the basics */
1095 sc->sc_phyno = 1;
1096
1097 /*
1098 * Attempt to get the mac address, if an EEPROM is not attached this
1099 * will just return FF:FF:FF:FF:FF:FF, so in such cases we invent a MAC
1100 * address based on urandom.
1101 */
1102 memset(sc->sc_enaddr, 0xff, ETHER_ADDR_LEN);
1103
1104 prop_dictionary_t dict = device_properties(self);
1105 prop_data_t eaprop = prop_dictionary_get(dict, "mac-address");
1106
1107 if (eaprop != NULL) {
1108 KASSERT(prop_object_type(eaprop) == PROP_TYPE_DATA);
1109 KASSERT(prop_data_size(eaprop) == ETHER_ADDR_LEN);
1110 memcpy(sc->sc_enaddr, prop_data_data_nocopy(eaprop),
1111 ETHER_ADDR_LEN);
1112 } else {
1113 /* Check if there is already a MAC address in the register */
1114 if ((smsc_read_reg(sc, SMSC_MAC_ADDRL, &mac_l) == 0) &&
1115 (smsc_read_reg(sc, SMSC_MAC_ADDRH, &mac_h) == 0)) {
1116 sc->sc_enaddr[5] = (uint8_t)((mac_h >> 8) & 0xff);
1117 sc->sc_enaddr[4] = (uint8_t)((mac_h) & 0xff);
1118 sc->sc_enaddr[3] = (uint8_t)((mac_l >> 24) & 0xff);
1119 sc->sc_enaddr[2] = (uint8_t)((mac_l >> 16) & 0xff);
1120 sc->sc_enaddr[1] = (uint8_t)((mac_l >> 8) & 0xff);
1121 sc->sc_enaddr[0] = (uint8_t)((mac_l) & 0xff);
1122 }
1123 }
1124
1125 aprint_normal_dev(self, "Ethernet address %s\n", ether_sprintf(sc->sc_enaddr));
1126
1127 IFQ_SET_READY(&ifp->if_snd);
1128
1129 /* Initialize MII/media info. */
1130 mii = &sc->sc_mii;
1131 mii->mii_ifp = ifp;
1132 mii->mii_readreg = smsc_miibus_readreg;
1133 mii->mii_writereg = smsc_miibus_writereg;
1134 mii->mii_statchg = smsc_miibus_statchg;
1135 mii->mii_flags = MIIF_AUTOTSLEEP;
1136 sc->sc_ec.ec_mii = mii;
1137 ifmedia_init(&mii->mii_media, 0, smsc_ifmedia_upd, smsc_ifmedia_sts);
1138 mii_attach(self, mii, 0xffffffff, MII_PHY_ANY, MII_OFFSET_ANY, 0);
1139
1140 if (LIST_FIRST(&mii->mii_phys) == NULL) {
1141 ifmedia_add(&mii->mii_media, IFM_ETHER | IFM_NONE, 0, NULL);
1142 ifmedia_set(&mii->mii_media, IFM_ETHER | IFM_NONE);
1143 } else
1144 ifmedia_set(&mii->mii_media, IFM_ETHER | IFM_AUTO);
1145
1146 if_initialize(ifp);
1147 sc->sc_ipq = if_percpuq_create(&sc->sc_ec.ec_if);
1148 ether_ifattach(ifp, sc->sc_enaddr);
1149 if_register(ifp);
1150 ether_set_ifflags_cb(&sc->sc_ec, smsc_ifflags_cb);
1151
1152 rnd_attach_source(&sc->sc_rnd_source, device_xname(sc->sc_dev),
1153 RND_TYPE_NET, RND_FLAG_DEFAULT);
1154
1155 callout_init(&sc->sc_stat_ch, 0);
1156
1157 usbd_add_drv_event(USB_EVENT_DRIVER_ATTACH, sc->sc_udev, sc->sc_dev);
1158 }
1159
1160 int
1161 smsc_detach(device_t self, int flags)
1162 {
1163 struct smsc_softc *sc = device_private(self);
1164 struct ifnet *ifp = &sc->sc_ec.ec_if;
1165 int s;
1166
1167 callout_stop(&sc->sc_stat_ch);
1168
1169 if (sc->sc_ep[SMSC_ENDPT_TX] != NULL)
1170 usbd_abort_pipe(sc->sc_ep[SMSC_ENDPT_TX]);
1171 if (sc->sc_ep[SMSC_ENDPT_RX] != NULL)
1172 usbd_abort_pipe(sc->sc_ep[SMSC_ENDPT_RX]);
1173 if (sc->sc_ep[SMSC_ENDPT_INTR] != NULL)
1174 usbd_abort_pipe(sc->sc_ep[SMSC_ENDPT_INTR]);
1175
1176 /*
1177 * Remove any pending tasks. They cannot be executing because they run
1178 * in the same thread as detach.
1179 */
1180 usb_rem_task(sc->sc_udev, &sc->sc_tick_task);
1181
1182 s = splusb();
1183
1184 if (--sc->sc_refcnt >= 0) {
1185 /* Wait for processes to go away */
1186 usb_detach_waitold(sc->sc_dev);
1187 }
1188
1189 if (ifp->if_flags & IFF_RUNNING)
1190 smsc_stop(ifp ,1);
1191
1192 rnd_detach_source(&sc->sc_rnd_source);
1193 mii_detach(&sc->sc_mii, MII_PHY_ANY, MII_OFFSET_ANY);
1194 ifmedia_delete_instance(&sc->sc_mii.mii_media, IFM_INST_ANY);
1195 if (ifp->if_softc != NULL) {
1196 ether_ifdetach(ifp);
1197 if_detach(ifp);
1198 }
1199
1200 #ifdef DIAGNOSTIC
1201 if (sc->sc_ep[SMSC_ENDPT_TX] != NULL ||
1202 sc->sc_ep[SMSC_ENDPT_RX] != NULL ||
1203 sc->sc_ep[SMSC_ENDPT_INTR] != NULL)
1204 printf("%s: detach has active endpoints\n",
1205 device_xname(sc->sc_dev));
1206 #endif
1207
1208 if (--sc->sc_refcnt >= 0) {
1209 /* Wait for processes to go away. */
1210 usb_detach_waitold(sc->sc_dev);
1211 }
1212 splx(s);
1213
1214 usbd_add_drv_event(USB_EVENT_DRIVER_DETACH, sc->sc_udev, sc->sc_dev);
1215
1216 mutex_destroy(&sc->sc_mii_lock);
1217
1218 mutex_destroy(&sc->sc_rxlock);
1219 mutex_destroy(&sc->sc_txlock);
1220 mutex_destroy(&sc->sc_lock);
1221
1222 return 0;
1223 }
1224
1225 void
1226 smsc_tick_task(void *xsc)
1227 {
1228 struct smsc_softc * const sc = xsc;
1229
1230 if (sc == NULL)
1231 return;
1232
1233 if (sc->sc_dying)
1234 return;
1235
1236 struct ifnet * const ifp = &sc->sc_ec.ec_if;
1237 struct mii_data * const mii = &sc->sc_mii;
1238 if (mii == NULL)
1239 return;
1240
1241 const int s = splnet();
1242
1243 mii_tick(mii);
1244 if ((sc->sc_flags & SMSC_FLAG_LINK) == 0)
1245 smsc_miibus_statchg(ifp);
1246 callout_reset(&sc->sc_stat_ch, hz, smsc_tick, sc);
1247
1248 splx(s);
1249 }
1250
1251 int
1252 smsc_activate(device_t self, enum devact act)
1253 {
1254 struct smsc_softc *sc = device_private(self);
1255
1256 switch (act) {
1257 case DVACT_DEACTIVATE:
1258 if_deactivate(&sc->sc_ec.ec_if);
1259 sc->sc_dying = 1;
1260 return 0;
1261 default:
1262 return EOPNOTSUPP;
1263 }
1264 return 0;
1265 }
1266
1267 void
1268 smsc_lock_mii(struct smsc_softc *sc)
1269 {
1270 sc->sc_refcnt++;
1271 mutex_enter(&sc->sc_mii_lock);
1272 }
1273
1274 void
1275 smsc_unlock_mii(struct smsc_softc *sc)
1276 {
1277 mutex_exit(&sc->sc_mii_lock);
1278 if (--sc->sc_refcnt < 0)
1279 usb_detach_wakeupold(sc->sc_dev);
1280 }
1281
1282 void
1283 smsc_rxeof(struct usbd_xfer *xfer, void *priv, usbd_status status)
1284 {
1285 struct smsc_chain *c = (struct smsc_chain *)priv;
1286 struct smsc_softc *sc = c->sc_sc;
1287 struct ifnet *ifp = &sc->sc_ec.ec_if;
1288 u_char *buf = c->sc_buf;
1289 uint32_t total_len;
1290 uint32_t rxhdr;
1291 uint16_t pktlen;
1292 struct mbuf *m;
1293
1294 mutex_enter(&sc->sc_rxlock);
1295
1296 if (sc->sc_dying) {
1297 mutex_exit(&sc->sc_rxlock);
1298 return;
1299 }
1300
1301 if (!(ifp->if_flags & IFF_RUNNING)) {
1302 mutex_exit(&sc->sc_rxlock);
1303 return;
1304 }
1305
1306 if (status != USBD_NORMAL_COMPLETION) {
1307 if (status == USBD_NOT_STARTED || status == USBD_CANCELLED) {
1308 mutex_exit(&sc->sc_rxlock);
1309 return;
1310 }
1311 if (usbd_ratecheck(&sc->sc_rx_notice)) {
1312 printf("%s: usb errors on rx: %s\n",
1313 device_xname(sc->sc_dev), usbd_errstr(status));
1314 }
1315 if (status == USBD_STALLED)
1316 usbd_clear_endpoint_stall_async(sc->sc_ep[SMSC_ENDPT_RX]);
1317 goto done;
1318 }
1319
1320 usbd_get_xfer_status(xfer, NULL, NULL, &total_len, NULL);
1321 smsc_dbg_printf(sc, "xfer status total_len %d\n", total_len);
1322
1323 while (total_len != 0) {
1324 if (total_len < sizeof(rxhdr)) {
1325 smsc_dbg_printf(sc, "total_len %d < sizeof(rxhdr) %zu\n",
1326 total_len, sizeof(rxhdr));
1327 ifp->if_ierrors++;
1328 goto done;
1329 }
1330
1331 memcpy(&rxhdr, buf, sizeof(rxhdr));
1332 rxhdr = le32toh(rxhdr);
1333 buf += sizeof(rxhdr);
1334 total_len -= sizeof(rxhdr);
1335
1336 if (rxhdr & SMSC_RX_STAT_COLLISION)
1337 ifp->if_collisions++;
1338
1339 if (rxhdr & (SMSC_RX_STAT_ERROR
1340 | SMSC_RX_STAT_LENGTH_ERROR
1341 | SMSC_RX_STAT_MII_ERROR)) {
1342 smsc_dbg_printf(sc, "rx error (hdr 0x%08x)\n", rxhdr);
1343 ifp->if_ierrors++;
1344 goto done;
1345 }
1346
1347 pktlen = (uint16_t)SMSC_RX_STAT_FRM_LENGTH(rxhdr);
1348 smsc_dbg_printf(sc, "rxeof total_len %d pktlen %d rxhdr "
1349 "0x%08x\n", total_len, pktlen, rxhdr);
1350
1351 if (pktlen < ETHER_HDR_LEN) {
1352 smsc_dbg_printf(sc, "pktlen %d < ETHER_HDR_LEN %d\n",
1353 pktlen, ETHER_HDR_LEN);
1354 ifp->if_ierrors++;
1355 goto done;
1356 }
1357
1358 pktlen += ETHER_ALIGN;
1359
1360 if (pktlen > MCLBYTES) {
1361 smsc_dbg_printf(sc, "pktlen %d > MCLBYTES %d\n",
1362 pktlen, MCLBYTES);
1363 ifp->if_ierrors++;
1364 goto done;
1365 }
1366
1367 if (pktlen > total_len) {
1368 smsc_dbg_printf(sc, "pktlen %d > total_len %d\n",
1369 pktlen, total_len);
1370 ifp->if_ierrors++;
1371 goto done;
1372 }
1373
1374 m = smsc_newbuf();
1375 if (m == NULL) {
1376 smsc_dbg_printf(sc, "smc_newbuf returned NULL\n");
1377 ifp->if_ierrors++;
1378 goto done;
1379 }
1380
1381 ifp->if_ipackets++;
1382 m_set_rcvif(m, ifp);
1383 m->m_pkthdr.len = m->m_len = pktlen;
1384 m->m_flags |= M_HASFCS;
1385 m_adj(m, ETHER_ALIGN);
1386
1387 KASSERT(m->m_len < MCLBYTES);
1388 memcpy(mtod(m, char *), buf + ETHER_ALIGN, m->m_len);
1389
1390 /* Check if RX TCP/UDP checksumming is being offloaded */
1391 if (sc->sc_coe_ctrl & SMSC_COE_CTRL_RX_EN) {
1392 smsc_dbg_printf(sc,"RX checksum offload checking\n");
1393 struct ether_header *eh;
1394
1395 eh = mtod(m, struct ether_header *);
1396
1397 /* Remove the extra 2 bytes of the csum */
1398 m_adj(m, -2);
1399
1400 /*
1401 * The checksum appears to be simplistically calculated
1402 * over the udp/tcp header and data up to the end of the
1403 * eth frame. Which means if the eth frame is padded
1404 * the csum calculation is incorrectly performed over
1405 * the padding bytes as well. Therefore to be safe we
1406 * ignore the H/W csum on frames less than or equal to
1407 * 64 bytes.
1408 *
1409 * Ignore H/W csum for non-IPv4 packets.
1410 */
1411 smsc_dbg_printf(sc,"Ethertype %02x pktlen %02x\n",
1412 be16toh(eh->ether_type), pktlen);
1413 if (be16toh(eh->ether_type) == ETHERTYPE_IP &&
1414 pktlen > ETHER_MIN_LEN) {
1415
1416 m->m_pkthdr.csum_flags |=
1417 (M_CSUM_TCPv4 | M_CSUM_UDPv4 | M_CSUM_DATA);
1418
1419 /*
1420 * Copy the TCP/UDP checksum from the last 2
1421 * bytes of the transfer and put in the
1422 * csum_data field.
1423 */
1424 memcpy(&m->m_pkthdr.csum_data,
1425 buf + pktlen - 2, 2);
1426 /*
1427 * The data is copied in network order, but the
1428 * csum algorithm in the kernel expects it to be
1429 * in host network order.
1430 */
1431 m->m_pkthdr.csum_data =
1432 ntohs(m->m_pkthdr.csum_data);
1433 smsc_dbg_printf(sc,
1434 "RX checksum offloaded (0x%04x)\n",
1435 m->m_pkthdr.csum_data);
1436 }
1437 }
1438
1439 /* round up to next longword */
1440 pktlen = (pktlen + 3) & ~0x3;
1441
1442 /* total_len does not include the padding */
1443 if (pktlen > total_len)
1444 pktlen = total_len;
1445
1446 buf += pktlen;
1447 total_len -= pktlen;
1448
1449 mutex_exit(&sc->sc_rxlock);
1450
1451 /* push the packet up */
1452 bpf_mtap(ifp, m);
1453 if_percpuq_enqueue(sc->sc_ipq, m);
1454
1455 mutex_enter(&sc->sc_rxlock);
1456 }
1457
1458 done:
1459 mutex_exit(&sc->sc_rxlock);
1460
1461 /* Setup new transfer. */
1462 usbd_setup_xfer(xfer, c, c->sc_buf, sc->sc_bufsz, USBD_SHORT_XFER_OK,
1463 USBD_NO_TIMEOUT, smsc_rxeof);
1464 usbd_transfer(xfer);
1465
1466 return;
1467 }
1468
1469 void
1470 smsc_txeof(struct usbd_xfer *xfer, void *priv, usbd_status status)
1471 {
1472 struct smsc_chain *c = priv;
1473 struct smsc_softc *sc = c->sc_sc;
1474 struct ifnet *ifp = &sc->sc_ec.ec_if;
1475
1476 mutex_enter(&sc->sc_txlock);
1477
1478 if (sc->sc_dying) {
1479 mutex_exit(&sc->sc_txlock);
1480 return;
1481 }
1482
1483 if (sc->sc_stopping) {
1484 mutex_exit(&sc->sc_txlock);
1485 return;
1486 }
1487
1488 ifp->if_timer = 0;
1489 ifp->if_flags &= ~IFF_OACTIVE;
1490
1491 if (status != USBD_NORMAL_COMPLETION) {
1492 if (status == USBD_NOT_STARTED || status == USBD_CANCELLED) {
1493 mutex_exit(&sc->sc_txlock);
1494 return;
1495 }
1496 ifp->if_oerrors++;
1497 printf("%s: usb error on tx: %s\n", device_xname(sc->sc_dev),
1498 usbd_errstr(status));
1499 if (status == USBD_STALLED)
1500 usbd_clear_endpoint_stall_async(sc->sc_ep[SMSC_ENDPT_TX]);
1501 mutex_exit(&sc->sc_txlock);
1502 return;
1503 }
1504 ifp->if_opackets++;
1505
1506 m_freem(c->sc_mbuf);
1507 c->sc_mbuf = NULL;
1508
1509 if (IFQ_IS_EMPTY(&ifp->if_snd) == 0)
1510 smsc_start_locked(ifp);
1511
1512 mutex_exit(&sc->sc_txlock);
1513 }
1514
1515 int
1516 smsc_tx_list_init(struct smsc_softc *sc)
1517 {
1518 struct smsc_cdata *cd = &sc->sc_cdata;
1519 struct smsc_chain *c;
1520 int i;
1521
1522 for (i = 0; i < SMSC_TX_LIST_CNT; i++) {
1523 c = &cd->tx_chain[i];
1524 c->sc_sc = sc;
1525 c->sc_idx = i;
1526 c->sc_mbuf = NULL;
1527 if (c->sc_xfer == NULL) {
1528 int error = usbd_create_xfer(sc->sc_ep[SMSC_ENDPT_TX],
1529 sc->sc_bufsz, USBD_FORCE_SHORT_XFER, 0,
1530 &c->sc_xfer);
1531 if (error)
1532 return EIO;
1533 c->sc_buf = usbd_get_buffer(c->sc_xfer);
1534 }
1535 }
1536
1537 return 0;
1538 }
1539
1540 void
1541 smsc_tx_list_free(struct smsc_softc *sc)
1542 {
1543 /* Free TX resources. */
1544 for (size_t i = 0; i < SMSC_TX_LIST_CNT; i++) {
1545 if (sc->sc_cdata.tx_chain[i].sc_mbuf != NULL) {
1546 m_freem(sc->sc_cdata.tx_chain[i].sc_mbuf);
1547 sc->sc_cdata.tx_chain[i].sc_mbuf = NULL;
1548 }
1549 if (sc->sc_cdata.tx_chain[i].sc_xfer != NULL) {
1550 usbd_destroy_xfer(sc->sc_cdata.tx_chain[i].sc_xfer);
1551 sc->sc_cdata.tx_chain[i].sc_xfer = NULL;
1552 }
1553 }
1554 }
1555
1556 int
1557 smsc_rx_list_init(struct smsc_softc *sc)
1558 {
1559 struct smsc_cdata *cd = &sc->sc_cdata;
1560 struct smsc_chain *c;
1561 int i;
1562
1563 for (i = 0; i < SMSC_RX_LIST_CNT; i++) {
1564 c = &cd->rx_chain[i];
1565 c->sc_sc = sc;
1566 c->sc_idx = i;
1567 c->sc_mbuf = NULL;
1568 if (c->sc_xfer == NULL) {
1569 int error = usbd_create_xfer(sc->sc_ep[SMSC_ENDPT_RX],
1570 sc->sc_bufsz, USBD_SHORT_XFER_OK, 0, &c->sc_xfer);
1571 if (error)
1572 return error;
1573 c->sc_buf = usbd_get_buffer(c->sc_xfer);
1574 }
1575 }
1576
1577 return 0;
1578 }
1579
1580 void
1581 smsc_rx_list_free(struct smsc_softc *sc)
1582 {
1583 /* Free RX resources. */
1584 for (size_t i = 0; i < SMSC_RX_LIST_CNT; i++) {
1585 if (sc->sc_cdata.rx_chain[i].sc_mbuf != NULL) {
1586 m_freem(sc->sc_cdata.rx_chain[i].sc_mbuf);
1587 sc->sc_cdata.rx_chain[i].sc_mbuf = NULL;
1588 }
1589 if (sc->sc_cdata.rx_chain[i].sc_xfer != NULL) {
1590 usbd_destroy_xfer(sc->sc_cdata.rx_chain[i].sc_xfer);
1591 sc->sc_cdata.rx_chain[i].sc_xfer = NULL;
1592 }
1593 }
1594 }
1595
1596 struct mbuf *
1597 smsc_newbuf(void)
1598 {
1599 struct mbuf *m;
1600
1601 MGETHDR(m, M_DONTWAIT, MT_DATA);
1602 if (m == NULL)
1603 return NULL;
1604
1605 MCLGET(m, M_DONTWAIT);
1606 if (!(m->m_flags & M_EXT)) {
1607 m_freem(m);
1608 return NULL;
1609 }
1610
1611 return m;
1612 }
1613
1614 int
1615 smsc_encap(struct smsc_softc *sc, struct mbuf *m, int idx)
1616 {
1617 struct ifnet * const ifp = &sc->sc_ec.ec_if;
1618 struct smsc_chain * const c = &sc->sc_cdata.tx_chain[idx];
1619 uint32_t txhdr;
1620 uint32_t frm_len = 0;
1621
1622 /*
1623 * Each frame is prefixed with two 32-bit values describing the
1624 * length of the packet and buffer.
1625 */
1626 txhdr = SMSC_TX_CTRL_0_BUF_SIZE(m->m_pkthdr.len) |
1627 SMSC_TX_CTRL_0_FIRST_SEG | SMSC_TX_CTRL_0_LAST_SEG;
1628 txhdr = htole32(txhdr);
1629 memcpy(c->sc_buf, &txhdr, sizeof(txhdr));
1630
1631 txhdr = SMSC_TX_CTRL_1_PKT_LENGTH(m->m_pkthdr.len);
1632 txhdr = htole32(txhdr);
1633 memcpy(c->sc_buf + 4, &txhdr, sizeof(txhdr));
1634
1635 frm_len += 8;
1636
1637 /* Next copy in the actual packet */
1638 m_copydata(m, 0, m->m_pkthdr.len, c->sc_buf + frm_len);
1639 frm_len += m->m_pkthdr.len;
1640
1641 c->sc_mbuf = m;
1642
1643 usbd_setup_xfer(c->sc_xfer, c, c->sc_buf, frm_len,
1644 USBD_FORCE_SHORT_XFER, 10000, smsc_txeof);
1645
1646 usbd_status err = usbd_transfer(c->sc_xfer);
1647 /* XXXNH get task to stop interface */
1648 if (err != USBD_IN_PROGRESS) {
1649 smsc_stop(ifp, 0);
1650 return EIO;
1651 }
1652
1653 sc->sc_cdata.tx_cnt++;
1654
1655 return 0;
1656 }
1657