declance.c 35 KB

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  1. /*
  2. * Lance ethernet driver for the MIPS processor based
  3. * DECstation family
  4. *
  5. *
  6. * adopted from sunlance.c by Richard van den Berg
  7. *
  8. * Copyright (C) 2002, 2003, 2005, 2006 Maciej W. Rozycki
  9. *
  10. * additional sources:
  11. * - PMAD-AA TURBOchannel Ethernet Module Functional Specification,
  12. * Revision 1.2
  13. *
  14. * History:
  15. *
  16. * v0.001: The kernel accepts the code and it shows the hardware address.
  17. *
  18. * v0.002: Removed most sparc stuff, left only some module and dma stuff.
  19. *
  20. * v0.003: Enhanced base address calculation from proposals by
  21. * Harald Koerfgen and Thomas Riemer.
  22. *
  23. * v0.004: lance-regs is pointing at the right addresses, added prom
  24. * check. First start of address mapping and DMA.
  25. *
  26. * v0.005: started to play around with LANCE-DMA. This driver will not
  27. * work for non IOASIC lances. HK
  28. *
  29. * v0.006: added pointer arrays to lance_private and setup routine for
  30. * them in dec_lance_init. HK
  31. *
  32. * v0.007: Big shit. The LANCE seems to use a different DMA mechanism to
  33. * access the init block. This looks like one (short) word at a
  34. * time, but the smallest amount the IOASIC can transfer is a
  35. * (long) word. So we have a 2-2 padding here. Changed
  36. * lance_init_block accordingly. The 16-16 padding for the buffers
  37. * seems to be correct. HK
  38. *
  39. * v0.008: mods to make PMAX_LANCE work. 01/09/1999 triemer
  40. *
  41. * v0.009: Module support fixes, multiple interfaces support, various
  42. * bits. macro
  43. *
  44. * v0.010: Fixes for the PMAD mapping of the LANCE buffer and for the
  45. * PMAX requirement to only use halfword accesses to the
  46. * buffer. macro
  47. *
  48. * v0.011: Converted the PMAD to the driver model. macro
  49. */
  50. #include <linux/crc32.h>
  51. #include <linux/delay.h>
  52. #include <linux/errno.h>
  53. #include <linux/if_ether.h>
  54. #include <linux/init.h>
  55. #include <linux/kernel.h>
  56. #include <linux/module.h>
  57. #include <linux/netdevice.h>
  58. #include <linux/etherdevice.h>
  59. #include <linux/spinlock.h>
  60. #include <linux/stddef.h>
  61. #include <linux/string.h>
  62. #include <linux/tc.h>
  63. #include <linux/types.h>
  64. #include <asm/addrspace.h>
  65. #include <asm/system.h>
  66. #include <asm/dec/interrupts.h>
  67. #include <asm/dec/ioasic.h>
  68. #include <asm/dec/ioasic_addrs.h>
  69. #include <asm/dec/kn01.h>
  70. #include <asm/dec/machtype.h>
  71. #include <asm/dec/system.h>
  72. static char version[] __devinitdata =
  73. "declance.c: v0.011 by Linux MIPS DECstation task force\n";
  74. MODULE_AUTHOR("Linux MIPS DECstation task force");
  75. MODULE_DESCRIPTION("DEC LANCE (DECstation onboard, PMAD-xx) driver");
  76. MODULE_LICENSE("GPL");
  77. #define __unused __attribute__ ((unused))
  78. /*
  79. * card types
  80. */
  81. #define ASIC_LANCE 1
  82. #define PMAD_LANCE 2
  83. #define PMAX_LANCE 3
  84. #define LE_CSR0 0
  85. #define LE_CSR1 1
  86. #define LE_CSR2 2
  87. #define LE_CSR3 3
  88. #define LE_MO_PROM 0x8000 /* Enable promiscuous mode */
  89. #define LE_C0_ERR 0x8000 /* Error: set if BAB, SQE, MISS or ME is set */
  90. #define LE_C0_BABL 0x4000 /* BAB: Babble: tx timeout. */
  91. #define LE_C0_CERR 0x2000 /* SQE: Signal quality error */
  92. #define LE_C0_MISS 0x1000 /* MISS: Missed a packet */
  93. #define LE_C0_MERR 0x0800 /* ME: Memory error */
  94. #define LE_C0_RINT 0x0400 /* Received interrupt */
  95. #define LE_C0_TINT 0x0200 /* Transmitter Interrupt */
  96. #define LE_C0_IDON 0x0100 /* IFIN: Init finished. */
  97. #define LE_C0_INTR 0x0080 /* Interrupt or error */
  98. #define LE_C0_INEA 0x0040 /* Interrupt enable */
  99. #define LE_C0_RXON 0x0020 /* Receiver on */
  100. #define LE_C0_TXON 0x0010 /* Transmitter on */
  101. #define LE_C0_TDMD 0x0008 /* Transmitter demand */
  102. #define LE_C0_STOP 0x0004 /* Stop the card */
  103. #define LE_C0_STRT 0x0002 /* Start the card */
  104. #define LE_C0_INIT 0x0001 /* Init the card */
  105. #define LE_C3_BSWP 0x4 /* SWAP */
  106. #define LE_C3_ACON 0x2 /* ALE Control */
  107. #define LE_C3_BCON 0x1 /* Byte control */
  108. /* Receive message descriptor 1 */
  109. #define LE_R1_OWN 0x8000 /* Who owns the entry */
  110. #define LE_R1_ERR 0x4000 /* Error: if FRA, OFL, CRC or BUF is set */
  111. #define LE_R1_FRA 0x2000 /* FRA: Frame error */
  112. #define LE_R1_OFL 0x1000 /* OFL: Frame overflow */
  113. #define LE_R1_CRC 0x0800 /* CRC error */
  114. #define LE_R1_BUF 0x0400 /* BUF: Buffer error */
  115. #define LE_R1_SOP 0x0200 /* Start of packet */
  116. #define LE_R1_EOP 0x0100 /* End of packet */
  117. #define LE_R1_POK 0x0300 /* Packet is complete: SOP + EOP */
  118. /* Transmit message descriptor 1 */
  119. #define LE_T1_OWN 0x8000 /* Lance owns the packet */
  120. #define LE_T1_ERR 0x4000 /* Error summary */
  121. #define LE_T1_EMORE 0x1000 /* Error: more than one retry needed */
  122. #define LE_T1_EONE 0x0800 /* Error: one retry needed */
  123. #define LE_T1_EDEF 0x0400 /* Error: deferred */
  124. #define LE_T1_SOP 0x0200 /* Start of packet */
  125. #define LE_T1_EOP 0x0100 /* End of packet */
  126. #define LE_T1_POK 0x0300 /* Packet is complete: SOP + EOP */
  127. #define LE_T3_BUF 0x8000 /* Buffer error */
  128. #define LE_T3_UFL 0x4000 /* Error underflow */
  129. #define LE_T3_LCOL 0x1000 /* Error late collision */
  130. #define LE_T3_CLOS 0x0800 /* Error carrier loss */
  131. #define LE_T3_RTY 0x0400 /* Error retry */
  132. #define LE_T3_TDR 0x03ff /* Time Domain Reflectometry counter */
  133. /* Define: 2^4 Tx buffers and 2^4 Rx buffers */
  134. #ifndef LANCE_LOG_TX_BUFFERS
  135. #define LANCE_LOG_TX_BUFFERS 4
  136. #define LANCE_LOG_RX_BUFFERS 4
  137. #endif
  138. #define TX_RING_SIZE (1 << (LANCE_LOG_TX_BUFFERS))
  139. #define TX_RING_MOD_MASK (TX_RING_SIZE - 1)
  140. #define RX_RING_SIZE (1 << (LANCE_LOG_RX_BUFFERS))
  141. #define RX_RING_MOD_MASK (RX_RING_SIZE - 1)
  142. #define PKT_BUF_SZ 1536
  143. #define RX_BUFF_SIZE PKT_BUF_SZ
  144. #define TX_BUFF_SIZE PKT_BUF_SZ
  145. #undef TEST_HITS
  146. #define ZERO 0
  147. /*
  148. * The DS2100/3100 have a linear 64 kB buffer which supports halfword
  149. * accesses only. Each halfword of the buffer is word-aligned in the
  150. * CPU address space.
  151. *
  152. * The PMAD-AA has a 128 kB buffer on-board.
  153. *
  154. * The IOASIC LANCE devices use a shared memory region. This region
  155. * as seen from the CPU is (max) 128 kB long and has to be on an 128 kB
  156. * boundary. The LANCE sees this as a 64 kB long continuous memory
  157. * region.
  158. *
  159. * The LANCE's DMA address is used as an index in this buffer and DMA
  160. * takes place in bursts of eight 16-bit words which are packed into
  161. * four 32-bit words by the IOASIC. This leads to a strange padding:
  162. * 16 bytes of valid data followed by a 16 byte gap :-(.
  163. */
  164. struct lance_rx_desc {
  165. unsigned short rmd0; /* low address of packet */
  166. unsigned short rmd1; /* high address of packet
  167. and descriptor bits */
  168. short length; /* 2s complement (negative!)
  169. of buffer length */
  170. unsigned short mblength; /* actual number of bytes received */
  171. };
  172. struct lance_tx_desc {
  173. unsigned short tmd0; /* low address of packet */
  174. unsigned short tmd1; /* high address of packet
  175. and descriptor bits */
  176. short length; /* 2s complement (negative!)
  177. of buffer length */
  178. unsigned short misc;
  179. };
  180. /* First part of the LANCE initialization block, described in databook. */
  181. struct lance_init_block {
  182. unsigned short mode; /* pre-set mode (reg. 15) */
  183. unsigned short phys_addr[3]; /* physical ethernet address */
  184. unsigned short filter[4]; /* multicast filter */
  185. /* Receive and transmit ring base, along with extra bits. */
  186. unsigned short rx_ptr; /* receive descriptor addr */
  187. unsigned short rx_len; /* receive len and high addr */
  188. unsigned short tx_ptr; /* transmit descriptor addr */
  189. unsigned short tx_len; /* transmit len and high addr */
  190. short gap[4];
  191. /* The buffer descriptors */
  192. struct lance_rx_desc brx_ring[RX_RING_SIZE];
  193. struct lance_tx_desc btx_ring[TX_RING_SIZE];
  194. };
  195. #define BUF_OFFSET_CPU sizeof(struct lance_init_block)
  196. #define BUF_OFFSET_LNC sizeof(struct lance_init_block)
  197. #define shift_off(off, type) \
  198. (type == ASIC_LANCE || type == PMAX_LANCE ? off << 1 : off)
  199. #define lib_off(rt, type) \
  200. shift_off(offsetof(struct lance_init_block, rt), type)
  201. #define lib_ptr(ib, rt, type) \
  202. ((volatile u16 *)((u8 *)(ib) + lib_off(rt, type)))
  203. #define rds_off(rt, type) \
  204. shift_off(offsetof(struct lance_rx_desc, rt), type)
  205. #define rds_ptr(rd, rt, type) \
  206. ((volatile u16 *)((u8 *)(rd) + rds_off(rt, type)))
  207. #define tds_off(rt, type) \
  208. shift_off(offsetof(struct lance_tx_desc, rt), type)
  209. #define tds_ptr(td, rt, type) \
  210. ((volatile u16 *)((u8 *)(td) + tds_off(rt, type)))
  211. struct lance_private {
  212. struct net_device *next;
  213. int type;
  214. int dma_irq;
  215. volatile struct lance_regs *ll;
  216. spinlock_t lock;
  217. int rx_new, tx_new;
  218. int rx_old, tx_old;
  219. unsigned short busmaster_regval;
  220. struct timer_list multicast_timer;
  221. /* Pointers to the ring buffers as seen from the CPU */
  222. char *rx_buf_ptr_cpu[RX_RING_SIZE];
  223. char *tx_buf_ptr_cpu[TX_RING_SIZE];
  224. /* Pointers to the ring buffers as seen from the LANCE */
  225. uint rx_buf_ptr_lnc[RX_RING_SIZE];
  226. uint tx_buf_ptr_lnc[TX_RING_SIZE];
  227. };
  228. #define TX_BUFFS_AVAIL ((lp->tx_old<=lp->tx_new)?\
  229. lp->tx_old+TX_RING_MOD_MASK-lp->tx_new:\
  230. lp->tx_old - lp->tx_new-1)
  231. /* The lance control ports are at an absolute address, machine and tc-slot
  232. * dependent.
  233. * DECstations do only 32-bit access and the LANCE uses 16 bit addresses,
  234. * so we have to give the structure an extra member making rap pointing
  235. * at the right address
  236. */
  237. struct lance_regs {
  238. volatile unsigned short rdp; /* register data port */
  239. unsigned short pad;
  240. volatile unsigned short rap; /* register address port */
  241. };
  242. int dec_lance_debug = 2;
  243. static struct tc_driver dec_lance_tc_driver;
  244. static struct net_device *root_lance_dev;
  245. static inline void writereg(volatile unsigned short *regptr, short value)
  246. {
  247. *regptr = value;
  248. iob();
  249. }
  250. /* Load the CSR registers */
  251. static void load_csrs(struct lance_private *lp)
  252. {
  253. volatile struct lance_regs *ll = lp->ll;
  254. uint leptr;
  255. /* The address space as seen from the LANCE
  256. * begins at address 0. HK
  257. */
  258. leptr = 0;
  259. writereg(&ll->rap, LE_CSR1);
  260. writereg(&ll->rdp, (leptr & 0xFFFF));
  261. writereg(&ll->rap, LE_CSR2);
  262. writereg(&ll->rdp, leptr >> 16);
  263. writereg(&ll->rap, LE_CSR3);
  264. writereg(&ll->rdp, lp->busmaster_regval);
  265. /* Point back to csr0 */
  266. writereg(&ll->rap, LE_CSR0);
  267. }
  268. /*
  269. * Our specialized copy routines
  270. *
  271. */
  272. static void cp_to_buf(const int type, void *to, const void *from, int len)
  273. {
  274. unsigned short *tp;
  275. const unsigned short *fp;
  276. unsigned short clen;
  277. unsigned char *rtp;
  278. const unsigned char *rfp;
  279. if (type == PMAD_LANCE) {
  280. memcpy(to, from, len);
  281. } else if (type == PMAX_LANCE) {
  282. clen = len >> 1;
  283. tp = to;
  284. fp = from;
  285. while (clen--) {
  286. *tp++ = *fp++;
  287. tp++;
  288. }
  289. clen = len & 1;
  290. rtp = tp;
  291. rfp = fp;
  292. while (clen--) {
  293. *rtp++ = *rfp++;
  294. }
  295. } else {
  296. /*
  297. * copy 16 Byte chunks
  298. */
  299. clen = len >> 4;
  300. tp = to;
  301. fp = from;
  302. while (clen--) {
  303. *tp++ = *fp++;
  304. *tp++ = *fp++;
  305. *tp++ = *fp++;
  306. *tp++ = *fp++;
  307. *tp++ = *fp++;
  308. *tp++ = *fp++;
  309. *tp++ = *fp++;
  310. *tp++ = *fp++;
  311. tp += 8;
  312. }
  313. /*
  314. * do the rest, if any.
  315. */
  316. clen = len & 15;
  317. rtp = (unsigned char *) tp;
  318. rfp = (unsigned char *) fp;
  319. while (clen--) {
  320. *rtp++ = *rfp++;
  321. }
  322. }
  323. iob();
  324. }
  325. static void cp_from_buf(const int type, void *to, const void *from, int len)
  326. {
  327. unsigned short *tp;
  328. const unsigned short *fp;
  329. unsigned short clen;
  330. unsigned char *rtp;
  331. const unsigned char *rfp;
  332. if (type == PMAD_LANCE) {
  333. memcpy(to, from, len);
  334. } else if (type == PMAX_LANCE) {
  335. clen = len >> 1;
  336. tp = to;
  337. fp = from;
  338. while (clen--) {
  339. *tp++ = *fp++;
  340. fp++;
  341. }
  342. clen = len & 1;
  343. rtp = tp;
  344. rfp = fp;
  345. while (clen--) {
  346. *rtp++ = *rfp++;
  347. }
  348. } else {
  349. /*
  350. * copy 16 Byte chunks
  351. */
  352. clen = len >> 4;
  353. tp = to;
  354. fp = from;
  355. while (clen--) {
  356. *tp++ = *fp++;
  357. *tp++ = *fp++;
  358. *tp++ = *fp++;
  359. *tp++ = *fp++;
  360. *tp++ = *fp++;
  361. *tp++ = *fp++;
  362. *tp++ = *fp++;
  363. *tp++ = *fp++;
  364. fp += 8;
  365. }
  366. /*
  367. * do the rest, if any.
  368. */
  369. clen = len & 15;
  370. rtp = (unsigned char *) tp;
  371. rfp = (unsigned char *) fp;
  372. while (clen--) {
  373. *rtp++ = *rfp++;
  374. }
  375. }
  376. }
  377. /* Setup the Lance Rx and Tx rings */
  378. static void lance_init_ring(struct net_device *dev)
  379. {
  380. struct lance_private *lp = netdev_priv(dev);
  381. volatile u16 *ib = (volatile u16 *)dev->mem_start;
  382. uint leptr;
  383. int i;
  384. /* Lock out other processes while setting up hardware */
  385. netif_stop_queue(dev);
  386. lp->rx_new = lp->tx_new = 0;
  387. lp->rx_old = lp->tx_old = 0;
  388. /* Copy the ethernet address to the lance init block.
  389. * XXX bit 0 of the physical address registers has to be zero
  390. */
  391. *lib_ptr(ib, phys_addr[0], lp->type) = (dev->dev_addr[1] << 8) |
  392. dev->dev_addr[0];
  393. *lib_ptr(ib, phys_addr[1], lp->type) = (dev->dev_addr[3] << 8) |
  394. dev->dev_addr[2];
  395. *lib_ptr(ib, phys_addr[2], lp->type) = (dev->dev_addr[5] << 8) |
  396. dev->dev_addr[4];
  397. /* Setup the initialization block */
  398. /* Setup rx descriptor pointer */
  399. leptr = offsetof(struct lance_init_block, brx_ring);
  400. *lib_ptr(ib, rx_len, lp->type) = (LANCE_LOG_RX_BUFFERS << 13) |
  401. (leptr >> 16);
  402. *lib_ptr(ib, rx_ptr, lp->type) = leptr;
  403. if (ZERO)
  404. printk("RX ptr: %8.8x(%8.8x)\n",
  405. leptr, lib_off(brx_ring, lp->type));
  406. /* Setup tx descriptor pointer */
  407. leptr = offsetof(struct lance_init_block, btx_ring);
  408. *lib_ptr(ib, tx_len, lp->type) = (LANCE_LOG_TX_BUFFERS << 13) |
  409. (leptr >> 16);
  410. *lib_ptr(ib, tx_ptr, lp->type) = leptr;
  411. if (ZERO)
  412. printk("TX ptr: %8.8x(%8.8x)\n",
  413. leptr, lib_off(btx_ring, lp->type));
  414. if (ZERO)
  415. printk("TX rings:\n");
  416. /* Setup the Tx ring entries */
  417. for (i = 0; i < TX_RING_SIZE; i++) {
  418. leptr = lp->tx_buf_ptr_lnc[i];
  419. *lib_ptr(ib, btx_ring[i].tmd0, lp->type) = leptr;
  420. *lib_ptr(ib, btx_ring[i].tmd1, lp->type) = (leptr >> 16) &
  421. 0xff;
  422. *lib_ptr(ib, btx_ring[i].length, lp->type) = 0xf000;
  423. /* The ones required by tmd2 */
  424. *lib_ptr(ib, btx_ring[i].misc, lp->type) = 0;
  425. if (i < 3 && ZERO)
  426. printk("%d: 0x%8.8x(0x%8.8x)\n",
  427. i, leptr, (uint)lp->tx_buf_ptr_cpu[i]);
  428. }
  429. /* Setup the Rx ring entries */
  430. if (ZERO)
  431. printk("RX rings:\n");
  432. for (i = 0; i < RX_RING_SIZE; i++) {
  433. leptr = lp->rx_buf_ptr_lnc[i];
  434. *lib_ptr(ib, brx_ring[i].rmd0, lp->type) = leptr;
  435. *lib_ptr(ib, brx_ring[i].rmd1, lp->type) = ((leptr >> 16) &
  436. 0xff) |
  437. LE_R1_OWN;
  438. *lib_ptr(ib, brx_ring[i].length, lp->type) = -RX_BUFF_SIZE |
  439. 0xf000;
  440. *lib_ptr(ib, brx_ring[i].mblength, lp->type) = 0;
  441. if (i < 3 && ZERO)
  442. printk("%d: 0x%8.8x(0x%8.8x)\n",
  443. i, leptr, (uint)lp->rx_buf_ptr_cpu[i]);
  444. }
  445. iob();
  446. }
  447. static int init_restart_lance(struct lance_private *lp)
  448. {
  449. volatile struct lance_regs *ll = lp->ll;
  450. int i;
  451. writereg(&ll->rap, LE_CSR0);
  452. writereg(&ll->rdp, LE_C0_INIT);
  453. /* Wait for the lance to complete initialization */
  454. for (i = 0; (i < 100) && !(ll->rdp & LE_C0_IDON); i++) {
  455. udelay(10);
  456. }
  457. if ((i == 100) || (ll->rdp & LE_C0_ERR)) {
  458. printk("LANCE unopened after %d ticks, csr0=%4.4x.\n",
  459. i, ll->rdp);
  460. return -1;
  461. }
  462. if ((ll->rdp & LE_C0_ERR)) {
  463. printk("LANCE unopened after %d ticks, csr0=%4.4x.\n",
  464. i, ll->rdp);
  465. return -1;
  466. }
  467. writereg(&ll->rdp, LE_C0_IDON);
  468. writereg(&ll->rdp, LE_C0_STRT);
  469. writereg(&ll->rdp, LE_C0_INEA);
  470. return 0;
  471. }
  472. static int lance_rx(struct net_device *dev)
  473. {
  474. struct lance_private *lp = netdev_priv(dev);
  475. volatile u16 *ib = (volatile u16 *)dev->mem_start;
  476. volatile u16 *rd;
  477. unsigned short bits;
  478. int entry, len;
  479. struct sk_buff *skb;
  480. #ifdef TEST_HITS
  481. {
  482. int i;
  483. printk("[");
  484. for (i = 0; i < RX_RING_SIZE; i++) {
  485. if (i == lp->rx_new)
  486. printk("%s", *lib_ptr(ib, brx_ring[i].rmd1,
  487. lp->type) &
  488. LE_R1_OWN ? "_" : "X");
  489. else
  490. printk("%s", *lib_ptr(ib, brx_ring[i].rmd1,
  491. lp->type) &
  492. LE_R1_OWN ? "." : "1");
  493. }
  494. printk("]");
  495. }
  496. #endif
  497. for (rd = lib_ptr(ib, brx_ring[lp->rx_new], lp->type);
  498. !((bits = *rds_ptr(rd, rmd1, lp->type)) & LE_R1_OWN);
  499. rd = lib_ptr(ib, brx_ring[lp->rx_new], lp->type)) {
  500. entry = lp->rx_new;
  501. /* We got an incomplete frame? */
  502. if ((bits & LE_R1_POK) != LE_R1_POK) {
  503. dev->stats.rx_over_errors++;
  504. dev->stats.rx_errors++;
  505. } else if (bits & LE_R1_ERR) {
  506. /* Count only the end frame as a rx error,
  507. * not the beginning
  508. */
  509. if (bits & LE_R1_BUF)
  510. dev->stats.rx_fifo_errors++;
  511. if (bits & LE_R1_CRC)
  512. dev->stats.rx_crc_errors++;
  513. if (bits & LE_R1_OFL)
  514. dev->stats.rx_over_errors++;
  515. if (bits & LE_R1_FRA)
  516. dev->stats.rx_frame_errors++;
  517. if (bits & LE_R1_EOP)
  518. dev->stats.rx_errors++;
  519. } else {
  520. len = (*rds_ptr(rd, mblength, lp->type) & 0xfff) - 4;
  521. skb = netdev_alloc_skb(dev, len + 2);
  522. if (skb == 0) {
  523. printk("%s: Memory squeeze, deferring packet.\n",
  524. dev->name);
  525. dev->stats.rx_dropped++;
  526. *rds_ptr(rd, mblength, lp->type) = 0;
  527. *rds_ptr(rd, rmd1, lp->type) =
  528. ((lp->rx_buf_ptr_lnc[entry] >> 16) &
  529. 0xff) | LE_R1_OWN;
  530. lp->rx_new = (entry + 1) & RX_RING_MOD_MASK;
  531. return 0;
  532. }
  533. dev->stats.rx_bytes += len;
  534. skb_reserve(skb, 2); /* 16 byte align */
  535. skb_put(skb, len); /* make room */
  536. cp_from_buf(lp->type, skb->data,
  537. (char *)lp->rx_buf_ptr_cpu[entry], len);
  538. skb->protocol = eth_type_trans(skb, dev);
  539. netif_rx(skb);
  540. dev->stats.rx_packets++;
  541. }
  542. /* Return the packet to the pool */
  543. *rds_ptr(rd, mblength, lp->type) = 0;
  544. *rds_ptr(rd, length, lp->type) = -RX_BUFF_SIZE | 0xf000;
  545. *rds_ptr(rd, rmd1, lp->type) =
  546. ((lp->rx_buf_ptr_lnc[entry] >> 16) & 0xff) | LE_R1_OWN;
  547. lp->rx_new = (entry + 1) & RX_RING_MOD_MASK;
  548. }
  549. return 0;
  550. }
  551. static void lance_tx(struct net_device *dev)
  552. {
  553. struct lance_private *lp = netdev_priv(dev);
  554. volatile u16 *ib = (volatile u16 *)dev->mem_start;
  555. volatile struct lance_regs *ll = lp->ll;
  556. volatile u16 *td;
  557. int i, j;
  558. int status;
  559. j = lp->tx_old;
  560. spin_lock(&lp->lock);
  561. for (i = j; i != lp->tx_new; i = j) {
  562. td = lib_ptr(ib, btx_ring[i], lp->type);
  563. /* If we hit a packet not owned by us, stop */
  564. if (*tds_ptr(td, tmd1, lp->type) & LE_T1_OWN)
  565. break;
  566. if (*tds_ptr(td, tmd1, lp->type) & LE_T1_ERR) {
  567. status = *tds_ptr(td, misc, lp->type);
  568. dev->stats.tx_errors++;
  569. if (status & LE_T3_RTY)
  570. dev->stats.tx_aborted_errors++;
  571. if (status & LE_T3_LCOL)
  572. dev->stats.tx_window_errors++;
  573. if (status & LE_T3_CLOS) {
  574. dev->stats.tx_carrier_errors++;
  575. printk("%s: Carrier Lost\n", dev->name);
  576. /* Stop the lance */
  577. writereg(&ll->rap, LE_CSR0);
  578. writereg(&ll->rdp, LE_C0_STOP);
  579. lance_init_ring(dev);
  580. load_csrs(lp);
  581. init_restart_lance(lp);
  582. goto out;
  583. }
  584. /* Buffer errors and underflows turn off the
  585. * transmitter, restart the adapter.
  586. */
  587. if (status & (LE_T3_BUF | LE_T3_UFL)) {
  588. dev->stats.tx_fifo_errors++;
  589. printk("%s: Tx: ERR_BUF|ERR_UFL, restarting\n",
  590. dev->name);
  591. /* Stop the lance */
  592. writereg(&ll->rap, LE_CSR0);
  593. writereg(&ll->rdp, LE_C0_STOP);
  594. lance_init_ring(dev);
  595. load_csrs(lp);
  596. init_restart_lance(lp);
  597. goto out;
  598. }
  599. } else if ((*tds_ptr(td, tmd1, lp->type) & LE_T1_POK) ==
  600. LE_T1_POK) {
  601. /*
  602. * So we don't count the packet more than once.
  603. */
  604. *tds_ptr(td, tmd1, lp->type) &= ~(LE_T1_POK);
  605. /* One collision before packet was sent. */
  606. if (*tds_ptr(td, tmd1, lp->type) & LE_T1_EONE)
  607. dev->stats.collisions++;
  608. /* More than one collision, be optimistic. */
  609. if (*tds_ptr(td, tmd1, lp->type) & LE_T1_EMORE)
  610. dev->stats.collisions += 2;
  611. dev->stats.tx_packets++;
  612. }
  613. j = (j + 1) & TX_RING_MOD_MASK;
  614. }
  615. lp->tx_old = j;
  616. out:
  617. if (netif_queue_stopped(dev) &&
  618. TX_BUFFS_AVAIL > 0)
  619. netif_wake_queue(dev);
  620. spin_unlock(&lp->lock);
  621. }
  622. static irqreturn_t lance_dma_merr_int(int irq, void *dev_id)
  623. {
  624. struct net_device *dev = dev_id;
  625. printk(KERN_ERR "%s: DMA error\n", dev->name);
  626. return IRQ_HANDLED;
  627. }
  628. static irqreturn_t lance_interrupt(int irq, void *dev_id)
  629. {
  630. struct net_device *dev = dev_id;
  631. struct lance_private *lp = netdev_priv(dev);
  632. volatile struct lance_regs *ll = lp->ll;
  633. int csr0;
  634. writereg(&ll->rap, LE_CSR0);
  635. csr0 = ll->rdp;
  636. /* Acknowledge all the interrupt sources ASAP */
  637. writereg(&ll->rdp, csr0 & (LE_C0_INTR | LE_C0_TINT | LE_C0_RINT));
  638. if ((csr0 & LE_C0_ERR)) {
  639. /* Clear the error condition */
  640. writereg(&ll->rdp, LE_C0_BABL | LE_C0_ERR | LE_C0_MISS |
  641. LE_C0_CERR | LE_C0_MERR);
  642. }
  643. if (csr0 & LE_C0_RINT)
  644. lance_rx(dev);
  645. if (csr0 & LE_C0_TINT)
  646. lance_tx(dev);
  647. if (csr0 & LE_C0_BABL)
  648. dev->stats.tx_errors++;
  649. if (csr0 & LE_C0_MISS)
  650. dev->stats.rx_errors++;
  651. if (csr0 & LE_C0_MERR) {
  652. printk("%s: Memory error, status %04x\n", dev->name, csr0);
  653. writereg(&ll->rdp, LE_C0_STOP);
  654. lance_init_ring(dev);
  655. load_csrs(lp);
  656. init_restart_lance(lp);
  657. netif_wake_queue(dev);
  658. }
  659. writereg(&ll->rdp, LE_C0_INEA);
  660. writereg(&ll->rdp, LE_C0_INEA);
  661. return IRQ_HANDLED;
  662. }
  663. static int lance_open(struct net_device *dev)
  664. {
  665. volatile u16 *ib = (volatile u16 *)dev->mem_start;
  666. struct lance_private *lp = netdev_priv(dev);
  667. volatile struct lance_regs *ll = lp->ll;
  668. int status = 0;
  669. /* Stop the Lance */
  670. writereg(&ll->rap, LE_CSR0);
  671. writereg(&ll->rdp, LE_C0_STOP);
  672. /* Set mode and clear multicast filter only at device open,
  673. * so that lance_init_ring() called at any error will not
  674. * forget multicast filters.
  675. *
  676. * BTW it is common bug in all lance drivers! --ANK
  677. */
  678. *lib_ptr(ib, mode, lp->type) = 0;
  679. *lib_ptr(ib, filter[0], lp->type) = 0;
  680. *lib_ptr(ib, filter[1], lp->type) = 0;
  681. *lib_ptr(ib, filter[2], lp->type) = 0;
  682. *lib_ptr(ib, filter[3], lp->type) = 0;
  683. lance_init_ring(dev);
  684. load_csrs(lp);
  685. netif_start_queue(dev);
  686. /* Associate IRQ with lance_interrupt */
  687. if (request_irq(dev->irq, lance_interrupt, 0, "lance", dev)) {
  688. printk("%s: Can't get IRQ %d\n", dev->name, dev->irq);
  689. return -EAGAIN;
  690. }
  691. if (lp->dma_irq >= 0) {
  692. unsigned long flags;
  693. if (request_irq(lp->dma_irq, lance_dma_merr_int, 0,
  694. "lance error", dev)) {
  695. free_irq(dev->irq, dev);
  696. printk("%s: Can't get DMA IRQ %d\n", dev->name,
  697. lp->dma_irq);
  698. return -EAGAIN;
  699. }
  700. spin_lock_irqsave(&ioasic_ssr_lock, flags);
  701. fast_mb();
  702. /* Enable I/O ASIC LANCE DMA. */
  703. ioasic_write(IO_REG_SSR,
  704. ioasic_read(IO_REG_SSR) | IO_SSR_LANCE_DMA_EN);
  705. fast_mb();
  706. spin_unlock_irqrestore(&ioasic_ssr_lock, flags);
  707. }
  708. status = init_restart_lance(lp);
  709. return status;
  710. }
  711. static int lance_close(struct net_device *dev)
  712. {
  713. struct lance_private *lp = netdev_priv(dev);
  714. volatile struct lance_regs *ll = lp->ll;
  715. netif_stop_queue(dev);
  716. del_timer_sync(&lp->multicast_timer);
  717. /* Stop the card */
  718. writereg(&ll->rap, LE_CSR0);
  719. writereg(&ll->rdp, LE_C0_STOP);
  720. if (lp->dma_irq >= 0) {
  721. unsigned long flags;
  722. spin_lock_irqsave(&ioasic_ssr_lock, flags);
  723. fast_mb();
  724. /* Disable I/O ASIC LANCE DMA. */
  725. ioasic_write(IO_REG_SSR,
  726. ioasic_read(IO_REG_SSR) & ~IO_SSR_LANCE_DMA_EN);
  727. fast_iob();
  728. spin_unlock_irqrestore(&ioasic_ssr_lock, flags);
  729. free_irq(lp->dma_irq, dev);
  730. }
  731. free_irq(dev->irq, dev);
  732. return 0;
  733. }
  734. static inline int lance_reset(struct net_device *dev)
  735. {
  736. struct lance_private *lp = netdev_priv(dev);
  737. volatile struct lance_regs *ll = lp->ll;
  738. int status;
  739. /* Stop the lance */
  740. writereg(&ll->rap, LE_CSR0);
  741. writereg(&ll->rdp, LE_C0_STOP);
  742. lance_init_ring(dev);
  743. load_csrs(lp);
  744. dev->trans_start = jiffies; /* prevent tx timeout */
  745. status = init_restart_lance(lp);
  746. return status;
  747. }
  748. static void lance_tx_timeout(struct net_device *dev)
  749. {
  750. struct lance_private *lp = netdev_priv(dev);
  751. volatile struct lance_regs *ll = lp->ll;
  752. printk(KERN_ERR "%s: transmit timed out, status %04x, reset\n",
  753. dev->name, ll->rdp);
  754. lance_reset(dev);
  755. netif_wake_queue(dev);
  756. }
  757. static int lance_start_xmit(struct sk_buff *skb, struct net_device *dev)
  758. {
  759. struct lance_private *lp = netdev_priv(dev);
  760. volatile struct lance_regs *ll = lp->ll;
  761. volatile u16 *ib = (volatile u16 *)dev->mem_start;
  762. unsigned long flags;
  763. int entry, len;
  764. len = skb->len;
  765. if (len < ETH_ZLEN) {
  766. if (skb_padto(skb, ETH_ZLEN))
  767. return NETDEV_TX_OK;
  768. len = ETH_ZLEN;
  769. }
  770. dev->stats.tx_bytes += len;
  771. spin_lock_irqsave(&lp->lock, flags);
  772. entry = lp->tx_new;
  773. *lib_ptr(ib, btx_ring[entry].length, lp->type) = (-len);
  774. *lib_ptr(ib, btx_ring[entry].misc, lp->type) = 0;
  775. cp_to_buf(lp->type, (char *)lp->tx_buf_ptr_cpu[entry], skb->data, len);
  776. /* Now, give the packet to the lance */
  777. *lib_ptr(ib, btx_ring[entry].tmd1, lp->type) =
  778. ((lp->tx_buf_ptr_lnc[entry] >> 16) & 0xff) |
  779. (LE_T1_POK | LE_T1_OWN);
  780. lp->tx_new = (entry + 1) & TX_RING_MOD_MASK;
  781. if (TX_BUFFS_AVAIL <= 0)
  782. netif_stop_queue(dev);
  783. /* Kick the lance: transmit now */
  784. writereg(&ll->rdp, LE_C0_INEA | LE_C0_TDMD);
  785. spin_unlock_irqrestore(&lp->lock, flags);
  786. dev_kfree_skb(skb);
  787. return NETDEV_TX_OK;
  788. }
  789. static void lance_load_multicast(struct net_device *dev)
  790. {
  791. struct lance_private *lp = netdev_priv(dev);
  792. volatile u16 *ib = (volatile u16 *)dev->mem_start;
  793. struct netdev_hw_addr *ha;
  794. u32 crc;
  795. /* set all multicast bits */
  796. if (dev->flags & IFF_ALLMULTI) {
  797. *lib_ptr(ib, filter[0], lp->type) = 0xffff;
  798. *lib_ptr(ib, filter[1], lp->type) = 0xffff;
  799. *lib_ptr(ib, filter[2], lp->type) = 0xffff;
  800. *lib_ptr(ib, filter[3], lp->type) = 0xffff;
  801. return;
  802. }
  803. /* clear the multicast filter */
  804. *lib_ptr(ib, filter[0], lp->type) = 0;
  805. *lib_ptr(ib, filter[1], lp->type) = 0;
  806. *lib_ptr(ib, filter[2], lp->type) = 0;
  807. *lib_ptr(ib, filter[3], lp->type) = 0;
  808. /* Add addresses */
  809. netdev_for_each_mc_addr(ha, dev) {
  810. crc = ether_crc_le(ETH_ALEN, ha->addr);
  811. crc = crc >> 26;
  812. *lib_ptr(ib, filter[crc >> 4], lp->type) |= 1 << (crc & 0xf);
  813. }
  814. }
  815. static void lance_set_multicast(struct net_device *dev)
  816. {
  817. struct lance_private *lp = netdev_priv(dev);
  818. volatile u16 *ib = (volatile u16 *)dev->mem_start;
  819. volatile struct lance_regs *ll = lp->ll;
  820. if (!netif_running(dev))
  821. return;
  822. if (lp->tx_old != lp->tx_new) {
  823. mod_timer(&lp->multicast_timer, jiffies + 4 * HZ/100);
  824. netif_wake_queue(dev);
  825. return;
  826. }
  827. netif_stop_queue(dev);
  828. writereg(&ll->rap, LE_CSR0);
  829. writereg(&ll->rdp, LE_C0_STOP);
  830. lance_init_ring(dev);
  831. if (dev->flags & IFF_PROMISC) {
  832. *lib_ptr(ib, mode, lp->type) |= LE_MO_PROM;
  833. } else {
  834. *lib_ptr(ib, mode, lp->type) &= ~LE_MO_PROM;
  835. lance_load_multicast(dev);
  836. }
  837. load_csrs(lp);
  838. init_restart_lance(lp);
  839. netif_wake_queue(dev);
  840. }
  841. static void lance_set_multicast_retry(unsigned long _opaque)
  842. {
  843. struct net_device *dev = (struct net_device *) _opaque;
  844. lance_set_multicast(dev);
  845. }
  846. static const struct net_device_ops lance_netdev_ops = {
  847. .ndo_open = lance_open,
  848. .ndo_stop = lance_close,
  849. .ndo_start_xmit = lance_start_xmit,
  850. .ndo_tx_timeout = lance_tx_timeout,
  851. .ndo_set_rx_mode = lance_set_multicast,
  852. .ndo_change_mtu = eth_change_mtu,
  853. .ndo_validate_addr = eth_validate_addr,
  854. .ndo_set_mac_address = eth_mac_addr,
  855. };
  856. static int __devinit dec_lance_probe(struct device *bdev, const int type)
  857. {
  858. static unsigned version_printed;
  859. static const char fmt[] = "declance%d";
  860. char name[10];
  861. struct net_device *dev;
  862. struct lance_private *lp;
  863. volatile struct lance_regs *ll;
  864. resource_size_t start = 0, len = 0;
  865. int i, ret;
  866. unsigned long esar_base;
  867. unsigned char *esar;
  868. if (dec_lance_debug && version_printed++ == 0)
  869. printk(version);
  870. if (bdev)
  871. snprintf(name, sizeof(name), "%s", dev_name(bdev));
  872. else {
  873. i = 0;
  874. dev = root_lance_dev;
  875. while (dev) {
  876. i++;
  877. lp = netdev_priv(dev);
  878. dev = lp->next;
  879. }
  880. snprintf(name, sizeof(name), fmt, i);
  881. }
  882. dev = alloc_etherdev(sizeof(struct lance_private));
  883. if (!dev) {
  884. ret = -ENOMEM;
  885. goto err_out;
  886. }
  887. /*
  888. * alloc_etherdev ensures the data structures used by the LANCE
  889. * are aligned.
  890. */
  891. lp = netdev_priv(dev);
  892. spin_lock_init(&lp->lock);
  893. lp->type = type;
  894. switch (type) {
  895. case ASIC_LANCE:
  896. dev->base_addr = CKSEG1ADDR(dec_kn_slot_base + IOASIC_LANCE);
  897. /* buffer space for the on-board LANCE shared memory */
  898. /*
  899. * FIXME: ugly hack!
  900. */
  901. dev->mem_start = CKSEG1ADDR(0x00020000);
  902. dev->mem_end = dev->mem_start + 0x00020000;
  903. dev->irq = dec_interrupt[DEC_IRQ_LANCE];
  904. esar_base = CKSEG1ADDR(dec_kn_slot_base + IOASIC_ESAR);
  905. /* Workaround crash with booting KN04 2.1k from Disk */
  906. memset((void *)dev->mem_start, 0,
  907. dev->mem_end - dev->mem_start);
  908. /*
  909. * setup the pointer arrays, this sucks [tm] :-(
  910. */
  911. for (i = 0; i < RX_RING_SIZE; i++) {
  912. lp->rx_buf_ptr_cpu[i] =
  913. (char *)(dev->mem_start + 2 * BUF_OFFSET_CPU +
  914. 2 * i * RX_BUFF_SIZE);
  915. lp->rx_buf_ptr_lnc[i] =
  916. (BUF_OFFSET_LNC + i * RX_BUFF_SIZE);
  917. }
  918. for (i = 0; i < TX_RING_SIZE; i++) {
  919. lp->tx_buf_ptr_cpu[i] =
  920. (char *)(dev->mem_start + 2 * BUF_OFFSET_CPU +
  921. 2 * RX_RING_SIZE * RX_BUFF_SIZE +
  922. 2 * i * TX_BUFF_SIZE);
  923. lp->tx_buf_ptr_lnc[i] =
  924. (BUF_OFFSET_LNC +
  925. RX_RING_SIZE * RX_BUFF_SIZE +
  926. i * TX_BUFF_SIZE);
  927. }
  928. /* Setup I/O ASIC LANCE DMA. */
  929. lp->dma_irq = dec_interrupt[DEC_IRQ_LANCE_MERR];
  930. ioasic_write(IO_REG_LANCE_DMA_P,
  931. CPHYSADDR(dev->mem_start) << 3);
  932. break;
  933. #ifdef CONFIG_TC
  934. case PMAD_LANCE:
  935. dev_set_drvdata(bdev, dev);
  936. start = to_tc_dev(bdev)->resource.start;
  937. len = to_tc_dev(bdev)->resource.end - start + 1;
  938. if (!request_mem_region(start, len, dev_name(bdev))) {
  939. printk(KERN_ERR
  940. "%s: Unable to reserve MMIO resource\n",
  941. dev_name(bdev));
  942. ret = -EBUSY;
  943. goto err_out_dev;
  944. }
  945. dev->mem_start = CKSEG1ADDR(start);
  946. dev->mem_end = dev->mem_start + 0x100000;
  947. dev->base_addr = dev->mem_start + 0x100000;
  948. dev->irq = to_tc_dev(bdev)->interrupt;
  949. esar_base = dev->mem_start + 0x1c0002;
  950. lp->dma_irq = -1;
  951. for (i = 0; i < RX_RING_SIZE; i++) {
  952. lp->rx_buf_ptr_cpu[i] =
  953. (char *)(dev->mem_start + BUF_OFFSET_CPU +
  954. i * RX_BUFF_SIZE);
  955. lp->rx_buf_ptr_lnc[i] =
  956. (BUF_OFFSET_LNC + i * RX_BUFF_SIZE);
  957. }
  958. for (i = 0; i < TX_RING_SIZE; i++) {
  959. lp->tx_buf_ptr_cpu[i] =
  960. (char *)(dev->mem_start + BUF_OFFSET_CPU +
  961. RX_RING_SIZE * RX_BUFF_SIZE +
  962. i * TX_BUFF_SIZE);
  963. lp->tx_buf_ptr_lnc[i] =
  964. (BUF_OFFSET_LNC +
  965. RX_RING_SIZE * RX_BUFF_SIZE +
  966. i * TX_BUFF_SIZE);
  967. }
  968. break;
  969. #endif
  970. case PMAX_LANCE:
  971. dev->irq = dec_interrupt[DEC_IRQ_LANCE];
  972. dev->base_addr = CKSEG1ADDR(KN01_SLOT_BASE + KN01_LANCE);
  973. dev->mem_start = CKSEG1ADDR(KN01_SLOT_BASE + KN01_LANCE_MEM);
  974. dev->mem_end = dev->mem_start + KN01_SLOT_SIZE;
  975. esar_base = CKSEG1ADDR(KN01_SLOT_BASE + KN01_ESAR + 1);
  976. lp->dma_irq = -1;
  977. /*
  978. * setup the pointer arrays, this sucks [tm] :-(
  979. */
  980. for (i = 0; i < RX_RING_SIZE; i++) {
  981. lp->rx_buf_ptr_cpu[i] =
  982. (char *)(dev->mem_start + 2 * BUF_OFFSET_CPU +
  983. 2 * i * RX_BUFF_SIZE);
  984. lp->rx_buf_ptr_lnc[i] =
  985. (BUF_OFFSET_LNC + i * RX_BUFF_SIZE);
  986. }
  987. for (i = 0; i < TX_RING_SIZE; i++) {
  988. lp->tx_buf_ptr_cpu[i] =
  989. (char *)(dev->mem_start + 2 * BUF_OFFSET_CPU +
  990. 2 * RX_RING_SIZE * RX_BUFF_SIZE +
  991. 2 * i * TX_BUFF_SIZE);
  992. lp->tx_buf_ptr_lnc[i] =
  993. (BUF_OFFSET_LNC +
  994. RX_RING_SIZE * RX_BUFF_SIZE +
  995. i * TX_BUFF_SIZE);
  996. }
  997. break;
  998. default:
  999. printk(KERN_ERR "%s: declance_init called with unknown type\n",
  1000. name);
  1001. ret = -ENODEV;
  1002. goto err_out_dev;
  1003. }
  1004. ll = (struct lance_regs *) dev->base_addr;
  1005. esar = (unsigned char *) esar_base;
  1006. /* prom checks */
  1007. /* First, check for test pattern */
  1008. if (esar[0x60] != 0xff && esar[0x64] != 0x00 &&
  1009. esar[0x68] != 0x55 && esar[0x6c] != 0xaa) {
  1010. printk(KERN_ERR
  1011. "%s: Ethernet station address prom not found!\n",
  1012. name);
  1013. ret = -ENODEV;
  1014. goto err_out_resource;
  1015. }
  1016. /* Check the prom contents */
  1017. for (i = 0; i < 8; i++) {
  1018. if (esar[i * 4] != esar[0x3c - i * 4] &&
  1019. esar[i * 4] != esar[0x40 + i * 4] &&
  1020. esar[0x3c - i * 4] != esar[0x40 + i * 4]) {
  1021. printk(KERN_ERR "%s: Something is wrong with the "
  1022. "ethernet station address prom!\n", name);
  1023. ret = -ENODEV;
  1024. goto err_out_resource;
  1025. }
  1026. }
  1027. /* Copy the ethernet address to the device structure, later to the
  1028. * lance initialization block so the lance gets it every time it's
  1029. * (re)initialized.
  1030. */
  1031. switch (type) {
  1032. case ASIC_LANCE:
  1033. printk("%s: IOASIC onboard LANCE", name);
  1034. break;
  1035. case PMAD_LANCE:
  1036. printk("%s: PMAD-AA", name);
  1037. break;
  1038. case PMAX_LANCE:
  1039. printk("%s: PMAX onboard LANCE", name);
  1040. break;
  1041. }
  1042. for (i = 0; i < 6; i++)
  1043. dev->dev_addr[i] = esar[i * 4];
  1044. printk(", addr = %pM, irq = %d\n", dev->dev_addr, dev->irq);
  1045. dev->netdev_ops = &lance_netdev_ops;
  1046. dev->watchdog_timeo = 5*HZ;
  1047. /* lp->ll is the location of the registers for lance card */
  1048. lp->ll = ll;
  1049. /* busmaster_regval (CSR3) should be zero according to the PMAD-AA
  1050. * specification.
  1051. */
  1052. lp->busmaster_regval = 0;
  1053. dev->dma = 0;
  1054. /* We cannot sleep if the chip is busy during a
  1055. * multicast list update event, because such events
  1056. * can occur from interrupts (ex. IPv6). So we
  1057. * use a timer to try again later when necessary. -DaveM
  1058. */
  1059. init_timer(&lp->multicast_timer);
  1060. lp->multicast_timer.data = (unsigned long) dev;
  1061. lp->multicast_timer.function = lance_set_multicast_retry;
  1062. ret = register_netdev(dev);
  1063. if (ret) {
  1064. printk(KERN_ERR
  1065. "%s: Unable to register netdev, aborting.\n", name);
  1066. goto err_out_resource;
  1067. }
  1068. if (!bdev) {
  1069. lp->next = root_lance_dev;
  1070. root_lance_dev = dev;
  1071. }
  1072. printk("%s: registered as %s.\n", name, dev->name);
  1073. return 0;
  1074. err_out_resource:
  1075. if (bdev)
  1076. release_mem_region(start, len);
  1077. err_out_dev:
  1078. free_netdev(dev);
  1079. err_out:
  1080. return ret;
  1081. }
  1082. static void __exit dec_lance_remove(struct device *bdev)
  1083. {
  1084. struct net_device *dev = dev_get_drvdata(bdev);
  1085. resource_size_t start, len;
  1086. unregister_netdev(dev);
  1087. start = to_tc_dev(bdev)->resource.start;
  1088. len = to_tc_dev(bdev)->resource.end - start + 1;
  1089. release_mem_region(start, len);
  1090. free_netdev(dev);
  1091. }
  1092. /* Find all the lance cards on the system and initialize them */
  1093. static int __init dec_lance_platform_probe(void)
  1094. {
  1095. int count = 0;
  1096. if (dec_interrupt[DEC_IRQ_LANCE] >= 0) {
  1097. if (dec_interrupt[DEC_IRQ_LANCE_MERR] >= 0) {
  1098. if (dec_lance_probe(NULL, ASIC_LANCE) >= 0)
  1099. count++;
  1100. } else if (!TURBOCHANNEL) {
  1101. if (dec_lance_probe(NULL, PMAX_LANCE) >= 0)
  1102. count++;
  1103. }
  1104. }
  1105. return (count > 0) ? 0 : -ENODEV;
  1106. }
  1107. static void __exit dec_lance_platform_remove(void)
  1108. {
  1109. while (root_lance_dev) {
  1110. struct net_device *dev = root_lance_dev;
  1111. struct lance_private *lp = netdev_priv(dev);
  1112. unregister_netdev(dev);
  1113. root_lance_dev = lp->next;
  1114. free_netdev(dev);
  1115. }
  1116. }
  1117. #ifdef CONFIG_TC
  1118. static int __devinit dec_lance_tc_probe(struct device *dev);
  1119. static int __exit dec_lance_tc_remove(struct device *dev);
  1120. static const struct tc_device_id dec_lance_tc_table[] = {
  1121. { "DEC ", "PMAD-AA " },
  1122. { }
  1123. };
  1124. MODULE_DEVICE_TABLE(tc, dec_lance_tc_table);
  1125. static struct tc_driver dec_lance_tc_driver = {
  1126. .id_table = dec_lance_tc_table,
  1127. .driver = {
  1128. .name = "declance",
  1129. .bus = &tc_bus_type,
  1130. .probe = dec_lance_tc_probe,
  1131. .remove = __exit_p(dec_lance_tc_remove),
  1132. },
  1133. };
  1134. static int __devinit dec_lance_tc_probe(struct device *dev)
  1135. {
  1136. int status = dec_lance_probe(dev, PMAD_LANCE);
  1137. if (!status)
  1138. get_device(dev);
  1139. return status;
  1140. }
  1141. static int __exit dec_lance_tc_remove(struct device *dev)
  1142. {
  1143. put_device(dev);
  1144. dec_lance_remove(dev);
  1145. return 0;
  1146. }
  1147. #endif
  1148. static int __init dec_lance_init(void)
  1149. {
  1150. int status;
  1151. status = tc_register_driver(&dec_lance_tc_driver);
  1152. if (!status)
  1153. dec_lance_platform_probe();
  1154. return status;
  1155. }
  1156. static void __exit dec_lance_exit(void)
  1157. {
  1158. dec_lance_platform_remove();
  1159. tc_unregister_driver(&dec_lance_tc_driver);
  1160. }
  1161. module_init(dec_lance_init);
  1162. module_exit(dec_lance_exit);