mac8390.c 23 KB

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  1. /* mac8390.c: New driver for 8390-based Nubus (or Nubus-alike)
  2. Ethernet cards on Linux */
  3. /* Based on the former daynaport.c driver, by Alan Cox. Some code
  4. taken from or inspired by skeleton.c by Donald Becker, acenic.c by
  5. Jes Sorensen, and ne2k-pci.c by Donald Becker and Paul Gortmaker.
  6. This software may be used and distributed according to the terms of
  7. the GNU Public License, incorporated herein by reference. */
  8. /* 2000-02-28: support added for Dayna and Kinetics cards by
  9. A.G.deWijn@phys.uu.nl */
  10. /* 2000-04-04: support added for Dayna2 by bart@etpmod.phys.tue.nl */
  11. /* 2001-04-18: support for DaynaPort E/LC-M by rayk@knightsmanor.org */
  12. /* 2001-05-15: support for Cabletron ported from old daynaport driver
  13. * and fixed access to Sonic Sys card which masquerades as a Farallon
  14. * by rayk@knightsmanor.org */
  15. /* 2002-12-30: Try to support more cards, some clues from NetBSD driver */
  16. /* 2003-12-26: Make sure Asante cards always work. */
  17. #include <linux/module.h>
  18. #include <linux/kernel.h>
  19. #include <linux/types.h>
  20. #include <linux/fcntl.h>
  21. #include <linux/interrupt.h>
  22. #include <linux/ptrace.h>
  23. #include <linux/ioport.h>
  24. #include <linux/nubus.h>
  25. #include <linux/in.h>
  26. #include <linux/slab.h>
  27. #include <linux/string.h>
  28. #include <linux/errno.h>
  29. #include <linux/init.h>
  30. #include <linux/netdevice.h>
  31. #include <linux/etherdevice.h>
  32. #include <linux/skbuff.h>
  33. #include <linux/bitops.h>
  34. #include <asm/system.h>
  35. #include <asm/io.h>
  36. #include <asm/dma.h>
  37. #include <asm/hwtest.h>
  38. #include <asm/macints.h>
  39. static char version[] =
  40. "mac8390.c: v0.4 2001-05-15 David Huggins-Daines <dhd@debian.org> and others\n";
  41. #define EI_SHIFT(x) (ei_local->reg_offset[x])
  42. #define ei_inb(port) in_8(port)
  43. #define ei_outb(val,port) out_8(port,val)
  44. #define ei_inb_p(port) in_8(port)
  45. #define ei_outb_p(val,port) out_8(port,val)
  46. #include "lib8390.c"
  47. #define WD_START_PG 0x00 /* First page of TX buffer */
  48. #define CABLETRON_RX_START_PG 0x00 /* First page of RX buffer */
  49. #define CABLETRON_RX_STOP_PG 0x30 /* Last page +1 of RX ring */
  50. #define CABLETRON_TX_START_PG CABLETRON_RX_STOP_PG /* First page of TX buffer */
  51. /* Unfortunately it seems we have to hardcode these for the moment */
  52. /* Shouldn't the card know about this? Does anyone know where to read it off the card? Do we trust the data provided by the card? */
  53. #define DAYNA_8390_BASE 0x80000
  54. #define DAYNA_8390_MEM 0x00000
  55. #define CABLETRON_8390_BASE 0x90000
  56. #define CABLETRON_8390_MEM 0x00000
  57. #define INTERLAN_8390_BASE 0xE0000
  58. #define INTERLAN_8390_MEM 0xD0000
  59. enum mac8390_type {
  60. MAC8390_NONE = -1,
  61. MAC8390_APPLE,
  62. MAC8390_ASANTE,
  63. MAC8390_FARALLON,
  64. MAC8390_CABLETRON,
  65. MAC8390_DAYNA,
  66. MAC8390_INTERLAN,
  67. MAC8390_KINETICS,
  68. };
  69. static const char * cardname[] = {
  70. "apple",
  71. "asante",
  72. "farallon",
  73. "cabletron",
  74. "dayna",
  75. "interlan",
  76. "kinetics",
  77. };
  78. static int word16[] = {
  79. 1, /* apple */
  80. 1, /* asante */
  81. 1, /* farallon */
  82. 1, /* cabletron */
  83. 0, /* dayna */
  84. 1, /* interlan */
  85. 0, /* kinetics */
  86. };
  87. /* on which cards do we use NuBus resources? */
  88. static int useresources[] = {
  89. 1, /* apple */
  90. 1, /* asante */
  91. 1, /* farallon */
  92. 0, /* cabletron */
  93. 0, /* dayna */
  94. 0, /* interlan */
  95. 0, /* kinetics */
  96. };
  97. enum mac8390_access {
  98. ACCESS_UNKNOWN = 0,
  99. ACCESS_32,
  100. ACCESS_16,
  101. };
  102. extern enum mac8390_type mac8390_ident(struct nubus_dev * dev);
  103. extern int mac8390_memsize(unsigned long membase);
  104. extern int mac8390_memtest(struct net_device * dev);
  105. static int mac8390_initdev(struct net_device * dev, struct nubus_dev * ndev,
  106. enum mac8390_type type);
  107. static int mac8390_open(struct net_device * dev);
  108. static int mac8390_close(struct net_device * dev);
  109. static void mac8390_no_reset(struct net_device *dev);
  110. static void interlan_reset(struct net_device *dev);
  111. /* Sane (32-bit chunk memory read/write) - Some Farallon and Apple do this*/
  112. static void sane_get_8390_hdr(struct net_device *dev,
  113. struct e8390_pkt_hdr *hdr, int ring_page);
  114. static void sane_block_input(struct net_device * dev, int count,
  115. struct sk_buff * skb, int ring_offset);
  116. static void sane_block_output(struct net_device * dev, int count,
  117. const unsigned char * buf, const int start_page);
  118. /* dayna_memcpy to and from card */
  119. static void dayna_memcpy_fromcard(struct net_device *dev, void *to,
  120. int from, int count);
  121. static void dayna_memcpy_tocard(struct net_device *dev, int to,
  122. const void *from, int count);
  123. /* Dayna - Dayna/Kinetics use this */
  124. static void dayna_get_8390_hdr(struct net_device *dev,
  125. struct e8390_pkt_hdr *hdr, int ring_page);
  126. static void dayna_block_input(struct net_device *dev, int count,
  127. struct sk_buff *skb, int ring_offset);
  128. static void dayna_block_output(struct net_device *dev, int count,
  129. const unsigned char *buf, int start_page);
  130. #define memcpy_fromio(a,b,c) memcpy((a),(void *)(b),(c))
  131. #define memcpy_toio(a,b,c) memcpy((void *)(a),(b),(c))
  132. /* Slow Sane (16-bit chunk memory read/write) Cabletron uses this */
  133. static void slow_sane_get_8390_hdr(struct net_device *dev,
  134. struct e8390_pkt_hdr *hdr, int ring_page);
  135. static void slow_sane_block_input(struct net_device *dev, int count,
  136. struct sk_buff *skb, int ring_offset);
  137. static void slow_sane_block_output(struct net_device *dev, int count,
  138. const unsigned char *buf, int start_page);
  139. static void word_memcpy_tocard(void *tp, const void *fp, int count);
  140. static void word_memcpy_fromcard(void *tp, const void *fp, int count);
  141. enum mac8390_type __init mac8390_ident(struct nubus_dev * dev)
  142. {
  143. switch (dev->dr_sw) {
  144. case NUBUS_DRSW_3COM:
  145. switch (dev->dr_hw) {
  146. case NUBUS_DRHW_APPLE_SONIC_NB:
  147. case NUBUS_DRHW_APPLE_SONIC_LC:
  148. case NUBUS_DRHW_SONNET:
  149. return MAC8390_NONE;
  150. break;
  151. default:
  152. return MAC8390_APPLE;
  153. break;
  154. }
  155. break;
  156. case NUBUS_DRSW_APPLE:
  157. switch (dev->dr_hw) {
  158. case NUBUS_DRHW_ASANTE_LC:
  159. return MAC8390_NONE;
  160. break;
  161. case NUBUS_DRHW_CABLETRON:
  162. return MAC8390_CABLETRON;
  163. break;
  164. default:
  165. return MAC8390_APPLE;
  166. break;
  167. }
  168. break;
  169. case NUBUS_DRSW_ASANTE:
  170. return MAC8390_ASANTE;
  171. break;
  172. case NUBUS_DRSW_TECHWORKS:
  173. case NUBUS_DRSW_DAYNA2:
  174. case NUBUS_DRSW_DAYNA_LC:
  175. if (dev->dr_hw == NUBUS_DRHW_CABLETRON)
  176. return MAC8390_CABLETRON;
  177. else
  178. return MAC8390_APPLE;
  179. break;
  180. case NUBUS_DRSW_FARALLON:
  181. return MAC8390_FARALLON;
  182. break;
  183. case NUBUS_DRSW_KINETICS:
  184. switch (dev->dr_hw) {
  185. case NUBUS_DRHW_INTERLAN:
  186. return MAC8390_INTERLAN;
  187. break;
  188. default:
  189. return MAC8390_KINETICS;
  190. break;
  191. }
  192. break;
  193. case NUBUS_DRSW_DAYNA:
  194. // These correspond to Dayna Sonic cards
  195. // which use the macsonic driver
  196. if (dev->dr_hw == NUBUS_DRHW_SMC9194 ||
  197. dev->dr_hw == NUBUS_DRHW_INTERLAN )
  198. return MAC8390_NONE;
  199. else
  200. return MAC8390_DAYNA;
  201. break;
  202. }
  203. return MAC8390_NONE;
  204. }
  205. enum mac8390_access __init mac8390_testio(volatile unsigned long membase)
  206. {
  207. unsigned long outdata = 0xA5A0B5B0;
  208. unsigned long indata = 0x00000000;
  209. /* Try writing 32 bits */
  210. memcpy((char *)membase, (char *)&outdata, 4);
  211. /* Now compare them */
  212. if (memcmp((char *)&outdata, (char *)membase, 4) == 0)
  213. return ACCESS_32;
  214. /* Write 16 bit output */
  215. word_memcpy_tocard((char *)membase, (char *)&outdata, 4);
  216. /* Now read it back */
  217. word_memcpy_fromcard((char *)&indata, (char *)membase, 4);
  218. if (outdata == indata)
  219. return ACCESS_16;
  220. return ACCESS_UNKNOWN;
  221. }
  222. int __init mac8390_memsize(unsigned long membase)
  223. {
  224. unsigned long flags;
  225. int i, j;
  226. local_irq_save(flags);
  227. /* Check up to 32K in 4K increments */
  228. for (i = 0; i < 8; i++) {
  229. volatile unsigned short *m = (unsigned short *) (membase + (i * 0x1000));
  230. /* Unwriteable - we have a fully decoded card and the
  231. RAM end located */
  232. if (hwreg_present(m) == 0)
  233. break;
  234. /* write a distinctive byte */
  235. *m = 0xA5A0 | i;
  236. /* check that we read back what we wrote */
  237. if (*m != (0xA5A0 | i))
  238. break;
  239. /* check for partial decode and wrap */
  240. for (j = 0; j < i; j++) {
  241. volatile unsigned short *p = (unsigned short *) (membase + (j * 0x1000));
  242. if (*p != (0xA5A0 | j))
  243. break;
  244. }
  245. }
  246. local_irq_restore(flags);
  247. /* in any case, we stopped once we tried one block too many,
  248. or once we reached 32K */
  249. return i * 0x1000;
  250. }
  251. struct net_device * __init mac8390_probe(int unit)
  252. {
  253. struct net_device *dev;
  254. volatile unsigned short *i;
  255. int version_disp = 0;
  256. struct nubus_dev * ndev = NULL;
  257. int err = -ENODEV;
  258. struct nubus_dir dir;
  259. struct nubus_dirent ent;
  260. int offset;
  261. static unsigned int slots;
  262. enum mac8390_type cardtype;
  263. /* probably should check for Nubus instead */
  264. if (!MACH_IS_MAC)
  265. return ERR_PTR(-ENODEV);
  266. dev = ____alloc_ei_netdev(0);
  267. if (!dev)
  268. return ERR_PTR(-ENOMEM);
  269. if (unit >= 0)
  270. sprintf(dev->name, "eth%d", unit);
  271. while ((ndev = nubus_find_type(NUBUS_CAT_NETWORK, NUBUS_TYPE_ETHERNET, ndev))) {
  272. /* Have we seen it already? */
  273. if (slots & (1<<ndev->board->slot))
  274. continue;
  275. slots |= 1<<ndev->board->slot;
  276. if ((cardtype = mac8390_ident(ndev)) == MAC8390_NONE)
  277. continue;
  278. if (version_disp == 0) {
  279. version_disp = 1;
  280. printk(version);
  281. }
  282. dev->irq = SLOT2IRQ(ndev->board->slot);
  283. /* This is getting to be a habit */
  284. dev->base_addr = ndev->board->slot_addr | ((ndev->board->slot&0xf) << 20);
  285. /* Get some Nubus info - we will trust the card's idea
  286. of where its memory and registers are. */
  287. if (nubus_get_func_dir(ndev, &dir) == -1) {
  288. printk(KERN_ERR "%s: Unable to get Nubus functional"
  289. " directory for slot %X!\n",
  290. dev->name, ndev->board->slot);
  291. continue;
  292. }
  293. /* Get the MAC address */
  294. if ((nubus_find_rsrc(&dir, NUBUS_RESID_MAC_ADDRESS, &ent)) == -1) {
  295. printk(KERN_INFO "%s: Couldn't get MAC address!\n",
  296. dev->name);
  297. continue;
  298. } else {
  299. nubus_get_rsrc_mem(dev->dev_addr, &ent, 6);
  300. }
  301. if (useresources[cardtype] == 1) {
  302. nubus_rewinddir(&dir);
  303. if (nubus_find_rsrc(&dir, NUBUS_RESID_MINOR_BASEOS, &ent) == -1) {
  304. printk(KERN_ERR "%s: Memory offset resource"
  305. " for slot %X not found!\n",
  306. dev->name, ndev->board->slot);
  307. continue;
  308. }
  309. nubus_get_rsrc_mem(&offset, &ent, 4);
  310. dev->mem_start = dev->base_addr + offset;
  311. /* yes, this is how the Apple driver does it */
  312. dev->base_addr = dev->mem_start + 0x10000;
  313. nubus_rewinddir(&dir);
  314. if (nubus_find_rsrc(&dir, NUBUS_RESID_MINOR_LENGTH, &ent) == -1) {
  315. printk(KERN_INFO "%s: Memory length resource"
  316. " for slot %X not found"
  317. ", probing\n",
  318. dev->name, ndev->board->slot);
  319. offset = mac8390_memsize(dev->mem_start);
  320. } else {
  321. nubus_get_rsrc_mem(&offset, &ent, 4);
  322. }
  323. dev->mem_end = dev->mem_start + offset;
  324. } else {
  325. switch (cardtype) {
  326. case MAC8390_KINETICS:
  327. case MAC8390_DAYNA: /* it's the same */
  328. dev->base_addr =
  329. (int)(ndev->board->slot_addr +
  330. DAYNA_8390_BASE);
  331. dev->mem_start =
  332. (int)(ndev->board->slot_addr +
  333. DAYNA_8390_MEM);
  334. dev->mem_end =
  335. dev->mem_start +
  336. mac8390_memsize(dev->mem_start);
  337. break;
  338. case MAC8390_INTERLAN:
  339. dev->base_addr =
  340. (int)(ndev->board->slot_addr +
  341. INTERLAN_8390_BASE);
  342. dev->mem_start =
  343. (int)(ndev->board->slot_addr +
  344. INTERLAN_8390_MEM);
  345. dev->mem_end =
  346. dev->mem_start +
  347. mac8390_memsize(dev->mem_start);
  348. break;
  349. case MAC8390_CABLETRON:
  350. dev->base_addr =
  351. (int)(ndev->board->slot_addr +
  352. CABLETRON_8390_BASE);
  353. dev->mem_start =
  354. (int)(ndev->board->slot_addr +
  355. CABLETRON_8390_MEM);
  356. /* The base address is unreadable if 0x00
  357. * has been written to the command register
  358. * Reset the chip by writing E8390_NODMA +
  359. * E8390_PAGE0 + E8390_STOP just to be
  360. * sure
  361. */
  362. i = (void *)dev->base_addr;
  363. *i = 0x21;
  364. dev->mem_end =
  365. dev->mem_start +
  366. mac8390_memsize(dev->mem_start);
  367. break;
  368. default:
  369. printk(KERN_ERR "Card type %s is"
  370. " unsupported, sorry\n",
  371. ndev->board->name);
  372. continue;
  373. }
  374. }
  375. /* Do the nasty 8390 stuff */
  376. if (!mac8390_initdev(dev, ndev, cardtype))
  377. break;
  378. }
  379. if (!ndev)
  380. goto out;
  381. err = register_netdev(dev);
  382. if (err)
  383. goto out;
  384. return dev;
  385. out:
  386. free_netdev(dev);
  387. return ERR_PTR(err);
  388. }
  389. #ifdef MODULE
  390. MODULE_AUTHOR("David Huggins-Daines <dhd@debian.org> and others");
  391. MODULE_DESCRIPTION("Macintosh NS8390-based Nubus Ethernet driver");
  392. MODULE_LICENSE("GPL");
  393. /* overkill, of course */
  394. static struct net_device *dev_mac8390[15];
  395. int init_module(void)
  396. {
  397. int i;
  398. for (i = 0; i < 15; i++) {
  399. struct net_device *dev = mac8390_probe(-1);
  400. if (IS_ERR(dev))
  401. break;
  402. dev_mac890[i] = dev;
  403. }
  404. if (!i) {
  405. printk(KERN_NOTICE "mac8390.c: No useable cards found, driver NOT installed.\n");
  406. return -ENODEV;
  407. }
  408. return 0;
  409. }
  410. void cleanup_module(void)
  411. {
  412. int i;
  413. for (i = 0; i < 15; i++) {
  414. struct net_device *dev = dev_mac890[i];
  415. if (dev) {
  416. unregister_netdev(dev);
  417. free_netdev(dev);
  418. }
  419. }
  420. }
  421. #endif /* MODULE */
  422. static int __init mac8390_initdev(struct net_device * dev, struct nubus_dev * ndev,
  423. enum mac8390_type type)
  424. {
  425. static u32 fwrd4_offsets[16]={
  426. 0, 4, 8, 12,
  427. 16, 20, 24, 28,
  428. 32, 36, 40, 44,
  429. 48, 52, 56, 60
  430. };
  431. static u32 back4_offsets[16]={
  432. 60, 56, 52, 48,
  433. 44, 40, 36, 32,
  434. 28, 24, 20, 16,
  435. 12, 8, 4, 0
  436. };
  437. static u32 fwrd2_offsets[16]={
  438. 0, 2, 4, 6,
  439. 8, 10, 12, 14,
  440. 16, 18, 20, 22,
  441. 24, 26, 28, 30
  442. };
  443. int access_bitmode = 0;
  444. /* Now fill in our stuff */
  445. dev->open = &mac8390_open;
  446. dev->stop = &mac8390_close;
  447. #ifdef CONFIG_NET_POLL_CONTROLLER
  448. dev->poll_controller = __ei_poll;
  449. #endif
  450. /* GAR, ei_status is actually a macro even though it looks global */
  451. ei_status.name = cardname[type];
  452. ei_status.word16 = word16[type];
  453. /* Cabletron's TX/RX buffers are backwards */
  454. if (type == MAC8390_CABLETRON) {
  455. ei_status.tx_start_page = CABLETRON_TX_START_PG;
  456. ei_status.rx_start_page = CABLETRON_RX_START_PG;
  457. ei_status.stop_page = CABLETRON_RX_STOP_PG;
  458. ei_status.rmem_start = dev->mem_start;
  459. ei_status.rmem_end = dev->mem_start + CABLETRON_RX_STOP_PG*256;
  460. } else {
  461. ei_status.tx_start_page = WD_START_PG;
  462. ei_status.rx_start_page = WD_START_PG + TX_PAGES;
  463. ei_status.stop_page = (dev->mem_end - dev->mem_start)/256;
  464. ei_status.rmem_start = dev->mem_start + TX_PAGES*256;
  465. ei_status.rmem_end = dev->mem_end;
  466. }
  467. /* Fill in model-specific information and functions */
  468. switch(type) {
  469. case MAC8390_FARALLON:
  470. case MAC8390_APPLE:
  471. switch(mac8390_testio(dev->mem_start)) {
  472. case ACCESS_UNKNOWN:
  473. printk("Don't know how to access card memory!\n");
  474. return -ENODEV;
  475. break;
  476. case ACCESS_16:
  477. /* 16 bit card, register map is reversed */
  478. ei_status.reset_8390 = &mac8390_no_reset;
  479. ei_status.block_input = &slow_sane_block_input;
  480. ei_status.block_output = &slow_sane_block_output;
  481. ei_status.get_8390_hdr = &slow_sane_get_8390_hdr;
  482. ei_status.reg_offset = back4_offsets;
  483. break;
  484. case ACCESS_32:
  485. /* 32 bit card, register map is reversed */
  486. ei_status.reset_8390 = &mac8390_no_reset;
  487. ei_status.block_input = &sane_block_input;
  488. ei_status.block_output = &sane_block_output;
  489. ei_status.get_8390_hdr = &sane_get_8390_hdr;
  490. ei_status.reg_offset = back4_offsets;
  491. access_bitmode = 1;
  492. break;
  493. }
  494. break;
  495. case MAC8390_ASANTE:
  496. /* Some Asante cards pass the 32 bit test
  497. * but overwrite system memory when run at 32 bit.
  498. * so we run them all at 16 bit.
  499. */
  500. ei_status.reset_8390 = &mac8390_no_reset;
  501. ei_status.block_input = &slow_sane_block_input;
  502. ei_status.block_output = &slow_sane_block_output;
  503. ei_status.get_8390_hdr = &slow_sane_get_8390_hdr;
  504. ei_status.reg_offset = back4_offsets;
  505. break;
  506. case MAC8390_CABLETRON:
  507. /* 16 bit card, register map is short forward */
  508. ei_status.reset_8390 = &mac8390_no_reset;
  509. ei_status.block_input = &slow_sane_block_input;
  510. ei_status.block_output = &slow_sane_block_output;
  511. ei_status.get_8390_hdr = &slow_sane_get_8390_hdr;
  512. ei_status.reg_offset = fwrd2_offsets;
  513. break;
  514. case MAC8390_DAYNA:
  515. case MAC8390_KINETICS:
  516. /* 16 bit memory, register map is forward */
  517. /* dayna and similar */
  518. ei_status.reset_8390 = &mac8390_no_reset;
  519. ei_status.block_input = &dayna_block_input;
  520. ei_status.block_output = &dayna_block_output;
  521. ei_status.get_8390_hdr = &dayna_get_8390_hdr;
  522. ei_status.reg_offset = fwrd4_offsets;
  523. break;
  524. case MAC8390_INTERLAN:
  525. /* 16 bit memory, register map is forward */
  526. ei_status.reset_8390 = &interlan_reset;
  527. ei_status.block_input = &slow_sane_block_input;
  528. ei_status.block_output = &slow_sane_block_output;
  529. ei_status.get_8390_hdr = &slow_sane_get_8390_hdr;
  530. ei_status.reg_offset = fwrd4_offsets;
  531. break;
  532. default:
  533. printk(KERN_ERR "Card type %s is unsupported, sorry\n", ndev->board->name);
  534. return -ENODEV;
  535. }
  536. __NS8390_init(dev, 0);
  537. /* Good, done, now spit out some messages */
  538. printk(KERN_INFO "%s: %s in slot %X (type %s)\n",
  539. dev->name, ndev->board->name, ndev->board->slot, cardname[type]);
  540. printk(KERN_INFO "MAC ");
  541. {
  542. int i;
  543. for (i = 0; i < 6; i++) {
  544. printk("%2.2x", dev->dev_addr[i]);
  545. if (i < 5)
  546. printk(":");
  547. }
  548. }
  549. printk(" IRQ %d, %d KB shared memory at %#lx, %d-bit access.\n",
  550. dev->irq, (int)((dev->mem_end - dev->mem_start)/0x1000) * 4,
  551. dev->mem_start, access_bitmode?32:16);
  552. return 0;
  553. }
  554. static int mac8390_open(struct net_device *dev)
  555. {
  556. __ei_open(dev);
  557. if (request_irq(dev->irq, __ei_interrupt, 0, "8390 Ethernet", dev)) {
  558. printk ("%s: unable to get IRQ %d.\n", dev->name, dev->irq);
  559. return -EAGAIN;
  560. }
  561. return 0;
  562. }
  563. static int mac8390_close(struct net_device *dev)
  564. {
  565. free_irq(dev->irq, dev);
  566. __ei_close(dev);
  567. return 0;
  568. }
  569. static void mac8390_no_reset(struct net_device *dev)
  570. {
  571. ei_status.txing = 0;
  572. if (ei_debug > 1)
  573. printk("reset not supported\n");
  574. return;
  575. }
  576. static void interlan_reset(struct net_device *dev)
  577. {
  578. unsigned char *target=nubus_slot_addr(IRQ2SLOT(dev->irq));
  579. if (ei_debug > 1)
  580. printk("Need to reset the NS8390 t=%lu...", jiffies);
  581. ei_status.txing = 0;
  582. target[0xC0000] = 0;
  583. if (ei_debug > 1)
  584. printk("reset complete\n");
  585. return;
  586. }
  587. /* dayna_memcpy_fromio/dayna_memcpy_toio */
  588. /* directly from daynaport.c by Alan Cox */
  589. static void dayna_memcpy_fromcard(struct net_device *dev, void *to, int from, int count)
  590. {
  591. volatile unsigned char *ptr;
  592. unsigned char *target=to;
  593. from<<=1; /* word, skip overhead */
  594. ptr=(unsigned char *)(dev->mem_start+from);
  595. /* Leading byte? */
  596. if (from&2) {
  597. *target++ = ptr[-1];
  598. ptr += 2;
  599. count--;
  600. }
  601. while(count>=2)
  602. {
  603. *(unsigned short *)target = *(unsigned short volatile *)ptr;
  604. ptr += 4; /* skip cruft */
  605. target += 2;
  606. count-=2;
  607. }
  608. /* Trailing byte? */
  609. if(count)
  610. *target = *ptr;
  611. }
  612. static void dayna_memcpy_tocard(struct net_device *dev, int to, const void *from, int count)
  613. {
  614. volatile unsigned short *ptr;
  615. const unsigned char *src=from;
  616. to<<=1; /* word, skip overhead */
  617. ptr=(unsigned short *)(dev->mem_start+to);
  618. /* Leading byte? */
  619. if (to&2) { /* avoid a byte write (stomps on other data) */
  620. ptr[-1] = (ptr[-1]&0xFF00)|*src++;
  621. ptr++;
  622. count--;
  623. }
  624. while(count>=2)
  625. {
  626. *ptr++=*(unsigned short *)src; /* Copy and */
  627. ptr++; /* skip cruft */
  628. src += 2;
  629. count-=2;
  630. }
  631. /* Trailing byte? */
  632. if(count)
  633. {
  634. /* card doesn't like byte writes */
  635. *ptr=(*ptr&0x00FF)|(*src << 8);
  636. }
  637. }
  638. /* sane block input/output */
  639. static void sane_get_8390_hdr(struct net_device *dev,
  640. struct e8390_pkt_hdr *hdr, int ring_page)
  641. {
  642. unsigned long hdr_start = (ring_page - WD_START_PG)<<8;
  643. memcpy_fromio((void *)hdr, (char *)dev->mem_start + hdr_start, 4);
  644. /* Fix endianness */
  645. hdr->count = swab16(hdr->count);
  646. }
  647. static void sane_block_input(struct net_device *dev, int count,
  648. struct sk_buff *skb, int ring_offset)
  649. {
  650. unsigned long xfer_base = ring_offset - (WD_START_PG<<8);
  651. unsigned long xfer_start = xfer_base + dev->mem_start;
  652. if (xfer_start + count > ei_status.rmem_end) {
  653. /* We must wrap the input move. */
  654. int semi_count = ei_status.rmem_end - xfer_start;
  655. memcpy_fromio(skb->data, (char *)dev->mem_start + xfer_base, semi_count);
  656. count -= semi_count;
  657. memcpy_toio(skb->data + semi_count, (char *)ei_status.rmem_start, count);
  658. } else {
  659. memcpy_fromio(skb->data, (char *)dev->mem_start + xfer_base, count);
  660. }
  661. }
  662. static void sane_block_output(struct net_device *dev, int count,
  663. const unsigned char *buf, int start_page)
  664. {
  665. long shmem = (start_page - WD_START_PG)<<8;
  666. memcpy_toio((char *)dev->mem_start + shmem, buf, count);
  667. }
  668. /* dayna block input/output */
  669. static void dayna_get_8390_hdr(struct net_device *dev, struct e8390_pkt_hdr *hdr, int ring_page)
  670. {
  671. unsigned long hdr_start = (ring_page - WD_START_PG)<<8;
  672. dayna_memcpy_fromcard(dev, (void *)hdr, hdr_start, 4);
  673. /* Fix endianness */
  674. hdr->count=(hdr->count&0xFF)<<8|(hdr->count>>8);
  675. }
  676. static void dayna_block_input(struct net_device *dev, int count, struct sk_buff *skb, int ring_offset)
  677. {
  678. unsigned long xfer_base = ring_offset - (WD_START_PG<<8);
  679. unsigned long xfer_start = xfer_base+dev->mem_start;
  680. /* Note the offset math is done in card memory space which is word
  681. per long onto our space. */
  682. if (xfer_start + count > ei_status.rmem_end)
  683. {
  684. /* We must wrap the input move. */
  685. int semi_count = ei_status.rmem_end - xfer_start;
  686. dayna_memcpy_fromcard(dev, skb->data, xfer_base, semi_count);
  687. count -= semi_count;
  688. dayna_memcpy_fromcard(dev, skb->data + semi_count,
  689. ei_status.rmem_start - dev->mem_start,
  690. count);
  691. }
  692. else
  693. {
  694. dayna_memcpy_fromcard(dev, skb->data, xfer_base, count);
  695. }
  696. }
  697. static void dayna_block_output(struct net_device *dev, int count, const unsigned char *buf,
  698. int start_page)
  699. {
  700. long shmem = (start_page - WD_START_PG)<<8;
  701. dayna_memcpy_tocard(dev, shmem, buf, count);
  702. }
  703. /* Cabletron block I/O */
  704. static void slow_sane_get_8390_hdr(struct net_device *dev, struct e8390_pkt_hdr *hdr,
  705. int ring_page)
  706. {
  707. unsigned long hdr_start = (ring_page - WD_START_PG)<<8;
  708. word_memcpy_fromcard((void *)hdr, (char *)dev->mem_start+hdr_start, 4);
  709. /* Register endianism - fix here rather than 8390.c */
  710. hdr->count = (hdr->count&0xFF)<<8|(hdr->count>>8);
  711. }
  712. static void slow_sane_block_input(struct net_device *dev, int count, struct sk_buff *skb,
  713. int ring_offset)
  714. {
  715. unsigned long xfer_base = ring_offset - (WD_START_PG<<8);
  716. unsigned long xfer_start = xfer_base+dev->mem_start;
  717. if (xfer_start + count > ei_status.rmem_end)
  718. {
  719. /* We must wrap the input move. */
  720. int semi_count = ei_status.rmem_end - xfer_start;
  721. word_memcpy_fromcard(skb->data, (char *)dev->mem_start +
  722. xfer_base, semi_count);
  723. count -= semi_count;
  724. word_memcpy_fromcard(skb->data + semi_count,
  725. (char *)ei_status.rmem_start, count);
  726. }
  727. else
  728. {
  729. word_memcpy_fromcard(skb->data, (char *)dev->mem_start +
  730. xfer_base, count);
  731. }
  732. }
  733. static void slow_sane_block_output(struct net_device *dev, int count, const unsigned char *buf,
  734. int start_page)
  735. {
  736. long shmem = (start_page - WD_START_PG)<<8;
  737. word_memcpy_tocard((char *)dev->mem_start + shmem, buf, count);
  738. }
  739. static void word_memcpy_tocard(void *tp, const void *fp, int count)
  740. {
  741. volatile unsigned short *to = tp;
  742. const unsigned short *from = fp;
  743. count++;
  744. count/=2;
  745. while(count--)
  746. *to++=*from++;
  747. }
  748. static void word_memcpy_fromcard(void *tp, const void *fp, int count)
  749. {
  750. unsigned short *to = tp;
  751. const volatile unsigned short *from = fp;
  752. count++;
  753. count/=2;
  754. while(count--)
  755. *to++=*from++;
  756. }