dscc4.c 54 KB

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  1. /*
  2. * drivers/net/wan/dscc4/dscc4.c: a DSCC4 HDLC driver for Linux
  3. *
  4. * This software may be used and distributed according to the terms of the
  5. * GNU General Public License.
  6. *
  7. * The author may be reached as romieu@cogenit.fr.
  8. * Specific bug reports/asian food will be welcome.
  9. *
  10. * Special thanks to the nice people at CS-Telecom for the hardware and the
  11. * access to the test/measure tools.
  12. *
  13. *
  14. * Theory of Operation
  15. *
  16. * I. Board Compatibility
  17. *
  18. * This device driver is designed for the Siemens PEB20534 4 ports serial
  19. * controller as found on Etinc PCISYNC cards. The documentation for the
  20. * chipset is available at http://www.infineon.com:
  21. * - Data Sheet "DSCC4, DMA Supported Serial Communication Controller with
  22. * 4 Channels, PEB 20534 Version 2.1, PEF 20534 Version 2.1";
  23. * - Application Hint "Management of DSCC4 on-chip FIFO resources".
  24. * - Errata sheet DS5 (courtesy of Michael Skerritt).
  25. * Jens David has built an adapter based on the same chipset. Take a look
  26. * at http://www.afthd.tu-darmstadt.de/~dg1kjd/pciscc4 for a specific
  27. * driver.
  28. * Sample code (2 revisions) is available at Infineon.
  29. *
  30. * II. Board-specific settings
  31. *
  32. * Pcisync can transmit some clock signal to the outside world on the
  33. * *first two* ports provided you put a quartz and a line driver on it and
  34. * remove the jumpers. The operation is described on Etinc web site. If you
  35. * go DCE on these ports, don't forget to use an adequate cable.
  36. *
  37. * Sharing of the PCI interrupt line for this board is possible.
  38. *
  39. * III. Driver operation
  40. *
  41. * The rx/tx operations are based on a linked list of descriptors. The driver
  42. * doesn't use HOLD mode any more. HOLD mode is definitely buggy and the more
  43. * I tried to fix it, the more it started to look like (convoluted) software
  44. * mutation of LxDA method. Errata sheet DS5 suggests to use LxDA: consider
  45. * this a rfc2119 MUST.
  46. *
  47. * Tx direction
  48. * When the tx ring is full, the xmit routine issues a call to netdev_stop.
  49. * The device is supposed to be enabled again during an ALLS irq (we could
  50. * use HI but as it's easy to lose events, it's fscked).
  51. *
  52. * Rx direction
  53. * The received frames aren't supposed to span over multiple receiving areas.
  54. * I may implement it some day but it isn't the highest ranked item.
  55. *
  56. * IV. Notes
  57. * The current error (XDU, RFO) recovery code is untested.
  58. * So far, RDO takes his RX channel down and the right sequence to enable it
  59. * again is still a mistery. If RDO happens, plan a reboot. More details
  60. * in the code (NB: as this happens, TX still works).
  61. * Don't mess the cables during operation, especially on DTE ports. I don't
  62. * suggest it for DCE either but at least one can get some messages instead
  63. * of a complete instant freeze.
  64. * Tests are done on Rev. 20 of the silicium. The RDO handling changes with
  65. * the documentation/chipset releases.
  66. *
  67. * TODO:
  68. * - test X25.
  69. * - use polling at high irq/s,
  70. * - performance analysis,
  71. * - endianness.
  72. *
  73. * 2001/12/10 Daniela Squassoni <daniela@cyclades.com>
  74. * - Contribution to support the new generic HDLC layer.
  75. *
  76. * 2002/01 Ueimor
  77. * - old style interface removal
  78. * - dscc4_release_ring fix (related to DMA mapping)
  79. * - hard_start_xmit fix (hint: TxSizeMax)
  80. * - misc crapectomy.
  81. */
  82. #include <linux/module.h>
  83. #include <linux/sched.h>
  84. #include <linux/types.h>
  85. #include <linux/errno.h>
  86. #include <linux/list.h>
  87. #include <linux/ioport.h>
  88. #include <linux/pci.h>
  89. #include <linux/kernel.h>
  90. #include <linux/mm.h>
  91. #include <asm/system.h>
  92. #include <asm/cache.h>
  93. #include <asm/byteorder.h>
  94. #include <asm/uaccess.h>
  95. #include <asm/io.h>
  96. #include <asm/irq.h>
  97. #include <linux/init.h>
  98. #include <linux/string.h>
  99. #include <linux/if_arp.h>
  100. #include <linux/netdevice.h>
  101. #include <linux/skbuff.h>
  102. #include <linux/delay.h>
  103. #include <linux/hdlc.h>
  104. #include <linux/mutex.h>
  105. /* Version */
  106. static const char version[] = "$Id: dscc4.c,v 1.173 2003/09/20 23:55:34 romieu Exp $ for Linux\n";
  107. static int debug;
  108. static int quartz;
  109. #ifdef CONFIG_DSCC4_PCI_RST
  110. static DEFINE_MUTEX(dscc4_mutex);
  111. static u32 dscc4_pci_config_store[16];
  112. #endif
  113. #define DRV_NAME "dscc4"
  114. #undef DSCC4_POLLING
  115. /* Module parameters */
  116. MODULE_AUTHOR("Maintainer: Francois Romieu <romieu@cogenit.fr>");
  117. MODULE_DESCRIPTION("Siemens PEB20534 PCI Controler");
  118. MODULE_LICENSE("GPL");
  119. module_param(debug, int, 0);
  120. MODULE_PARM_DESC(debug,"Enable/disable extra messages");
  121. module_param(quartz, int, 0);
  122. MODULE_PARM_DESC(quartz,"If present, on-board quartz frequency (Hz)");
  123. /* Structures */
  124. struct thingie {
  125. int define;
  126. u32 bits;
  127. };
  128. struct TxFD {
  129. __le32 state;
  130. __le32 next;
  131. __le32 data;
  132. __le32 complete;
  133. u32 jiffies; /* Allows sizeof(TxFD) == sizeof(RxFD) + extra hack */
  134. /* FWIW, datasheet calls that "dummy" and says that card
  135. * never looks at it; neither does the driver */
  136. };
  137. struct RxFD {
  138. __le32 state1;
  139. __le32 next;
  140. __le32 data;
  141. __le32 state2;
  142. __le32 end;
  143. };
  144. #define DUMMY_SKB_SIZE 64
  145. #define TX_LOW 8
  146. #define TX_RING_SIZE 32
  147. #define RX_RING_SIZE 32
  148. #define TX_TOTAL_SIZE TX_RING_SIZE*sizeof(struct TxFD)
  149. #define RX_TOTAL_SIZE RX_RING_SIZE*sizeof(struct RxFD)
  150. #define IRQ_RING_SIZE 64 /* Keep it a multiple of 32 */
  151. #define TX_TIMEOUT (HZ/10)
  152. #define DSCC4_HZ_MAX 33000000
  153. #define BRR_DIVIDER_MAX 64*0x00004000 /* Cf errata DS5 p.10 */
  154. #define dev_per_card 4
  155. #define SCC_REGISTERS_MAX 23 /* Cf errata DS5 p.4 */
  156. #define SOURCE_ID(flags) (((flags) >> 28) & 0x03)
  157. #define TO_SIZE(state) (((state) >> 16) & 0x1fff)
  158. /*
  159. * Given the operating range of Linux HDLC, the 2 defines below could be
  160. * made simpler. However they are a fine reminder for the limitations of
  161. * the driver: it's better to stay < TxSizeMax and < RxSizeMax.
  162. */
  163. #define TO_STATE_TX(len) cpu_to_le32(((len) & TxSizeMax) << 16)
  164. #define TO_STATE_RX(len) cpu_to_le32((RX_MAX(len) % RxSizeMax) << 16)
  165. #define RX_MAX(len) ((((len) >> 5) + 1) << 5) /* Cf RLCR */
  166. #define SCC_REG_START(dpriv) (SCC_START+(dpriv->dev_id)*SCC_OFFSET)
  167. struct dscc4_pci_priv {
  168. __le32 *iqcfg;
  169. int cfg_cur;
  170. spinlock_t lock;
  171. struct pci_dev *pdev;
  172. struct dscc4_dev_priv *root;
  173. dma_addr_t iqcfg_dma;
  174. u32 xtal_hz;
  175. };
  176. struct dscc4_dev_priv {
  177. struct sk_buff *rx_skbuff[RX_RING_SIZE];
  178. struct sk_buff *tx_skbuff[TX_RING_SIZE];
  179. struct RxFD *rx_fd;
  180. struct TxFD *tx_fd;
  181. __le32 *iqrx;
  182. __le32 *iqtx;
  183. /* FIXME: check all the volatile are required */
  184. volatile u32 tx_current;
  185. u32 rx_current;
  186. u32 iqtx_current;
  187. u32 iqrx_current;
  188. volatile u32 tx_dirty;
  189. volatile u32 ltda;
  190. u32 rx_dirty;
  191. u32 lrda;
  192. dma_addr_t tx_fd_dma;
  193. dma_addr_t rx_fd_dma;
  194. dma_addr_t iqtx_dma;
  195. dma_addr_t iqrx_dma;
  196. u32 scc_regs[SCC_REGISTERS_MAX]; /* Cf errata DS5 p.4 */
  197. struct timer_list timer;
  198. struct dscc4_pci_priv *pci_priv;
  199. spinlock_t lock;
  200. int dev_id;
  201. volatile u32 flags;
  202. u32 timer_help;
  203. unsigned short encoding;
  204. unsigned short parity;
  205. struct net_device *dev;
  206. sync_serial_settings settings;
  207. void __iomem *base_addr;
  208. u32 __pad __attribute__ ((aligned (4)));
  209. };
  210. /* GLOBAL registers definitions */
  211. #define GCMDR 0x00
  212. #define GSTAR 0x04
  213. #define GMODE 0x08
  214. #define IQLENR0 0x0C
  215. #define IQLENR1 0x10
  216. #define IQRX0 0x14
  217. #define IQTX0 0x24
  218. #define IQCFG 0x3c
  219. #define FIFOCR1 0x44
  220. #define FIFOCR2 0x48
  221. #define FIFOCR3 0x4c
  222. #define FIFOCR4 0x34
  223. #define CH0CFG 0x50
  224. #define CH0BRDA 0x54
  225. #define CH0BTDA 0x58
  226. #define CH0FRDA 0x98
  227. #define CH0FTDA 0xb0
  228. #define CH0LRDA 0xc8
  229. #define CH0LTDA 0xe0
  230. /* SCC registers definitions */
  231. #define SCC_START 0x0100
  232. #define SCC_OFFSET 0x80
  233. #define CMDR 0x00
  234. #define STAR 0x04
  235. #define CCR0 0x08
  236. #define CCR1 0x0c
  237. #define CCR2 0x10
  238. #define BRR 0x2C
  239. #define RLCR 0x40
  240. #define IMR 0x54
  241. #define ISR 0x58
  242. #define GPDIR 0x0400
  243. #define GPDATA 0x0404
  244. #define GPIM 0x0408
  245. /* Bit masks */
  246. #define EncodingMask 0x00700000
  247. #define CrcMask 0x00000003
  248. #define IntRxScc0 0x10000000
  249. #define IntTxScc0 0x01000000
  250. #define TxPollCmd 0x00000400
  251. #define RxActivate 0x08000000
  252. #define MTFi 0x04000000
  253. #define Rdr 0x00400000
  254. #define Rdt 0x00200000
  255. #define Idr 0x00100000
  256. #define Idt 0x00080000
  257. #define TxSccRes 0x01000000
  258. #define RxSccRes 0x00010000
  259. #define TxSizeMax 0x1fff /* Datasheet DS1 - 11.1.1.1 */
  260. #define RxSizeMax 0x1ffc /* Datasheet DS1 - 11.1.2.1 */
  261. #define Ccr0ClockMask 0x0000003f
  262. #define Ccr1LoopMask 0x00000200
  263. #define IsrMask 0x000fffff
  264. #define BrrExpMask 0x00000f00
  265. #define BrrMultMask 0x0000003f
  266. #define EncodingMask 0x00700000
  267. #define Hold cpu_to_le32(0x40000000)
  268. #define SccBusy 0x10000000
  269. #define PowerUp 0x80000000
  270. #define Vis 0x00001000
  271. #define FrameOk (FrameVfr | FrameCrc)
  272. #define FrameVfr 0x80
  273. #define FrameRdo 0x40
  274. #define FrameCrc 0x20
  275. #define FrameRab 0x10
  276. #define FrameAborted cpu_to_le32(0x00000200)
  277. #define FrameEnd cpu_to_le32(0x80000000)
  278. #define DataComplete cpu_to_le32(0x40000000)
  279. #define LengthCheck 0x00008000
  280. #define SccEvt 0x02000000
  281. #define NoAck 0x00000200
  282. #define Action 0x00000001
  283. #define HiDesc cpu_to_le32(0x20000000)
  284. /* SCC events */
  285. #define RxEvt 0xf0000000
  286. #define TxEvt 0x0f000000
  287. #define Alls 0x00040000
  288. #define Xdu 0x00010000
  289. #define Cts 0x00004000
  290. #define Xmr 0x00002000
  291. #define Xpr 0x00001000
  292. #define Rdo 0x00000080
  293. #define Rfs 0x00000040
  294. #define Cd 0x00000004
  295. #define Rfo 0x00000002
  296. #define Flex 0x00000001
  297. /* DMA core events */
  298. #define Cfg 0x00200000
  299. #define Hi 0x00040000
  300. #define Fi 0x00020000
  301. #define Err 0x00010000
  302. #define Arf 0x00000002
  303. #define ArAck 0x00000001
  304. /* State flags */
  305. #define Ready 0x00000000
  306. #define NeedIDR 0x00000001
  307. #define NeedIDT 0x00000002
  308. #define RdoSet 0x00000004
  309. #define FakeReset 0x00000008
  310. /* Don't mask RDO. Ever. */
  311. #ifdef DSCC4_POLLING
  312. #define EventsMask 0xfffeef7f
  313. #else
  314. #define EventsMask 0xfffa8f7a
  315. #endif
  316. /* Functions prototypes */
  317. static void dscc4_rx_irq(struct dscc4_pci_priv *, struct dscc4_dev_priv *);
  318. static void dscc4_tx_irq(struct dscc4_pci_priv *, struct dscc4_dev_priv *);
  319. static int dscc4_found1(struct pci_dev *, void __iomem *ioaddr);
  320. static int dscc4_init_one(struct pci_dev *, const struct pci_device_id *ent);
  321. static int dscc4_open(struct net_device *);
  322. static netdev_tx_t dscc4_start_xmit(struct sk_buff *,
  323. struct net_device *);
  324. static int dscc4_close(struct net_device *);
  325. static int dscc4_ioctl(struct net_device *dev, struct ifreq *rq, int cmd);
  326. static int dscc4_init_ring(struct net_device *);
  327. static void dscc4_release_ring(struct dscc4_dev_priv *);
  328. static void dscc4_timer(unsigned long);
  329. static void dscc4_tx_timeout(struct net_device *);
  330. static irqreturn_t dscc4_irq(int irq, void *dev_id);
  331. static int dscc4_hdlc_attach(struct net_device *, unsigned short, unsigned short);
  332. static int dscc4_set_iface(struct dscc4_dev_priv *, struct net_device *);
  333. #ifdef DSCC4_POLLING
  334. static int dscc4_tx_poll(struct dscc4_dev_priv *, struct net_device *);
  335. #endif
  336. static inline struct dscc4_dev_priv *dscc4_priv(struct net_device *dev)
  337. {
  338. return dev_to_hdlc(dev)->priv;
  339. }
  340. static inline struct net_device *dscc4_to_dev(struct dscc4_dev_priv *p)
  341. {
  342. return p->dev;
  343. }
  344. static void scc_patchl(u32 mask, u32 value, struct dscc4_dev_priv *dpriv,
  345. struct net_device *dev, int offset)
  346. {
  347. u32 state;
  348. /* Cf scc_writel for concern regarding thread-safety */
  349. state = dpriv->scc_regs[offset >> 2];
  350. state &= ~mask;
  351. state |= value;
  352. dpriv->scc_regs[offset >> 2] = state;
  353. writel(state, dpriv->base_addr + SCC_REG_START(dpriv) + offset);
  354. }
  355. static void scc_writel(u32 bits, struct dscc4_dev_priv *dpriv,
  356. struct net_device *dev, int offset)
  357. {
  358. /*
  359. * Thread-UNsafe.
  360. * As of 2002/02/16, there are no thread racing for access.
  361. */
  362. dpriv->scc_regs[offset >> 2] = bits;
  363. writel(bits, dpriv->base_addr + SCC_REG_START(dpriv) + offset);
  364. }
  365. static inline u32 scc_readl(struct dscc4_dev_priv *dpriv, int offset)
  366. {
  367. return dpriv->scc_regs[offset >> 2];
  368. }
  369. static u32 scc_readl_star(struct dscc4_dev_priv *dpriv, struct net_device *dev)
  370. {
  371. /* Cf errata DS5 p.4 */
  372. readl(dpriv->base_addr + SCC_REG_START(dpriv) + STAR);
  373. return readl(dpriv->base_addr + SCC_REG_START(dpriv) + STAR);
  374. }
  375. static inline void dscc4_do_tx(struct dscc4_dev_priv *dpriv,
  376. struct net_device *dev)
  377. {
  378. dpriv->ltda = dpriv->tx_fd_dma +
  379. ((dpriv->tx_current-1)%TX_RING_SIZE)*sizeof(struct TxFD);
  380. writel(dpriv->ltda, dpriv->base_addr + CH0LTDA + dpriv->dev_id*4);
  381. /* Flush posted writes *NOW* */
  382. readl(dpriv->base_addr + CH0LTDA + dpriv->dev_id*4);
  383. }
  384. static inline void dscc4_rx_update(struct dscc4_dev_priv *dpriv,
  385. struct net_device *dev)
  386. {
  387. dpriv->lrda = dpriv->rx_fd_dma +
  388. ((dpriv->rx_dirty - 1)%RX_RING_SIZE)*sizeof(struct RxFD);
  389. writel(dpriv->lrda, dpriv->base_addr + CH0LRDA + dpriv->dev_id*4);
  390. }
  391. static inline unsigned int dscc4_tx_done(struct dscc4_dev_priv *dpriv)
  392. {
  393. return dpriv->tx_current == dpriv->tx_dirty;
  394. }
  395. static inline unsigned int dscc4_tx_quiescent(struct dscc4_dev_priv *dpriv,
  396. struct net_device *dev)
  397. {
  398. return readl(dpriv->base_addr + CH0FTDA + dpriv->dev_id*4) == dpriv->ltda;
  399. }
  400. static int state_check(u32 state, struct dscc4_dev_priv *dpriv,
  401. struct net_device *dev, const char *msg)
  402. {
  403. int ret = 0;
  404. if (debug > 1) {
  405. if (SOURCE_ID(state) != dpriv->dev_id) {
  406. printk(KERN_DEBUG "%s (%s): Source Id=%d, state=%08x\n",
  407. dev->name, msg, SOURCE_ID(state), state );
  408. ret = -1;
  409. }
  410. if (state & 0x0df80c00) {
  411. printk(KERN_DEBUG "%s (%s): state=%08x (UFO alert)\n",
  412. dev->name, msg, state);
  413. ret = -1;
  414. }
  415. }
  416. return ret;
  417. }
  418. static void dscc4_tx_print(struct net_device *dev,
  419. struct dscc4_dev_priv *dpriv,
  420. char *msg)
  421. {
  422. printk(KERN_DEBUG "%s: tx_current=%02d tx_dirty=%02d (%s)\n",
  423. dev->name, dpriv->tx_current, dpriv->tx_dirty, msg);
  424. }
  425. static void dscc4_release_ring(struct dscc4_dev_priv *dpriv)
  426. {
  427. struct pci_dev *pdev = dpriv->pci_priv->pdev;
  428. struct TxFD *tx_fd = dpriv->tx_fd;
  429. struct RxFD *rx_fd = dpriv->rx_fd;
  430. struct sk_buff **skbuff;
  431. int i;
  432. pci_free_consistent(pdev, TX_TOTAL_SIZE, tx_fd, dpriv->tx_fd_dma);
  433. pci_free_consistent(pdev, RX_TOTAL_SIZE, rx_fd, dpriv->rx_fd_dma);
  434. skbuff = dpriv->tx_skbuff;
  435. for (i = 0; i < TX_RING_SIZE; i++) {
  436. if (*skbuff) {
  437. pci_unmap_single(pdev, le32_to_cpu(tx_fd->data),
  438. (*skbuff)->len, PCI_DMA_TODEVICE);
  439. dev_kfree_skb(*skbuff);
  440. }
  441. skbuff++;
  442. tx_fd++;
  443. }
  444. skbuff = dpriv->rx_skbuff;
  445. for (i = 0; i < RX_RING_SIZE; i++) {
  446. if (*skbuff) {
  447. pci_unmap_single(pdev, le32_to_cpu(rx_fd->data),
  448. RX_MAX(HDLC_MAX_MRU), PCI_DMA_FROMDEVICE);
  449. dev_kfree_skb(*skbuff);
  450. }
  451. skbuff++;
  452. rx_fd++;
  453. }
  454. }
  455. static inline int try_get_rx_skb(struct dscc4_dev_priv *dpriv,
  456. struct net_device *dev)
  457. {
  458. unsigned int dirty = dpriv->rx_dirty%RX_RING_SIZE;
  459. struct RxFD *rx_fd = dpriv->rx_fd + dirty;
  460. const int len = RX_MAX(HDLC_MAX_MRU);
  461. struct sk_buff *skb;
  462. int ret = 0;
  463. skb = dev_alloc_skb(len);
  464. dpriv->rx_skbuff[dirty] = skb;
  465. if (skb) {
  466. skb->protocol = hdlc_type_trans(skb, dev);
  467. rx_fd->data = cpu_to_le32(pci_map_single(dpriv->pci_priv->pdev,
  468. skb->data, len, PCI_DMA_FROMDEVICE));
  469. } else {
  470. rx_fd->data = 0;
  471. ret = -1;
  472. }
  473. return ret;
  474. }
  475. /*
  476. * IRQ/thread/whatever safe
  477. */
  478. static int dscc4_wait_ack_cec(struct dscc4_dev_priv *dpriv,
  479. struct net_device *dev, char *msg)
  480. {
  481. s8 i = 0;
  482. do {
  483. if (!(scc_readl_star(dpriv, dev) & SccBusy)) {
  484. printk(KERN_DEBUG "%s: %s ack (%d try)\n", dev->name,
  485. msg, i);
  486. goto done;
  487. }
  488. schedule_timeout_uninterruptible(10);
  489. rmb();
  490. } while (++i > 0);
  491. printk(KERN_ERR "%s: %s timeout\n", dev->name, msg);
  492. done:
  493. return (i >= 0) ? i : -EAGAIN;
  494. }
  495. static int dscc4_do_action(struct net_device *dev, char *msg)
  496. {
  497. void __iomem *ioaddr = dscc4_priv(dev)->base_addr;
  498. s16 i = 0;
  499. writel(Action, ioaddr + GCMDR);
  500. ioaddr += GSTAR;
  501. do {
  502. u32 state = readl(ioaddr);
  503. if (state & ArAck) {
  504. printk(KERN_DEBUG "%s: %s ack\n", dev->name, msg);
  505. writel(ArAck, ioaddr);
  506. goto done;
  507. } else if (state & Arf) {
  508. printk(KERN_ERR "%s: %s failed\n", dev->name, msg);
  509. writel(Arf, ioaddr);
  510. i = -1;
  511. goto done;
  512. }
  513. rmb();
  514. } while (++i > 0);
  515. printk(KERN_ERR "%s: %s timeout\n", dev->name, msg);
  516. done:
  517. return i;
  518. }
  519. static inline int dscc4_xpr_ack(struct dscc4_dev_priv *dpriv)
  520. {
  521. int cur = dpriv->iqtx_current%IRQ_RING_SIZE;
  522. s8 i = 0;
  523. do {
  524. if (!(dpriv->flags & (NeedIDR | NeedIDT)) ||
  525. (dpriv->iqtx[cur] & cpu_to_le32(Xpr)))
  526. break;
  527. smp_rmb();
  528. schedule_timeout_uninterruptible(10);
  529. } while (++i > 0);
  530. return (i >= 0 ) ? i : -EAGAIN;
  531. }
  532. #if 0 /* dscc4_{rx/tx}_reset are both unreliable - more tweak needed */
  533. static void dscc4_rx_reset(struct dscc4_dev_priv *dpriv, struct net_device *dev)
  534. {
  535. unsigned long flags;
  536. spin_lock_irqsave(&dpriv->pci_priv->lock, flags);
  537. /* Cf errata DS5 p.6 */
  538. writel(0x00000000, dpriv->base_addr + CH0LRDA + dpriv->dev_id*4);
  539. scc_patchl(PowerUp, 0, dpriv, dev, CCR0);
  540. readl(dpriv->base_addr + CH0LRDA + dpriv->dev_id*4);
  541. writel(MTFi|Rdr, dpriv->base_addr + dpriv->dev_id*0x0c + CH0CFG);
  542. writel(Action, dpriv->base_addr + GCMDR);
  543. spin_unlock_irqrestore(&dpriv->pci_priv->lock, flags);
  544. }
  545. #endif
  546. #if 0
  547. static void dscc4_tx_reset(struct dscc4_dev_priv *dpriv, struct net_device *dev)
  548. {
  549. u16 i = 0;
  550. /* Cf errata DS5 p.7 */
  551. scc_patchl(PowerUp, 0, dpriv, dev, CCR0);
  552. scc_writel(0x00050000, dpriv, dev, CCR2);
  553. /*
  554. * Must be longer than the time required to fill the fifo.
  555. */
  556. while (!dscc4_tx_quiescent(dpriv, dev) && ++i) {
  557. udelay(1);
  558. wmb();
  559. }
  560. writel(MTFi|Rdt, dpriv->base_addr + dpriv->dev_id*0x0c + CH0CFG);
  561. if (dscc4_do_action(dev, "Rdt") < 0)
  562. printk(KERN_ERR "%s: Tx reset failed\n", dev->name);
  563. }
  564. #endif
  565. /* TODO: (ab)use this function to refill a completely depleted RX ring. */
  566. static inline void dscc4_rx_skb(struct dscc4_dev_priv *dpriv,
  567. struct net_device *dev)
  568. {
  569. struct RxFD *rx_fd = dpriv->rx_fd + dpriv->rx_current%RX_RING_SIZE;
  570. struct pci_dev *pdev = dpriv->pci_priv->pdev;
  571. struct sk_buff *skb;
  572. int pkt_len;
  573. skb = dpriv->rx_skbuff[dpriv->rx_current++%RX_RING_SIZE];
  574. if (!skb) {
  575. printk(KERN_DEBUG "%s: skb=0 (%s)\n", dev->name, __func__);
  576. goto refill;
  577. }
  578. pkt_len = TO_SIZE(le32_to_cpu(rx_fd->state2));
  579. pci_unmap_single(pdev, le32_to_cpu(rx_fd->data),
  580. RX_MAX(HDLC_MAX_MRU), PCI_DMA_FROMDEVICE);
  581. if ((skb->data[--pkt_len] & FrameOk) == FrameOk) {
  582. dev->stats.rx_packets++;
  583. dev->stats.rx_bytes += pkt_len;
  584. skb_put(skb, pkt_len);
  585. if (netif_running(dev))
  586. skb->protocol = hdlc_type_trans(skb, dev);
  587. netif_rx(skb);
  588. } else {
  589. if (skb->data[pkt_len] & FrameRdo)
  590. dev->stats.rx_fifo_errors++;
  591. else if (!(skb->data[pkt_len] & FrameCrc))
  592. dev->stats.rx_crc_errors++;
  593. else if ((skb->data[pkt_len] & (FrameVfr | FrameRab)) !=
  594. (FrameVfr | FrameRab))
  595. dev->stats.rx_length_errors++;
  596. dev->stats.rx_errors++;
  597. dev_kfree_skb_irq(skb);
  598. }
  599. refill:
  600. while ((dpriv->rx_dirty - dpriv->rx_current) % RX_RING_SIZE) {
  601. if (try_get_rx_skb(dpriv, dev) < 0)
  602. break;
  603. dpriv->rx_dirty++;
  604. }
  605. dscc4_rx_update(dpriv, dev);
  606. rx_fd->state2 = 0x00000000;
  607. rx_fd->end = cpu_to_le32(0xbabeface);
  608. }
  609. static void dscc4_free1(struct pci_dev *pdev)
  610. {
  611. struct dscc4_pci_priv *ppriv;
  612. struct dscc4_dev_priv *root;
  613. int i;
  614. ppriv = pci_get_drvdata(pdev);
  615. root = ppriv->root;
  616. for (i = 0; i < dev_per_card; i++)
  617. unregister_hdlc_device(dscc4_to_dev(root + i));
  618. pci_set_drvdata(pdev, NULL);
  619. for (i = 0; i < dev_per_card; i++)
  620. free_netdev(root[i].dev);
  621. kfree(root);
  622. kfree(ppriv);
  623. }
  624. static int __devinit dscc4_init_one(struct pci_dev *pdev,
  625. const struct pci_device_id *ent)
  626. {
  627. struct dscc4_pci_priv *priv;
  628. struct dscc4_dev_priv *dpriv;
  629. void __iomem *ioaddr;
  630. int i, rc;
  631. printk(KERN_DEBUG "%s", version);
  632. rc = pci_enable_device(pdev);
  633. if (rc < 0)
  634. goto out;
  635. rc = pci_request_region(pdev, 0, "registers");
  636. if (rc < 0) {
  637. printk(KERN_ERR "%s: can't reserve MMIO region (regs)\n",
  638. DRV_NAME);
  639. goto err_disable_0;
  640. }
  641. rc = pci_request_region(pdev, 1, "LBI interface");
  642. if (rc < 0) {
  643. printk(KERN_ERR "%s: can't reserve MMIO region (lbi)\n",
  644. DRV_NAME);
  645. goto err_free_mmio_region_1;
  646. }
  647. ioaddr = pci_ioremap_bar(pdev, 0);
  648. if (!ioaddr) {
  649. printk(KERN_ERR "%s: cannot remap MMIO region %llx @ %llx\n",
  650. DRV_NAME, (unsigned long long)pci_resource_len(pdev, 0),
  651. (unsigned long long)pci_resource_start(pdev, 0));
  652. rc = -EIO;
  653. goto err_free_mmio_regions_2;
  654. }
  655. printk(KERN_DEBUG "Siemens DSCC4, MMIO at %#llx (regs), %#llx (lbi), IRQ %d\n",
  656. (unsigned long long)pci_resource_start(pdev, 0),
  657. (unsigned long long)pci_resource_start(pdev, 1), pdev->irq);
  658. /* Cf errata DS5 p.2 */
  659. pci_write_config_byte(pdev, PCI_LATENCY_TIMER, 0xf8);
  660. pci_set_master(pdev);
  661. rc = dscc4_found1(pdev, ioaddr);
  662. if (rc < 0)
  663. goto err_iounmap_3;
  664. priv = pci_get_drvdata(pdev);
  665. rc = request_irq(pdev->irq, dscc4_irq, IRQF_SHARED, DRV_NAME, priv->root);
  666. if (rc < 0) {
  667. printk(KERN_WARNING "%s: IRQ %d busy\n", DRV_NAME, pdev->irq);
  668. goto err_release_4;
  669. }
  670. /* power up/little endian/dma core controlled via lrda/ltda */
  671. writel(0x00000001, ioaddr + GMODE);
  672. /* Shared interrupt queue */
  673. {
  674. u32 bits;
  675. bits = (IRQ_RING_SIZE >> 5) - 1;
  676. bits |= bits << 4;
  677. bits |= bits << 8;
  678. bits |= bits << 16;
  679. writel(bits, ioaddr + IQLENR0);
  680. }
  681. /* Global interrupt queue */
  682. writel((u32)(((IRQ_RING_SIZE >> 5) - 1) << 20), ioaddr + IQLENR1);
  683. priv->iqcfg = (__le32 *) pci_alloc_consistent(pdev,
  684. IRQ_RING_SIZE*sizeof(__le32), &priv->iqcfg_dma);
  685. if (!priv->iqcfg)
  686. goto err_free_irq_5;
  687. writel(priv->iqcfg_dma, ioaddr + IQCFG);
  688. rc = -ENOMEM;
  689. /*
  690. * SCC 0-3 private rx/tx irq structures
  691. * IQRX/TXi needs to be set soon. Learned it the hard way...
  692. */
  693. for (i = 0; i < dev_per_card; i++) {
  694. dpriv = priv->root + i;
  695. dpriv->iqtx = (__le32 *) pci_alloc_consistent(pdev,
  696. IRQ_RING_SIZE*sizeof(u32), &dpriv->iqtx_dma);
  697. if (!dpriv->iqtx)
  698. goto err_free_iqtx_6;
  699. writel(dpriv->iqtx_dma, ioaddr + IQTX0 + i*4);
  700. }
  701. for (i = 0; i < dev_per_card; i++) {
  702. dpriv = priv->root + i;
  703. dpriv->iqrx = (__le32 *) pci_alloc_consistent(pdev,
  704. IRQ_RING_SIZE*sizeof(u32), &dpriv->iqrx_dma);
  705. if (!dpriv->iqrx)
  706. goto err_free_iqrx_7;
  707. writel(dpriv->iqrx_dma, ioaddr + IQRX0 + i*4);
  708. }
  709. /* Cf application hint. Beware of hard-lock condition on threshold. */
  710. writel(0x42104000, ioaddr + FIFOCR1);
  711. //writel(0x9ce69800, ioaddr + FIFOCR2);
  712. writel(0xdef6d800, ioaddr + FIFOCR2);
  713. //writel(0x11111111, ioaddr + FIFOCR4);
  714. writel(0x18181818, ioaddr + FIFOCR4);
  715. // FIXME: should depend on the chipset revision
  716. writel(0x0000000e, ioaddr + FIFOCR3);
  717. writel(0xff200001, ioaddr + GCMDR);
  718. rc = 0;
  719. out:
  720. return rc;
  721. err_free_iqrx_7:
  722. while (--i >= 0) {
  723. dpriv = priv->root + i;
  724. pci_free_consistent(pdev, IRQ_RING_SIZE*sizeof(u32),
  725. dpriv->iqrx, dpriv->iqrx_dma);
  726. }
  727. i = dev_per_card;
  728. err_free_iqtx_6:
  729. while (--i >= 0) {
  730. dpriv = priv->root + i;
  731. pci_free_consistent(pdev, IRQ_RING_SIZE*sizeof(u32),
  732. dpriv->iqtx, dpriv->iqtx_dma);
  733. }
  734. pci_free_consistent(pdev, IRQ_RING_SIZE*sizeof(u32), priv->iqcfg,
  735. priv->iqcfg_dma);
  736. err_free_irq_5:
  737. free_irq(pdev->irq, priv->root);
  738. err_release_4:
  739. dscc4_free1(pdev);
  740. err_iounmap_3:
  741. iounmap (ioaddr);
  742. err_free_mmio_regions_2:
  743. pci_release_region(pdev, 1);
  744. err_free_mmio_region_1:
  745. pci_release_region(pdev, 0);
  746. err_disable_0:
  747. pci_disable_device(pdev);
  748. goto out;
  749. };
  750. /*
  751. * Let's hope the default values are decent enough to protect my
  752. * feet from the user's gun - Ueimor
  753. */
  754. static void dscc4_init_registers(struct dscc4_dev_priv *dpriv,
  755. struct net_device *dev)
  756. {
  757. /* No interrupts, SCC core disabled. Let's relax */
  758. scc_writel(0x00000000, dpriv, dev, CCR0);
  759. scc_writel(LengthCheck | (HDLC_MAX_MRU >> 5), dpriv, dev, RLCR);
  760. /*
  761. * No address recognition/crc-CCITT/cts enabled
  762. * Shared flags transmission disabled - cf errata DS5 p.11
  763. * Carrier detect disabled - cf errata p.14
  764. * FIXME: carrier detection/polarity may be handled more gracefully.
  765. */
  766. scc_writel(0x02408000, dpriv, dev, CCR1);
  767. /* crc not forwarded - Cf errata DS5 p.11 */
  768. scc_writel(0x00050008 & ~RxActivate, dpriv, dev, CCR2);
  769. // crc forwarded
  770. //scc_writel(0x00250008 & ~RxActivate, dpriv, dev, CCR2);
  771. }
  772. static inline int dscc4_set_quartz(struct dscc4_dev_priv *dpriv, int hz)
  773. {
  774. int ret = 0;
  775. if ((hz < 0) || (hz > DSCC4_HZ_MAX))
  776. ret = -EOPNOTSUPP;
  777. else
  778. dpriv->pci_priv->xtal_hz = hz;
  779. return ret;
  780. }
  781. static const struct net_device_ops dscc4_ops = {
  782. .ndo_open = dscc4_open,
  783. .ndo_stop = dscc4_close,
  784. .ndo_change_mtu = hdlc_change_mtu,
  785. .ndo_start_xmit = hdlc_start_xmit,
  786. .ndo_do_ioctl = dscc4_ioctl,
  787. .ndo_tx_timeout = dscc4_tx_timeout,
  788. };
  789. static int dscc4_found1(struct pci_dev *pdev, void __iomem *ioaddr)
  790. {
  791. struct dscc4_pci_priv *ppriv;
  792. struct dscc4_dev_priv *root;
  793. int i, ret = -ENOMEM;
  794. root = kcalloc(dev_per_card, sizeof(*root), GFP_KERNEL);
  795. if (!root) {
  796. printk(KERN_ERR "%s: can't allocate data\n", DRV_NAME);
  797. goto err_out;
  798. }
  799. for (i = 0; i < dev_per_card; i++) {
  800. root[i].dev = alloc_hdlcdev(root + i);
  801. if (!root[i].dev)
  802. goto err_free_dev;
  803. }
  804. ppriv = kzalloc(sizeof(*ppriv), GFP_KERNEL);
  805. if (!ppriv) {
  806. printk(KERN_ERR "%s: can't allocate private data\n", DRV_NAME);
  807. goto err_free_dev;
  808. }
  809. ppriv->root = root;
  810. spin_lock_init(&ppriv->lock);
  811. for (i = 0; i < dev_per_card; i++) {
  812. struct dscc4_dev_priv *dpriv = root + i;
  813. struct net_device *d = dscc4_to_dev(dpriv);
  814. hdlc_device *hdlc = dev_to_hdlc(d);
  815. d->base_addr = (unsigned long)ioaddr;
  816. d->irq = pdev->irq;
  817. d->netdev_ops = &dscc4_ops;
  818. d->watchdog_timeo = TX_TIMEOUT;
  819. SET_NETDEV_DEV(d, &pdev->dev);
  820. dpriv->dev_id = i;
  821. dpriv->pci_priv = ppriv;
  822. dpriv->base_addr = ioaddr;
  823. spin_lock_init(&dpriv->lock);
  824. hdlc->xmit = dscc4_start_xmit;
  825. hdlc->attach = dscc4_hdlc_attach;
  826. dscc4_init_registers(dpriv, d);
  827. dpriv->parity = PARITY_CRC16_PR0_CCITT;
  828. dpriv->encoding = ENCODING_NRZ;
  829. ret = dscc4_init_ring(d);
  830. if (ret < 0)
  831. goto err_unregister;
  832. ret = register_hdlc_device(d);
  833. if (ret < 0) {
  834. printk(KERN_ERR "%s: unable to register\n", DRV_NAME);
  835. dscc4_release_ring(dpriv);
  836. goto err_unregister;
  837. }
  838. }
  839. ret = dscc4_set_quartz(root, quartz);
  840. if (ret < 0)
  841. goto err_unregister;
  842. pci_set_drvdata(pdev, ppriv);
  843. return ret;
  844. err_unregister:
  845. while (i-- > 0) {
  846. dscc4_release_ring(root + i);
  847. unregister_hdlc_device(dscc4_to_dev(root + i));
  848. }
  849. kfree(ppriv);
  850. i = dev_per_card;
  851. err_free_dev:
  852. while (i-- > 0)
  853. free_netdev(root[i].dev);
  854. kfree(root);
  855. err_out:
  856. return ret;
  857. };
  858. /* FIXME: get rid of the unneeded code */
  859. static void dscc4_timer(unsigned long data)
  860. {
  861. struct net_device *dev = (struct net_device *)data;
  862. struct dscc4_dev_priv *dpriv = dscc4_priv(dev);
  863. // struct dscc4_pci_priv *ppriv;
  864. goto done;
  865. done:
  866. dpriv->timer.expires = jiffies + TX_TIMEOUT;
  867. add_timer(&dpriv->timer);
  868. }
  869. static void dscc4_tx_timeout(struct net_device *dev)
  870. {
  871. /* FIXME: something is missing there */
  872. }
  873. static int dscc4_loopback_check(struct dscc4_dev_priv *dpriv)
  874. {
  875. sync_serial_settings *settings = &dpriv->settings;
  876. if (settings->loopback && (settings->clock_type != CLOCK_INT)) {
  877. struct net_device *dev = dscc4_to_dev(dpriv);
  878. printk(KERN_INFO "%s: loopback requires clock\n", dev->name);
  879. return -1;
  880. }
  881. return 0;
  882. }
  883. #ifdef CONFIG_DSCC4_PCI_RST
  884. /*
  885. * Some DSCC4-based cards wires the GPIO port and the PCI #RST pin together
  886. * so as to provide a safe way to reset the asic while not the whole machine
  887. * rebooting.
  888. *
  889. * This code doesn't need to be efficient. Keep It Simple
  890. */
  891. static void dscc4_pci_reset(struct pci_dev *pdev, void __iomem *ioaddr)
  892. {
  893. int i;
  894. mutex_lock(&dscc4_mutex);
  895. for (i = 0; i < 16; i++)
  896. pci_read_config_dword(pdev, i << 2, dscc4_pci_config_store + i);
  897. /* Maximal LBI clock divider (who cares ?) and whole GPIO range. */
  898. writel(0x001c0000, ioaddr + GMODE);
  899. /* Configure GPIO port as output */
  900. writel(0x0000ffff, ioaddr + GPDIR);
  901. /* Disable interruption */
  902. writel(0x0000ffff, ioaddr + GPIM);
  903. writel(0x0000ffff, ioaddr + GPDATA);
  904. writel(0x00000000, ioaddr + GPDATA);
  905. /* Flush posted writes */
  906. readl(ioaddr + GSTAR);
  907. schedule_timeout_uninterruptible(10);
  908. for (i = 0; i < 16; i++)
  909. pci_write_config_dword(pdev, i << 2, dscc4_pci_config_store[i]);
  910. mutex_unlock(&dscc4_mutex);
  911. }
  912. #else
  913. #define dscc4_pci_reset(pdev,ioaddr) do {} while (0)
  914. #endif /* CONFIG_DSCC4_PCI_RST */
  915. static int dscc4_open(struct net_device *dev)
  916. {
  917. struct dscc4_dev_priv *dpriv = dscc4_priv(dev);
  918. struct dscc4_pci_priv *ppriv;
  919. int ret = -EAGAIN;
  920. if ((dscc4_loopback_check(dpriv) < 0))
  921. goto err;
  922. if ((ret = hdlc_open(dev)))
  923. goto err;
  924. ppriv = dpriv->pci_priv;
  925. /*
  926. * Due to various bugs, there is no way to reliably reset a
  927. * specific port (manufacturer's dependant special PCI #RST wiring
  928. * apart: it affects all ports). Thus the device goes in the best
  929. * silent mode possible at dscc4_close() time and simply claims to
  930. * be up if it's opened again. It still isn't possible to change
  931. * the HDLC configuration without rebooting but at least the ports
  932. * can be up/down ifconfig'ed without killing the host.
  933. */
  934. if (dpriv->flags & FakeReset) {
  935. dpriv->flags &= ~FakeReset;
  936. scc_patchl(0, PowerUp, dpriv, dev, CCR0);
  937. scc_patchl(0, 0x00050000, dpriv, dev, CCR2);
  938. scc_writel(EventsMask, dpriv, dev, IMR);
  939. printk(KERN_INFO "%s: up again.\n", dev->name);
  940. goto done;
  941. }
  942. /* IDT+IDR during XPR */
  943. dpriv->flags = NeedIDR | NeedIDT;
  944. scc_patchl(0, PowerUp | Vis, dpriv, dev, CCR0);
  945. /*
  946. * The following is a bit paranoid...
  947. *
  948. * NB: the datasheet "...CEC will stay active if the SCC is in
  949. * power-down mode or..." and CCR2.RAC = 1 are two different
  950. * situations.
  951. */
  952. if (scc_readl_star(dpriv, dev) & SccBusy) {
  953. printk(KERN_ERR "%s busy. Try later\n", dev->name);
  954. ret = -EAGAIN;
  955. goto err_out;
  956. } else
  957. printk(KERN_INFO "%s: available. Good\n", dev->name);
  958. scc_writel(EventsMask, dpriv, dev, IMR);
  959. /* Posted write is flushed in the wait_ack loop */
  960. scc_writel(TxSccRes | RxSccRes, dpriv, dev, CMDR);
  961. if ((ret = dscc4_wait_ack_cec(dpriv, dev, "Cec")) < 0)
  962. goto err_disable_scc_events;
  963. /*
  964. * I would expect XPR near CE completion (before ? after ?).
  965. * At worst, this code won't see a late XPR and people
  966. * will have to re-issue an ifconfig (this is harmless).
  967. * WARNING, a really missing XPR usually means a hardware
  968. * reset is needed. Suggestions anyone ?
  969. */
  970. if ((ret = dscc4_xpr_ack(dpriv)) < 0) {
  971. printk(KERN_ERR "%s: %s timeout\n", DRV_NAME, "XPR");
  972. goto err_disable_scc_events;
  973. }
  974. if (debug > 2)
  975. dscc4_tx_print(dev, dpriv, "Open");
  976. done:
  977. netif_start_queue(dev);
  978. init_timer(&dpriv->timer);
  979. dpriv->timer.expires = jiffies + 10*HZ;
  980. dpriv->timer.data = (unsigned long)dev;
  981. dpriv->timer.function = &dscc4_timer;
  982. add_timer(&dpriv->timer);
  983. netif_carrier_on(dev);
  984. return 0;
  985. err_disable_scc_events:
  986. scc_writel(0xffffffff, dpriv, dev, IMR);
  987. scc_patchl(PowerUp | Vis, 0, dpriv, dev, CCR0);
  988. err_out:
  989. hdlc_close(dev);
  990. err:
  991. return ret;
  992. }
  993. #ifdef DSCC4_POLLING
  994. static int dscc4_tx_poll(struct dscc4_dev_priv *dpriv, struct net_device *dev)
  995. {
  996. /* FIXME: it's gonna be easy (TM), for sure */
  997. }
  998. #endif /* DSCC4_POLLING */
  999. static netdev_tx_t dscc4_start_xmit(struct sk_buff *skb,
  1000. struct net_device *dev)
  1001. {
  1002. struct dscc4_dev_priv *dpriv = dscc4_priv(dev);
  1003. struct dscc4_pci_priv *ppriv = dpriv->pci_priv;
  1004. struct TxFD *tx_fd;
  1005. int next;
  1006. next = dpriv->tx_current%TX_RING_SIZE;
  1007. dpriv->tx_skbuff[next] = skb;
  1008. tx_fd = dpriv->tx_fd + next;
  1009. tx_fd->state = FrameEnd | TO_STATE_TX(skb->len);
  1010. tx_fd->data = cpu_to_le32(pci_map_single(ppriv->pdev, skb->data, skb->len,
  1011. PCI_DMA_TODEVICE));
  1012. tx_fd->complete = 0x00000000;
  1013. tx_fd->jiffies = jiffies;
  1014. mb();
  1015. #ifdef DSCC4_POLLING
  1016. spin_lock(&dpriv->lock);
  1017. while (dscc4_tx_poll(dpriv, dev));
  1018. spin_unlock(&dpriv->lock);
  1019. #endif
  1020. dev->trans_start = jiffies;
  1021. if (debug > 2)
  1022. dscc4_tx_print(dev, dpriv, "Xmit");
  1023. /* To be cleaned(unsigned int)/optimized. Later, ok ? */
  1024. if (!((++dpriv->tx_current - dpriv->tx_dirty)%TX_RING_SIZE))
  1025. netif_stop_queue(dev);
  1026. if (dscc4_tx_quiescent(dpriv, dev))
  1027. dscc4_do_tx(dpriv, dev);
  1028. return NETDEV_TX_OK;
  1029. }
  1030. static int dscc4_close(struct net_device *dev)
  1031. {
  1032. struct dscc4_dev_priv *dpriv = dscc4_priv(dev);
  1033. del_timer_sync(&dpriv->timer);
  1034. netif_stop_queue(dev);
  1035. scc_patchl(PowerUp | Vis, 0, dpriv, dev, CCR0);
  1036. scc_patchl(0x00050000, 0, dpriv, dev, CCR2);
  1037. scc_writel(0xffffffff, dpriv, dev, IMR);
  1038. dpriv->flags |= FakeReset;
  1039. hdlc_close(dev);
  1040. return 0;
  1041. }
  1042. static inline int dscc4_check_clock_ability(int port)
  1043. {
  1044. int ret = 0;
  1045. #ifdef CONFIG_DSCC4_PCISYNC
  1046. if (port >= 2)
  1047. ret = -1;
  1048. #endif
  1049. return ret;
  1050. }
  1051. /*
  1052. * DS1 p.137: "There are a total of 13 different clocking modes..."
  1053. * ^^
  1054. * Design choices:
  1055. * - by default, assume a clock is provided on pin RxClk/TxClk (clock mode 0a).
  1056. * Clock mode 3b _should_ work but the testing seems to make this point
  1057. * dubious (DIY testing requires setting CCR0 at 0x00000033).
  1058. * This is supposed to provide least surprise "DTE like" behavior.
  1059. * - if line rate is specified, clocks are assumed to be locally generated.
  1060. * A quartz must be available (on pin XTAL1). Modes 6b/7b are used. Choosing
  1061. * between these it automagically done according on the required frequency
  1062. * scaling. Of course some rounding may take place.
  1063. * - no high speed mode (40Mb/s). May be trivial to do but I don't have an
  1064. * appropriate external clocking device for testing.
  1065. * - no time-slot/clock mode 5: shameless lazyness.
  1066. *
  1067. * The clock signals wiring can be (is ?) manufacturer dependant. Good luck.
  1068. *
  1069. * BIG FAT WARNING: if the device isn't provided enough clocking signal, it
  1070. * won't pass the init sequence. For example, straight back-to-back DTE without
  1071. * external clock will fail when dscc4_open() (<- 'ifconfig hdlcx xxx') is
  1072. * called.
  1073. *
  1074. * Typos lurk in datasheet (missing divier in clock mode 7a figure 51 p.153
  1075. * DS0 for example)
  1076. *
  1077. * Clock mode related bits of CCR0:
  1078. * +------------ TOE: output TxClk (0b/2b/3a/3b/6b/7a/7b only)
  1079. * | +---------- SSEL: sub-mode select 0 -> a, 1 -> b
  1080. * | | +-------- High Speed: say 0
  1081. * | | | +-+-+-- Clock Mode: 0..7
  1082. * | | | | | |
  1083. * -+-+-+-+-+-+-+-+
  1084. * x|x|5|4|3|2|1|0| lower bits
  1085. *
  1086. * Division factor of BRR: k = (N+1)x2^M (total divider = 16xk in mode 6b)
  1087. * +-+-+-+------------------ M (0..15)
  1088. * | | | | +-+-+-+-+-+-- N (0..63)
  1089. * 0 0 0 0 | | | | 0 0 | | | | | |
  1090. * ...-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
  1091. * f|e|d|c|b|a|9|8|7|6|5|4|3|2|1|0| lower bits
  1092. *
  1093. */
  1094. static int dscc4_set_clock(struct net_device *dev, u32 *bps, u32 *state)
  1095. {
  1096. struct dscc4_dev_priv *dpriv = dscc4_priv(dev);
  1097. int ret = -1;
  1098. u32 brr;
  1099. *state &= ~Ccr0ClockMask;
  1100. if (*bps) { /* Clock generated - required for DCE */
  1101. u32 n = 0, m = 0, divider;
  1102. int xtal;
  1103. xtal = dpriv->pci_priv->xtal_hz;
  1104. if (!xtal)
  1105. goto done;
  1106. if (dscc4_check_clock_ability(dpriv->dev_id) < 0)
  1107. goto done;
  1108. divider = xtal / *bps;
  1109. if (divider > BRR_DIVIDER_MAX) {
  1110. divider >>= 4;
  1111. *state |= 0x00000036; /* Clock mode 6b (BRG/16) */
  1112. } else
  1113. *state |= 0x00000037; /* Clock mode 7b (BRG) */
  1114. if (divider >> 22) {
  1115. n = 63;
  1116. m = 15;
  1117. } else if (divider) {
  1118. /* Extraction of the 6 highest weighted bits */
  1119. m = 0;
  1120. while (0xffffffc0 & divider) {
  1121. m++;
  1122. divider >>= 1;
  1123. }
  1124. n = divider;
  1125. }
  1126. brr = (m << 8) | n;
  1127. divider = n << m;
  1128. if (!(*state & 0x00000001)) /* ?b mode mask => clock mode 6b */
  1129. divider <<= 4;
  1130. *bps = xtal / divider;
  1131. } else {
  1132. /*
  1133. * External clock - DTE
  1134. * "state" already reflects Clock mode 0a (CCR0 = 0xzzzzzz00).
  1135. * Nothing more to be done
  1136. */
  1137. brr = 0;
  1138. }
  1139. scc_writel(brr, dpriv, dev, BRR);
  1140. ret = 0;
  1141. done:
  1142. return ret;
  1143. }
  1144. static int dscc4_ioctl(struct net_device *dev, struct ifreq *ifr, int cmd)
  1145. {
  1146. sync_serial_settings __user *line = ifr->ifr_settings.ifs_ifsu.sync;
  1147. struct dscc4_dev_priv *dpriv = dscc4_priv(dev);
  1148. const size_t size = sizeof(dpriv->settings);
  1149. int ret = 0;
  1150. if (dev->flags & IFF_UP)
  1151. return -EBUSY;
  1152. if (cmd != SIOCWANDEV)
  1153. return -EOPNOTSUPP;
  1154. switch(ifr->ifr_settings.type) {
  1155. case IF_GET_IFACE:
  1156. ifr->ifr_settings.type = IF_IFACE_SYNC_SERIAL;
  1157. if (ifr->ifr_settings.size < size) {
  1158. ifr->ifr_settings.size = size; /* data size wanted */
  1159. return -ENOBUFS;
  1160. }
  1161. if (copy_to_user(line, &dpriv->settings, size))
  1162. return -EFAULT;
  1163. break;
  1164. case IF_IFACE_SYNC_SERIAL:
  1165. if (!capable(CAP_NET_ADMIN))
  1166. return -EPERM;
  1167. if (dpriv->flags & FakeReset) {
  1168. printk(KERN_INFO "%s: please reset the device"
  1169. " before this command\n", dev->name);
  1170. return -EPERM;
  1171. }
  1172. if (copy_from_user(&dpriv->settings, line, size))
  1173. return -EFAULT;
  1174. ret = dscc4_set_iface(dpriv, dev);
  1175. break;
  1176. default:
  1177. ret = hdlc_ioctl(dev, ifr, cmd);
  1178. break;
  1179. }
  1180. return ret;
  1181. }
  1182. static int dscc4_match(struct thingie *p, int value)
  1183. {
  1184. int i;
  1185. for (i = 0; p[i].define != -1; i++) {
  1186. if (value == p[i].define)
  1187. break;
  1188. }
  1189. if (p[i].define == -1)
  1190. return -1;
  1191. else
  1192. return i;
  1193. }
  1194. static int dscc4_clock_setting(struct dscc4_dev_priv *dpriv,
  1195. struct net_device *dev)
  1196. {
  1197. sync_serial_settings *settings = &dpriv->settings;
  1198. int ret = -EOPNOTSUPP;
  1199. u32 bps, state;
  1200. bps = settings->clock_rate;
  1201. state = scc_readl(dpriv, CCR0);
  1202. if (dscc4_set_clock(dev, &bps, &state) < 0)
  1203. goto done;
  1204. if (bps) { /* DCE */
  1205. printk(KERN_DEBUG "%s: generated RxClk (DCE)\n", dev->name);
  1206. if (settings->clock_rate != bps) {
  1207. printk(KERN_DEBUG "%s: clock adjusted (%08d -> %08d)\n",
  1208. dev->name, settings->clock_rate, bps);
  1209. settings->clock_rate = bps;
  1210. }
  1211. } else { /* DTE */
  1212. state |= PowerUp | Vis;
  1213. printk(KERN_DEBUG "%s: external RxClk (DTE)\n", dev->name);
  1214. }
  1215. scc_writel(state, dpriv, dev, CCR0);
  1216. ret = 0;
  1217. done:
  1218. return ret;
  1219. }
  1220. static int dscc4_encoding_setting(struct dscc4_dev_priv *dpriv,
  1221. struct net_device *dev)
  1222. {
  1223. struct thingie encoding[] = {
  1224. { ENCODING_NRZ, 0x00000000 },
  1225. { ENCODING_NRZI, 0x00200000 },
  1226. { ENCODING_FM_MARK, 0x00400000 },
  1227. { ENCODING_FM_SPACE, 0x00500000 },
  1228. { ENCODING_MANCHESTER, 0x00600000 },
  1229. { -1, 0}
  1230. };
  1231. int i, ret = 0;
  1232. i = dscc4_match(encoding, dpriv->encoding);
  1233. if (i >= 0)
  1234. scc_patchl(EncodingMask, encoding[i].bits, dpriv, dev, CCR0);
  1235. else
  1236. ret = -EOPNOTSUPP;
  1237. return ret;
  1238. }
  1239. static int dscc4_loopback_setting(struct dscc4_dev_priv *dpriv,
  1240. struct net_device *dev)
  1241. {
  1242. sync_serial_settings *settings = &dpriv->settings;
  1243. u32 state;
  1244. state = scc_readl(dpriv, CCR1);
  1245. if (settings->loopback) {
  1246. printk(KERN_DEBUG "%s: loopback\n", dev->name);
  1247. state |= 0x00000100;
  1248. } else {
  1249. printk(KERN_DEBUG "%s: normal\n", dev->name);
  1250. state &= ~0x00000100;
  1251. }
  1252. scc_writel(state, dpriv, dev, CCR1);
  1253. return 0;
  1254. }
  1255. static int dscc4_crc_setting(struct dscc4_dev_priv *dpriv,
  1256. struct net_device *dev)
  1257. {
  1258. struct thingie crc[] = {
  1259. { PARITY_CRC16_PR0_CCITT, 0x00000010 },
  1260. { PARITY_CRC16_PR1_CCITT, 0x00000000 },
  1261. { PARITY_CRC32_PR0_CCITT, 0x00000011 },
  1262. { PARITY_CRC32_PR1_CCITT, 0x00000001 }
  1263. };
  1264. int i, ret = 0;
  1265. i = dscc4_match(crc, dpriv->parity);
  1266. if (i >= 0)
  1267. scc_patchl(CrcMask, crc[i].bits, dpriv, dev, CCR1);
  1268. else
  1269. ret = -EOPNOTSUPP;
  1270. return ret;
  1271. }
  1272. static int dscc4_set_iface(struct dscc4_dev_priv *dpriv, struct net_device *dev)
  1273. {
  1274. struct {
  1275. int (*action)(struct dscc4_dev_priv *, struct net_device *);
  1276. } *p, do_setting[] = {
  1277. { dscc4_encoding_setting },
  1278. { dscc4_clock_setting },
  1279. { dscc4_loopback_setting },
  1280. { dscc4_crc_setting },
  1281. { NULL }
  1282. };
  1283. int ret = 0;
  1284. for (p = do_setting; p->action; p++) {
  1285. if ((ret = p->action(dpriv, dev)) < 0)
  1286. break;
  1287. }
  1288. return ret;
  1289. }
  1290. static irqreturn_t dscc4_irq(int irq, void *token)
  1291. {
  1292. struct dscc4_dev_priv *root = token;
  1293. struct dscc4_pci_priv *priv;
  1294. struct net_device *dev;
  1295. void __iomem *ioaddr;
  1296. u32 state;
  1297. unsigned long flags;
  1298. int i, handled = 1;
  1299. priv = root->pci_priv;
  1300. dev = dscc4_to_dev(root);
  1301. spin_lock_irqsave(&priv->lock, flags);
  1302. ioaddr = root->base_addr;
  1303. state = readl(ioaddr + GSTAR);
  1304. if (!state) {
  1305. handled = 0;
  1306. goto out;
  1307. }
  1308. if (debug > 3)
  1309. printk(KERN_DEBUG "%s: GSTAR = 0x%08x\n", DRV_NAME, state);
  1310. writel(state, ioaddr + GSTAR);
  1311. if (state & Arf) {
  1312. printk(KERN_ERR "%s: failure (Arf). Harass the maintener\n",
  1313. dev->name);
  1314. goto out;
  1315. }
  1316. state &= ~ArAck;
  1317. if (state & Cfg) {
  1318. if (debug > 0)
  1319. printk(KERN_DEBUG "%s: CfgIV\n", DRV_NAME);
  1320. if (priv->iqcfg[priv->cfg_cur++%IRQ_RING_SIZE] & cpu_to_le32(Arf))
  1321. printk(KERN_ERR "%s: %s failed\n", dev->name, "CFG");
  1322. if (!(state &= ~Cfg))
  1323. goto out;
  1324. }
  1325. if (state & RxEvt) {
  1326. i = dev_per_card - 1;
  1327. do {
  1328. dscc4_rx_irq(priv, root + i);
  1329. } while (--i >= 0);
  1330. state &= ~RxEvt;
  1331. }
  1332. if (state & TxEvt) {
  1333. i = dev_per_card - 1;
  1334. do {
  1335. dscc4_tx_irq(priv, root + i);
  1336. } while (--i >= 0);
  1337. state &= ~TxEvt;
  1338. }
  1339. out:
  1340. spin_unlock_irqrestore(&priv->lock, flags);
  1341. return IRQ_RETVAL(handled);
  1342. }
  1343. static void dscc4_tx_irq(struct dscc4_pci_priv *ppriv,
  1344. struct dscc4_dev_priv *dpriv)
  1345. {
  1346. struct net_device *dev = dscc4_to_dev(dpriv);
  1347. u32 state;
  1348. int cur, loop = 0;
  1349. try:
  1350. cur = dpriv->iqtx_current%IRQ_RING_SIZE;
  1351. state = le32_to_cpu(dpriv->iqtx[cur]);
  1352. if (!state) {
  1353. if (debug > 4)
  1354. printk(KERN_DEBUG "%s: Tx ISR = 0x%08x\n", dev->name,
  1355. state);
  1356. if ((debug > 1) && (loop > 1))
  1357. printk(KERN_DEBUG "%s: Tx irq loop=%d\n", dev->name, loop);
  1358. if (loop && netif_queue_stopped(dev))
  1359. if ((dpriv->tx_current - dpriv->tx_dirty)%TX_RING_SIZE)
  1360. netif_wake_queue(dev);
  1361. if (netif_running(dev) && dscc4_tx_quiescent(dpriv, dev) &&
  1362. !dscc4_tx_done(dpriv))
  1363. dscc4_do_tx(dpriv, dev);
  1364. return;
  1365. }
  1366. loop++;
  1367. dpriv->iqtx[cur] = 0;
  1368. dpriv->iqtx_current++;
  1369. if (state_check(state, dpriv, dev, "Tx") < 0)
  1370. return;
  1371. if (state & SccEvt) {
  1372. if (state & Alls) {
  1373. struct sk_buff *skb;
  1374. struct TxFD *tx_fd;
  1375. if (debug > 2)
  1376. dscc4_tx_print(dev, dpriv, "Alls");
  1377. /*
  1378. * DataComplete can't be trusted for Tx completion.
  1379. * Cf errata DS5 p.8
  1380. */
  1381. cur = dpriv->tx_dirty%TX_RING_SIZE;
  1382. tx_fd = dpriv->tx_fd + cur;
  1383. skb = dpriv->tx_skbuff[cur];
  1384. if (skb) {
  1385. pci_unmap_single(ppriv->pdev, le32_to_cpu(tx_fd->data),
  1386. skb->len, PCI_DMA_TODEVICE);
  1387. if (tx_fd->state & FrameEnd) {
  1388. dev->stats.tx_packets++;
  1389. dev->stats.tx_bytes += skb->len;
  1390. }
  1391. dev_kfree_skb_irq(skb);
  1392. dpriv->tx_skbuff[cur] = NULL;
  1393. ++dpriv->tx_dirty;
  1394. } else {
  1395. if (debug > 1)
  1396. printk(KERN_ERR "%s Tx: NULL skb %d\n",
  1397. dev->name, cur);
  1398. }
  1399. /*
  1400. * If the driver ends sending crap on the wire, it
  1401. * will be way easier to diagnose than the (not so)
  1402. * random freeze induced by null sized tx frames.
  1403. */
  1404. tx_fd->data = tx_fd->next;
  1405. tx_fd->state = FrameEnd | TO_STATE_TX(2*DUMMY_SKB_SIZE);
  1406. tx_fd->complete = 0x00000000;
  1407. tx_fd->jiffies = 0;
  1408. if (!(state &= ~Alls))
  1409. goto try;
  1410. }
  1411. /*
  1412. * Transmit Data Underrun
  1413. */
  1414. if (state & Xdu) {
  1415. printk(KERN_ERR "%s: XDU. Ask maintainer\n", DRV_NAME);
  1416. dpriv->flags = NeedIDT;
  1417. /* Tx reset */
  1418. writel(MTFi | Rdt,
  1419. dpriv->base_addr + 0x0c*dpriv->dev_id + CH0CFG);
  1420. writel(Action, dpriv->base_addr + GCMDR);
  1421. return;
  1422. }
  1423. if (state & Cts) {
  1424. printk(KERN_INFO "%s: CTS transition\n", dev->name);
  1425. if (!(state &= ~Cts)) /* DEBUG */
  1426. goto try;
  1427. }
  1428. if (state & Xmr) {
  1429. /* Frame needs to be sent again - FIXME */
  1430. printk(KERN_ERR "%s: Xmr. Ask maintainer\n", DRV_NAME);
  1431. if (!(state &= ~Xmr)) /* DEBUG */
  1432. goto try;
  1433. }
  1434. if (state & Xpr) {
  1435. void __iomem *scc_addr;
  1436. unsigned long ring;
  1437. int i;
  1438. /*
  1439. * - the busy condition happens (sometimes);
  1440. * - it doesn't seem to make the handler unreliable.
  1441. */
  1442. for (i = 1; i; i <<= 1) {
  1443. if (!(scc_readl_star(dpriv, dev) & SccBusy))
  1444. break;
  1445. }
  1446. if (!i)
  1447. printk(KERN_INFO "%s busy in irq\n", dev->name);
  1448. scc_addr = dpriv->base_addr + 0x0c*dpriv->dev_id;
  1449. /* Keep this order: IDT before IDR */
  1450. if (dpriv->flags & NeedIDT) {
  1451. if (debug > 2)
  1452. dscc4_tx_print(dev, dpriv, "Xpr");
  1453. ring = dpriv->tx_fd_dma +
  1454. (dpriv->tx_dirty%TX_RING_SIZE)*
  1455. sizeof(struct TxFD);
  1456. writel(ring, scc_addr + CH0BTDA);
  1457. dscc4_do_tx(dpriv, dev);
  1458. writel(MTFi | Idt, scc_addr + CH0CFG);
  1459. if (dscc4_do_action(dev, "IDT") < 0)
  1460. goto err_xpr;
  1461. dpriv->flags &= ~NeedIDT;
  1462. }
  1463. if (dpriv->flags & NeedIDR) {
  1464. ring = dpriv->rx_fd_dma +
  1465. (dpriv->rx_current%RX_RING_SIZE)*
  1466. sizeof(struct RxFD);
  1467. writel(ring, scc_addr + CH0BRDA);
  1468. dscc4_rx_update(dpriv, dev);
  1469. writel(MTFi | Idr, scc_addr + CH0CFG);
  1470. if (dscc4_do_action(dev, "IDR") < 0)
  1471. goto err_xpr;
  1472. dpriv->flags &= ~NeedIDR;
  1473. smp_wmb();
  1474. /* Activate receiver and misc */
  1475. scc_writel(0x08050008, dpriv, dev, CCR2);
  1476. }
  1477. err_xpr:
  1478. if (!(state &= ~Xpr))
  1479. goto try;
  1480. }
  1481. if (state & Cd) {
  1482. if (debug > 0)
  1483. printk(KERN_INFO "%s: CD transition\n", dev->name);
  1484. if (!(state &= ~Cd)) /* DEBUG */
  1485. goto try;
  1486. }
  1487. } else { /* ! SccEvt */
  1488. if (state & Hi) {
  1489. #ifdef DSCC4_POLLING
  1490. while (!dscc4_tx_poll(dpriv, dev));
  1491. #endif
  1492. printk(KERN_INFO "%s: Tx Hi\n", dev->name);
  1493. state &= ~Hi;
  1494. }
  1495. if (state & Err) {
  1496. printk(KERN_INFO "%s: Tx ERR\n", dev->name);
  1497. dev->stats.tx_errors++;
  1498. state &= ~Err;
  1499. }
  1500. }
  1501. goto try;
  1502. }
  1503. static void dscc4_rx_irq(struct dscc4_pci_priv *priv,
  1504. struct dscc4_dev_priv *dpriv)
  1505. {
  1506. struct net_device *dev = dscc4_to_dev(dpriv);
  1507. u32 state;
  1508. int cur;
  1509. try:
  1510. cur = dpriv->iqrx_current%IRQ_RING_SIZE;
  1511. state = le32_to_cpu(dpriv->iqrx[cur]);
  1512. if (!state)
  1513. return;
  1514. dpriv->iqrx[cur] = 0;
  1515. dpriv->iqrx_current++;
  1516. if (state_check(state, dpriv, dev, "Rx") < 0)
  1517. return;
  1518. if (!(state & SccEvt)){
  1519. struct RxFD *rx_fd;
  1520. if (debug > 4)
  1521. printk(KERN_DEBUG "%s: Rx ISR = 0x%08x\n", dev->name,
  1522. state);
  1523. state &= 0x00ffffff;
  1524. if (state & Err) { /* Hold or reset */
  1525. printk(KERN_DEBUG "%s: Rx ERR\n", dev->name);
  1526. cur = dpriv->rx_current%RX_RING_SIZE;
  1527. rx_fd = dpriv->rx_fd + cur;
  1528. /*
  1529. * Presume we're not facing a DMAC receiver reset.
  1530. * As We use the rx size-filtering feature of the
  1531. * DSCC4, the beginning of a new frame is waiting in
  1532. * the rx fifo. I bet a Receive Data Overflow will
  1533. * happen most of time but let's try and avoid it.
  1534. * Btw (as for RDO) if one experiences ERR whereas
  1535. * the system looks rather idle, there may be a
  1536. * problem with latency. In this case, increasing
  1537. * RX_RING_SIZE may help.
  1538. */
  1539. //while (dpriv->rx_needs_refill) {
  1540. while (!(rx_fd->state1 & Hold)) {
  1541. rx_fd++;
  1542. cur++;
  1543. if (!(cur = cur%RX_RING_SIZE))
  1544. rx_fd = dpriv->rx_fd;
  1545. }
  1546. //dpriv->rx_needs_refill--;
  1547. try_get_rx_skb(dpriv, dev);
  1548. if (!rx_fd->data)
  1549. goto try;
  1550. rx_fd->state1 &= ~Hold;
  1551. rx_fd->state2 = 0x00000000;
  1552. rx_fd->end = cpu_to_le32(0xbabeface);
  1553. //}
  1554. goto try;
  1555. }
  1556. if (state & Fi) {
  1557. dscc4_rx_skb(dpriv, dev);
  1558. goto try;
  1559. }
  1560. if (state & Hi ) { /* HI bit */
  1561. printk(KERN_INFO "%s: Rx Hi\n", dev->name);
  1562. state &= ~Hi;
  1563. goto try;
  1564. }
  1565. } else { /* SccEvt */
  1566. if (debug > 1) {
  1567. //FIXME: verifier la presence de tous les evenements
  1568. static struct {
  1569. u32 mask;
  1570. const char *irq_name;
  1571. } evts[] = {
  1572. { 0x00008000, "TIN"},
  1573. { 0x00000020, "RSC"},
  1574. { 0x00000010, "PCE"},
  1575. { 0x00000008, "PLLA"},
  1576. { 0, NULL}
  1577. }, *evt;
  1578. for (evt = evts; evt->irq_name; evt++) {
  1579. if (state & evt->mask) {
  1580. printk(KERN_DEBUG "%s: %s\n",
  1581. dev->name, evt->irq_name);
  1582. if (!(state &= ~evt->mask))
  1583. goto try;
  1584. }
  1585. }
  1586. } else {
  1587. if (!(state &= ~0x0000c03c))
  1588. goto try;
  1589. }
  1590. if (state & Cts) {
  1591. printk(KERN_INFO "%s: CTS transition\n", dev->name);
  1592. if (!(state &= ~Cts)) /* DEBUG */
  1593. goto try;
  1594. }
  1595. /*
  1596. * Receive Data Overflow (FIXME: fscked)
  1597. */
  1598. if (state & Rdo) {
  1599. struct RxFD *rx_fd;
  1600. void __iomem *scc_addr;
  1601. int cur;
  1602. //if (debug)
  1603. // dscc4_rx_dump(dpriv);
  1604. scc_addr = dpriv->base_addr + 0x0c*dpriv->dev_id;
  1605. scc_patchl(RxActivate, 0, dpriv, dev, CCR2);
  1606. /*
  1607. * This has no effect. Why ?
  1608. * ORed with TxSccRes, one sees the CFG ack (for
  1609. * the TX part only).
  1610. */
  1611. scc_writel(RxSccRes, dpriv, dev, CMDR);
  1612. dpriv->flags |= RdoSet;
  1613. /*
  1614. * Let's try and save something in the received data.
  1615. * rx_current must be incremented at least once to
  1616. * avoid HOLD in the BRDA-to-be-pointed desc.
  1617. */
  1618. do {
  1619. cur = dpriv->rx_current++%RX_RING_SIZE;
  1620. rx_fd = dpriv->rx_fd + cur;
  1621. if (!(rx_fd->state2 & DataComplete))
  1622. break;
  1623. if (rx_fd->state2 & FrameAborted) {
  1624. dev->stats.rx_over_errors++;
  1625. rx_fd->state1 |= Hold;
  1626. rx_fd->state2 = 0x00000000;
  1627. rx_fd->end = cpu_to_le32(0xbabeface);
  1628. } else
  1629. dscc4_rx_skb(dpriv, dev);
  1630. } while (1);
  1631. if (debug > 0) {
  1632. if (dpriv->flags & RdoSet)
  1633. printk(KERN_DEBUG
  1634. "%s: no RDO in Rx data\n", DRV_NAME);
  1635. }
  1636. #ifdef DSCC4_RDO_EXPERIMENTAL_RECOVERY
  1637. /*
  1638. * FIXME: must the reset be this violent ?
  1639. */
  1640. #warning "FIXME: CH0BRDA"
  1641. writel(dpriv->rx_fd_dma +
  1642. (dpriv->rx_current%RX_RING_SIZE)*
  1643. sizeof(struct RxFD), scc_addr + CH0BRDA);
  1644. writel(MTFi|Rdr|Idr, scc_addr + CH0CFG);
  1645. if (dscc4_do_action(dev, "RDR") < 0) {
  1646. printk(KERN_ERR "%s: RDO recovery failed(%s)\n",
  1647. dev->name, "RDR");
  1648. goto rdo_end;
  1649. }
  1650. writel(MTFi|Idr, scc_addr + CH0CFG);
  1651. if (dscc4_do_action(dev, "IDR") < 0) {
  1652. printk(KERN_ERR "%s: RDO recovery failed(%s)\n",
  1653. dev->name, "IDR");
  1654. goto rdo_end;
  1655. }
  1656. rdo_end:
  1657. #endif
  1658. scc_patchl(0, RxActivate, dpriv, dev, CCR2);
  1659. goto try;
  1660. }
  1661. if (state & Cd) {
  1662. printk(KERN_INFO "%s: CD transition\n", dev->name);
  1663. if (!(state &= ~Cd)) /* DEBUG */
  1664. goto try;
  1665. }
  1666. if (state & Flex) {
  1667. printk(KERN_DEBUG "%s: Flex. Ttttt...\n", DRV_NAME);
  1668. if (!(state &= ~Flex))
  1669. goto try;
  1670. }
  1671. }
  1672. }
  1673. /*
  1674. * I had expected the following to work for the first descriptor
  1675. * (tx_fd->state = 0xc0000000)
  1676. * - Hold=1 (don't try and branch to the next descripto);
  1677. * - No=0 (I want an empty data section, i.e. size=0);
  1678. * - Fe=1 (required by No=0 or we got an Err irq and must reset).
  1679. * It failed and locked solid. Thus the introduction of a dummy skb.
  1680. * Problem is acknowledged in errata sheet DS5. Joy :o/
  1681. */
  1682. static struct sk_buff *dscc4_init_dummy_skb(struct dscc4_dev_priv *dpriv)
  1683. {
  1684. struct sk_buff *skb;
  1685. skb = dev_alloc_skb(DUMMY_SKB_SIZE);
  1686. if (skb) {
  1687. int last = dpriv->tx_dirty%TX_RING_SIZE;
  1688. struct TxFD *tx_fd = dpriv->tx_fd + last;
  1689. skb->len = DUMMY_SKB_SIZE;
  1690. skb_copy_to_linear_data(skb, version,
  1691. strlen(version) % DUMMY_SKB_SIZE);
  1692. tx_fd->state = FrameEnd | TO_STATE_TX(DUMMY_SKB_SIZE);
  1693. tx_fd->data = cpu_to_le32(pci_map_single(dpriv->pci_priv->pdev,
  1694. skb->data, DUMMY_SKB_SIZE,
  1695. PCI_DMA_TODEVICE));
  1696. dpriv->tx_skbuff[last] = skb;
  1697. }
  1698. return skb;
  1699. }
  1700. static int dscc4_init_ring(struct net_device *dev)
  1701. {
  1702. struct dscc4_dev_priv *dpriv = dscc4_priv(dev);
  1703. struct pci_dev *pdev = dpriv->pci_priv->pdev;
  1704. struct TxFD *tx_fd;
  1705. struct RxFD *rx_fd;
  1706. void *ring;
  1707. int i;
  1708. ring = pci_alloc_consistent(pdev, RX_TOTAL_SIZE, &dpriv->rx_fd_dma);
  1709. if (!ring)
  1710. goto err_out;
  1711. dpriv->rx_fd = rx_fd = (struct RxFD *) ring;
  1712. ring = pci_alloc_consistent(pdev, TX_TOTAL_SIZE, &dpriv->tx_fd_dma);
  1713. if (!ring)
  1714. goto err_free_dma_rx;
  1715. dpriv->tx_fd = tx_fd = (struct TxFD *) ring;
  1716. memset(dpriv->tx_skbuff, 0, sizeof(struct sk_buff *)*TX_RING_SIZE);
  1717. dpriv->tx_dirty = 0xffffffff;
  1718. i = dpriv->tx_current = 0;
  1719. do {
  1720. tx_fd->state = FrameEnd | TO_STATE_TX(2*DUMMY_SKB_SIZE);
  1721. tx_fd->complete = 0x00000000;
  1722. /* FIXME: NULL should be ok - to be tried */
  1723. tx_fd->data = cpu_to_le32(dpriv->tx_fd_dma);
  1724. (tx_fd++)->next = cpu_to_le32(dpriv->tx_fd_dma +
  1725. (++i%TX_RING_SIZE)*sizeof(*tx_fd));
  1726. } while (i < TX_RING_SIZE);
  1727. if (!dscc4_init_dummy_skb(dpriv))
  1728. goto err_free_dma_tx;
  1729. memset(dpriv->rx_skbuff, 0, sizeof(struct sk_buff *)*RX_RING_SIZE);
  1730. i = dpriv->rx_dirty = dpriv->rx_current = 0;
  1731. do {
  1732. /* size set by the host. Multiple of 4 bytes please */
  1733. rx_fd->state1 = HiDesc;
  1734. rx_fd->state2 = 0x00000000;
  1735. rx_fd->end = cpu_to_le32(0xbabeface);
  1736. rx_fd->state1 |= TO_STATE_RX(HDLC_MAX_MRU);
  1737. // FIXME: return value verifiee mais traitement suspect
  1738. if (try_get_rx_skb(dpriv, dev) >= 0)
  1739. dpriv->rx_dirty++;
  1740. (rx_fd++)->next = cpu_to_le32(dpriv->rx_fd_dma +
  1741. (++i%RX_RING_SIZE)*sizeof(*rx_fd));
  1742. } while (i < RX_RING_SIZE);
  1743. return 0;
  1744. err_free_dma_tx:
  1745. pci_free_consistent(pdev, TX_TOTAL_SIZE, ring, dpriv->tx_fd_dma);
  1746. err_free_dma_rx:
  1747. pci_free_consistent(pdev, RX_TOTAL_SIZE, rx_fd, dpriv->rx_fd_dma);
  1748. err_out:
  1749. return -ENOMEM;
  1750. }
  1751. static void __devexit dscc4_remove_one(struct pci_dev *pdev)
  1752. {
  1753. struct dscc4_pci_priv *ppriv;
  1754. struct dscc4_dev_priv *root;
  1755. void __iomem *ioaddr;
  1756. int i;
  1757. ppriv = pci_get_drvdata(pdev);
  1758. root = ppriv->root;
  1759. ioaddr = root->base_addr;
  1760. dscc4_pci_reset(pdev, ioaddr);
  1761. free_irq(pdev->irq, root);
  1762. pci_free_consistent(pdev, IRQ_RING_SIZE*sizeof(u32), ppriv->iqcfg,
  1763. ppriv->iqcfg_dma);
  1764. for (i = 0; i < dev_per_card; i++) {
  1765. struct dscc4_dev_priv *dpriv = root + i;
  1766. dscc4_release_ring(dpriv);
  1767. pci_free_consistent(pdev, IRQ_RING_SIZE*sizeof(u32),
  1768. dpriv->iqrx, dpriv->iqrx_dma);
  1769. pci_free_consistent(pdev, IRQ_RING_SIZE*sizeof(u32),
  1770. dpriv->iqtx, dpriv->iqtx_dma);
  1771. }
  1772. dscc4_free1(pdev);
  1773. iounmap(ioaddr);
  1774. pci_release_region(pdev, 1);
  1775. pci_release_region(pdev, 0);
  1776. pci_disable_device(pdev);
  1777. }
  1778. static int dscc4_hdlc_attach(struct net_device *dev, unsigned short encoding,
  1779. unsigned short parity)
  1780. {
  1781. struct dscc4_dev_priv *dpriv = dscc4_priv(dev);
  1782. if (encoding != ENCODING_NRZ &&
  1783. encoding != ENCODING_NRZI &&
  1784. encoding != ENCODING_FM_MARK &&
  1785. encoding != ENCODING_FM_SPACE &&
  1786. encoding != ENCODING_MANCHESTER)
  1787. return -EINVAL;
  1788. if (parity != PARITY_NONE &&
  1789. parity != PARITY_CRC16_PR0_CCITT &&
  1790. parity != PARITY_CRC16_PR1_CCITT &&
  1791. parity != PARITY_CRC32_PR0_CCITT &&
  1792. parity != PARITY_CRC32_PR1_CCITT)
  1793. return -EINVAL;
  1794. dpriv->encoding = encoding;
  1795. dpriv->parity = parity;
  1796. return 0;
  1797. }
  1798. #ifndef MODULE
  1799. static int __init dscc4_setup(char *str)
  1800. {
  1801. int *args[] = { &debug, &quartz, NULL }, **p = args;
  1802. while (*p && (get_option(&str, *p) == 2))
  1803. p++;
  1804. return 1;
  1805. }
  1806. __setup("dscc4.setup=", dscc4_setup);
  1807. #endif
  1808. static struct pci_device_id dscc4_pci_tbl[] = {
  1809. { PCI_VENDOR_ID_SIEMENS, PCI_DEVICE_ID_SIEMENS_DSCC4,
  1810. PCI_ANY_ID, PCI_ANY_ID, },
  1811. { 0,}
  1812. };
  1813. MODULE_DEVICE_TABLE(pci, dscc4_pci_tbl);
  1814. static struct pci_driver dscc4_driver = {
  1815. .name = DRV_NAME,
  1816. .id_table = dscc4_pci_tbl,
  1817. .probe = dscc4_init_one,
  1818. .remove = __devexit_p(dscc4_remove_one),
  1819. };
  1820. static int __init dscc4_init_module(void)
  1821. {
  1822. return pci_register_driver(&dscc4_driver);
  1823. }
  1824. static void __exit dscc4_cleanup_module(void)
  1825. {
  1826. pci_unregister_driver(&dscc4_driver);
  1827. }
  1828. module_init(dscc4_init_module);
  1829. module_exit(dscc4_cleanup_module);