sonic.c 22 KB

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  1. /*
  2. * sonic.c
  3. *
  4. * (C) 2005 Finn Thain
  5. *
  6. * Converted to DMA API, added zero-copy buffer handling, and
  7. * (from the mac68k project) introduced dhd's support for 16-bit cards.
  8. *
  9. * (C) 1996,1998 by Thomas Bogendoerfer (tsbogend@alpha.franken.de)
  10. *
  11. * This driver is based on work from Andreas Busse, but most of
  12. * the code is rewritten.
  13. *
  14. * (C) 1995 by Andreas Busse (andy@waldorf-gmbh.de)
  15. *
  16. * Core code included by system sonic drivers
  17. *
  18. * And... partially rewritten again by David Huggins-Daines in order
  19. * to cope with screwed up Macintosh NICs that may or may not use
  20. * 16-bit DMA.
  21. *
  22. * (C) 1999 David Huggins-Daines <dhd@debian.org>
  23. *
  24. */
  25. /*
  26. * Sources: Olivetti M700-10 Risc Personal Computer hardware handbook,
  27. * National Semiconductors data sheet for the DP83932B Sonic Ethernet
  28. * controller, and the files "8390.c" and "skeleton.c" in this directory.
  29. *
  30. * Additional sources: Nat Semi data sheet for the DP83932C and Nat Semi
  31. * Application Note AN-746, the files "lance.c" and "ibmlana.c". See also
  32. * the NetBSD file "sys/arch/mac68k/dev/if_sn.c".
  33. */
  34. /*
  35. * Open/initialize the SONIC controller.
  36. *
  37. * This routine should set everything up anew at each open, even
  38. * registers that "should" only need to be set once at boot, so that
  39. * there is non-reboot way to recover if something goes wrong.
  40. */
  41. static int sonic_open(struct net_device *dev)
  42. {
  43. struct sonic_local *lp = netdev_priv(dev);
  44. int i;
  45. if (sonic_debug > 2)
  46. printk("sonic_open: initializing sonic driver.\n");
  47. for (i = 0; i < SONIC_NUM_RRS; i++) {
  48. struct sk_buff *skb = netdev_alloc_skb(dev, SONIC_RBSIZE + 2);
  49. if (skb == NULL) {
  50. while(i > 0) { /* free any that were allocated successfully */
  51. i--;
  52. dev_kfree_skb(lp->rx_skb[i]);
  53. lp->rx_skb[i] = NULL;
  54. }
  55. printk(KERN_ERR "%s: couldn't allocate receive buffers\n",
  56. dev->name);
  57. return -ENOMEM;
  58. }
  59. /* align IP header unless DMA requires otherwise */
  60. if (SONIC_BUS_SCALE(lp->dma_bitmode) == 2)
  61. skb_reserve(skb, 2);
  62. lp->rx_skb[i] = skb;
  63. }
  64. for (i = 0; i < SONIC_NUM_RRS; i++) {
  65. dma_addr_t laddr = dma_map_single(lp->device, skb_put(lp->rx_skb[i], SONIC_RBSIZE),
  66. SONIC_RBSIZE, DMA_FROM_DEVICE);
  67. if (!laddr) {
  68. while(i > 0) { /* free any that were mapped successfully */
  69. i--;
  70. dma_unmap_single(lp->device, lp->rx_laddr[i], SONIC_RBSIZE, DMA_FROM_DEVICE);
  71. lp->rx_laddr[i] = (dma_addr_t)0;
  72. }
  73. for (i = 0; i < SONIC_NUM_RRS; i++) {
  74. dev_kfree_skb(lp->rx_skb[i]);
  75. lp->rx_skb[i] = NULL;
  76. }
  77. printk(KERN_ERR "%s: couldn't map rx DMA buffers\n",
  78. dev->name);
  79. return -ENOMEM;
  80. }
  81. lp->rx_laddr[i] = laddr;
  82. }
  83. /*
  84. * Initialize the SONIC
  85. */
  86. sonic_init(dev);
  87. netif_start_queue(dev);
  88. if (sonic_debug > 2)
  89. printk("sonic_open: Initialization done.\n");
  90. return 0;
  91. }
  92. /*
  93. * Close the SONIC device
  94. */
  95. static int sonic_close(struct net_device *dev)
  96. {
  97. struct sonic_local *lp = netdev_priv(dev);
  98. int i;
  99. if (sonic_debug > 2)
  100. printk("sonic_close\n");
  101. netif_stop_queue(dev);
  102. /*
  103. * stop the SONIC, disable interrupts
  104. */
  105. SONIC_WRITE(SONIC_IMR, 0);
  106. SONIC_WRITE(SONIC_ISR, 0x7fff);
  107. SONIC_WRITE(SONIC_CMD, SONIC_CR_RST);
  108. /* unmap and free skbs that haven't been transmitted */
  109. for (i = 0; i < SONIC_NUM_TDS; i++) {
  110. if(lp->tx_laddr[i]) {
  111. dma_unmap_single(lp->device, lp->tx_laddr[i], lp->tx_len[i], DMA_TO_DEVICE);
  112. lp->tx_laddr[i] = (dma_addr_t)0;
  113. }
  114. if(lp->tx_skb[i]) {
  115. dev_kfree_skb(lp->tx_skb[i]);
  116. lp->tx_skb[i] = NULL;
  117. }
  118. }
  119. /* unmap and free the receive buffers */
  120. for (i = 0; i < SONIC_NUM_RRS; i++) {
  121. if(lp->rx_laddr[i]) {
  122. dma_unmap_single(lp->device, lp->rx_laddr[i], SONIC_RBSIZE, DMA_FROM_DEVICE);
  123. lp->rx_laddr[i] = (dma_addr_t)0;
  124. }
  125. if(lp->rx_skb[i]) {
  126. dev_kfree_skb(lp->rx_skb[i]);
  127. lp->rx_skb[i] = NULL;
  128. }
  129. }
  130. return 0;
  131. }
  132. static void sonic_tx_timeout(struct net_device *dev)
  133. {
  134. struct sonic_local *lp = netdev_priv(dev);
  135. int i;
  136. /*
  137. * put the Sonic into software-reset mode and
  138. * disable all interrupts before releasing DMA buffers
  139. */
  140. SONIC_WRITE(SONIC_IMR, 0);
  141. SONIC_WRITE(SONIC_ISR, 0x7fff);
  142. SONIC_WRITE(SONIC_CMD, SONIC_CR_RST);
  143. /* We could resend the original skbs. Easier to re-initialise. */
  144. for (i = 0; i < SONIC_NUM_TDS; i++) {
  145. if(lp->tx_laddr[i]) {
  146. dma_unmap_single(lp->device, lp->tx_laddr[i], lp->tx_len[i], DMA_TO_DEVICE);
  147. lp->tx_laddr[i] = (dma_addr_t)0;
  148. }
  149. if(lp->tx_skb[i]) {
  150. dev_kfree_skb(lp->tx_skb[i]);
  151. lp->tx_skb[i] = NULL;
  152. }
  153. }
  154. /* Try to restart the adaptor. */
  155. sonic_init(dev);
  156. lp->stats.tx_errors++;
  157. netif_trans_update(dev); /* prevent tx timeout */
  158. netif_wake_queue(dev);
  159. }
  160. /*
  161. * transmit packet
  162. *
  163. * Appends new TD during transmission thus avoiding any TX interrupts
  164. * until we run out of TDs.
  165. * This routine interacts closely with the ISR in that it may,
  166. * set tx_skb[i]
  167. * reset the status flags of the new TD
  168. * set and reset EOL flags
  169. * stop the tx queue
  170. * The ISR interacts with this routine in various ways. It may,
  171. * reset tx_skb[i]
  172. * test the EOL and status flags of the TDs
  173. * wake the tx queue
  174. * Concurrently with all of this, the SONIC is potentially writing to
  175. * the status flags of the TDs.
  176. * Until some mutual exclusion is added, this code will not work with SMP. However,
  177. * MIPS Jazz machines and m68k Macs were all uni-processor machines.
  178. */
  179. static int sonic_send_packet(struct sk_buff *skb, struct net_device *dev)
  180. {
  181. struct sonic_local *lp = netdev_priv(dev);
  182. dma_addr_t laddr;
  183. int length;
  184. int entry = lp->next_tx;
  185. if (sonic_debug > 2)
  186. printk("sonic_send_packet: skb=%p, dev=%p\n", skb, dev);
  187. length = skb->len;
  188. if (length < ETH_ZLEN) {
  189. if (skb_padto(skb, ETH_ZLEN))
  190. return NETDEV_TX_OK;
  191. length = ETH_ZLEN;
  192. }
  193. /*
  194. * Map the packet data into the logical DMA address space
  195. */
  196. laddr = dma_map_single(lp->device, skb->data, length, DMA_TO_DEVICE);
  197. if (!laddr) {
  198. printk(KERN_ERR "%s: failed to map tx DMA buffer.\n", dev->name);
  199. dev_kfree_skb(skb);
  200. return NETDEV_TX_BUSY;
  201. }
  202. sonic_tda_put(dev, entry, SONIC_TD_STATUS, 0); /* clear status */
  203. sonic_tda_put(dev, entry, SONIC_TD_FRAG_COUNT, 1); /* single fragment */
  204. sonic_tda_put(dev, entry, SONIC_TD_PKTSIZE, length); /* length of packet */
  205. sonic_tda_put(dev, entry, SONIC_TD_FRAG_PTR_L, laddr & 0xffff);
  206. sonic_tda_put(dev, entry, SONIC_TD_FRAG_PTR_H, laddr >> 16);
  207. sonic_tda_put(dev, entry, SONIC_TD_FRAG_SIZE, length);
  208. sonic_tda_put(dev, entry, SONIC_TD_LINK,
  209. sonic_tda_get(dev, entry, SONIC_TD_LINK) | SONIC_EOL);
  210. /*
  211. * Must set tx_skb[entry] only after clearing status, and
  212. * before clearing EOL and before stopping queue
  213. */
  214. wmb();
  215. lp->tx_len[entry] = length;
  216. lp->tx_laddr[entry] = laddr;
  217. lp->tx_skb[entry] = skb;
  218. wmb();
  219. sonic_tda_put(dev, lp->eol_tx, SONIC_TD_LINK,
  220. sonic_tda_get(dev, lp->eol_tx, SONIC_TD_LINK) & ~SONIC_EOL);
  221. lp->eol_tx = entry;
  222. lp->next_tx = (entry + 1) & SONIC_TDS_MASK;
  223. if (lp->tx_skb[lp->next_tx] != NULL) {
  224. /* The ring is full, the ISR has yet to process the next TD. */
  225. if (sonic_debug > 3)
  226. printk("%s: stopping queue\n", dev->name);
  227. netif_stop_queue(dev);
  228. /* after this packet, wait for ISR to free up some TDAs */
  229. } else netif_start_queue(dev);
  230. if (sonic_debug > 2)
  231. printk("sonic_send_packet: issuing Tx command\n");
  232. SONIC_WRITE(SONIC_CMD, SONIC_CR_TXP);
  233. return NETDEV_TX_OK;
  234. }
  235. /*
  236. * The typical workload of the driver:
  237. * Handle the network interface interrupts.
  238. */
  239. static irqreturn_t sonic_interrupt(int irq, void *dev_id)
  240. {
  241. struct net_device *dev = dev_id;
  242. struct sonic_local *lp = netdev_priv(dev);
  243. int status;
  244. if (!(status = SONIC_READ(SONIC_ISR) & SONIC_IMR_DEFAULT))
  245. return IRQ_NONE;
  246. do {
  247. if (status & SONIC_INT_PKTRX) {
  248. if (sonic_debug > 2)
  249. printk("%s: packet rx\n", dev->name);
  250. sonic_rx(dev); /* got packet(s) */
  251. SONIC_WRITE(SONIC_ISR, SONIC_INT_PKTRX); /* clear the interrupt */
  252. }
  253. if (status & SONIC_INT_TXDN) {
  254. int entry = lp->cur_tx;
  255. int td_status;
  256. int freed_some = 0;
  257. /* At this point, cur_tx is the index of a TD that is one of:
  258. * unallocated/freed (status set & tx_skb[entry] clear)
  259. * allocated and sent (status set & tx_skb[entry] set )
  260. * allocated and not yet sent (status clear & tx_skb[entry] set )
  261. * still being allocated by sonic_send_packet (status clear & tx_skb[entry] clear)
  262. */
  263. if (sonic_debug > 2)
  264. printk("%s: tx done\n", dev->name);
  265. while (lp->tx_skb[entry] != NULL) {
  266. if ((td_status = sonic_tda_get(dev, entry, SONIC_TD_STATUS)) == 0)
  267. break;
  268. if (td_status & 0x0001) {
  269. lp->stats.tx_packets++;
  270. lp->stats.tx_bytes += sonic_tda_get(dev, entry, SONIC_TD_PKTSIZE);
  271. } else {
  272. lp->stats.tx_errors++;
  273. if (td_status & 0x0642)
  274. lp->stats.tx_aborted_errors++;
  275. if (td_status & 0x0180)
  276. lp->stats.tx_carrier_errors++;
  277. if (td_status & 0x0020)
  278. lp->stats.tx_window_errors++;
  279. if (td_status & 0x0004)
  280. lp->stats.tx_fifo_errors++;
  281. }
  282. /* We must free the original skb */
  283. dev_kfree_skb_irq(lp->tx_skb[entry]);
  284. lp->tx_skb[entry] = NULL;
  285. /* and unmap DMA buffer */
  286. dma_unmap_single(lp->device, lp->tx_laddr[entry], lp->tx_len[entry], DMA_TO_DEVICE);
  287. lp->tx_laddr[entry] = (dma_addr_t)0;
  288. freed_some = 1;
  289. if (sonic_tda_get(dev, entry, SONIC_TD_LINK) & SONIC_EOL) {
  290. entry = (entry + 1) & SONIC_TDS_MASK;
  291. break;
  292. }
  293. entry = (entry + 1) & SONIC_TDS_MASK;
  294. }
  295. if (freed_some || lp->tx_skb[entry] == NULL)
  296. netif_wake_queue(dev); /* The ring is no longer full */
  297. lp->cur_tx = entry;
  298. SONIC_WRITE(SONIC_ISR, SONIC_INT_TXDN); /* clear the interrupt */
  299. }
  300. /*
  301. * check error conditions
  302. */
  303. if (status & SONIC_INT_RFO) {
  304. if (sonic_debug > 1)
  305. printk("%s: rx fifo overrun\n", dev->name);
  306. lp->stats.rx_fifo_errors++;
  307. SONIC_WRITE(SONIC_ISR, SONIC_INT_RFO); /* clear the interrupt */
  308. }
  309. if (status & SONIC_INT_RDE) {
  310. if (sonic_debug > 1)
  311. printk("%s: rx descriptors exhausted\n", dev->name);
  312. lp->stats.rx_dropped++;
  313. SONIC_WRITE(SONIC_ISR, SONIC_INT_RDE); /* clear the interrupt */
  314. }
  315. if (status & SONIC_INT_RBAE) {
  316. if (sonic_debug > 1)
  317. printk("%s: rx buffer area exceeded\n", dev->name);
  318. lp->stats.rx_dropped++;
  319. SONIC_WRITE(SONIC_ISR, SONIC_INT_RBAE); /* clear the interrupt */
  320. }
  321. /* counter overruns; all counters are 16bit wide */
  322. if (status & SONIC_INT_FAE) {
  323. lp->stats.rx_frame_errors += 65536;
  324. SONIC_WRITE(SONIC_ISR, SONIC_INT_FAE); /* clear the interrupt */
  325. }
  326. if (status & SONIC_INT_CRC) {
  327. lp->stats.rx_crc_errors += 65536;
  328. SONIC_WRITE(SONIC_ISR, SONIC_INT_CRC); /* clear the interrupt */
  329. }
  330. if (status & SONIC_INT_MP) {
  331. lp->stats.rx_missed_errors += 65536;
  332. SONIC_WRITE(SONIC_ISR, SONIC_INT_MP); /* clear the interrupt */
  333. }
  334. /* transmit error */
  335. if (status & SONIC_INT_TXER) {
  336. if ((SONIC_READ(SONIC_TCR) & SONIC_TCR_FU) && (sonic_debug > 2))
  337. printk(KERN_ERR "%s: tx fifo underrun\n", dev->name);
  338. SONIC_WRITE(SONIC_ISR, SONIC_INT_TXER); /* clear the interrupt */
  339. }
  340. /* bus retry */
  341. if (status & SONIC_INT_BR) {
  342. printk(KERN_ERR "%s: Bus retry occurred! Device interrupt disabled.\n",
  343. dev->name);
  344. /* ... to help debug DMA problems causing endless interrupts. */
  345. /* Bounce the eth interface to turn on the interrupt again. */
  346. SONIC_WRITE(SONIC_IMR, 0);
  347. SONIC_WRITE(SONIC_ISR, SONIC_INT_BR); /* clear the interrupt */
  348. }
  349. /* load CAM done */
  350. if (status & SONIC_INT_LCD)
  351. SONIC_WRITE(SONIC_ISR, SONIC_INT_LCD); /* clear the interrupt */
  352. } while((status = SONIC_READ(SONIC_ISR) & SONIC_IMR_DEFAULT));
  353. return IRQ_HANDLED;
  354. }
  355. /*
  356. * We have a good packet(s), pass it/them up the network stack.
  357. */
  358. static void sonic_rx(struct net_device *dev)
  359. {
  360. struct sonic_local *lp = netdev_priv(dev);
  361. int status;
  362. int entry = lp->cur_rx;
  363. while (sonic_rda_get(dev, entry, SONIC_RD_IN_USE) == 0) {
  364. struct sk_buff *used_skb;
  365. struct sk_buff *new_skb;
  366. dma_addr_t new_laddr;
  367. u16 bufadr_l;
  368. u16 bufadr_h;
  369. int pkt_len;
  370. status = sonic_rda_get(dev, entry, SONIC_RD_STATUS);
  371. if (status & SONIC_RCR_PRX) {
  372. /* Malloc up new buffer. */
  373. new_skb = netdev_alloc_skb(dev, SONIC_RBSIZE + 2);
  374. if (new_skb == NULL) {
  375. lp->stats.rx_dropped++;
  376. break;
  377. }
  378. /* provide 16 byte IP header alignment unless DMA requires otherwise */
  379. if(SONIC_BUS_SCALE(lp->dma_bitmode) == 2)
  380. skb_reserve(new_skb, 2);
  381. new_laddr = dma_map_single(lp->device, skb_put(new_skb, SONIC_RBSIZE),
  382. SONIC_RBSIZE, DMA_FROM_DEVICE);
  383. if (!new_laddr) {
  384. dev_kfree_skb(new_skb);
  385. printk(KERN_ERR "%s: Failed to map rx buffer, dropping packet.\n", dev->name);
  386. lp->stats.rx_dropped++;
  387. break;
  388. }
  389. /* now we have a new skb to replace it, pass the used one up the stack */
  390. dma_unmap_single(lp->device, lp->rx_laddr[entry], SONIC_RBSIZE, DMA_FROM_DEVICE);
  391. used_skb = lp->rx_skb[entry];
  392. pkt_len = sonic_rda_get(dev, entry, SONIC_RD_PKTLEN);
  393. skb_trim(used_skb, pkt_len);
  394. used_skb->protocol = eth_type_trans(used_skb, dev);
  395. netif_rx(used_skb);
  396. lp->stats.rx_packets++;
  397. lp->stats.rx_bytes += pkt_len;
  398. /* and insert the new skb */
  399. lp->rx_laddr[entry] = new_laddr;
  400. lp->rx_skb[entry] = new_skb;
  401. bufadr_l = (unsigned long)new_laddr & 0xffff;
  402. bufadr_h = (unsigned long)new_laddr >> 16;
  403. sonic_rra_put(dev, entry, SONIC_RR_BUFADR_L, bufadr_l);
  404. sonic_rra_put(dev, entry, SONIC_RR_BUFADR_H, bufadr_h);
  405. } else {
  406. /* This should only happen, if we enable accepting broken packets. */
  407. lp->stats.rx_errors++;
  408. if (status & SONIC_RCR_FAER)
  409. lp->stats.rx_frame_errors++;
  410. if (status & SONIC_RCR_CRCR)
  411. lp->stats.rx_crc_errors++;
  412. }
  413. if (status & SONIC_RCR_LPKT) {
  414. /*
  415. * this was the last packet out of the current receive buffer
  416. * give the buffer back to the SONIC
  417. */
  418. lp->cur_rwp += SIZEOF_SONIC_RR * SONIC_BUS_SCALE(lp->dma_bitmode);
  419. if (lp->cur_rwp >= lp->rra_end) lp->cur_rwp = lp->rra_laddr & 0xffff;
  420. SONIC_WRITE(SONIC_RWP, lp->cur_rwp);
  421. if (SONIC_READ(SONIC_ISR) & SONIC_INT_RBE) {
  422. if (sonic_debug > 2)
  423. printk("%s: rx buffer exhausted\n", dev->name);
  424. SONIC_WRITE(SONIC_ISR, SONIC_INT_RBE); /* clear the flag */
  425. }
  426. } else
  427. printk(KERN_ERR "%s: rx desc without RCR_LPKT. Shouldn't happen !?\n",
  428. dev->name);
  429. /*
  430. * give back the descriptor
  431. */
  432. sonic_rda_put(dev, entry, SONIC_RD_LINK,
  433. sonic_rda_get(dev, entry, SONIC_RD_LINK) | SONIC_EOL);
  434. sonic_rda_put(dev, entry, SONIC_RD_IN_USE, 1);
  435. sonic_rda_put(dev, lp->eol_rx, SONIC_RD_LINK,
  436. sonic_rda_get(dev, lp->eol_rx, SONIC_RD_LINK) & ~SONIC_EOL);
  437. lp->eol_rx = entry;
  438. lp->cur_rx = entry = (entry + 1) & SONIC_RDS_MASK;
  439. }
  440. /*
  441. * If any worth-while packets have been received, netif_rx()
  442. * has done a mark_bh(NET_BH) for us and will work on them
  443. * when we get to the bottom-half routine.
  444. */
  445. }
  446. /*
  447. * Get the current statistics.
  448. * This may be called with the device open or closed.
  449. */
  450. static struct net_device_stats *sonic_get_stats(struct net_device *dev)
  451. {
  452. struct sonic_local *lp = netdev_priv(dev);
  453. /* read the tally counter from the SONIC and reset them */
  454. lp->stats.rx_crc_errors += SONIC_READ(SONIC_CRCT);
  455. SONIC_WRITE(SONIC_CRCT, 0xffff);
  456. lp->stats.rx_frame_errors += SONIC_READ(SONIC_FAET);
  457. SONIC_WRITE(SONIC_FAET, 0xffff);
  458. lp->stats.rx_missed_errors += SONIC_READ(SONIC_MPT);
  459. SONIC_WRITE(SONIC_MPT, 0xffff);
  460. return &lp->stats;
  461. }
  462. /*
  463. * Set or clear the multicast filter for this adaptor.
  464. */
  465. static void sonic_multicast_list(struct net_device *dev)
  466. {
  467. struct sonic_local *lp = netdev_priv(dev);
  468. unsigned int rcr;
  469. struct netdev_hw_addr *ha;
  470. unsigned char *addr;
  471. int i;
  472. rcr = SONIC_READ(SONIC_RCR) & ~(SONIC_RCR_PRO | SONIC_RCR_AMC);
  473. rcr |= SONIC_RCR_BRD; /* accept broadcast packets */
  474. if (dev->flags & IFF_PROMISC) { /* set promiscuous mode */
  475. rcr |= SONIC_RCR_PRO;
  476. } else {
  477. if ((dev->flags & IFF_ALLMULTI) ||
  478. (netdev_mc_count(dev) > 15)) {
  479. rcr |= SONIC_RCR_AMC;
  480. } else {
  481. if (sonic_debug > 2)
  482. printk("sonic_multicast_list: mc_count %d\n",
  483. netdev_mc_count(dev));
  484. sonic_set_cam_enable(dev, 1); /* always enable our own address */
  485. i = 1;
  486. netdev_for_each_mc_addr(ha, dev) {
  487. addr = ha->addr;
  488. sonic_cda_put(dev, i, SONIC_CD_CAP0, addr[1] << 8 | addr[0]);
  489. sonic_cda_put(dev, i, SONIC_CD_CAP1, addr[3] << 8 | addr[2]);
  490. sonic_cda_put(dev, i, SONIC_CD_CAP2, addr[5] << 8 | addr[4]);
  491. sonic_set_cam_enable(dev, sonic_get_cam_enable(dev) | (1 << i));
  492. i++;
  493. }
  494. SONIC_WRITE(SONIC_CDC, 16);
  495. /* issue Load CAM command */
  496. SONIC_WRITE(SONIC_CDP, lp->cda_laddr & 0xffff);
  497. SONIC_WRITE(SONIC_CMD, SONIC_CR_LCAM);
  498. }
  499. }
  500. if (sonic_debug > 2)
  501. printk("sonic_multicast_list: setting RCR=%x\n", rcr);
  502. SONIC_WRITE(SONIC_RCR, rcr);
  503. }
  504. /*
  505. * Initialize the SONIC ethernet controller.
  506. */
  507. static int sonic_init(struct net_device *dev)
  508. {
  509. unsigned int cmd;
  510. struct sonic_local *lp = netdev_priv(dev);
  511. int i;
  512. /*
  513. * put the Sonic into software-reset mode and
  514. * disable all interrupts
  515. */
  516. SONIC_WRITE(SONIC_IMR, 0);
  517. SONIC_WRITE(SONIC_ISR, 0x7fff);
  518. SONIC_WRITE(SONIC_CMD, SONIC_CR_RST);
  519. /*
  520. * clear software reset flag, disable receiver, clear and
  521. * enable interrupts, then completely initialize the SONIC
  522. */
  523. SONIC_WRITE(SONIC_CMD, 0);
  524. SONIC_WRITE(SONIC_CMD, SONIC_CR_RXDIS);
  525. /*
  526. * initialize the receive resource area
  527. */
  528. if (sonic_debug > 2)
  529. printk("sonic_init: initialize receive resource area\n");
  530. for (i = 0; i < SONIC_NUM_RRS; i++) {
  531. u16 bufadr_l = (unsigned long)lp->rx_laddr[i] & 0xffff;
  532. u16 bufadr_h = (unsigned long)lp->rx_laddr[i] >> 16;
  533. sonic_rra_put(dev, i, SONIC_RR_BUFADR_L, bufadr_l);
  534. sonic_rra_put(dev, i, SONIC_RR_BUFADR_H, bufadr_h);
  535. sonic_rra_put(dev, i, SONIC_RR_BUFSIZE_L, SONIC_RBSIZE >> 1);
  536. sonic_rra_put(dev, i, SONIC_RR_BUFSIZE_H, 0);
  537. }
  538. /* initialize all RRA registers */
  539. lp->rra_end = (lp->rra_laddr + SONIC_NUM_RRS * SIZEOF_SONIC_RR *
  540. SONIC_BUS_SCALE(lp->dma_bitmode)) & 0xffff;
  541. lp->cur_rwp = (lp->rra_laddr + (SONIC_NUM_RRS - 1) * SIZEOF_SONIC_RR *
  542. SONIC_BUS_SCALE(lp->dma_bitmode)) & 0xffff;
  543. SONIC_WRITE(SONIC_RSA, lp->rra_laddr & 0xffff);
  544. SONIC_WRITE(SONIC_REA, lp->rra_end);
  545. SONIC_WRITE(SONIC_RRP, lp->rra_laddr & 0xffff);
  546. SONIC_WRITE(SONIC_RWP, lp->cur_rwp);
  547. SONIC_WRITE(SONIC_URRA, lp->rra_laddr >> 16);
  548. SONIC_WRITE(SONIC_EOBC, (SONIC_RBSIZE >> 1) - (lp->dma_bitmode ? 2 : 1));
  549. /* load the resource pointers */
  550. if (sonic_debug > 3)
  551. printk("sonic_init: issuing RRRA command\n");
  552. SONIC_WRITE(SONIC_CMD, SONIC_CR_RRRA);
  553. i = 0;
  554. while (i++ < 100) {
  555. if (SONIC_READ(SONIC_CMD) & SONIC_CR_RRRA)
  556. break;
  557. }
  558. if (sonic_debug > 2)
  559. printk("sonic_init: status=%x i=%d\n", SONIC_READ(SONIC_CMD), i);
  560. /*
  561. * Initialize the receive descriptors so that they
  562. * become a circular linked list, ie. let the last
  563. * descriptor point to the first again.
  564. */
  565. if (sonic_debug > 2)
  566. printk("sonic_init: initialize receive descriptors\n");
  567. for (i=0; i<SONIC_NUM_RDS; i++) {
  568. sonic_rda_put(dev, i, SONIC_RD_STATUS, 0);
  569. sonic_rda_put(dev, i, SONIC_RD_PKTLEN, 0);
  570. sonic_rda_put(dev, i, SONIC_RD_PKTPTR_L, 0);
  571. sonic_rda_put(dev, i, SONIC_RD_PKTPTR_H, 0);
  572. sonic_rda_put(dev, i, SONIC_RD_SEQNO, 0);
  573. sonic_rda_put(dev, i, SONIC_RD_IN_USE, 1);
  574. sonic_rda_put(dev, i, SONIC_RD_LINK,
  575. lp->rda_laddr +
  576. ((i+1) * SIZEOF_SONIC_RD * SONIC_BUS_SCALE(lp->dma_bitmode)));
  577. }
  578. /* fix last descriptor */
  579. sonic_rda_put(dev, SONIC_NUM_RDS - 1, SONIC_RD_LINK,
  580. (lp->rda_laddr & 0xffff) | SONIC_EOL);
  581. lp->eol_rx = SONIC_NUM_RDS - 1;
  582. lp->cur_rx = 0;
  583. SONIC_WRITE(SONIC_URDA, lp->rda_laddr >> 16);
  584. SONIC_WRITE(SONIC_CRDA, lp->rda_laddr & 0xffff);
  585. /*
  586. * initialize transmit descriptors
  587. */
  588. if (sonic_debug > 2)
  589. printk("sonic_init: initialize transmit descriptors\n");
  590. for (i = 0; i < SONIC_NUM_TDS; i++) {
  591. sonic_tda_put(dev, i, SONIC_TD_STATUS, 0);
  592. sonic_tda_put(dev, i, SONIC_TD_CONFIG, 0);
  593. sonic_tda_put(dev, i, SONIC_TD_PKTSIZE, 0);
  594. sonic_tda_put(dev, i, SONIC_TD_FRAG_COUNT, 0);
  595. sonic_tda_put(dev, i, SONIC_TD_LINK,
  596. (lp->tda_laddr & 0xffff) +
  597. (i + 1) * SIZEOF_SONIC_TD * SONIC_BUS_SCALE(lp->dma_bitmode));
  598. lp->tx_skb[i] = NULL;
  599. }
  600. /* fix last descriptor */
  601. sonic_tda_put(dev, SONIC_NUM_TDS - 1, SONIC_TD_LINK,
  602. (lp->tda_laddr & 0xffff));
  603. SONIC_WRITE(SONIC_UTDA, lp->tda_laddr >> 16);
  604. SONIC_WRITE(SONIC_CTDA, lp->tda_laddr & 0xffff);
  605. lp->cur_tx = lp->next_tx = 0;
  606. lp->eol_tx = SONIC_NUM_TDS - 1;
  607. /*
  608. * put our own address to CAM desc[0]
  609. */
  610. sonic_cda_put(dev, 0, SONIC_CD_CAP0, dev->dev_addr[1] << 8 | dev->dev_addr[0]);
  611. sonic_cda_put(dev, 0, SONIC_CD_CAP1, dev->dev_addr[3] << 8 | dev->dev_addr[2]);
  612. sonic_cda_put(dev, 0, SONIC_CD_CAP2, dev->dev_addr[5] << 8 | dev->dev_addr[4]);
  613. sonic_set_cam_enable(dev, 1);
  614. for (i = 0; i < 16; i++)
  615. sonic_cda_put(dev, i, SONIC_CD_ENTRY_POINTER, i);
  616. /*
  617. * initialize CAM registers
  618. */
  619. SONIC_WRITE(SONIC_CDP, lp->cda_laddr & 0xffff);
  620. SONIC_WRITE(SONIC_CDC, 16);
  621. /*
  622. * load the CAM
  623. */
  624. SONIC_WRITE(SONIC_CMD, SONIC_CR_LCAM);
  625. i = 0;
  626. while (i++ < 100) {
  627. if (SONIC_READ(SONIC_ISR) & SONIC_INT_LCD)
  628. break;
  629. }
  630. if (sonic_debug > 2) {
  631. printk("sonic_init: CMD=%x, ISR=%x\n, i=%d",
  632. SONIC_READ(SONIC_CMD), SONIC_READ(SONIC_ISR), i);
  633. }
  634. /*
  635. * enable receiver, disable loopback
  636. * and enable all interrupts
  637. */
  638. SONIC_WRITE(SONIC_CMD, SONIC_CR_RXEN | SONIC_CR_STP);
  639. SONIC_WRITE(SONIC_RCR, SONIC_RCR_DEFAULT);
  640. SONIC_WRITE(SONIC_TCR, SONIC_TCR_DEFAULT);
  641. SONIC_WRITE(SONIC_ISR, 0x7fff);
  642. SONIC_WRITE(SONIC_IMR, SONIC_IMR_DEFAULT);
  643. cmd = SONIC_READ(SONIC_CMD);
  644. if ((cmd & SONIC_CR_RXEN) == 0 || (cmd & SONIC_CR_STP) == 0)
  645. printk(KERN_ERR "sonic_init: failed, status=%x\n", cmd);
  646. if (sonic_debug > 2)
  647. printk("sonic_init: new status=%x\n",
  648. SONIC_READ(SONIC_CMD));
  649. return 0;
  650. }
  651. MODULE_LICENSE("GPL");