flexcop-pci.c 12 KB

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  1. /*
  2. * This file is part of linux driver the digital TV devices equipped with B2C2 FlexcopII(b)/III
  3. *
  4. * flexcop-pci.c - covers the PCI part including DMA transfers.
  5. *
  6. * see flexcop.c for copyright information.
  7. */
  8. #define FC_LOG_PREFIX "flexcop-pci"
  9. #include "flexcop-common.h"
  10. static int enable_pid_filtering = 1;
  11. module_param(enable_pid_filtering, int, 0444);
  12. MODULE_PARM_DESC(enable_pid_filtering, "enable hardware pid filtering: supported values: 0 (fullts), 1");
  13. static int irq_chk_intv;
  14. module_param(irq_chk_intv, int, 0644);
  15. MODULE_PARM_DESC(irq_chk_intv, "set the interval for IRQ watchdog (currently just debugging).");
  16. #ifdef CONFIG_DVB_B2C2_FLEXCOP_DEBUG
  17. #define dprintk(level,args...) \
  18. do { if ((debug & level)) printk(args); } while (0)
  19. #define DEBSTATUS ""
  20. #else
  21. #define dprintk(level,args...)
  22. #define DEBSTATUS " (debugging is not enabled)"
  23. #endif
  24. #define deb_info(args...) dprintk(0x01,args)
  25. #define deb_reg(args...) dprintk(0x02,args)
  26. #define deb_ts(args...) dprintk(0x04,args)
  27. #define deb_irq(args...) dprintk(0x08,args)
  28. #define deb_chk(args...) dprintk(0x10,args)
  29. static int debug = 0;
  30. module_param(debug, int, 0644);
  31. MODULE_PARM_DESC(debug, "set debug level (1=info,2=regs,4=TS,8=irqdma (|-able))." DEBSTATUS);
  32. #define DRIVER_VERSION "0.1"
  33. #define DRIVER_NAME "Technisat/B2C2 FlexCop II/IIb/III Digital TV PCI Driver"
  34. #define DRIVER_AUTHOR "Patrick Boettcher <patrick.boettcher@desy.de>"
  35. struct flexcop_pci {
  36. struct pci_dev *pdev;
  37. #define FC_PCI_INIT 0x01
  38. #define FC_PCI_DMA_INIT 0x02
  39. int init_state;
  40. void __iomem *io_mem;
  41. u32 irq;
  42. /* buffersize (at least for DMA1, need to be % 188 == 0,
  43. * this logic is required */
  44. #define FC_DEFAULT_DMA1_BUFSIZE (1280 * 188)
  45. #define FC_DEFAULT_DMA2_BUFSIZE (10 * 188)
  46. struct flexcop_dma dma[2];
  47. int active_dma1_addr; /* 0 = addr0 of dma1; 1 = addr1 of dma1 */
  48. u32 last_dma1_cur_pos; /* position of the pointer last time the timer/packet irq occured */
  49. int count;
  50. spinlock_t irq_lock;
  51. unsigned long last_irq;
  52. struct work_struct irq_check_work;
  53. struct flexcop_device *fc_dev;
  54. };
  55. static int lastwreg,lastwval,lastrreg,lastrval;
  56. static flexcop_ibi_value flexcop_pci_read_ibi_reg (struct flexcop_device *fc, flexcop_ibi_register r)
  57. {
  58. struct flexcop_pci *fc_pci = fc->bus_specific;
  59. flexcop_ibi_value v;
  60. v.raw = readl(fc_pci->io_mem + r);
  61. if (lastrreg != r || lastrval != v.raw) {
  62. lastrreg = r; lastrval = v.raw;
  63. deb_reg("new rd: %3x: %08x\n",r,v.raw);
  64. }
  65. return v;
  66. }
  67. static int flexcop_pci_write_ibi_reg(struct flexcop_device *fc, flexcop_ibi_register r, flexcop_ibi_value v)
  68. {
  69. struct flexcop_pci *fc_pci = fc->bus_specific;
  70. if (lastwreg != r || lastwval != v.raw) {
  71. lastwreg = r; lastwval = v.raw;
  72. deb_reg("new wr: %3x: %08x\n",r,v.raw);
  73. }
  74. writel(v.raw, fc_pci->io_mem + r);
  75. return 0;
  76. }
  77. static void flexcop_pci_irq_check_work(void *data)
  78. {
  79. struct flexcop_pci *fc_pci = data;
  80. struct flexcop_device *fc = fc_pci->fc_dev;
  81. flexcop_ibi_value v = fc->read_ibi_reg(fc,sram_dest_reg_714);
  82. flexcop_dump_reg(fc_pci->fc_dev,dma1_000,4);
  83. if (v.sram_dest_reg_714.net_ovflow_error)
  84. deb_chk("sram net_ovflow_error\n");
  85. if (v.sram_dest_reg_714.media_ovflow_error)
  86. deb_chk("sram media_ovflow_error\n");
  87. if (v.sram_dest_reg_714.cai_ovflow_error)
  88. deb_chk("sram cai_ovflow_error\n");
  89. if (v.sram_dest_reg_714.cai_ovflow_error)
  90. deb_chk("sram cai_ovflow_error\n");
  91. schedule_delayed_work(&fc_pci->irq_check_work,
  92. msecs_to_jiffies(irq_chk_intv < 100 ? 100 : irq_chk_intv));
  93. }
  94. /* When PID filtering is turned on, we use the timer IRQ, because small amounts
  95. * of data need to be passed to the user space instantly as well. When PID
  96. * filtering is turned off, we use the page-change-IRQ */
  97. static irqreturn_t flexcop_pci_isr(int irq, void *dev_id, struct pt_regs *regs)
  98. {
  99. struct flexcop_pci *fc_pci = dev_id;
  100. struct flexcop_device *fc = fc_pci->fc_dev;
  101. flexcop_ibi_value v;
  102. irqreturn_t ret = IRQ_HANDLED;
  103. spin_lock_irq(&fc_pci->irq_lock);
  104. v = fc->read_ibi_reg(fc,irq_20c);
  105. /* errors */
  106. if (v.irq_20c.Data_receiver_error)
  107. deb_chk("data receiver error\n");
  108. if (v.irq_20c.Continuity_error_flag)
  109. deb_chk("Contunuity error flag is set\n");
  110. if (v.irq_20c.LLC_SNAP_FLAG_set)
  111. deb_chk("LLC_SNAP_FLAG_set is set\n");
  112. if (v.irq_20c.Transport_Error)
  113. deb_chk("Transport error\n");
  114. if ((fc_pci->count % 1000) == 0)
  115. deb_chk("%d valid irq took place so far\n",fc_pci->count);
  116. if (v.irq_20c.DMA1_IRQ_Status == 1) {
  117. if (fc_pci->active_dma1_addr == 0)
  118. flexcop_pass_dmx_packets(fc_pci->fc_dev,fc_pci->dma[0].cpu_addr0,fc_pci->dma[0].size / 188);
  119. else
  120. flexcop_pass_dmx_packets(fc_pci->fc_dev,fc_pci->dma[0].cpu_addr1,fc_pci->dma[0].size / 188);
  121. deb_irq("page change to page: %d\n",!fc_pci->active_dma1_addr);
  122. fc_pci->active_dma1_addr = !fc_pci->active_dma1_addr;
  123. } else if (v.irq_20c.DMA1_Timer_Status == 1) {
  124. /* for the timer IRQ we only can use buffer dmx feeding, because we don't have
  125. * complete TS packets when reading from the DMA memory */
  126. dma_addr_t cur_addr =
  127. fc->read_ibi_reg(fc,dma1_008).dma_0x8.dma_cur_addr << 2;
  128. u32 cur_pos = cur_addr - fc_pci->dma[0].dma_addr0;
  129. deb_irq("%u irq: %08x cur_addr: %llx: cur_pos: %08x, last_cur_pos: %08x ",
  130. jiffies_to_usecs(jiffies - fc_pci->last_irq),
  131. v.raw, (unsigned long long)cur_addr, cur_pos,
  132. fc_pci->last_dma1_cur_pos);
  133. fc_pci->last_irq = jiffies;
  134. /* buffer end was reached, restarted from the beginning
  135. * pass the data from last_cur_pos to the buffer end to the demux
  136. */
  137. if (cur_pos < fc_pci->last_dma1_cur_pos) {
  138. deb_irq(" end was reached: passing %d bytes ",(fc_pci->dma[0].size*2 - 1) - fc_pci->last_dma1_cur_pos);
  139. flexcop_pass_dmx_data(fc_pci->fc_dev,
  140. fc_pci->dma[0].cpu_addr0 + fc_pci->last_dma1_cur_pos,
  141. (fc_pci->dma[0].size*2) - fc_pci->last_dma1_cur_pos);
  142. fc_pci->last_dma1_cur_pos = 0;
  143. }
  144. if (cur_pos > fc_pci->last_dma1_cur_pos) {
  145. deb_irq(" passing %d bytes ",cur_pos - fc_pci->last_dma1_cur_pos);
  146. flexcop_pass_dmx_data(fc_pci->fc_dev,
  147. fc_pci->dma[0].cpu_addr0 + fc_pci->last_dma1_cur_pos,
  148. cur_pos - fc_pci->last_dma1_cur_pos);
  149. }
  150. deb_irq("\n");
  151. fc_pci->last_dma1_cur_pos = cur_pos;
  152. fc_pci->count++;
  153. } else {
  154. deb_irq("isr for flexcop called, apparently without reason (%08x)\n",v.raw);
  155. ret = IRQ_NONE;
  156. }
  157. spin_unlock_irq(&fc_pci->irq_lock);
  158. return ret;
  159. }
  160. static int flexcop_pci_stream_control(struct flexcop_device *fc, int onoff)
  161. {
  162. struct flexcop_pci *fc_pci = fc->bus_specific;
  163. if (onoff) {
  164. flexcop_dma_config(fc,&fc_pci->dma[0],FC_DMA_1);
  165. flexcop_dma_config(fc,&fc_pci->dma[1],FC_DMA_2);
  166. flexcop_dma_config_timer(fc,FC_DMA_1,0);
  167. flexcop_dma_xfer_control(fc,FC_DMA_1,FC_DMA_SUBADDR_0 | FC_DMA_SUBADDR_1,1);
  168. deb_irq("DMA xfer enabled\n");
  169. fc_pci->last_dma1_cur_pos = 0;
  170. flexcop_dma_control_timer_irq(fc,FC_DMA_1,1);
  171. deb_irq("IRQ enabled\n");
  172. // fc_pci->active_dma1_addr = 0;
  173. // flexcop_dma_control_size_irq(fc,FC_DMA_1,1);
  174. if (irq_chk_intv > 0)
  175. schedule_delayed_work(&fc_pci->irq_check_work,
  176. msecs_to_jiffies(irq_chk_intv < 100 ? 100 : irq_chk_intv));
  177. } else {
  178. if (irq_chk_intv > 0)
  179. cancel_delayed_work(&fc_pci->irq_check_work);
  180. flexcop_dma_control_timer_irq(fc,FC_DMA_1,0);
  181. deb_irq("IRQ disabled\n");
  182. // flexcop_dma_control_size_irq(fc,FC_DMA_1,0);
  183. flexcop_dma_xfer_control(fc,FC_DMA_1,FC_DMA_SUBADDR_0 | FC_DMA_SUBADDR_1,0);
  184. deb_irq("DMA xfer disabled\n");
  185. }
  186. return 0;
  187. }
  188. static int flexcop_pci_dma_init(struct flexcop_pci *fc_pci)
  189. {
  190. int ret;
  191. if ((ret = flexcop_dma_allocate(fc_pci->pdev,&fc_pci->dma[0],FC_DEFAULT_DMA1_BUFSIZE)) != 0)
  192. return ret;
  193. if ((ret = flexcop_dma_allocate(fc_pci->pdev,&fc_pci->dma[1],FC_DEFAULT_DMA2_BUFSIZE)) != 0)
  194. goto dma1_free;
  195. flexcop_sram_set_dest(fc_pci->fc_dev,FC_SRAM_DEST_MEDIA | FC_SRAM_DEST_NET, FC_SRAM_DEST_TARGET_DMA1);
  196. flexcop_sram_set_dest(fc_pci->fc_dev,FC_SRAM_DEST_CAO | FC_SRAM_DEST_CAI, FC_SRAM_DEST_TARGET_DMA2);
  197. fc_pci->init_state |= FC_PCI_DMA_INIT;
  198. goto success;
  199. dma1_free:
  200. flexcop_dma_free(&fc_pci->dma[0]);
  201. success:
  202. return ret;
  203. }
  204. static void flexcop_pci_dma_exit(struct flexcop_pci *fc_pci)
  205. {
  206. if (fc_pci->init_state & FC_PCI_DMA_INIT) {
  207. flexcop_dma_free(&fc_pci->dma[0]);
  208. flexcop_dma_free(&fc_pci->dma[1]);
  209. }
  210. fc_pci->init_state &= ~FC_PCI_DMA_INIT;
  211. }
  212. static int flexcop_pci_init(struct flexcop_pci *fc_pci)
  213. {
  214. int ret;
  215. u8 card_rev;
  216. pci_read_config_byte(fc_pci->pdev, PCI_CLASS_REVISION, &card_rev);
  217. info("card revision %x", card_rev);
  218. if ((ret = pci_enable_device(fc_pci->pdev)) != 0)
  219. return ret;
  220. pci_set_master(fc_pci->pdev);
  221. /* enable interrupts */
  222. // pci_write_config_dword(pdev, 0x6c, 0x8000);
  223. if ((ret = pci_request_regions(fc_pci->pdev, DRIVER_NAME)) != 0)
  224. goto err_pci_disable_device;
  225. fc_pci->io_mem = pci_iomap(fc_pci->pdev, 0, 0x800);
  226. if (!fc_pci->io_mem) {
  227. err("cannot map io memory\n");
  228. ret = -EIO;
  229. goto err_pci_release_regions;
  230. }
  231. pci_set_drvdata(fc_pci->pdev, fc_pci);
  232. if ((ret = request_irq(fc_pci->pdev->irq, flexcop_pci_isr,
  233. SA_SHIRQ, DRIVER_NAME, fc_pci)) != 0)
  234. goto err_pci_iounmap;
  235. spin_lock_init(&fc_pci->irq_lock);
  236. fc_pci->init_state |= FC_PCI_INIT;
  237. goto success;
  238. err_pci_iounmap:
  239. pci_iounmap(fc_pci->pdev, fc_pci->io_mem);
  240. pci_set_drvdata(fc_pci->pdev, NULL);
  241. err_pci_release_regions:
  242. pci_release_regions(fc_pci->pdev);
  243. err_pci_disable_device:
  244. pci_disable_device(fc_pci->pdev);
  245. success:
  246. return ret;
  247. }
  248. static void flexcop_pci_exit(struct flexcop_pci *fc_pci)
  249. {
  250. if (fc_pci->init_state & FC_PCI_INIT) {
  251. free_irq(fc_pci->pdev->irq, fc_pci);
  252. pci_iounmap(fc_pci->pdev, fc_pci->io_mem);
  253. pci_set_drvdata(fc_pci->pdev, NULL);
  254. pci_release_regions(fc_pci->pdev);
  255. pci_disable_device(fc_pci->pdev);
  256. }
  257. fc_pci->init_state &= ~FC_PCI_INIT;
  258. }
  259. static int flexcop_pci_probe(struct pci_dev *pdev, const struct pci_device_id *ent)
  260. {
  261. struct flexcop_device *fc;
  262. struct flexcop_pci *fc_pci;
  263. int ret = -ENOMEM;
  264. if ((fc = flexcop_device_kmalloc(sizeof(struct flexcop_pci))) == NULL) {
  265. err("out of memory\n");
  266. return -ENOMEM;
  267. }
  268. /* general flexcop init */
  269. fc_pci = fc->bus_specific;
  270. fc_pci->fc_dev = fc;
  271. fc->read_ibi_reg = flexcop_pci_read_ibi_reg;
  272. fc->write_ibi_reg = flexcop_pci_write_ibi_reg;
  273. fc->i2c_request = flexcop_i2c_request;
  274. fc->get_mac_addr = flexcop_eeprom_check_mac_addr;
  275. fc->stream_control = flexcop_pci_stream_control;
  276. if (enable_pid_filtering)
  277. info("will use the HW PID filter.");
  278. else
  279. info("will pass the complete TS to the demuxer.");
  280. fc->pid_filtering = enable_pid_filtering;
  281. fc->bus_type = FC_PCI;
  282. fc->dev = &pdev->dev;
  283. fc->owner = THIS_MODULE;
  284. /* bus specific part */
  285. fc_pci->pdev = pdev;
  286. if ((ret = flexcop_pci_init(fc_pci)) != 0)
  287. goto err_kfree;
  288. /* init flexcop */
  289. if ((ret = flexcop_device_initialize(fc)) != 0)
  290. goto err_pci_exit;
  291. /* init dma */
  292. if ((ret = flexcop_pci_dma_init(fc_pci)) != 0)
  293. goto err_fc_exit;
  294. INIT_WORK(&fc_pci->irq_check_work, flexcop_pci_irq_check_work, fc_pci);
  295. goto success;
  296. err_fc_exit:
  297. flexcop_device_exit(fc);
  298. err_pci_exit:
  299. flexcop_pci_exit(fc_pci);
  300. err_kfree:
  301. flexcop_device_kfree(fc);
  302. success:
  303. return ret;
  304. }
  305. /* in theory every _exit function should be called exactly two times,
  306. * here and in the bail-out-part of the _init-function
  307. */
  308. static void flexcop_pci_remove(struct pci_dev *pdev)
  309. {
  310. struct flexcop_pci *fc_pci = pci_get_drvdata(pdev);
  311. flexcop_pci_dma_exit(fc_pci);
  312. flexcop_device_exit(fc_pci->fc_dev);
  313. flexcop_pci_exit(fc_pci);
  314. flexcop_device_kfree(fc_pci->fc_dev);
  315. }
  316. static struct pci_device_id flexcop_pci_tbl[] = {
  317. { PCI_DEVICE(0x13d0, 0x2103) },
  318. /* { PCI_DEVICE(0x13d0, 0x2200) }, ? */
  319. { },
  320. };
  321. MODULE_DEVICE_TABLE(pci, flexcop_pci_tbl);
  322. static struct pci_driver flexcop_pci_driver = {
  323. .name = "b2c2_flexcop_pci",
  324. .id_table = flexcop_pci_tbl,
  325. .probe = flexcop_pci_probe,
  326. .remove = flexcop_pci_remove,
  327. };
  328. static int __init flexcop_pci_module_init(void)
  329. {
  330. return pci_register_driver(&flexcop_pci_driver);
  331. }
  332. static void __exit flexcop_pci_module_exit(void)
  333. {
  334. pci_unregister_driver(&flexcop_pci_driver);
  335. }
  336. module_init(flexcop_pci_module_init);
  337. module_exit(flexcop_pci_module_exit);
  338. MODULE_AUTHOR(DRIVER_AUTHOR);
  339. MODULE_DESCRIPTION(DRIVER_NAME);
  340. MODULE_LICENSE("GPL");