ueagle-atm.c 68 KB

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  1. // SPDX-License-Identifier: (GPL-2.0+ OR BSD-3-Clause)
  2. /*-
  3. * Copyright (c) 2003, 2004
  4. * Damien Bergamini <damien.bergamini@free.fr>. All rights reserved.
  5. *
  6. * Copyright (c) 2005-2007 Matthieu Castet <castet.matthieu@free.fr>
  7. * Copyright (c) 2005-2007 Stanislaw Gruszka <stf_xl@wp.pl>
  8. *
  9. * This software is available to you under a choice of one of two
  10. * licenses. You may choose to be licensed under the terms of the GNU
  11. * General Public License (GPL) Version 2, available from the file
  12. * COPYING in the main directory of this source tree, or the
  13. * BSD license below:
  14. *
  15. * Redistribution and use in source and binary forms, with or without
  16. * modification, are permitted provided that the following conditions
  17. * are met:
  18. * 1. Redistributions of source code must retain the above copyright
  19. * notice unmodified, this list of conditions, and the following
  20. * disclaimer.
  21. * 2. Redistributions in binary form must reproduce the above copyright
  22. * notice, this list of conditions and the following disclaimer in the
  23. * documentation and/or other materials provided with the distribution.
  24. *
  25. * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
  26. * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
  27. * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
  28. * ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE
  29. * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
  30. * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
  31. * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
  32. * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
  33. * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
  34. * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
  35. * SUCH DAMAGE.
  36. *
  37. * GPL license :
  38. * This program is free software; you can redistribute it and/or
  39. * modify it under the terms of the GNU General Public License
  40. * as published by the Free Software Foundation; either version 2
  41. * of the License, or (at your option) any later version.
  42. *
  43. * This program is distributed in the hope that it will be useful,
  44. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  45. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  46. * GNU General Public License for more details.
  47. *
  48. * You should have received a copy of the GNU General Public License
  49. * along with this program; if not, write to the Free Software
  50. * Foundation, Inc., 59 Temple Place - Suite 330, Boston, MA 02111-1307, USA.
  51. *
  52. *
  53. * HISTORY : some part of the code was base on ueagle 1.3 BSD driver,
  54. * Damien Bergamini agree to put his code under a DUAL GPL/BSD license.
  55. *
  56. * The rest of the code was was rewritten from scratch.
  57. */
  58. #include <linux/module.h>
  59. #include <linux/moduleparam.h>
  60. #include <linux/crc32.h>
  61. #include <linux/usb.h>
  62. #include <linux/firmware.h>
  63. #include <linux/ctype.h>
  64. #include <linux/sched.h>
  65. #include <linux/kthread.h>
  66. #include <linux/mutex.h>
  67. #include <linux/freezer.h>
  68. #include <linux/slab.h>
  69. #include <linux/kernel.h>
  70. #include <asm/unaligned.h>
  71. #include "usbatm.h"
  72. #define EAGLEUSBVERSION "ueagle 1.4"
  73. /*
  74. * Debug macros
  75. */
  76. #define uea_dbg(usb_dev, format, args...) \
  77. do { \
  78. if (debug >= 1) \
  79. dev_dbg(&(usb_dev)->dev, \
  80. "[ueagle-atm dbg] %s: " format, \
  81. __func__, ##args); \
  82. } while (0)
  83. #define uea_vdbg(usb_dev, format, args...) \
  84. do { \
  85. if (debug >= 2) \
  86. dev_dbg(&(usb_dev)->dev, \
  87. "[ueagle-atm vdbg] " format, ##args); \
  88. } while (0)
  89. #define uea_enters(usb_dev) \
  90. uea_vdbg(usb_dev, "entering %s\n" , __func__)
  91. #define uea_leaves(usb_dev) \
  92. uea_vdbg(usb_dev, "leaving %s\n" , __func__)
  93. #define uea_err(usb_dev, format, args...) \
  94. dev_err(&(usb_dev)->dev , "[UEAGLE-ATM] " format , ##args)
  95. #define uea_warn(usb_dev, format, args...) \
  96. dev_warn(&(usb_dev)->dev , "[Ueagle-atm] " format, ##args)
  97. #define uea_info(usb_dev, format, args...) \
  98. dev_info(&(usb_dev)->dev , "[ueagle-atm] " format, ##args)
  99. struct intr_pkt;
  100. /* cmv's from firmware */
  101. struct uea_cmvs_v1 {
  102. u32 address;
  103. u16 offset;
  104. u32 data;
  105. } __packed;
  106. struct uea_cmvs_v2 {
  107. u32 group;
  108. u32 address;
  109. u32 offset;
  110. u32 data;
  111. } __packed;
  112. /* information about currently processed cmv */
  113. struct cmv_dsc_e1 {
  114. u8 function;
  115. u16 idx;
  116. u32 address;
  117. u16 offset;
  118. };
  119. struct cmv_dsc_e4 {
  120. u16 function;
  121. u16 offset;
  122. u16 address;
  123. u16 group;
  124. };
  125. union cmv_dsc {
  126. struct cmv_dsc_e1 e1;
  127. struct cmv_dsc_e4 e4;
  128. };
  129. struct uea_softc {
  130. struct usb_device *usb_dev;
  131. struct usbatm_data *usbatm;
  132. int modem_index;
  133. unsigned int driver_info;
  134. int annex;
  135. #define ANNEXA 0
  136. #define ANNEXB 1
  137. int booting;
  138. int reset;
  139. wait_queue_head_t sync_q;
  140. struct task_struct *kthread;
  141. u32 data;
  142. u32 data1;
  143. int cmv_ack;
  144. union cmv_dsc cmv_dsc;
  145. struct work_struct task;
  146. u16 pageno;
  147. u16 ovl;
  148. const struct firmware *dsp_firm;
  149. struct urb *urb_int;
  150. void (*dispatch_cmv)(struct uea_softc *, struct intr_pkt *);
  151. void (*schedule_load_page)(struct uea_softc *, struct intr_pkt *);
  152. int (*stat)(struct uea_softc *);
  153. int (*send_cmvs)(struct uea_softc *);
  154. /* keep in sync with eaglectl */
  155. struct uea_stats {
  156. struct {
  157. u32 state;
  158. u32 flags;
  159. u32 mflags;
  160. u32 vidcpe;
  161. u32 vidco;
  162. u32 dsrate;
  163. u32 usrate;
  164. u32 dsunc;
  165. u32 usunc;
  166. u32 dscorr;
  167. u32 uscorr;
  168. u32 txflow;
  169. u32 rxflow;
  170. u32 usattenuation;
  171. u32 dsattenuation;
  172. u32 dsmargin;
  173. u32 usmargin;
  174. u32 firmid;
  175. } phy;
  176. } stats;
  177. };
  178. /*
  179. * Elsa IDs
  180. */
  181. #define ELSA_VID 0x05CC
  182. #define ELSA_PID_PSTFIRM 0x3350
  183. #define ELSA_PID_PREFIRM 0x3351
  184. #define ELSA_PID_A_PREFIRM 0x3352
  185. #define ELSA_PID_A_PSTFIRM 0x3353
  186. #define ELSA_PID_B_PREFIRM 0x3362
  187. #define ELSA_PID_B_PSTFIRM 0x3363
  188. /*
  189. * Devolo IDs : pots if (pid & 0x10)
  190. */
  191. #define DEVOLO_VID 0x1039
  192. #define DEVOLO_EAGLE_I_A_PID_PSTFIRM 0x2110
  193. #define DEVOLO_EAGLE_I_A_PID_PREFIRM 0x2111
  194. #define DEVOLO_EAGLE_I_B_PID_PSTFIRM 0x2100
  195. #define DEVOLO_EAGLE_I_B_PID_PREFIRM 0x2101
  196. #define DEVOLO_EAGLE_II_A_PID_PSTFIRM 0x2130
  197. #define DEVOLO_EAGLE_II_A_PID_PREFIRM 0x2131
  198. #define DEVOLO_EAGLE_II_B_PID_PSTFIRM 0x2120
  199. #define DEVOLO_EAGLE_II_B_PID_PREFIRM 0x2121
  200. /*
  201. * Reference design USB IDs
  202. */
  203. #define ANALOG_VID 0x1110
  204. #define ADI930_PID_PREFIRM 0x9001
  205. #define ADI930_PID_PSTFIRM 0x9000
  206. #define EAGLE_I_PID_PREFIRM 0x9010 /* Eagle I */
  207. #define EAGLE_I_PID_PSTFIRM 0x900F /* Eagle I */
  208. #define EAGLE_IIC_PID_PREFIRM 0x9024 /* Eagle IIC */
  209. #define EAGLE_IIC_PID_PSTFIRM 0x9023 /* Eagle IIC */
  210. #define EAGLE_II_PID_PREFIRM 0x9022 /* Eagle II */
  211. #define EAGLE_II_PID_PSTFIRM 0x9021 /* Eagle II */
  212. #define EAGLE_III_PID_PREFIRM 0x9032 /* Eagle III */
  213. #define EAGLE_III_PID_PSTFIRM 0x9031 /* Eagle III */
  214. #define EAGLE_IV_PID_PREFIRM 0x9042 /* Eagle IV */
  215. #define EAGLE_IV_PID_PSTFIRM 0x9041 /* Eagle IV */
  216. /*
  217. * USR USB IDs
  218. */
  219. #define USR_VID 0x0BAF
  220. #define MILLER_A_PID_PREFIRM 0x00F2
  221. #define MILLER_A_PID_PSTFIRM 0x00F1
  222. #define MILLER_B_PID_PREFIRM 0x00FA
  223. #define MILLER_B_PID_PSTFIRM 0x00F9
  224. #define HEINEKEN_A_PID_PREFIRM 0x00F6
  225. #define HEINEKEN_A_PID_PSTFIRM 0x00F5
  226. #define HEINEKEN_B_PID_PREFIRM 0x00F8
  227. #define HEINEKEN_B_PID_PSTFIRM 0x00F7
  228. #define PREFIRM 0
  229. #define PSTFIRM (1<<7)
  230. #define AUTO_ANNEX_A (1<<8)
  231. #define AUTO_ANNEX_B (1<<9)
  232. enum {
  233. ADI930 = 0,
  234. EAGLE_I,
  235. EAGLE_II,
  236. EAGLE_III,
  237. EAGLE_IV
  238. };
  239. /* macros for both struct usb_device_id and struct uea_softc */
  240. #define UEA_IS_PREFIRM(x) \
  241. (!((x)->driver_info & PSTFIRM))
  242. #define UEA_CHIP_VERSION(x) \
  243. ((x)->driver_info & 0xf)
  244. #define IS_ISDN(x) \
  245. ((x)->annex & ANNEXB)
  246. #define INS_TO_USBDEV(ins) (ins->usb_dev)
  247. #define GET_STATUS(data) \
  248. ((data >> 8) & 0xf)
  249. #define IS_OPERATIONAL(sc) \
  250. ((UEA_CHIP_VERSION(sc) != EAGLE_IV) ? \
  251. (GET_STATUS(sc->stats.phy.state) == 2) : \
  252. (sc->stats.phy.state == 7))
  253. /*
  254. * Set of macros to handle unaligned data in the firmware blob.
  255. * The FW_GET_BYTE() macro is provided only for consistency.
  256. */
  257. #define FW_GET_BYTE(p) (*((__u8 *) (p)))
  258. #define FW_DIR "ueagle-atm/"
  259. #define EAGLE_FIRMWARE FW_DIR "eagle.fw"
  260. #define ADI930_FIRMWARE FW_DIR "adi930.fw"
  261. #define EAGLE_I_FIRMWARE FW_DIR "eagleI.fw"
  262. #define EAGLE_II_FIRMWARE FW_DIR "eagleII.fw"
  263. #define EAGLE_III_FIRMWARE FW_DIR "eagleIII.fw"
  264. #define EAGLE_IV_FIRMWARE FW_DIR "eagleIV.fw"
  265. #define DSP4I_FIRMWARE FW_DIR "DSP4i.bin"
  266. #define DSP4P_FIRMWARE FW_DIR "DSP4p.bin"
  267. #define DSP9I_FIRMWARE FW_DIR "DSP9i.bin"
  268. #define DSP9P_FIRMWARE FW_DIR "DSP9p.bin"
  269. #define DSPEI_FIRMWARE FW_DIR "DSPei.bin"
  270. #define DSPEP_FIRMWARE FW_DIR "DSPep.bin"
  271. #define FPGA930_FIRMWARE FW_DIR "930-fpga.bin"
  272. #define CMV4P_FIRMWARE FW_DIR "CMV4p.bin"
  273. #define CMV4PV2_FIRMWARE FW_DIR "CMV4p.bin.v2"
  274. #define CMV4I_FIRMWARE FW_DIR "CMV4i.bin"
  275. #define CMV4IV2_FIRMWARE FW_DIR "CMV4i.bin.v2"
  276. #define CMV9P_FIRMWARE FW_DIR "CMV9p.bin"
  277. #define CMV9PV2_FIRMWARE FW_DIR "CMV9p.bin.v2"
  278. #define CMV9I_FIRMWARE FW_DIR "CMV9i.bin"
  279. #define CMV9IV2_FIRMWARE FW_DIR "CMV9i.bin.v2"
  280. #define CMVEP_FIRMWARE FW_DIR "CMVep.bin"
  281. #define CMVEPV2_FIRMWARE FW_DIR "CMVep.bin.v2"
  282. #define CMVEI_FIRMWARE FW_DIR "CMVei.bin"
  283. #define CMVEIV2_FIRMWARE FW_DIR "CMVei.bin.v2"
  284. #define UEA_FW_NAME_MAX 30
  285. #define NB_MODEM 4
  286. #define BULK_TIMEOUT 300
  287. #define CTRL_TIMEOUT 1000
  288. #define ACK_TIMEOUT msecs_to_jiffies(3000)
  289. #define UEA_INTR_IFACE_NO 0
  290. #define UEA_US_IFACE_NO 1
  291. #define UEA_DS_IFACE_NO 2
  292. #define FASTEST_ISO_INTF 8
  293. #define UEA_BULK_DATA_PIPE 0x02
  294. #define UEA_IDMA_PIPE 0x04
  295. #define UEA_INTR_PIPE 0x04
  296. #define UEA_ISO_DATA_PIPE 0x08
  297. #define UEA_E1_SET_BLOCK 0x0001
  298. #define UEA_E4_SET_BLOCK 0x002c
  299. #define UEA_SET_MODE 0x0003
  300. #define UEA_SET_2183_DATA 0x0004
  301. #define UEA_SET_TIMEOUT 0x0011
  302. #define UEA_LOOPBACK_OFF 0x0002
  303. #define UEA_LOOPBACK_ON 0x0003
  304. #define UEA_BOOT_IDMA 0x0006
  305. #define UEA_START_RESET 0x0007
  306. #define UEA_END_RESET 0x0008
  307. #define UEA_SWAP_MAILBOX (0x3fcd | 0x4000)
  308. #define UEA_MPTX_START (0x3fce | 0x4000)
  309. #define UEA_MPTX_MAILBOX (0x3fd6 | 0x4000)
  310. #define UEA_MPRX_MAILBOX (0x3fdf | 0x4000)
  311. /* block information in eagle4 dsp firmware */
  312. struct block_index {
  313. __le32 PageOffset;
  314. __le32 NotLastBlock;
  315. __le32 dummy;
  316. __le32 PageSize;
  317. __le32 PageAddress;
  318. __le16 dummy1;
  319. __le16 PageNumber;
  320. } __packed;
  321. #define E4_IS_BOOT_PAGE(PageSize) ((le32_to_cpu(PageSize)) & 0x80000000)
  322. #define E4_PAGE_BYTES(PageSize) ((le32_to_cpu(PageSize) & 0x7fffffff) * 4)
  323. #define E4_L1_STRING_HEADER 0x10
  324. #define E4_MAX_PAGE_NUMBER 0x58
  325. #define E4_NO_SWAPPAGE_HEADERS 0x31
  326. /* l1_code is eagle4 dsp firmware format */
  327. struct l1_code {
  328. u8 string_header[E4_L1_STRING_HEADER];
  329. u8 page_number_to_block_index[E4_MAX_PAGE_NUMBER];
  330. struct block_index page_header[E4_NO_SWAPPAGE_HEADERS];
  331. u8 code[0];
  332. } __packed;
  333. /* structures describing a block within a DSP page */
  334. struct block_info_e1 {
  335. __le16 wHdr;
  336. __le16 wAddress;
  337. __le16 wSize;
  338. __le16 wOvlOffset;
  339. __le16 wOvl; /* overlay */
  340. __le16 wLast;
  341. } __packed;
  342. #define E1_BLOCK_INFO_SIZE 12
  343. struct block_info_e4 {
  344. __be16 wHdr;
  345. __u8 bBootPage;
  346. __u8 bPageNumber;
  347. __be32 dwSize;
  348. __be32 dwAddress;
  349. __be16 wReserved;
  350. } __packed;
  351. #define E4_BLOCK_INFO_SIZE 14
  352. #define UEA_BIHDR 0xabcd
  353. #define UEA_RESERVED 0xffff
  354. /* constants describing cmv type */
  355. #define E1_PREAMBLE 0x535c
  356. #define E1_MODEMTOHOST 0x01
  357. #define E1_HOSTTOMODEM 0x10
  358. #define E1_MEMACCESS 0x1
  359. #define E1_ADSLDIRECTIVE 0x7
  360. #define E1_FUNCTION_TYPE(f) ((f) >> 4)
  361. #define E1_FUNCTION_SUBTYPE(f) ((f) & 0x0f)
  362. #define E4_MEMACCESS 0
  363. #define E4_ADSLDIRECTIVE 0xf
  364. #define E4_FUNCTION_TYPE(f) ((f) >> 8)
  365. #define E4_FUNCTION_SIZE(f) ((f) & 0x0f)
  366. #define E4_FUNCTION_SUBTYPE(f) (((f) >> 4) & 0x0f)
  367. /* for MEMACCESS */
  368. #define E1_REQUESTREAD 0x0
  369. #define E1_REQUESTWRITE 0x1
  370. #define E1_REPLYREAD 0x2
  371. #define E1_REPLYWRITE 0x3
  372. #define E4_REQUESTREAD 0x0
  373. #define E4_REQUESTWRITE 0x4
  374. #define E4_REPLYREAD (E4_REQUESTREAD | 1)
  375. #define E4_REPLYWRITE (E4_REQUESTWRITE | 1)
  376. /* for ADSLDIRECTIVE */
  377. #define E1_KERNELREADY 0x0
  378. #define E1_MODEMREADY 0x1
  379. #define E4_KERNELREADY 0x0
  380. #define E4_MODEMREADY 0x1
  381. #define E1_MAKEFUNCTION(t, s) (((t) & 0xf) << 4 | ((s) & 0xf))
  382. #define E4_MAKEFUNCTION(t, st, s) (((t) & 0xf) << 8 | \
  383. ((st) & 0xf) << 4 | ((s) & 0xf))
  384. #define E1_MAKESA(a, b, c, d) \
  385. (((c) & 0xff) << 24 | \
  386. ((d) & 0xff) << 16 | \
  387. ((a) & 0xff) << 8 | \
  388. ((b) & 0xff))
  389. #define E1_GETSA1(a) ((a >> 8) & 0xff)
  390. #define E1_GETSA2(a) (a & 0xff)
  391. #define E1_GETSA3(a) ((a >> 24) & 0xff)
  392. #define E1_GETSA4(a) ((a >> 16) & 0xff)
  393. #define E1_SA_CNTL E1_MAKESA('C', 'N', 'T', 'L')
  394. #define E1_SA_DIAG E1_MAKESA('D', 'I', 'A', 'G')
  395. #define E1_SA_INFO E1_MAKESA('I', 'N', 'F', 'O')
  396. #define E1_SA_OPTN E1_MAKESA('O', 'P', 'T', 'N')
  397. #define E1_SA_RATE E1_MAKESA('R', 'A', 'T', 'E')
  398. #define E1_SA_STAT E1_MAKESA('S', 'T', 'A', 'T')
  399. #define E4_SA_CNTL 1
  400. #define E4_SA_STAT 2
  401. #define E4_SA_INFO 3
  402. #define E4_SA_TEST 4
  403. #define E4_SA_OPTN 5
  404. #define E4_SA_RATE 6
  405. #define E4_SA_DIAG 7
  406. #define E4_SA_CNFG 8
  407. /* structures representing a CMV (Configuration and Management Variable) */
  408. struct cmv_e1 {
  409. __le16 wPreamble;
  410. __u8 bDirection;
  411. __u8 bFunction;
  412. __le16 wIndex;
  413. __le32 dwSymbolicAddress;
  414. __le16 wOffsetAddress;
  415. __le32 dwData;
  416. } __packed;
  417. struct cmv_e4 {
  418. __be16 wGroup;
  419. __be16 wFunction;
  420. __be16 wOffset;
  421. __be16 wAddress;
  422. __be32 dwData[6];
  423. } __packed;
  424. /* structures representing swap information */
  425. struct swap_info_e1 {
  426. __u8 bSwapPageNo;
  427. __u8 bOvl; /* overlay */
  428. } __packed;
  429. struct swap_info_e4 {
  430. __u8 bSwapPageNo;
  431. } __packed;
  432. /* structures representing interrupt data */
  433. #define e1_bSwapPageNo u.e1.s1.swapinfo.bSwapPageNo
  434. #define e1_bOvl u.e1.s1.swapinfo.bOvl
  435. #define e4_bSwapPageNo u.e4.s1.swapinfo.bSwapPageNo
  436. #define INT_LOADSWAPPAGE 0x0001
  437. #define INT_INCOMINGCMV 0x0002
  438. union intr_data_e1 {
  439. struct {
  440. struct swap_info_e1 swapinfo;
  441. __le16 wDataSize;
  442. } __packed s1;
  443. struct {
  444. struct cmv_e1 cmv;
  445. __le16 wDataSize;
  446. } __packed s2;
  447. } __packed;
  448. union intr_data_e4 {
  449. struct {
  450. struct swap_info_e4 swapinfo;
  451. __le16 wDataSize;
  452. } __packed s1;
  453. struct {
  454. struct cmv_e4 cmv;
  455. __le16 wDataSize;
  456. } __packed s2;
  457. } __packed;
  458. struct intr_pkt {
  459. __u8 bType;
  460. __u8 bNotification;
  461. __le16 wValue;
  462. __le16 wIndex;
  463. __le16 wLength;
  464. __le16 wInterrupt;
  465. union {
  466. union intr_data_e1 e1;
  467. union intr_data_e4 e4;
  468. } u;
  469. } __packed;
  470. #define E1_INTR_PKT_SIZE 28
  471. #define E4_INTR_PKT_SIZE 64
  472. static struct usb_driver uea_driver;
  473. static DEFINE_MUTEX(uea_mutex);
  474. static const char * const chip_name[] = {
  475. "ADI930", "Eagle I", "Eagle II", "Eagle III", "Eagle IV"};
  476. static int modem_index;
  477. static unsigned int debug;
  478. static unsigned int altsetting[NB_MODEM] = {
  479. [0 ... (NB_MODEM - 1)] = FASTEST_ISO_INTF};
  480. static bool sync_wait[NB_MODEM];
  481. static char *cmv_file[NB_MODEM];
  482. static int annex[NB_MODEM];
  483. module_param(debug, uint, 0644);
  484. MODULE_PARM_DESC(debug, "module debug level (0=off,1=on,2=verbose)");
  485. module_param_array(altsetting, uint, NULL, 0644);
  486. MODULE_PARM_DESC(altsetting, "alternate setting for incoming traffic: 0=bulk, "
  487. "1=isoc slowest, ... , 8=isoc fastest (default)");
  488. module_param_array(sync_wait, bool, NULL, 0644);
  489. MODULE_PARM_DESC(sync_wait, "wait the synchronisation before starting ATM");
  490. module_param_array(cmv_file, charp, NULL, 0644);
  491. MODULE_PARM_DESC(cmv_file,
  492. "file name with configuration and management variables");
  493. module_param_array(annex, uint, NULL, 0644);
  494. MODULE_PARM_DESC(annex,
  495. "manually set annex a/b (0=auto, 1=annex a, 2=annex b)");
  496. #define uea_wait(sc, cond, timeo) \
  497. ({ \
  498. int _r = wait_event_interruptible_timeout(sc->sync_q, \
  499. (cond) || kthread_should_stop(), timeo); \
  500. if (kthread_should_stop()) \
  501. _r = -ENODEV; \
  502. _r; \
  503. })
  504. #define UPDATE_ATM_STAT(type, val) \
  505. do { \
  506. if (sc->usbatm->atm_dev) \
  507. sc->usbatm->atm_dev->type = val; \
  508. } while (0)
  509. #define UPDATE_ATM_SIGNAL(val) \
  510. do { \
  511. if (sc->usbatm->atm_dev) \
  512. atm_dev_signal_change(sc->usbatm->atm_dev, val); \
  513. } while (0)
  514. /* Firmware loading */
  515. #define LOAD_INTERNAL 0xA0
  516. #define F8051_USBCS 0x7f92
  517. /**
  518. * uea_send_modem_cmd - Send a command for pre-firmware devices.
  519. */
  520. static int uea_send_modem_cmd(struct usb_device *usb,
  521. u16 addr, u16 size, const u8 *buff)
  522. {
  523. int ret = -ENOMEM;
  524. u8 *xfer_buff;
  525. xfer_buff = kmemdup(buff, size, GFP_KERNEL);
  526. if (xfer_buff) {
  527. ret = usb_control_msg(usb,
  528. usb_sndctrlpipe(usb, 0),
  529. LOAD_INTERNAL,
  530. USB_DIR_OUT | USB_TYPE_VENDOR |
  531. USB_RECIP_DEVICE, addr, 0, xfer_buff,
  532. size, CTRL_TIMEOUT);
  533. kfree(xfer_buff);
  534. }
  535. if (ret < 0)
  536. return ret;
  537. return (ret == size) ? 0 : -EIO;
  538. }
  539. static void uea_upload_pre_firmware(const struct firmware *fw_entry,
  540. void *context)
  541. {
  542. struct usb_device *usb = context;
  543. const u8 *pfw;
  544. u8 value;
  545. u32 crc = 0;
  546. int ret, size;
  547. uea_enters(usb);
  548. if (!fw_entry)
  549. goto err;
  550. pfw = fw_entry->data;
  551. size = fw_entry->size;
  552. if (size < 4)
  553. goto err_fw_corrupted;
  554. crc = get_unaligned_le32(pfw);
  555. pfw += 4;
  556. size -= 4;
  557. if (crc32_be(0, pfw, size) != crc)
  558. goto err_fw_corrupted;
  559. /*
  560. * Start to upload firmware : send reset
  561. */
  562. value = 1;
  563. ret = uea_send_modem_cmd(usb, F8051_USBCS, sizeof(value), &value);
  564. if (ret < 0) {
  565. uea_err(usb, "modem reset failed with error %d\n", ret);
  566. goto err;
  567. }
  568. while (size > 3) {
  569. u8 len = FW_GET_BYTE(pfw);
  570. u16 add = get_unaligned_le16(pfw + 1);
  571. size -= len + 3;
  572. if (size < 0)
  573. goto err_fw_corrupted;
  574. ret = uea_send_modem_cmd(usb, add, len, pfw + 3);
  575. if (ret < 0) {
  576. uea_err(usb, "uploading firmware data failed "
  577. "with error %d\n", ret);
  578. goto err;
  579. }
  580. pfw += len + 3;
  581. }
  582. if (size != 0)
  583. goto err_fw_corrupted;
  584. /*
  585. * Tell the modem we finish : de-assert reset
  586. */
  587. value = 0;
  588. ret = uea_send_modem_cmd(usb, F8051_USBCS, 1, &value);
  589. if (ret < 0)
  590. uea_err(usb, "modem de-assert failed with error %d\n", ret);
  591. else
  592. uea_info(usb, "firmware uploaded\n");
  593. goto err;
  594. err_fw_corrupted:
  595. uea_err(usb, "firmware is corrupted\n");
  596. err:
  597. release_firmware(fw_entry);
  598. uea_leaves(usb);
  599. }
  600. /**
  601. * uea_load_firmware - Load usb firmware for pre-firmware devices.
  602. */
  603. static int uea_load_firmware(struct usb_device *usb, unsigned int ver)
  604. {
  605. int ret;
  606. char *fw_name = EAGLE_FIRMWARE;
  607. uea_enters(usb);
  608. uea_info(usb, "pre-firmware device, uploading firmware\n");
  609. switch (ver) {
  610. case ADI930:
  611. fw_name = ADI930_FIRMWARE;
  612. break;
  613. case EAGLE_I:
  614. fw_name = EAGLE_I_FIRMWARE;
  615. break;
  616. case EAGLE_II:
  617. fw_name = EAGLE_II_FIRMWARE;
  618. break;
  619. case EAGLE_III:
  620. fw_name = EAGLE_III_FIRMWARE;
  621. break;
  622. case EAGLE_IV:
  623. fw_name = EAGLE_IV_FIRMWARE;
  624. break;
  625. }
  626. ret = request_firmware_nowait(THIS_MODULE, 1, fw_name, &usb->dev,
  627. GFP_KERNEL, usb,
  628. uea_upload_pre_firmware);
  629. uea_leaves(usb);
  630. return ret;
  631. }
  632. /* modem management : dsp firmware, send/read CMV, monitoring statistic
  633. */
  634. /*
  635. * Make sure that the DSP code provided is safe to use.
  636. */
  637. static int check_dsp_e1(const u8 *dsp, unsigned int len)
  638. {
  639. u8 pagecount, blockcount;
  640. u16 blocksize;
  641. u32 pageoffset;
  642. unsigned int i, j, p, pp;
  643. pagecount = FW_GET_BYTE(dsp);
  644. p = 1;
  645. /* enough space for page offsets? */
  646. if (p + 4 * pagecount > len)
  647. return 1;
  648. for (i = 0; i < pagecount; i++) {
  649. pageoffset = get_unaligned_le32(dsp + p);
  650. p += 4;
  651. if (pageoffset == 0)
  652. continue;
  653. /* enough space for blockcount? */
  654. if (pageoffset >= len)
  655. return 1;
  656. pp = pageoffset;
  657. blockcount = FW_GET_BYTE(dsp + pp);
  658. pp += 1;
  659. for (j = 0; j < blockcount; j++) {
  660. /* enough space for block header? */
  661. if (pp + 4 > len)
  662. return 1;
  663. pp += 2; /* skip blockaddr */
  664. blocksize = get_unaligned_le16(dsp + pp);
  665. pp += 2;
  666. /* enough space for block data? */
  667. if (pp + blocksize > len)
  668. return 1;
  669. pp += blocksize;
  670. }
  671. }
  672. return 0;
  673. }
  674. static int check_dsp_e4(const u8 *dsp, int len)
  675. {
  676. int i;
  677. struct l1_code *p = (struct l1_code *) dsp;
  678. unsigned int sum = p->code - dsp;
  679. if (len < sum)
  680. return 1;
  681. if (strcmp("STRATIPHY ANEXA", p->string_header) != 0 &&
  682. strcmp("STRATIPHY ANEXB", p->string_header) != 0)
  683. return 1;
  684. for (i = 0; i < E4_MAX_PAGE_NUMBER; i++) {
  685. struct block_index *blockidx;
  686. u8 blockno = p->page_number_to_block_index[i];
  687. if (blockno >= E4_NO_SWAPPAGE_HEADERS)
  688. continue;
  689. do {
  690. u64 l;
  691. if (blockno >= E4_NO_SWAPPAGE_HEADERS)
  692. return 1;
  693. blockidx = &p->page_header[blockno++];
  694. if ((u8 *)(blockidx + 1) - dsp >= len)
  695. return 1;
  696. if (le16_to_cpu(blockidx->PageNumber) != i)
  697. return 1;
  698. l = E4_PAGE_BYTES(blockidx->PageSize);
  699. sum += l;
  700. l += le32_to_cpu(blockidx->PageOffset);
  701. if (l > len)
  702. return 1;
  703. /* zero is zero regardless endianes */
  704. } while (blockidx->NotLastBlock);
  705. }
  706. return (sum == len) ? 0 : 1;
  707. }
  708. /*
  709. * send data to the idma pipe
  710. * */
  711. static int uea_idma_write(struct uea_softc *sc, const void *data, u32 size)
  712. {
  713. int ret = -ENOMEM;
  714. u8 *xfer_buff;
  715. int bytes_read;
  716. xfer_buff = kmemdup(data, size, GFP_KERNEL);
  717. if (!xfer_buff) {
  718. uea_err(INS_TO_USBDEV(sc), "can't allocate xfer_buff\n");
  719. return ret;
  720. }
  721. ret = usb_bulk_msg(sc->usb_dev,
  722. usb_sndbulkpipe(sc->usb_dev, UEA_IDMA_PIPE),
  723. xfer_buff, size, &bytes_read, BULK_TIMEOUT);
  724. kfree(xfer_buff);
  725. if (ret < 0)
  726. return ret;
  727. if (size != bytes_read) {
  728. uea_err(INS_TO_USBDEV(sc), "size != bytes_read %d %d\n", size,
  729. bytes_read);
  730. return -EIO;
  731. }
  732. return 0;
  733. }
  734. static int request_dsp(struct uea_softc *sc)
  735. {
  736. int ret;
  737. char *dsp_name;
  738. if (UEA_CHIP_VERSION(sc) == EAGLE_IV) {
  739. if (IS_ISDN(sc))
  740. dsp_name = DSP4I_FIRMWARE;
  741. else
  742. dsp_name = DSP4P_FIRMWARE;
  743. } else if (UEA_CHIP_VERSION(sc) == ADI930) {
  744. if (IS_ISDN(sc))
  745. dsp_name = DSP9I_FIRMWARE;
  746. else
  747. dsp_name = DSP9P_FIRMWARE;
  748. } else {
  749. if (IS_ISDN(sc))
  750. dsp_name = DSPEI_FIRMWARE;
  751. else
  752. dsp_name = DSPEP_FIRMWARE;
  753. }
  754. ret = request_firmware(&sc->dsp_firm, dsp_name, &sc->usb_dev->dev);
  755. if (ret)
  756. return ret;
  757. if (UEA_CHIP_VERSION(sc) == EAGLE_IV)
  758. ret = check_dsp_e4(sc->dsp_firm->data, sc->dsp_firm->size);
  759. else
  760. ret = check_dsp_e1(sc->dsp_firm->data, sc->dsp_firm->size);
  761. if (ret) {
  762. uea_err(INS_TO_USBDEV(sc), "firmware %s is corrupted\n",
  763. dsp_name);
  764. release_firmware(sc->dsp_firm);
  765. sc->dsp_firm = NULL;
  766. return -EILSEQ;
  767. }
  768. return 0;
  769. }
  770. /*
  771. * The uea_load_page() function must be called within a process context
  772. */
  773. static void uea_load_page_e1(struct work_struct *work)
  774. {
  775. struct uea_softc *sc = container_of(work, struct uea_softc, task);
  776. u16 pageno = sc->pageno;
  777. u16 ovl = sc->ovl;
  778. struct block_info_e1 bi;
  779. const u8 *p;
  780. u8 pagecount, blockcount;
  781. u16 blockaddr, blocksize;
  782. u32 pageoffset;
  783. int i;
  784. /* reload firmware when reboot start and it's loaded already */
  785. if (ovl == 0 && pageno == 0) {
  786. release_firmware(sc->dsp_firm);
  787. sc->dsp_firm = NULL;
  788. }
  789. if (sc->dsp_firm == NULL && request_dsp(sc) < 0)
  790. return;
  791. p = sc->dsp_firm->data;
  792. pagecount = FW_GET_BYTE(p);
  793. p += 1;
  794. if (pageno >= pagecount)
  795. goto bad1;
  796. p += 4 * pageno;
  797. pageoffset = get_unaligned_le32(p);
  798. if (pageoffset == 0)
  799. goto bad1;
  800. p = sc->dsp_firm->data + pageoffset;
  801. blockcount = FW_GET_BYTE(p);
  802. p += 1;
  803. uea_dbg(INS_TO_USBDEV(sc),
  804. "sending %u blocks for DSP page %u\n", blockcount, pageno);
  805. bi.wHdr = cpu_to_le16(UEA_BIHDR);
  806. bi.wOvl = cpu_to_le16(ovl);
  807. bi.wOvlOffset = cpu_to_le16(ovl | 0x8000);
  808. for (i = 0; i < blockcount; i++) {
  809. blockaddr = get_unaligned_le16(p);
  810. p += 2;
  811. blocksize = get_unaligned_le16(p);
  812. p += 2;
  813. bi.wSize = cpu_to_le16(blocksize);
  814. bi.wAddress = cpu_to_le16(blockaddr);
  815. bi.wLast = cpu_to_le16((i == blockcount - 1) ? 1 : 0);
  816. /* send block info through the IDMA pipe */
  817. if (uea_idma_write(sc, &bi, E1_BLOCK_INFO_SIZE))
  818. goto bad2;
  819. /* send block data through the IDMA pipe */
  820. if (uea_idma_write(sc, p, blocksize))
  821. goto bad2;
  822. p += blocksize;
  823. }
  824. return;
  825. bad2:
  826. uea_err(INS_TO_USBDEV(sc), "sending DSP block %u failed\n", i);
  827. return;
  828. bad1:
  829. uea_err(INS_TO_USBDEV(sc), "invalid DSP page %u requested\n", pageno);
  830. }
  831. static void __uea_load_page_e4(struct uea_softc *sc, u8 pageno, int boot)
  832. {
  833. struct block_info_e4 bi;
  834. struct block_index *blockidx;
  835. struct l1_code *p = (struct l1_code *) sc->dsp_firm->data;
  836. u8 blockno = p->page_number_to_block_index[pageno];
  837. bi.wHdr = cpu_to_be16(UEA_BIHDR);
  838. bi.bBootPage = boot;
  839. bi.bPageNumber = pageno;
  840. bi.wReserved = cpu_to_be16(UEA_RESERVED);
  841. do {
  842. const u8 *blockoffset;
  843. unsigned int blocksize;
  844. blockidx = &p->page_header[blockno];
  845. blocksize = E4_PAGE_BYTES(blockidx->PageSize);
  846. blockoffset = sc->dsp_firm->data + le32_to_cpu(
  847. blockidx->PageOffset);
  848. bi.dwSize = cpu_to_be32(blocksize);
  849. bi.dwAddress = cpu_to_be32(le32_to_cpu(blockidx->PageAddress));
  850. uea_dbg(INS_TO_USBDEV(sc),
  851. "sending block %u for DSP page "
  852. "%u size %u address %x\n",
  853. blockno, pageno, blocksize,
  854. le32_to_cpu(blockidx->PageAddress));
  855. /* send block info through the IDMA pipe */
  856. if (uea_idma_write(sc, &bi, E4_BLOCK_INFO_SIZE))
  857. goto bad;
  858. /* send block data through the IDMA pipe */
  859. if (uea_idma_write(sc, blockoffset, blocksize))
  860. goto bad;
  861. blockno++;
  862. } while (blockidx->NotLastBlock);
  863. return;
  864. bad:
  865. uea_err(INS_TO_USBDEV(sc), "sending DSP block %u failed\n", blockno);
  866. return;
  867. }
  868. static void uea_load_page_e4(struct work_struct *work)
  869. {
  870. struct uea_softc *sc = container_of(work, struct uea_softc, task);
  871. u8 pageno = sc->pageno;
  872. int i;
  873. struct block_info_e4 bi;
  874. struct l1_code *p;
  875. uea_dbg(INS_TO_USBDEV(sc), "sending DSP page %u\n", pageno);
  876. /* reload firmware when reboot start and it's loaded already */
  877. if (pageno == 0) {
  878. release_firmware(sc->dsp_firm);
  879. sc->dsp_firm = NULL;
  880. }
  881. if (sc->dsp_firm == NULL && request_dsp(sc) < 0)
  882. return;
  883. p = (struct l1_code *) sc->dsp_firm->data;
  884. if (pageno >= le16_to_cpu(p->page_header[0].PageNumber)) {
  885. uea_err(INS_TO_USBDEV(sc), "invalid DSP "
  886. "page %u requested\n", pageno);
  887. return;
  888. }
  889. if (pageno != 0) {
  890. __uea_load_page_e4(sc, pageno, 0);
  891. return;
  892. }
  893. uea_dbg(INS_TO_USBDEV(sc),
  894. "sending Main DSP page %u\n", p->page_header[0].PageNumber);
  895. for (i = 0; i < le16_to_cpu(p->page_header[0].PageNumber); i++) {
  896. if (E4_IS_BOOT_PAGE(p->page_header[i].PageSize))
  897. __uea_load_page_e4(sc, i, 1);
  898. }
  899. uea_dbg(INS_TO_USBDEV(sc) , "sending start bi\n");
  900. bi.wHdr = cpu_to_be16(UEA_BIHDR);
  901. bi.bBootPage = 0;
  902. bi.bPageNumber = 0xff;
  903. bi.wReserved = cpu_to_be16(UEA_RESERVED);
  904. bi.dwSize = cpu_to_be32(E4_PAGE_BYTES(p->page_header[0].PageSize));
  905. bi.dwAddress = cpu_to_be32(le32_to_cpu(p->page_header[0].PageAddress));
  906. /* send block info through the IDMA pipe */
  907. if (uea_idma_write(sc, &bi, E4_BLOCK_INFO_SIZE))
  908. uea_err(INS_TO_USBDEV(sc), "sending DSP start bi failed\n");
  909. }
  910. static inline void wake_up_cmv_ack(struct uea_softc *sc)
  911. {
  912. BUG_ON(sc->cmv_ack);
  913. sc->cmv_ack = 1;
  914. wake_up(&sc->sync_q);
  915. }
  916. static inline int wait_cmv_ack(struct uea_softc *sc)
  917. {
  918. int ret = uea_wait(sc, sc->cmv_ack , ACK_TIMEOUT);
  919. sc->cmv_ack = 0;
  920. uea_dbg(INS_TO_USBDEV(sc), "wait_event_timeout : %d ms\n",
  921. jiffies_to_msecs(ret));
  922. if (ret < 0)
  923. return ret;
  924. return (ret == 0) ? -ETIMEDOUT : 0;
  925. }
  926. #define UCDC_SEND_ENCAPSULATED_COMMAND 0x00
  927. static int uea_request(struct uea_softc *sc,
  928. u16 value, u16 index, u16 size, const void *data)
  929. {
  930. u8 *xfer_buff;
  931. int ret = -ENOMEM;
  932. xfer_buff = kmemdup(data, size, GFP_KERNEL);
  933. if (!xfer_buff) {
  934. uea_err(INS_TO_USBDEV(sc), "can't allocate xfer_buff\n");
  935. return ret;
  936. }
  937. ret = usb_control_msg(sc->usb_dev, usb_sndctrlpipe(sc->usb_dev, 0),
  938. UCDC_SEND_ENCAPSULATED_COMMAND,
  939. USB_DIR_OUT | USB_TYPE_VENDOR | USB_RECIP_DEVICE,
  940. value, index, xfer_buff, size, CTRL_TIMEOUT);
  941. kfree(xfer_buff);
  942. if (ret < 0) {
  943. uea_err(INS_TO_USBDEV(sc), "usb_control_msg error %d\n", ret);
  944. return ret;
  945. }
  946. if (ret != size) {
  947. uea_err(INS_TO_USBDEV(sc),
  948. "usb_control_msg send only %d bytes (instead of %d)\n",
  949. ret, size);
  950. return -EIO;
  951. }
  952. return 0;
  953. }
  954. static int uea_cmv_e1(struct uea_softc *sc,
  955. u8 function, u32 address, u16 offset, u32 data)
  956. {
  957. struct cmv_e1 cmv;
  958. int ret;
  959. uea_enters(INS_TO_USBDEV(sc));
  960. uea_vdbg(INS_TO_USBDEV(sc), "Function : %d-%d, Address : %c%c%c%c, "
  961. "offset : 0x%04x, data : 0x%08x\n",
  962. E1_FUNCTION_TYPE(function),
  963. E1_FUNCTION_SUBTYPE(function),
  964. E1_GETSA1(address), E1_GETSA2(address),
  965. E1_GETSA3(address),
  966. E1_GETSA4(address), offset, data);
  967. /* we send a request, but we expect a reply */
  968. sc->cmv_dsc.e1.function = function | 0x2;
  969. sc->cmv_dsc.e1.idx++;
  970. sc->cmv_dsc.e1.address = address;
  971. sc->cmv_dsc.e1.offset = offset;
  972. cmv.wPreamble = cpu_to_le16(E1_PREAMBLE);
  973. cmv.bDirection = E1_HOSTTOMODEM;
  974. cmv.bFunction = function;
  975. cmv.wIndex = cpu_to_le16(sc->cmv_dsc.e1.idx);
  976. put_unaligned_le32(address, &cmv.dwSymbolicAddress);
  977. cmv.wOffsetAddress = cpu_to_le16(offset);
  978. put_unaligned_le32(data >> 16 | data << 16, &cmv.dwData);
  979. ret = uea_request(sc, UEA_E1_SET_BLOCK, UEA_MPTX_START,
  980. sizeof(cmv), &cmv);
  981. if (ret < 0)
  982. return ret;
  983. ret = wait_cmv_ack(sc);
  984. uea_leaves(INS_TO_USBDEV(sc));
  985. return ret;
  986. }
  987. static int uea_cmv_e4(struct uea_softc *sc,
  988. u16 function, u16 group, u16 address, u16 offset, u32 data)
  989. {
  990. struct cmv_e4 cmv;
  991. int ret;
  992. uea_enters(INS_TO_USBDEV(sc));
  993. memset(&cmv, 0, sizeof(cmv));
  994. uea_vdbg(INS_TO_USBDEV(sc), "Function : %d-%d, Group : 0x%04x, "
  995. "Address : 0x%04x, offset : 0x%04x, data : 0x%08x\n",
  996. E4_FUNCTION_TYPE(function), E4_FUNCTION_SUBTYPE(function),
  997. group, address, offset, data);
  998. /* we send a request, but we expect a reply */
  999. sc->cmv_dsc.e4.function = function | (0x1 << 4);
  1000. sc->cmv_dsc.e4.offset = offset;
  1001. sc->cmv_dsc.e4.address = address;
  1002. sc->cmv_dsc.e4.group = group;
  1003. cmv.wFunction = cpu_to_be16(function);
  1004. cmv.wGroup = cpu_to_be16(group);
  1005. cmv.wAddress = cpu_to_be16(address);
  1006. cmv.wOffset = cpu_to_be16(offset);
  1007. cmv.dwData[0] = cpu_to_be32(data);
  1008. ret = uea_request(sc, UEA_E4_SET_BLOCK, UEA_MPTX_START,
  1009. sizeof(cmv), &cmv);
  1010. if (ret < 0)
  1011. return ret;
  1012. ret = wait_cmv_ack(sc);
  1013. uea_leaves(INS_TO_USBDEV(sc));
  1014. return ret;
  1015. }
  1016. static inline int uea_read_cmv_e1(struct uea_softc *sc,
  1017. u32 address, u16 offset, u32 *data)
  1018. {
  1019. int ret = uea_cmv_e1(sc, E1_MAKEFUNCTION(E1_MEMACCESS, E1_REQUESTREAD),
  1020. address, offset, 0);
  1021. if (ret < 0)
  1022. uea_err(INS_TO_USBDEV(sc),
  1023. "reading cmv failed with error %d\n", ret);
  1024. else
  1025. *data = sc->data;
  1026. return ret;
  1027. }
  1028. static inline int uea_read_cmv_e4(struct uea_softc *sc,
  1029. u8 size, u16 group, u16 address, u16 offset, u32 *data)
  1030. {
  1031. int ret = uea_cmv_e4(sc, E4_MAKEFUNCTION(E4_MEMACCESS,
  1032. E4_REQUESTREAD, size),
  1033. group, address, offset, 0);
  1034. if (ret < 0)
  1035. uea_err(INS_TO_USBDEV(sc),
  1036. "reading cmv failed with error %d\n", ret);
  1037. else {
  1038. *data = sc->data;
  1039. /* size is in 16-bit word quantities */
  1040. if (size > 2)
  1041. *(data + 1) = sc->data1;
  1042. }
  1043. return ret;
  1044. }
  1045. static inline int uea_write_cmv_e1(struct uea_softc *sc,
  1046. u32 address, u16 offset, u32 data)
  1047. {
  1048. int ret = uea_cmv_e1(sc, E1_MAKEFUNCTION(E1_MEMACCESS, E1_REQUESTWRITE),
  1049. address, offset, data);
  1050. if (ret < 0)
  1051. uea_err(INS_TO_USBDEV(sc),
  1052. "writing cmv failed with error %d\n", ret);
  1053. return ret;
  1054. }
  1055. static inline int uea_write_cmv_e4(struct uea_softc *sc,
  1056. u8 size, u16 group, u16 address, u16 offset, u32 data)
  1057. {
  1058. int ret = uea_cmv_e4(sc, E4_MAKEFUNCTION(E4_MEMACCESS,
  1059. E4_REQUESTWRITE, size),
  1060. group, address, offset, data);
  1061. if (ret < 0)
  1062. uea_err(INS_TO_USBDEV(sc),
  1063. "writing cmv failed with error %d\n", ret);
  1064. return ret;
  1065. }
  1066. static void uea_set_bulk_timeout(struct uea_softc *sc, u32 dsrate)
  1067. {
  1068. int ret;
  1069. u16 timeout;
  1070. /* in bulk mode the modem have problem with high rate
  1071. * changing internal timing could improve things, but the
  1072. * value is mysterious.
  1073. * ADI930 don't support it (-EPIPE error).
  1074. */
  1075. if (UEA_CHIP_VERSION(sc) == ADI930 ||
  1076. altsetting[sc->modem_index] > 0 ||
  1077. sc->stats.phy.dsrate == dsrate)
  1078. return;
  1079. /* Original timming (1Mbit/s) from ADI (used in windows driver) */
  1080. timeout = (dsrate <= 1024*1024) ? 0 : 1;
  1081. ret = uea_request(sc, UEA_SET_TIMEOUT, timeout, 0, NULL);
  1082. uea_info(INS_TO_USBDEV(sc), "setting new timeout %d%s\n",
  1083. timeout, ret < 0 ? " failed" : "");
  1084. }
  1085. /*
  1086. * Monitor the modem and update the stat
  1087. * return 0 if everything is ok
  1088. * return < 0 if an error occurs (-EAGAIN reboot needed)
  1089. */
  1090. static int uea_stat_e1(struct uea_softc *sc)
  1091. {
  1092. u32 data;
  1093. int ret;
  1094. uea_enters(INS_TO_USBDEV(sc));
  1095. data = sc->stats.phy.state;
  1096. ret = uea_read_cmv_e1(sc, E1_SA_STAT, 0, &sc->stats.phy.state);
  1097. if (ret < 0)
  1098. return ret;
  1099. switch (GET_STATUS(sc->stats.phy.state)) {
  1100. case 0: /* not yet synchronized */
  1101. uea_dbg(INS_TO_USBDEV(sc),
  1102. "modem not yet synchronized\n");
  1103. return 0;
  1104. case 1: /* initialization */
  1105. uea_dbg(INS_TO_USBDEV(sc), "modem initializing\n");
  1106. return 0;
  1107. case 2: /* operational */
  1108. uea_vdbg(INS_TO_USBDEV(sc), "modem operational\n");
  1109. break;
  1110. case 3: /* fail ... */
  1111. uea_info(INS_TO_USBDEV(sc), "modem synchronization failed"
  1112. " (may be try other cmv/dsp)\n");
  1113. return -EAGAIN;
  1114. case 4 ... 6: /* test state */
  1115. uea_warn(INS_TO_USBDEV(sc),
  1116. "modem in test mode - not supported\n");
  1117. return -EAGAIN;
  1118. case 7: /* fast-retain ... */
  1119. uea_info(INS_TO_USBDEV(sc), "modem in fast-retain mode\n");
  1120. return 0;
  1121. default:
  1122. uea_err(INS_TO_USBDEV(sc), "modem invalid SW mode %d\n",
  1123. GET_STATUS(sc->stats.phy.state));
  1124. return -EAGAIN;
  1125. }
  1126. if (GET_STATUS(data) != 2) {
  1127. uea_request(sc, UEA_SET_MODE, UEA_LOOPBACK_OFF, 0, NULL);
  1128. uea_info(INS_TO_USBDEV(sc), "modem operational\n");
  1129. /* release the dsp firmware as it is not needed until
  1130. * the next failure
  1131. */
  1132. release_firmware(sc->dsp_firm);
  1133. sc->dsp_firm = NULL;
  1134. }
  1135. /* always update it as atm layer could not be init when we switch to
  1136. * operational state
  1137. */
  1138. UPDATE_ATM_SIGNAL(ATM_PHY_SIG_FOUND);
  1139. /* wake up processes waiting for synchronization */
  1140. wake_up(&sc->sync_q);
  1141. ret = uea_read_cmv_e1(sc, E1_SA_DIAG, 2, &sc->stats.phy.flags);
  1142. if (ret < 0)
  1143. return ret;
  1144. sc->stats.phy.mflags |= sc->stats.phy.flags;
  1145. /* in case of a flags ( for example delineation LOSS (& 0x10)),
  1146. * we check the status again in order to detect the failure earlier
  1147. */
  1148. if (sc->stats.phy.flags) {
  1149. uea_dbg(INS_TO_USBDEV(sc), "Stat flag = 0x%x\n",
  1150. sc->stats.phy.flags);
  1151. return 0;
  1152. }
  1153. ret = uea_read_cmv_e1(sc, E1_SA_RATE, 0, &data);
  1154. if (ret < 0)
  1155. return ret;
  1156. uea_set_bulk_timeout(sc, (data >> 16) * 32);
  1157. sc->stats.phy.dsrate = (data >> 16) * 32;
  1158. sc->stats.phy.usrate = (data & 0xffff) * 32;
  1159. UPDATE_ATM_STAT(link_rate, sc->stats.phy.dsrate * 1000 / 424);
  1160. ret = uea_read_cmv_e1(sc, E1_SA_DIAG, 23, &data);
  1161. if (ret < 0)
  1162. return ret;
  1163. sc->stats.phy.dsattenuation = (data & 0xff) / 2;
  1164. ret = uea_read_cmv_e1(sc, E1_SA_DIAG, 47, &data);
  1165. if (ret < 0)
  1166. return ret;
  1167. sc->stats.phy.usattenuation = (data & 0xff) / 2;
  1168. ret = uea_read_cmv_e1(sc, E1_SA_DIAG, 25, &sc->stats.phy.dsmargin);
  1169. if (ret < 0)
  1170. return ret;
  1171. ret = uea_read_cmv_e1(sc, E1_SA_DIAG, 49, &sc->stats.phy.usmargin);
  1172. if (ret < 0)
  1173. return ret;
  1174. ret = uea_read_cmv_e1(sc, E1_SA_DIAG, 51, &sc->stats.phy.rxflow);
  1175. if (ret < 0)
  1176. return ret;
  1177. ret = uea_read_cmv_e1(sc, E1_SA_DIAG, 52, &sc->stats.phy.txflow);
  1178. if (ret < 0)
  1179. return ret;
  1180. ret = uea_read_cmv_e1(sc, E1_SA_DIAG, 54, &sc->stats.phy.dsunc);
  1181. if (ret < 0)
  1182. return ret;
  1183. /* only for atu-c */
  1184. ret = uea_read_cmv_e1(sc, E1_SA_DIAG, 58, &sc->stats.phy.usunc);
  1185. if (ret < 0)
  1186. return ret;
  1187. ret = uea_read_cmv_e1(sc, E1_SA_DIAG, 53, &sc->stats.phy.dscorr);
  1188. if (ret < 0)
  1189. return ret;
  1190. /* only for atu-c */
  1191. ret = uea_read_cmv_e1(sc, E1_SA_DIAG, 57, &sc->stats.phy.uscorr);
  1192. if (ret < 0)
  1193. return ret;
  1194. ret = uea_read_cmv_e1(sc, E1_SA_INFO, 8, &sc->stats.phy.vidco);
  1195. if (ret < 0)
  1196. return ret;
  1197. ret = uea_read_cmv_e1(sc, E1_SA_INFO, 13, &sc->stats.phy.vidcpe);
  1198. if (ret < 0)
  1199. return ret;
  1200. return 0;
  1201. }
  1202. static int uea_stat_e4(struct uea_softc *sc)
  1203. {
  1204. u32 data;
  1205. u32 tmp_arr[2];
  1206. int ret;
  1207. uea_enters(INS_TO_USBDEV(sc));
  1208. data = sc->stats.phy.state;
  1209. /* XXX only need to be done before operationnal... */
  1210. ret = uea_read_cmv_e4(sc, 1, E4_SA_STAT, 0, 0, &sc->stats.phy.state);
  1211. if (ret < 0)
  1212. return ret;
  1213. switch (sc->stats.phy.state) {
  1214. case 0x0: /* not yet synchronized */
  1215. case 0x1:
  1216. case 0x3:
  1217. case 0x4:
  1218. uea_dbg(INS_TO_USBDEV(sc), "modem not yet "
  1219. "synchronized\n");
  1220. return 0;
  1221. case 0x5: /* initialization */
  1222. case 0x6:
  1223. case 0x9:
  1224. case 0xa:
  1225. uea_dbg(INS_TO_USBDEV(sc), "modem initializing\n");
  1226. return 0;
  1227. case 0x2: /* fail ... */
  1228. uea_info(INS_TO_USBDEV(sc), "modem synchronization "
  1229. "failed (may be try other cmv/dsp)\n");
  1230. return -EAGAIN;
  1231. case 0x7: /* operational */
  1232. break;
  1233. default:
  1234. uea_warn(INS_TO_USBDEV(sc), "unknown state: %x\n",
  1235. sc->stats.phy.state);
  1236. return 0;
  1237. }
  1238. if (data != 7) {
  1239. uea_request(sc, UEA_SET_MODE, UEA_LOOPBACK_OFF, 0, NULL);
  1240. uea_info(INS_TO_USBDEV(sc), "modem operational\n");
  1241. /* release the dsp firmware as it is not needed until
  1242. * the next failure
  1243. */
  1244. release_firmware(sc->dsp_firm);
  1245. sc->dsp_firm = NULL;
  1246. }
  1247. /* always update it as atm layer could not be init when we switch to
  1248. * operational state
  1249. */
  1250. UPDATE_ATM_SIGNAL(ATM_PHY_SIG_FOUND);
  1251. /* wake up processes waiting for synchronization */
  1252. wake_up(&sc->sync_q);
  1253. /* TODO improve this state machine :
  1254. * we need some CMV info : what they do and their unit
  1255. * we should find the equivalent of eagle3- CMV
  1256. */
  1257. /* check flags */
  1258. ret = uea_read_cmv_e4(sc, 1, E4_SA_DIAG, 0, 0, &sc->stats.phy.flags);
  1259. if (ret < 0)
  1260. return ret;
  1261. sc->stats.phy.mflags |= sc->stats.phy.flags;
  1262. /* in case of a flags ( for example delineation LOSS (& 0x10)),
  1263. * we check the status again in order to detect the failure earlier
  1264. */
  1265. if (sc->stats.phy.flags) {
  1266. uea_dbg(INS_TO_USBDEV(sc), "Stat flag = 0x%x\n",
  1267. sc->stats.phy.flags);
  1268. if (sc->stats.phy.flags & 1) /* delineation LOSS */
  1269. return -EAGAIN;
  1270. if (sc->stats.phy.flags & 0x4000) /* Reset Flag */
  1271. return -EAGAIN;
  1272. return 0;
  1273. }
  1274. /* rate data may be in upper or lower half of 64 bit word, strange */
  1275. ret = uea_read_cmv_e4(sc, 4, E4_SA_RATE, 0, 0, tmp_arr);
  1276. if (ret < 0)
  1277. return ret;
  1278. data = (tmp_arr[0]) ? tmp_arr[0] : tmp_arr[1];
  1279. sc->stats.phy.usrate = data / 1000;
  1280. ret = uea_read_cmv_e4(sc, 4, E4_SA_RATE, 1, 0, tmp_arr);
  1281. if (ret < 0)
  1282. return ret;
  1283. data = (tmp_arr[0]) ? tmp_arr[0] : tmp_arr[1];
  1284. uea_set_bulk_timeout(sc, data / 1000);
  1285. sc->stats.phy.dsrate = data / 1000;
  1286. UPDATE_ATM_STAT(link_rate, sc->stats.phy.dsrate * 1000 / 424);
  1287. ret = uea_read_cmv_e4(sc, 1, E4_SA_INFO, 68, 1, &data);
  1288. if (ret < 0)
  1289. return ret;
  1290. sc->stats.phy.dsattenuation = data / 10;
  1291. ret = uea_read_cmv_e4(sc, 1, E4_SA_INFO, 69, 1, &data);
  1292. if (ret < 0)
  1293. return ret;
  1294. sc->stats.phy.usattenuation = data / 10;
  1295. ret = uea_read_cmv_e4(sc, 1, E4_SA_INFO, 68, 3, &data);
  1296. if (ret < 0)
  1297. return ret;
  1298. sc->stats.phy.dsmargin = data / 2;
  1299. ret = uea_read_cmv_e4(sc, 1, E4_SA_INFO, 69, 3, &data);
  1300. if (ret < 0)
  1301. return ret;
  1302. sc->stats.phy.usmargin = data / 10;
  1303. return 0;
  1304. }
  1305. static void cmvs_file_name(struct uea_softc *sc, char *const cmv_name, int ver)
  1306. {
  1307. char file_arr[] = "CMVxy.bin";
  1308. char *file;
  1309. kernel_param_lock(THIS_MODULE);
  1310. /* set proper name corresponding modem version and line type */
  1311. if (cmv_file[sc->modem_index] == NULL) {
  1312. if (UEA_CHIP_VERSION(sc) == ADI930)
  1313. file_arr[3] = '9';
  1314. else if (UEA_CHIP_VERSION(sc) == EAGLE_IV)
  1315. file_arr[3] = '4';
  1316. else
  1317. file_arr[3] = 'e';
  1318. file_arr[4] = IS_ISDN(sc) ? 'i' : 'p';
  1319. file = file_arr;
  1320. } else
  1321. file = cmv_file[sc->modem_index];
  1322. strcpy(cmv_name, FW_DIR);
  1323. strlcat(cmv_name, file, UEA_FW_NAME_MAX);
  1324. if (ver == 2)
  1325. strlcat(cmv_name, ".v2", UEA_FW_NAME_MAX);
  1326. kernel_param_unlock(THIS_MODULE);
  1327. }
  1328. static int request_cmvs_old(struct uea_softc *sc,
  1329. void **cmvs, const struct firmware **fw)
  1330. {
  1331. int ret, size;
  1332. u8 *data;
  1333. char cmv_name[UEA_FW_NAME_MAX]; /* 30 bytes stack variable */
  1334. cmvs_file_name(sc, cmv_name, 1);
  1335. ret = request_firmware(fw, cmv_name, &sc->usb_dev->dev);
  1336. if (ret)
  1337. return ret;
  1338. data = (u8 *) (*fw)->data;
  1339. size = (*fw)->size;
  1340. if (size < 1)
  1341. goto err_fw_corrupted;
  1342. if (size != *data * sizeof(struct uea_cmvs_v1) + 1)
  1343. goto err_fw_corrupted;
  1344. *cmvs = (void *)(data + 1);
  1345. return *data;
  1346. err_fw_corrupted:
  1347. uea_err(INS_TO_USBDEV(sc), "firmware %s is corrupted\n", cmv_name);
  1348. release_firmware(*fw);
  1349. return -EILSEQ;
  1350. }
  1351. static int request_cmvs(struct uea_softc *sc,
  1352. void **cmvs, const struct firmware **fw, int *ver)
  1353. {
  1354. int ret, size;
  1355. u32 crc;
  1356. u8 *data;
  1357. char cmv_name[UEA_FW_NAME_MAX]; /* 30 bytes stack variable */
  1358. cmvs_file_name(sc, cmv_name, 2);
  1359. ret = request_firmware(fw, cmv_name, &sc->usb_dev->dev);
  1360. if (ret < 0) {
  1361. /* if caller can handle old version, try to provide it */
  1362. if (*ver == 1) {
  1363. uea_warn(INS_TO_USBDEV(sc), "requesting "
  1364. "firmware %s failed, "
  1365. "try to get older cmvs\n", cmv_name);
  1366. return request_cmvs_old(sc, cmvs, fw);
  1367. }
  1368. return ret;
  1369. }
  1370. size = (*fw)->size;
  1371. data = (u8 *) (*fw)->data;
  1372. if (size < 4 || strncmp(data, "cmv2", 4) != 0) {
  1373. if (*ver == 1) {
  1374. uea_warn(INS_TO_USBDEV(sc), "firmware %s is corrupted,"
  1375. " try to get older cmvs\n", cmv_name);
  1376. release_firmware(*fw);
  1377. return request_cmvs_old(sc, cmvs, fw);
  1378. }
  1379. goto err_fw_corrupted;
  1380. }
  1381. *ver = 2;
  1382. data += 4;
  1383. size -= 4;
  1384. if (size < 5)
  1385. goto err_fw_corrupted;
  1386. crc = get_unaligned_le32(data);
  1387. data += 4;
  1388. size -= 4;
  1389. if (crc32_be(0, data, size) != crc)
  1390. goto err_fw_corrupted;
  1391. if (size != *data * sizeof(struct uea_cmvs_v2) + 1)
  1392. goto err_fw_corrupted;
  1393. *cmvs = (void *) (data + 1);
  1394. return *data;
  1395. err_fw_corrupted:
  1396. uea_err(INS_TO_USBDEV(sc), "firmware %s is corrupted\n", cmv_name);
  1397. release_firmware(*fw);
  1398. return -EILSEQ;
  1399. }
  1400. static int uea_send_cmvs_e1(struct uea_softc *sc)
  1401. {
  1402. int i, ret, len;
  1403. void *cmvs_ptr;
  1404. const struct firmware *cmvs_fw;
  1405. int ver = 1; /* we can handle v1 cmv firmware version; */
  1406. /* Enter in R-IDLE (cmv) until instructed otherwise */
  1407. ret = uea_write_cmv_e1(sc, E1_SA_CNTL, 0, 1);
  1408. if (ret < 0)
  1409. return ret;
  1410. /* Dump firmware version */
  1411. ret = uea_read_cmv_e1(sc, E1_SA_INFO, 10, &sc->stats.phy.firmid);
  1412. if (ret < 0)
  1413. return ret;
  1414. uea_info(INS_TO_USBDEV(sc), "ATU-R firmware version : %x\n",
  1415. sc->stats.phy.firmid);
  1416. /* get options */
  1417. ret = len = request_cmvs(sc, &cmvs_ptr, &cmvs_fw, &ver);
  1418. if (ret < 0)
  1419. return ret;
  1420. /* send options */
  1421. if (ver == 1) {
  1422. struct uea_cmvs_v1 *cmvs_v1 = cmvs_ptr;
  1423. uea_warn(INS_TO_USBDEV(sc), "use deprecated cmvs version, "
  1424. "please update your firmware\n");
  1425. for (i = 0; i < len; i++) {
  1426. ret = uea_write_cmv_e1(sc,
  1427. get_unaligned_le32(&cmvs_v1[i].address),
  1428. get_unaligned_le16(&cmvs_v1[i].offset),
  1429. get_unaligned_le32(&cmvs_v1[i].data));
  1430. if (ret < 0)
  1431. goto out;
  1432. }
  1433. } else if (ver == 2) {
  1434. struct uea_cmvs_v2 *cmvs_v2 = cmvs_ptr;
  1435. for (i = 0; i < len; i++) {
  1436. ret = uea_write_cmv_e1(sc,
  1437. get_unaligned_le32(&cmvs_v2[i].address),
  1438. (u16) get_unaligned_le32(&cmvs_v2[i].offset),
  1439. get_unaligned_le32(&cmvs_v2[i].data));
  1440. if (ret < 0)
  1441. goto out;
  1442. }
  1443. } else {
  1444. /* This really should not happen */
  1445. uea_err(INS_TO_USBDEV(sc), "bad cmvs version %d\n", ver);
  1446. goto out;
  1447. }
  1448. /* Enter in R-ACT-REQ */
  1449. ret = uea_write_cmv_e1(sc, E1_SA_CNTL, 0, 2);
  1450. uea_vdbg(INS_TO_USBDEV(sc), "Entering in R-ACT-REQ state\n");
  1451. uea_info(INS_TO_USBDEV(sc), "modem started, waiting "
  1452. "synchronization...\n");
  1453. out:
  1454. release_firmware(cmvs_fw);
  1455. return ret;
  1456. }
  1457. static int uea_send_cmvs_e4(struct uea_softc *sc)
  1458. {
  1459. int i, ret, len;
  1460. void *cmvs_ptr;
  1461. const struct firmware *cmvs_fw;
  1462. int ver = 2; /* we can only handle v2 cmv firmware version; */
  1463. /* Enter in R-IDLE (cmv) until instructed otherwise */
  1464. ret = uea_write_cmv_e4(sc, 1, E4_SA_CNTL, 0, 0, 1);
  1465. if (ret < 0)
  1466. return ret;
  1467. /* Dump firmware version */
  1468. /* XXX don't read the 3th byte as it is always 6 */
  1469. ret = uea_read_cmv_e4(sc, 2, E4_SA_INFO, 55, 0, &sc->stats.phy.firmid);
  1470. if (ret < 0)
  1471. return ret;
  1472. uea_info(INS_TO_USBDEV(sc), "ATU-R firmware version : %x\n",
  1473. sc->stats.phy.firmid);
  1474. /* get options */
  1475. ret = len = request_cmvs(sc, &cmvs_ptr, &cmvs_fw, &ver);
  1476. if (ret < 0)
  1477. return ret;
  1478. /* send options */
  1479. if (ver == 2) {
  1480. struct uea_cmvs_v2 *cmvs_v2 = cmvs_ptr;
  1481. for (i = 0; i < len; i++) {
  1482. ret = uea_write_cmv_e4(sc, 1,
  1483. get_unaligned_le32(&cmvs_v2[i].group),
  1484. get_unaligned_le32(&cmvs_v2[i].address),
  1485. get_unaligned_le32(&cmvs_v2[i].offset),
  1486. get_unaligned_le32(&cmvs_v2[i].data));
  1487. if (ret < 0)
  1488. goto out;
  1489. }
  1490. } else {
  1491. /* This really should not happen */
  1492. uea_err(INS_TO_USBDEV(sc), "bad cmvs version %d\n", ver);
  1493. goto out;
  1494. }
  1495. /* Enter in R-ACT-REQ */
  1496. ret = uea_write_cmv_e4(sc, 1, E4_SA_CNTL, 0, 0, 2);
  1497. uea_vdbg(INS_TO_USBDEV(sc), "Entering in R-ACT-REQ state\n");
  1498. uea_info(INS_TO_USBDEV(sc), "modem started, waiting "
  1499. "synchronization...\n");
  1500. out:
  1501. release_firmware(cmvs_fw);
  1502. return ret;
  1503. }
  1504. /* Start boot post firmware modem:
  1505. * - send reset commands through usb control pipe
  1506. * - start workqueue for DSP loading
  1507. * - send CMV options to modem
  1508. */
  1509. static int uea_start_reset(struct uea_softc *sc)
  1510. {
  1511. u16 zero = 0; /* ;-) */
  1512. int ret;
  1513. uea_enters(INS_TO_USBDEV(sc));
  1514. uea_info(INS_TO_USBDEV(sc), "(re)booting started\n");
  1515. /* mask interrupt */
  1516. sc->booting = 1;
  1517. /* We need to set this here because, a ack timeout could have occurred,
  1518. * but before we start the reboot, the ack occurs and set this to 1.
  1519. * So we will failed to wait Ready CMV.
  1520. */
  1521. sc->cmv_ack = 0;
  1522. UPDATE_ATM_SIGNAL(ATM_PHY_SIG_LOST);
  1523. /* reset statistics */
  1524. memset(&sc->stats, 0, sizeof(struct uea_stats));
  1525. /* tell the modem that we want to boot in IDMA mode */
  1526. uea_request(sc, UEA_SET_MODE, UEA_LOOPBACK_ON, 0, NULL);
  1527. uea_request(sc, UEA_SET_MODE, UEA_BOOT_IDMA, 0, NULL);
  1528. /* enter reset mode */
  1529. uea_request(sc, UEA_SET_MODE, UEA_START_RESET, 0, NULL);
  1530. /* original driver use 200ms, but windows driver use 100ms */
  1531. ret = uea_wait(sc, 0, msecs_to_jiffies(100));
  1532. if (ret < 0)
  1533. return ret;
  1534. /* leave reset mode */
  1535. uea_request(sc, UEA_SET_MODE, UEA_END_RESET, 0, NULL);
  1536. if (UEA_CHIP_VERSION(sc) != EAGLE_IV) {
  1537. /* clear tx and rx mailboxes */
  1538. uea_request(sc, UEA_SET_2183_DATA, UEA_MPTX_MAILBOX, 2, &zero);
  1539. uea_request(sc, UEA_SET_2183_DATA, UEA_MPRX_MAILBOX, 2, &zero);
  1540. uea_request(sc, UEA_SET_2183_DATA, UEA_SWAP_MAILBOX, 2, &zero);
  1541. }
  1542. ret = uea_wait(sc, 0, msecs_to_jiffies(1000));
  1543. if (ret < 0)
  1544. return ret;
  1545. if (UEA_CHIP_VERSION(sc) == EAGLE_IV)
  1546. sc->cmv_dsc.e4.function = E4_MAKEFUNCTION(E4_ADSLDIRECTIVE,
  1547. E4_MODEMREADY, 1);
  1548. else
  1549. sc->cmv_dsc.e1.function = E1_MAKEFUNCTION(E1_ADSLDIRECTIVE,
  1550. E1_MODEMREADY);
  1551. /* demask interrupt */
  1552. sc->booting = 0;
  1553. /* start loading DSP */
  1554. sc->pageno = 0;
  1555. sc->ovl = 0;
  1556. schedule_work(&sc->task);
  1557. /* wait for modem ready CMV */
  1558. ret = wait_cmv_ack(sc);
  1559. if (ret < 0)
  1560. return ret;
  1561. uea_vdbg(INS_TO_USBDEV(sc), "Ready CMV received\n");
  1562. ret = sc->send_cmvs(sc);
  1563. if (ret < 0)
  1564. return ret;
  1565. sc->reset = 0;
  1566. uea_leaves(INS_TO_USBDEV(sc));
  1567. return ret;
  1568. }
  1569. /*
  1570. * In case of an error wait 1s before rebooting the modem
  1571. * if the modem don't request reboot (-EAGAIN).
  1572. * Monitor the modem every 1s.
  1573. */
  1574. static int uea_kthread(void *data)
  1575. {
  1576. struct uea_softc *sc = data;
  1577. int ret = -EAGAIN;
  1578. set_freezable();
  1579. uea_enters(INS_TO_USBDEV(sc));
  1580. while (!kthread_should_stop()) {
  1581. if (ret < 0 || sc->reset)
  1582. ret = uea_start_reset(sc);
  1583. if (!ret)
  1584. ret = sc->stat(sc);
  1585. if (ret != -EAGAIN)
  1586. uea_wait(sc, 0, msecs_to_jiffies(1000));
  1587. try_to_freeze();
  1588. }
  1589. uea_leaves(INS_TO_USBDEV(sc));
  1590. return ret;
  1591. }
  1592. /* Load second usb firmware for ADI930 chip */
  1593. static int load_XILINX_firmware(struct uea_softc *sc)
  1594. {
  1595. const struct firmware *fw_entry;
  1596. int ret, size, u, ln;
  1597. const u8 *pfw;
  1598. u8 value;
  1599. char *fw_name = FPGA930_FIRMWARE;
  1600. uea_enters(INS_TO_USBDEV(sc));
  1601. ret = request_firmware(&fw_entry, fw_name, &sc->usb_dev->dev);
  1602. if (ret)
  1603. goto err0;
  1604. pfw = fw_entry->data;
  1605. size = fw_entry->size;
  1606. if (size != 0x577B) {
  1607. uea_err(INS_TO_USBDEV(sc), "firmware %s is corrupted\n",
  1608. fw_name);
  1609. ret = -EILSEQ;
  1610. goto err1;
  1611. }
  1612. for (u = 0; u < size; u += ln) {
  1613. ln = min(size - u, 64);
  1614. ret = uea_request(sc, 0xe, 0, ln, pfw + u);
  1615. if (ret < 0) {
  1616. uea_err(INS_TO_USBDEV(sc),
  1617. "elsa download data failed (%d)\n", ret);
  1618. goto err1;
  1619. }
  1620. }
  1621. /* finish to send the fpga */
  1622. ret = uea_request(sc, 0xe, 1, 0, NULL);
  1623. if (ret < 0) {
  1624. uea_err(INS_TO_USBDEV(sc),
  1625. "elsa download data failed (%d)\n", ret);
  1626. goto err1;
  1627. }
  1628. /* Tell the modem we finish : de-assert reset */
  1629. value = 0;
  1630. ret = uea_send_modem_cmd(sc->usb_dev, 0xe, 1, &value);
  1631. if (ret < 0)
  1632. uea_err(sc->usb_dev, "elsa de-assert failed with error"
  1633. " %d\n", ret);
  1634. err1:
  1635. release_firmware(fw_entry);
  1636. err0:
  1637. uea_leaves(INS_TO_USBDEV(sc));
  1638. return ret;
  1639. }
  1640. /* The modem send us an ack. First with check if it right */
  1641. static void uea_dispatch_cmv_e1(struct uea_softc *sc, struct intr_pkt *intr)
  1642. {
  1643. struct cmv_dsc_e1 *dsc = &sc->cmv_dsc.e1;
  1644. struct cmv_e1 *cmv = &intr->u.e1.s2.cmv;
  1645. uea_enters(INS_TO_USBDEV(sc));
  1646. if (le16_to_cpu(cmv->wPreamble) != E1_PREAMBLE)
  1647. goto bad1;
  1648. if (cmv->bDirection != E1_MODEMTOHOST)
  1649. goto bad1;
  1650. /* FIXME : ADI930 reply wrong preambule (func = 2, sub = 2) to
  1651. * the first MEMACCESS cmv. Ignore it...
  1652. */
  1653. if (cmv->bFunction != dsc->function) {
  1654. if (UEA_CHIP_VERSION(sc) == ADI930
  1655. && cmv->bFunction == E1_MAKEFUNCTION(2, 2)) {
  1656. cmv->wIndex = cpu_to_le16(dsc->idx);
  1657. put_unaligned_le32(dsc->address,
  1658. &cmv->dwSymbolicAddress);
  1659. cmv->wOffsetAddress = cpu_to_le16(dsc->offset);
  1660. } else
  1661. goto bad2;
  1662. }
  1663. if (cmv->bFunction == E1_MAKEFUNCTION(E1_ADSLDIRECTIVE,
  1664. E1_MODEMREADY)) {
  1665. wake_up_cmv_ack(sc);
  1666. uea_leaves(INS_TO_USBDEV(sc));
  1667. return;
  1668. }
  1669. /* in case of MEMACCESS */
  1670. if (le16_to_cpu(cmv->wIndex) != dsc->idx ||
  1671. get_unaligned_le32(&cmv->dwSymbolicAddress) != dsc->address ||
  1672. le16_to_cpu(cmv->wOffsetAddress) != dsc->offset)
  1673. goto bad2;
  1674. sc->data = get_unaligned_le32(&cmv->dwData);
  1675. sc->data = sc->data << 16 | sc->data >> 16;
  1676. wake_up_cmv_ack(sc);
  1677. uea_leaves(INS_TO_USBDEV(sc));
  1678. return;
  1679. bad2:
  1680. uea_err(INS_TO_USBDEV(sc), "unexpected cmv received, "
  1681. "Function : %d, Subfunction : %d\n",
  1682. E1_FUNCTION_TYPE(cmv->bFunction),
  1683. E1_FUNCTION_SUBTYPE(cmv->bFunction));
  1684. uea_leaves(INS_TO_USBDEV(sc));
  1685. return;
  1686. bad1:
  1687. uea_err(INS_TO_USBDEV(sc), "invalid cmv received, "
  1688. "wPreamble %d, bDirection %d\n",
  1689. le16_to_cpu(cmv->wPreamble), cmv->bDirection);
  1690. uea_leaves(INS_TO_USBDEV(sc));
  1691. }
  1692. /* The modem send us an ack. First with check if it right */
  1693. static void uea_dispatch_cmv_e4(struct uea_softc *sc, struct intr_pkt *intr)
  1694. {
  1695. struct cmv_dsc_e4 *dsc = &sc->cmv_dsc.e4;
  1696. struct cmv_e4 *cmv = &intr->u.e4.s2.cmv;
  1697. uea_enters(INS_TO_USBDEV(sc));
  1698. uea_dbg(INS_TO_USBDEV(sc), "cmv %x %x %x %x %x %x\n",
  1699. be16_to_cpu(cmv->wGroup), be16_to_cpu(cmv->wFunction),
  1700. be16_to_cpu(cmv->wOffset), be16_to_cpu(cmv->wAddress),
  1701. be32_to_cpu(cmv->dwData[0]), be32_to_cpu(cmv->dwData[1]));
  1702. if (be16_to_cpu(cmv->wFunction) != dsc->function)
  1703. goto bad2;
  1704. if (be16_to_cpu(cmv->wFunction) == E4_MAKEFUNCTION(E4_ADSLDIRECTIVE,
  1705. E4_MODEMREADY, 1)) {
  1706. wake_up_cmv_ack(sc);
  1707. uea_leaves(INS_TO_USBDEV(sc));
  1708. return;
  1709. }
  1710. /* in case of MEMACCESS */
  1711. if (be16_to_cpu(cmv->wOffset) != dsc->offset ||
  1712. be16_to_cpu(cmv->wGroup) != dsc->group ||
  1713. be16_to_cpu(cmv->wAddress) != dsc->address)
  1714. goto bad2;
  1715. sc->data = be32_to_cpu(cmv->dwData[0]);
  1716. sc->data1 = be32_to_cpu(cmv->dwData[1]);
  1717. wake_up_cmv_ack(sc);
  1718. uea_leaves(INS_TO_USBDEV(sc));
  1719. return;
  1720. bad2:
  1721. uea_err(INS_TO_USBDEV(sc), "unexpected cmv received, "
  1722. "Function : %d, Subfunction : %d\n",
  1723. E4_FUNCTION_TYPE(cmv->wFunction),
  1724. E4_FUNCTION_SUBTYPE(cmv->wFunction));
  1725. uea_leaves(INS_TO_USBDEV(sc));
  1726. return;
  1727. }
  1728. static void uea_schedule_load_page_e1(struct uea_softc *sc,
  1729. struct intr_pkt *intr)
  1730. {
  1731. sc->pageno = intr->e1_bSwapPageNo;
  1732. sc->ovl = intr->e1_bOvl >> 4 | intr->e1_bOvl << 4;
  1733. schedule_work(&sc->task);
  1734. }
  1735. static void uea_schedule_load_page_e4(struct uea_softc *sc,
  1736. struct intr_pkt *intr)
  1737. {
  1738. sc->pageno = intr->e4_bSwapPageNo;
  1739. schedule_work(&sc->task);
  1740. }
  1741. /*
  1742. * interrupt handler
  1743. */
  1744. static void uea_intr(struct urb *urb)
  1745. {
  1746. struct uea_softc *sc = urb->context;
  1747. struct intr_pkt *intr = urb->transfer_buffer;
  1748. int status = urb->status;
  1749. uea_enters(INS_TO_USBDEV(sc));
  1750. if (unlikely(status < 0)) {
  1751. uea_err(INS_TO_USBDEV(sc), "uea_intr() failed with %d\n",
  1752. status);
  1753. return;
  1754. }
  1755. /* device-to-host interrupt */
  1756. if (intr->bType != 0x08 || sc->booting) {
  1757. uea_err(INS_TO_USBDEV(sc), "wrong interrupt\n");
  1758. goto resubmit;
  1759. }
  1760. switch (le16_to_cpu(intr->wInterrupt)) {
  1761. case INT_LOADSWAPPAGE:
  1762. sc->schedule_load_page(sc, intr);
  1763. break;
  1764. case INT_INCOMINGCMV:
  1765. sc->dispatch_cmv(sc, intr);
  1766. break;
  1767. default:
  1768. uea_err(INS_TO_USBDEV(sc), "unknown interrupt %u\n",
  1769. le16_to_cpu(intr->wInterrupt));
  1770. }
  1771. resubmit:
  1772. usb_submit_urb(sc->urb_int, GFP_ATOMIC);
  1773. }
  1774. /*
  1775. * Start the modem : init the data and start kernel thread
  1776. */
  1777. static int uea_boot(struct uea_softc *sc, struct usb_interface *intf)
  1778. {
  1779. struct intr_pkt *intr;
  1780. int ret = -ENOMEM;
  1781. int size;
  1782. uea_enters(INS_TO_USBDEV(sc));
  1783. if (UEA_CHIP_VERSION(sc) == EAGLE_IV) {
  1784. size = E4_INTR_PKT_SIZE;
  1785. sc->dispatch_cmv = uea_dispatch_cmv_e4;
  1786. sc->schedule_load_page = uea_schedule_load_page_e4;
  1787. sc->stat = uea_stat_e4;
  1788. sc->send_cmvs = uea_send_cmvs_e4;
  1789. INIT_WORK(&sc->task, uea_load_page_e4);
  1790. } else {
  1791. size = E1_INTR_PKT_SIZE;
  1792. sc->dispatch_cmv = uea_dispatch_cmv_e1;
  1793. sc->schedule_load_page = uea_schedule_load_page_e1;
  1794. sc->stat = uea_stat_e1;
  1795. sc->send_cmvs = uea_send_cmvs_e1;
  1796. INIT_WORK(&sc->task, uea_load_page_e1);
  1797. }
  1798. init_waitqueue_head(&sc->sync_q);
  1799. if (UEA_CHIP_VERSION(sc) == ADI930)
  1800. load_XILINX_firmware(sc);
  1801. if (intf->cur_altsetting->desc.bNumEndpoints < 1) {
  1802. ret = -ENODEV;
  1803. goto err0;
  1804. }
  1805. intr = kmalloc(size, GFP_KERNEL);
  1806. if (!intr)
  1807. goto err0;
  1808. sc->urb_int = usb_alloc_urb(0, GFP_KERNEL);
  1809. if (!sc->urb_int)
  1810. goto err1;
  1811. usb_fill_int_urb(sc->urb_int, sc->usb_dev,
  1812. usb_rcvintpipe(sc->usb_dev, UEA_INTR_PIPE),
  1813. intr, size, uea_intr, sc,
  1814. intf->cur_altsetting->endpoint[0].desc.bInterval);
  1815. ret = usb_submit_urb(sc->urb_int, GFP_KERNEL);
  1816. if (ret < 0) {
  1817. uea_err(INS_TO_USBDEV(sc),
  1818. "urb submission failed with error %d\n", ret);
  1819. goto err1;
  1820. }
  1821. /* Create worker thread, but don't start it here. Start it after
  1822. * all usbatm generic initialization is done.
  1823. */
  1824. sc->kthread = kthread_create(uea_kthread, sc, "ueagle-atm");
  1825. if (IS_ERR(sc->kthread)) {
  1826. uea_err(INS_TO_USBDEV(sc), "failed to create thread\n");
  1827. ret = PTR_ERR(sc->kthread);
  1828. goto err2;
  1829. }
  1830. uea_leaves(INS_TO_USBDEV(sc));
  1831. return 0;
  1832. err2:
  1833. usb_kill_urb(sc->urb_int);
  1834. err1:
  1835. usb_free_urb(sc->urb_int);
  1836. sc->urb_int = NULL;
  1837. kfree(intr);
  1838. err0:
  1839. uea_leaves(INS_TO_USBDEV(sc));
  1840. return ret;
  1841. }
  1842. /*
  1843. * Stop the modem : kill kernel thread and free data
  1844. */
  1845. static void uea_stop(struct uea_softc *sc)
  1846. {
  1847. int ret;
  1848. uea_enters(INS_TO_USBDEV(sc));
  1849. ret = kthread_stop(sc->kthread);
  1850. uea_dbg(INS_TO_USBDEV(sc), "kthread finish with status %d\n", ret);
  1851. uea_request(sc, UEA_SET_MODE, UEA_LOOPBACK_ON, 0, NULL);
  1852. usb_kill_urb(sc->urb_int);
  1853. kfree(sc->urb_int->transfer_buffer);
  1854. usb_free_urb(sc->urb_int);
  1855. /* flush the work item, when no one can schedule it */
  1856. flush_work(&sc->task);
  1857. release_firmware(sc->dsp_firm);
  1858. uea_leaves(INS_TO_USBDEV(sc));
  1859. }
  1860. /* syfs interface */
  1861. static struct uea_softc *dev_to_uea(struct device *dev)
  1862. {
  1863. struct usb_interface *intf;
  1864. struct usbatm_data *usbatm;
  1865. intf = to_usb_interface(dev);
  1866. if (!intf)
  1867. return NULL;
  1868. usbatm = usb_get_intfdata(intf);
  1869. if (!usbatm)
  1870. return NULL;
  1871. return usbatm->driver_data;
  1872. }
  1873. static ssize_t stat_status_show(struct device *dev, struct device_attribute *attr,
  1874. char *buf)
  1875. {
  1876. int ret = -ENODEV;
  1877. struct uea_softc *sc;
  1878. mutex_lock(&uea_mutex);
  1879. sc = dev_to_uea(dev);
  1880. if (!sc)
  1881. goto out;
  1882. ret = snprintf(buf, 10, "%08x\n", sc->stats.phy.state);
  1883. out:
  1884. mutex_unlock(&uea_mutex);
  1885. return ret;
  1886. }
  1887. static ssize_t stat_status_store(struct device *dev, struct device_attribute *attr,
  1888. const char *buf, size_t count)
  1889. {
  1890. int ret = -ENODEV;
  1891. struct uea_softc *sc;
  1892. mutex_lock(&uea_mutex);
  1893. sc = dev_to_uea(dev);
  1894. if (!sc)
  1895. goto out;
  1896. sc->reset = 1;
  1897. ret = count;
  1898. out:
  1899. mutex_unlock(&uea_mutex);
  1900. return ret;
  1901. }
  1902. static DEVICE_ATTR_RW(stat_status);
  1903. static ssize_t stat_human_status_show(struct device *dev,
  1904. struct device_attribute *attr, char *buf)
  1905. {
  1906. int ret = -ENODEV;
  1907. int modem_state;
  1908. struct uea_softc *sc;
  1909. mutex_lock(&uea_mutex);
  1910. sc = dev_to_uea(dev);
  1911. if (!sc)
  1912. goto out;
  1913. if (UEA_CHIP_VERSION(sc) == EAGLE_IV) {
  1914. switch (sc->stats.phy.state) {
  1915. case 0x0: /* not yet synchronized */
  1916. case 0x1:
  1917. case 0x3:
  1918. case 0x4:
  1919. modem_state = 0;
  1920. break;
  1921. case 0x5: /* initialization */
  1922. case 0x6:
  1923. case 0x9:
  1924. case 0xa:
  1925. modem_state = 1;
  1926. break;
  1927. case 0x7: /* operational */
  1928. modem_state = 2;
  1929. break;
  1930. case 0x2: /* fail ... */
  1931. modem_state = 3;
  1932. break;
  1933. default: /* unknown */
  1934. modem_state = 4;
  1935. break;
  1936. }
  1937. } else
  1938. modem_state = GET_STATUS(sc->stats.phy.state);
  1939. switch (modem_state) {
  1940. case 0:
  1941. ret = sprintf(buf, "Modem is booting\n");
  1942. break;
  1943. case 1:
  1944. ret = sprintf(buf, "Modem is initializing\n");
  1945. break;
  1946. case 2:
  1947. ret = sprintf(buf, "Modem is operational\n");
  1948. break;
  1949. case 3:
  1950. ret = sprintf(buf, "Modem synchronization failed\n");
  1951. break;
  1952. default:
  1953. ret = sprintf(buf, "Modem state is unknown\n");
  1954. break;
  1955. }
  1956. out:
  1957. mutex_unlock(&uea_mutex);
  1958. return ret;
  1959. }
  1960. static DEVICE_ATTR_RO(stat_human_status);
  1961. static ssize_t stat_delin_show(struct device *dev, struct device_attribute *attr,
  1962. char *buf)
  1963. {
  1964. int ret = -ENODEV;
  1965. struct uea_softc *sc;
  1966. char *delin = "GOOD";
  1967. mutex_lock(&uea_mutex);
  1968. sc = dev_to_uea(dev);
  1969. if (!sc)
  1970. goto out;
  1971. if (UEA_CHIP_VERSION(sc) == EAGLE_IV) {
  1972. if (sc->stats.phy.flags & 0x4000)
  1973. delin = "RESET";
  1974. else if (sc->stats.phy.flags & 0x0001)
  1975. delin = "LOSS";
  1976. } else {
  1977. if (sc->stats.phy.flags & 0x0C00)
  1978. delin = "ERROR";
  1979. else if (sc->stats.phy.flags & 0x0030)
  1980. delin = "LOSS";
  1981. }
  1982. ret = sprintf(buf, "%s\n", delin);
  1983. out:
  1984. mutex_unlock(&uea_mutex);
  1985. return ret;
  1986. }
  1987. static DEVICE_ATTR_RO(stat_delin);
  1988. #define UEA_ATTR(name, reset) \
  1989. \
  1990. static ssize_t stat_##name##_show(struct device *dev, \
  1991. struct device_attribute *attr, char *buf) \
  1992. { \
  1993. int ret = -ENODEV; \
  1994. struct uea_softc *sc; \
  1995. \
  1996. mutex_lock(&uea_mutex); \
  1997. sc = dev_to_uea(dev); \
  1998. if (!sc) \
  1999. goto out; \
  2000. ret = snprintf(buf, 10, "%08x\n", sc->stats.phy.name); \
  2001. if (reset) \
  2002. sc->stats.phy.name = 0; \
  2003. out: \
  2004. mutex_unlock(&uea_mutex); \
  2005. return ret; \
  2006. } \
  2007. \
  2008. static DEVICE_ATTR_RO(stat_##name)
  2009. UEA_ATTR(mflags, 1);
  2010. UEA_ATTR(vidcpe, 0);
  2011. UEA_ATTR(usrate, 0);
  2012. UEA_ATTR(dsrate, 0);
  2013. UEA_ATTR(usattenuation, 0);
  2014. UEA_ATTR(dsattenuation, 0);
  2015. UEA_ATTR(usmargin, 0);
  2016. UEA_ATTR(dsmargin, 0);
  2017. UEA_ATTR(txflow, 0);
  2018. UEA_ATTR(rxflow, 0);
  2019. UEA_ATTR(uscorr, 0);
  2020. UEA_ATTR(dscorr, 0);
  2021. UEA_ATTR(usunc, 0);
  2022. UEA_ATTR(dsunc, 0);
  2023. UEA_ATTR(firmid, 0);
  2024. /* Retrieve the device End System Identifier (MAC) */
  2025. static int uea_getesi(struct uea_softc *sc, u_char *esi)
  2026. {
  2027. unsigned char mac_str[2 * ETH_ALEN + 1];
  2028. int i;
  2029. if (usb_string
  2030. (sc->usb_dev, sc->usb_dev->descriptor.iSerialNumber, mac_str,
  2031. sizeof(mac_str)) != 2 * ETH_ALEN)
  2032. return 1;
  2033. for (i = 0; i < ETH_ALEN; i++)
  2034. esi[i] = hex_to_bin(mac_str[2 * i]) * 16 +
  2035. hex_to_bin(mac_str[2 * i + 1]);
  2036. return 0;
  2037. }
  2038. /* ATM stuff */
  2039. static int uea_atm_open(struct usbatm_data *usbatm, struct atm_dev *atm_dev)
  2040. {
  2041. struct uea_softc *sc = usbatm->driver_data;
  2042. return uea_getesi(sc, atm_dev->esi);
  2043. }
  2044. static int uea_heavy(struct usbatm_data *usbatm, struct usb_interface *intf)
  2045. {
  2046. struct uea_softc *sc = usbatm->driver_data;
  2047. wait_event_interruptible(sc->sync_q, IS_OPERATIONAL(sc));
  2048. return 0;
  2049. }
  2050. static int claim_interface(struct usb_device *usb_dev,
  2051. struct usbatm_data *usbatm, int ifnum)
  2052. {
  2053. int ret;
  2054. struct usb_interface *intf = usb_ifnum_to_if(usb_dev, ifnum);
  2055. if (!intf) {
  2056. uea_err(usb_dev, "interface %d not found\n", ifnum);
  2057. return -ENODEV;
  2058. }
  2059. ret = usb_driver_claim_interface(&uea_driver, intf, usbatm);
  2060. if (ret != 0)
  2061. uea_err(usb_dev, "can't claim interface %d, error %d\n", ifnum,
  2062. ret);
  2063. return ret;
  2064. }
  2065. static struct attribute *attrs[] = {
  2066. &dev_attr_stat_status.attr,
  2067. &dev_attr_stat_mflags.attr,
  2068. &dev_attr_stat_human_status.attr,
  2069. &dev_attr_stat_delin.attr,
  2070. &dev_attr_stat_vidcpe.attr,
  2071. &dev_attr_stat_usrate.attr,
  2072. &dev_attr_stat_dsrate.attr,
  2073. &dev_attr_stat_usattenuation.attr,
  2074. &dev_attr_stat_dsattenuation.attr,
  2075. &dev_attr_stat_usmargin.attr,
  2076. &dev_attr_stat_dsmargin.attr,
  2077. &dev_attr_stat_txflow.attr,
  2078. &dev_attr_stat_rxflow.attr,
  2079. &dev_attr_stat_uscorr.attr,
  2080. &dev_attr_stat_dscorr.attr,
  2081. &dev_attr_stat_usunc.attr,
  2082. &dev_attr_stat_dsunc.attr,
  2083. &dev_attr_stat_firmid.attr,
  2084. NULL,
  2085. };
  2086. static const struct attribute_group attr_grp = {
  2087. .attrs = attrs,
  2088. };
  2089. static int uea_bind(struct usbatm_data *usbatm, struct usb_interface *intf,
  2090. const struct usb_device_id *id)
  2091. {
  2092. struct usb_device *usb = interface_to_usbdev(intf);
  2093. struct uea_softc *sc;
  2094. int ret, ifnum = intf->altsetting->desc.bInterfaceNumber;
  2095. unsigned int alt;
  2096. uea_enters(usb);
  2097. /* interface 0 is for firmware/monitoring */
  2098. if (ifnum != UEA_INTR_IFACE_NO)
  2099. return -ENODEV;
  2100. usbatm->flags = (sync_wait[modem_index] ? 0 : UDSL_SKIP_HEAVY_INIT);
  2101. /* interface 1 is for outbound traffic */
  2102. ret = claim_interface(usb, usbatm, UEA_US_IFACE_NO);
  2103. if (ret < 0)
  2104. return ret;
  2105. /* ADI930 has only 2 interfaces and inbound traffic is on interface 1 */
  2106. if (UEA_CHIP_VERSION(id) != ADI930) {
  2107. /* interface 2 is for inbound traffic */
  2108. ret = claim_interface(usb, usbatm, UEA_DS_IFACE_NO);
  2109. if (ret < 0)
  2110. return ret;
  2111. }
  2112. sc = kzalloc(sizeof(struct uea_softc), GFP_KERNEL);
  2113. if (!sc)
  2114. return -ENOMEM;
  2115. sc->usb_dev = usb;
  2116. usbatm->driver_data = sc;
  2117. sc->usbatm = usbatm;
  2118. sc->modem_index = (modem_index < NB_MODEM) ? modem_index++ : 0;
  2119. sc->driver_info = id->driver_info;
  2120. /* first try to use module parameter */
  2121. if (annex[sc->modem_index] == 1)
  2122. sc->annex = ANNEXA;
  2123. else if (annex[sc->modem_index] == 2)
  2124. sc->annex = ANNEXB;
  2125. /* try to autodetect annex */
  2126. else if (sc->driver_info & AUTO_ANNEX_A)
  2127. sc->annex = ANNEXA;
  2128. else if (sc->driver_info & AUTO_ANNEX_B)
  2129. sc->annex = ANNEXB;
  2130. else
  2131. sc->annex = (le16_to_cpu
  2132. (sc->usb_dev->descriptor.bcdDevice) & 0x80) ? ANNEXB : ANNEXA;
  2133. alt = altsetting[sc->modem_index];
  2134. /* ADI930 don't support iso */
  2135. if (UEA_CHIP_VERSION(id) != ADI930 && alt > 0) {
  2136. if (alt <= 8 &&
  2137. usb_set_interface(usb, UEA_DS_IFACE_NO, alt) == 0) {
  2138. uea_dbg(usb, "set alternate %u for 2 interface\n", alt);
  2139. uea_info(usb, "using iso mode\n");
  2140. usbatm->flags |= UDSL_USE_ISOC | UDSL_IGNORE_EILSEQ;
  2141. } else {
  2142. uea_err(usb, "setting alternate %u failed for "
  2143. "2 interface, using bulk mode\n", alt);
  2144. }
  2145. }
  2146. ret = sysfs_create_group(&intf->dev.kobj, &attr_grp);
  2147. if (ret < 0)
  2148. goto error;
  2149. ret = uea_boot(sc, intf);
  2150. if (ret < 0)
  2151. goto error_rm_grp;
  2152. return 0;
  2153. error_rm_grp:
  2154. sysfs_remove_group(&intf->dev.kobj, &attr_grp);
  2155. error:
  2156. kfree(sc);
  2157. return ret;
  2158. }
  2159. static void uea_unbind(struct usbatm_data *usbatm, struct usb_interface *intf)
  2160. {
  2161. struct uea_softc *sc = usbatm->driver_data;
  2162. sysfs_remove_group(&intf->dev.kobj, &attr_grp);
  2163. uea_stop(sc);
  2164. kfree(sc);
  2165. }
  2166. static struct usbatm_driver uea_usbatm_driver = {
  2167. .driver_name = "ueagle-atm",
  2168. .bind = uea_bind,
  2169. .atm_start = uea_atm_open,
  2170. .unbind = uea_unbind,
  2171. .heavy_init = uea_heavy,
  2172. .bulk_in = UEA_BULK_DATA_PIPE,
  2173. .bulk_out = UEA_BULK_DATA_PIPE,
  2174. .isoc_in = UEA_ISO_DATA_PIPE,
  2175. };
  2176. static int uea_probe(struct usb_interface *intf, const struct usb_device_id *id)
  2177. {
  2178. struct usb_device *usb = interface_to_usbdev(intf);
  2179. int ret;
  2180. uea_enters(usb);
  2181. uea_info(usb, "ADSL device founded vid (%#X) pid (%#X) Rev (%#X): %s\n",
  2182. le16_to_cpu(usb->descriptor.idVendor),
  2183. le16_to_cpu(usb->descriptor.idProduct),
  2184. le16_to_cpu(usb->descriptor.bcdDevice),
  2185. chip_name[UEA_CHIP_VERSION(id)]);
  2186. usb_reset_device(usb);
  2187. if (UEA_IS_PREFIRM(id))
  2188. return uea_load_firmware(usb, UEA_CHIP_VERSION(id));
  2189. ret = usbatm_usb_probe(intf, id, &uea_usbatm_driver);
  2190. if (ret == 0) {
  2191. struct usbatm_data *usbatm = usb_get_intfdata(intf);
  2192. struct uea_softc *sc = usbatm->driver_data;
  2193. /* Ensure carrier is initialized to off as early as possible */
  2194. UPDATE_ATM_SIGNAL(ATM_PHY_SIG_LOST);
  2195. /* Only start the worker thread when all init is done */
  2196. wake_up_process(sc->kthread);
  2197. }
  2198. return ret;
  2199. }
  2200. static void uea_disconnect(struct usb_interface *intf)
  2201. {
  2202. struct usb_device *usb = interface_to_usbdev(intf);
  2203. int ifnum = intf->altsetting->desc.bInterfaceNumber;
  2204. uea_enters(usb);
  2205. /* ADI930 has 2 interfaces and eagle 3 interfaces.
  2206. * Pre-firmware device has one interface
  2207. */
  2208. if (usb->config->desc.bNumInterfaces != 1 && ifnum == 0) {
  2209. mutex_lock(&uea_mutex);
  2210. usbatm_usb_disconnect(intf);
  2211. mutex_unlock(&uea_mutex);
  2212. uea_info(usb, "ADSL device removed\n");
  2213. }
  2214. uea_leaves(usb);
  2215. }
  2216. /*
  2217. * List of supported VID/PID
  2218. */
  2219. static const struct usb_device_id uea_ids[] = {
  2220. {USB_DEVICE(ANALOG_VID, ADI930_PID_PREFIRM),
  2221. .driver_info = ADI930 | PREFIRM},
  2222. {USB_DEVICE(ANALOG_VID, ADI930_PID_PSTFIRM),
  2223. .driver_info = ADI930 | PSTFIRM},
  2224. {USB_DEVICE(ANALOG_VID, EAGLE_I_PID_PREFIRM),
  2225. .driver_info = EAGLE_I | PREFIRM},
  2226. {USB_DEVICE(ANALOG_VID, EAGLE_I_PID_PSTFIRM),
  2227. .driver_info = EAGLE_I | PSTFIRM},
  2228. {USB_DEVICE(ANALOG_VID, EAGLE_II_PID_PREFIRM),
  2229. .driver_info = EAGLE_II | PREFIRM},
  2230. {USB_DEVICE(ANALOG_VID, EAGLE_II_PID_PSTFIRM),
  2231. .driver_info = EAGLE_II | PSTFIRM},
  2232. {USB_DEVICE(ANALOG_VID, EAGLE_IIC_PID_PREFIRM),
  2233. .driver_info = EAGLE_II | PREFIRM},
  2234. {USB_DEVICE(ANALOG_VID, EAGLE_IIC_PID_PSTFIRM),
  2235. .driver_info = EAGLE_II | PSTFIRM},
  2236. {USB_DEVICE(ANALOG_VID, EAGLE_III_PID_PREFIRM),
  2237. .driver_info = EAGLE_III | PREFIRM},
  2238. {USB_DEVICE(ANALOG_VID, EAGLE_III_PID_PSTFIRM),
  2239. .driver_info = EAGLE_III | PSTFIRM},
  2240. {USB_DEVICE(ANALOG_VID, EAGLE_IV_PID_PREFIRM),
  2241. .driver_info = EAGLE_IV | PREFIRM},
  2242. {USB_DEVICE(ANALOG_VID, EAGLE_IV_PID_PSTFIRM),
  2243. .driver_info = EAGLE_IV | PSTFIRM},
  2244. {USB_DEVICE(DEVOLO_VID, DEVOLO_EAGLE_I_A_PID_PREFIRM),
  2245. .driver_info = EAGLE_I | PREFIRM},
  2246. {USB_DEVICE(DEVOLO_VID, DEVOLO_EAGLE_I_A_PID_PSTFIRM),
  2247. .driver_info = EAGLE_I | PSTFIRM | AUTO_ANNEX_A},
  2248. {USB_DEVICE(DEVOLO_VID, DEVOLO_EAGLE_I_B_PID_PREFIRM),
  2249. .driver_info = EAGLE_I | PREFIRM},
  2250. {USB_DEVICE(DEVOLO_VID, DEVOLO_EAGLE_I_B_PID_PSTFIRM),
  2251. .driver_info = EAGLE_I | PSTFIRM | AUTO_ANNEX_B},
  2252. {USB_DEVICE(DEVOLO_VID, DEVOLO_EAGLE_II_A_PID_PREFIRM),
  2253. .driver_info = EAGLE_II | PREFIRM},
  2254. {USB_DEVICE(DEVOLO_VID, DEVOLO_EAGLE_II_A_PID_PSTFIRM),
  2255. .driver_info = EAGLE_II | PSTFIRM | AUTO_ANNEX_A},
  2256. {USB_DEVICE(DEVOLO_VID, DEVOLO_EAGLE_II_B_PID_PREFIRM),
  2257. .driver_info = EAGLE_II | PREFIRM},
  2258. {USB_DEVICE(DEVOLO_VID, DEVOLO_EAGLE_II_B_PID_PSTFIRM),
  2259. .driver_info = EAGLE_II | PSTFIRM | AUTO_ANNEX_B},
  2260. {USB_DEVICE(ELSA_VID, ELSA_PID_PREFIRM),
  2261. .driver_info = ADI930 | PREFIRM},
  2262. {USB_DEVICE(ELSA_VID, ELSA_PID_PSTFIRM),
  2263. .driver_info = ADI930 | PSTFIRM},
  2264. {USB_DEVICE(ELSA_VID, ELSA_PID_A_PREFIRM),
  2265. .driver_info = ADI930 | PREFIRM},
  2266. {USB_DEVICE(ELSA_VID, ELSA_PID_A_PSTFIRM),
  2267. .driver_info = ADI930 | PSTFIRM | AUTO_ANNEX_A},
  2268. {USB_DEVICE(ELSA_VID, ELSA_PID_B_PREFIRM),
  2269. .driver_info = ADI930 | PREFIRM},
  2270. {USB_DEVICE(ELSA_VID, ELSA_PID_B_PSTFIRM),
  2271. .driver_info = ADI930 | PSTFIRM | AUTO_ANNEX_B},
  2272. {USB_DEVICE(USR_VID, MILLER_A_PID_PREFIRM),
  2273. .driver_info = EAGLE_I | PREFIRM},
  2274. {USB_DEVICE(USR_VID, MILLER_A_PID_PSTFIRM),
  2275. .driver_info = EAGLE_I | PSTFIRM | AUTO_ANNEX_A},
  2276. {USB_DEVICE(USR_VID, MILLER_B_PID_PREFIRM),
  2277. .driver_info = EAGLE_I | PREFIRM},
  2278. {USB_DEVICE(USR_VID, MILLER_B_PID_PSTFIRM),
  2279. .driver_info = EAGLE_I | PSTFIRM | AUTO_ANNEX_B},
  2280. {USB_DEVICE(USR_VID, HEINEKEN_A_PID_PREFIRM),
  2281. .driver_info = EAGLE_I | PREFIRM},
  2282. {USB_DEVICE(USR_VID, HEINEKEN_A_PID_PSTFIRM),
  2283. .driver_info = EAGLE_I | PSTFIRM | AUTO_ANNEX_A},
  2284. {USB_DEVICE(USR_VID, HEINEKEN_B_PID_PREFIRM),
  2285. .driver_info = EAGLE_I | PREFIRM},
  2286. {USB_DEVICE(USR_VID, HEINEKEN_B_PID_PSTFIRM),
  2287. .driver_info = EAGLE_I | PSTFIRM | AUTO_ANNEX_B},
  2288. {}
  2289. };
  2290. /*
  2291. * USB driver descriptor
  2292. */
  2293. static struct usb_driver uea_driver = {
  2294. .name = "ueagle-atm",
  2295. .id_table = uea_ids,
  2296. .probe = uea_probe,
  2297. .disconnect = uea_disconnect,
  2298. };
  2299. MODULE_DEVICE_TABLE(usb, uea_ids);
  2300. module_usb_driver(uea_driver);
  2301. MODULE_AUTHOR("Damien Bergamini/Matthieu Castet/Stanislaw W. Gruszka");
  2302. MODULE_DESCRIPTION("ADI 930/Eagle USB ADSL Modem driver");
  2303. MODULE_LICENSE("Dual BSD/GPL");
  2304. MODULE_FIRMWARE(EAGLE_FIRMWARE);
  2305. MODULE_FIRMWARE(ADI930_FIRMWARE);
  2306. MODULE_FIRMWARE(EAGLE_I_FIRMWARE);
  2307. MODULE_FIRMWARE(EAGLE_II_FIRMWARE);
  2308. MODULE_FIRMWARE(EAGLE_III_FIRMWARE);
  2309. MODULE_FIRMWARE(EAGLE_IV_FIRMWARE);
  2310. MODULE_FIRMWARE(DSP4I_FIRMWARE);
  2311. MODULE_FIRMWARE(DSP4P_FIRMWARE);
  2312. MODULE_FIRMWARE(DSP9I_FIRMWARE);
  2313. MODULE_FIRMWARE(DSP9P_FIRMWARE);
  2314. MODULE_FIRMWARE(DSPEI_FIRMWARE);
  2315. MODULE_FIRMWARE(DSPEP_FIRMWARE);
  2316. MODULE_FIRMWARE(FPGA930_FIRMWARE);
  2317. MODULE_FIRMWARE(CMV4P_FIRMWARE);
  2318. MODULE_FIRMWARE(CMV4PV2_FIRMWARE);
  2319. MODULE_FIRMWARE(CMV4I_FIRMWARE);
  2320. MODULE_FIRMWARE(CMV4IV2_FIRMWARE);
  2321. MODULE_FIRMWARE(CMV9P_FIRMWARE);
  2322. MODULE_FIRMWARE(CMV9PV2_FIRMWARE);
  2323. MODULE_FIRMWARE(CMV9I_FIRMWARE);
  2324. MODULE_FIRMWARE(CMV9IV2_FIRMWARE);
  2325. MODULE_FIRMWARE(CMVEP_FIRMWARE);
  2326. MODULE_FIRMWARE(CMVEPV2_FIRMWARE);
  2327. MODULE_FIRMWARE(CMVEI_FIRMWARE);
  2328. MODULE_FIRMWARE(CMVEIV2_FIRMWARE);