stallion.c 123 KB

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  1. /*****************************************************************************/
  2. /*
  3. * stallion.c -- stallion multiport serial driver.
  4. *
  5. * Copyright (C) 1996-1999 Stallion Technologies
  6. * Copyright (C) 1994-1996 Greg Ungerer.
  7. *
  8. * This code is loosely based on the Linux serial driver, written by
  9. * Linus Torvalds, Theodore T'so and others.
  10. *
  11. * This program is free software; you can redistribute it and/or modify
  12. * it under the terms of the GNU General Public License as published by
  13. * the Free Software Foundation; either version 2 of the License, or
  14. * (at your option) any later version.
  15. *
  16. * This program is distributed in the hope that it will be useful,
  17. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  18. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  19. * GNU General Public License for more details.
  20. *
  21. * You should have received a copy of the GNU General Public License
  22. * along with this program; if not, write to the Free Software
  23. * Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
  24. */
  25. /*****************************************************************************/
  26. #include <linux/module.h>
  27. #include <linux/slab.h>
  28. #include <linux/interrupt.h>
  29. #include <linux/tty.h>
  30. #include <linux/tty_flip.h>
  31. #include <linux/serial.h>
  32. #include <linux/cd1400.h>
  33. #include <linux/sc26198.h>
  34. #include <linux/comstats.h>
  35. #include <linux/stallion.h>
  36. #include <linux/ioport.h>
  37. #include <linux/init.h>
  38. #include <linux/smp_lock.h>
  39. #include <linux/device.h>
  40. #include <linux/delay.h>
  41. #include <linux/ctype.h>
  42. #include <asm/io.h>
  43. #include <asm/uaccess.h>
  44. #include <linux/pci.h>
  45. /*****************************************************************************/
  46. /*
  47. * Define different board types. Use the standard Stallion "assigned"
  48. * board numbers. Boards supported in this driver are abbreviated as
  49. * EIO = EasyIO and ECH = EasyConnection 8/32.
  50. */
  51. #define BRD_EASYIO 20
  52. #define BRD_ECH 21
  53. #define BRD_ECHMC 22
  54. #define BRD_ECHPCI 26
  55. #define BRD_ECH64PCI 27
  56. #define BRD_EASYIOPCI 28
  57. struct stlconf {
  58. unsigned int brdtype;
  59. int ioaddr1;
  60. int ioaddr2;
  61. unsigned long memaddr;
  62. int irq;
  63. int irqtype;
  64. };
  65. static unsigned int stl_nrbrds;
  66. /*****************************************************************************/
  67. /*
  68. * Define some important driver characteristics. Device major numbers
  69. * allocated as per Linux Device Registry.
  70. */
  71. #ifndef STL_SIOMEMMAJOR
  72. #define STL_SIOMEMMAJOR 28
  73. #endif
  74. #ifndef STL_SERIALMAJOR
  75. #define STL_SERIALMAJOR 24
  76. #endif
  77. #ifndef STL_CALLOUTMAJOR
  78. #define STL_CALLOUTMAJOR 25
  79. #endif
  80. /*
  81. * Set the TX buffer size. Bigger is better, but we don't want
  82. * to chew too much memory with buffers!
  83. */
  84. #define STL_TXBUFLOW 512
  85. #define STL_TXBUFSIZE 4096
  86. /*****************************************************************************/
  87. /*
  88. * Define our local driver identity first. Set up stuff to deal with
  89. * all the local structures required by a serial tty driver.
  90. */
  91. static char *stl_drvtitle = "Stallion Multiport Serial Driver";
  92. static char *stl_drvname = "stallion";
  93. static char *stl_drvversion = "5.6.0";
  94. static struct tty_driver *stl_serial;
  95. /*
  96. * Define a local default termios struct. All ports will be created
  97. * with this termios initially. Basically all it defines is a raw port
  98. * at 9600, 8 data bits, 1 stop bit.
  99. */
  100. static struct ktermios stl_deftermios = {
  101. .c_cflag = (B9600 | CS8 | CREAD | HUPCL | CLOCAL),
  102. .c_cc = INIT_C_CC,
  103. .c_ispeed = 9600,
  104. .c_ospeed = 9600,
  105. };
  106. /*
  107. * Define global place to put buffer overflow characters.
  108. */
  109. static char stl_unwanted[SC26198_RXFIFOSIZE];
  110. /*****************************************************************************/
  111. static DEFINE_MUTEX(stl_brdslock);
  112. static struct stlbrd *stl_brds[STL_MAXBRDS];
  113. /*
  114. * Per board state flags. Used with the state field of the board struct.
  115. * Not really much here!
  116. */
  117. #define BRD_FOUND 0x1
  118. #define STL_PROBED 0x2
  119. /*
  120. * Define the port structure istate flags. These set of flags are
  121. * modified at interrupt time - so setting and reseting them needs
  122. * to be atomic. Use the bit clear/setting routines for this.
  123. */
  124. #define ASYI_TXBUSY 1
  125. #define ASYI_TXLOW 2
  126. #define ASYI_TXFLOWED 3
  127. /*
  128. * Define an array of board names as printable strings. Handy for
  129. * referencing boards when printing trace and stuff.
  130. */
  131. static char *stl_brdnames[] = {
  132. NULL,
  133. NULL,
  134. NULL,
  135. NULL,
  136. NULL,
  137. NULL,
  138. NULL,
  139. NULL,
  140. NULL,
  141. NULL,
  142. NULL,
  143. NULL,
  144. NULL,
  145. NULL,
  146. NULL,
  147. NULL,
  148. NULL,
  149. NULL,
  150. NULL,
  151. NULL,
  152. "EasyIO",
  153. "EC8/32-AT",
  154. "EC8/32-MC",
  155. NULL,
  156. NULL,
  157. NULL,
  158. "EC8/32-PCI",
  159. "EC8/64-PCI",
  160. "EasyIO-PCI",
  161. };
  162. /*****************************************************************************/
  163. /*
  164. * Define some string labels for arguments passed from the module
  165. * load line. These allow for easy board definitions, and easy
  166. * modification of the io, memory and irq resoucres.
  167. */
  168. static unsigned int stl_nargs;
  169. static char *board0[4];
  170. static char *board1[4];
  171. static char *board2[4];
  172. static char *board3[4];
  173. static char **stl_brdsp[] = {
  174. (char **) &board0,
  175. (char **) &board1,
  176. (char **) &board2,
  177. (char **) &board3
  178. };
  179. /*
  180. * Define a set of common board names, and types. This is used to
  181. * parse any module arguments.
  182. */
  183. static struct {
  184. char *name;
  185. int type;
  186. } stl_brdstr[] = {
  187. { "easyio", BRD_EASYIO },
  188. { "eio", BRD_EASYIO },
  189. { "20", BRD_EASYIO },
  190. { "ec8/32", BRD_ECH },
  191. { "ec8/32-at", BRD_ECH },
  192. { "ec8/32-isa", BRD_ECH },
  193. { "ech", BRD_ECH },
  194. { "echat", BRD_ECH },
  195. { "21", BRD_ECH },
  196. { "ec8/32-mc", BRD_ECHMC },
  197. { "ec8/32-mca", BRD_ECHMC },
  198. { "echmc", BRD_ECHMC },
  199. { "echmca", BRD_ECHMC },
  200. { "22", BRD_ECHMC },
  201. { "ec8/32-pc", BRD_ECHPCI },
  202. { "ec8/32-pci", BRD_ECHPCI },
  203. { "26", BRD_ECHPCI },
  204. { "ec8/64-pc", BRD_ECH64PCI },
  205. { "ec8/64-pci", BRD_ECH64PCI },
  206. { "ech-pci", BRD_ECH64PCI },
  207. { "echpci", BRD_ECH64PCI },
  208. { "echpc", BRD_ECH64PCI },
  209. { "27", BRD_ECH64PCI },
  210. { "easyio-pc", BRD_EASYIOPCI },
  211. { "easyio-pci", BRD_EASYIOPCI },
  212. { "eio-pci", BRD_EASYIOPCI },
  213. { "eiopci", BRD_EASYIOPCI },
  214. { "28", BRD_EASYIOPCI },
  215. };
  216. /*
  217. * Define the module agruments.
  218. */
  219. module_param_array(board0, charp, &stl_nargs, 0);
  220. MODULE_PARM_DESC(board0, "Board 0 config -> name[,ioaddr[,ioaddr2][,irq]]");
  221. module_param_array(board1, charp, &stl_nargs, 0);
  222. MODULE_PARM_DESC(board1, "Board 1 config -> name[,ioaddr[,ioaddr2][,irq]]");
  223. module_param_array(board2, charp, &stl_nargs, 0);
  224. MODULE_PARM_DESC(board2, "Board 2 config -> name[,ioaddr[,ioaddr2][,irq]]");
  225. module_param_array(board3, charp, &stl_nargs, 0);
  226. MODULE_PARM_DESC(board3, "Board 3 config -> name[,ioaddr[,ioaddr2][,irq]]");
  227. /*****************************************************************************/
  228. /*
  229. * Hardware ID bits for the EasyIO and ECH boards. These defines apply
  230. * to the directly accessible io ports of these boards (not the uarts -
  231. * they are in cd1400.h and sc26198.h).
  232. */
  233. #define EIO_8PORTRS 0x04
  234. #define EIO_4PORTRS 0x05
  235. #define EIO_8PORTDI 0x00
  236. #define EIO_8PORTM 0x06
  237. #define EIO_MK3 0x03
  238. #define EIO_IDBITMASK 0x07
  239. #define EIO_BRDMASK 0xf0
  240. #define ID_BRD4 0x10
  241. #define ID_BRD8 0x20
  242. #define ID_BRD16 0x30
  243. #define EIO_INTRPEND 0x08
  244. #define EIO_INTEDGE 0x00
  245. #define EIO_INTLEVEL 0x08
  246. #define EIO_0WS 0x10
  247. #define ECH_ID 0xa0
  248. #define ECH_IDBITMASK 0xe0
  249. #define ECH_BRDENABLE 0x08
  250. #define ECH_BRDDISABLE 0x00
  251. #define ECH_INTENABLE 0x01
  252. #define ECH_INTDISABLE 0x00
  253. #define ECH_INTLEVEL 0x02
  254. #define ECH_INTEDGE 0x00
  255. #define ECH_INTRPEND 0x01
  256. #define ECH_BRDRESET 0x01
  257. #define ECHMC_INTENABLE 0x01
  258. #define ECHMC_BRDRESET 0x02
  259. #define ECH_PNLSTATUS 2
  260. #define ECH_PNL16PORT 0x20
  261. #define ECH_PNLIDMASK 0x07
  262. #define ECH_PNLXPID 0x40
  263. #define ECH_PNLINTRPEND 0x80
  264. #define ECH_ADDR2MASK 0x1e0
  265. /*
  266. * Define the vector mapping bits for the programmable interrupt board
  267. * hardware. These bits encode the interrupt for the board to use - it
  268. * is software selectable (except the EIO-8M).
  269. */
  270. static unsigned char stl_vecmap[] = {
  271. 0xff, 0xff, 0xff, 0x04, 0x06, 0x05, 0xff, 0x07,
  272. 0xff, 0xff, 0x00, 0x02, 0x01, 0xff, 0xff, 0x03
  273. };
  274. /*
  275. * Lock ordering is that you may not take stallion_lock holding
  276. * brd_lock.
  277. */
  278. static spinlock_t brd_lock; /* Guard the board mapping */
  279. static spinlock_t stallion_lock; /* Guard the tty driver */
  280. /*
  281. * Set up enable and disable macros for the ECH boards. They require
  282. * the secondary io address space to be activated and deactivated.
  283. * This way all ECH boards can share their secondary io region.
  284. * If this is an ECH-PCI board then also need to set the page pointer
  285. * to point to the correct page.
  286. */
  287. #define BRDENABLE(brdnr,pagenr) \
  288. if (stl_brds[(brdnr)]->brdtype == BRD_ECH) \
  289. outb((stl_brds[(brdnr)]->ioctrlval | ECH_BRDENABLE), \
  290. stl_brds[(brdnr)]->ioctrl); \
  291. else if (stl_brds[(brdnr)]->brdtype == BRD_ECHPCI) \
  292. outb((pagenr), stl_brds[(brdnr)]->ioctrl);
  293. #define BRDDISABLE(brdnr) \
  294. if (stl_brds[(brdnr)]->brdtype == BRD_ECH) \
  295. outb((stl_brds[(brdnr)]->ioctrlval | ECH_BRDDISABLE), \
  296. stl_brds[(brdnr)]->ioctrl);
  297. #define STL_CD1400MAXBAUD 230400
  298. #define STL_SC26198MAXBAUD 460800
  299. #define STL_BAUDBASE 115200
  300. #define STL_CLOSEDELAY (5 * HZ / 10)
  301. /*****************************************************************************/
  302. /*
  303. * Define the Stallion PCI vendor and device IDs.
  304. */
  305. #ifndef PCI_VENDOR_ID_STALLION
  306. #define PCI_VENDOR_ID_STALLION 0x124d
  307. #endif
  308. #ifndef PCI_DEVICE_ID_ECHPCI832
  309. #define PCI_DEVICE_ID_ECHPCI832 0x0000
  310. #endif
  311. #ifndef PCI_DEVICE_ID_ECHPCI864
  312. #define PCI_DEVICE_ID_ECHPCI864 0x0002
  313. #endif
  314. #ifndef PCI_DEVICE_ID_EIOPCI
  315. #define PCI_DEVICE_ID_EIOPCI 0x0003
  316. #endif
  317. /*
  318. * Define structure to hold all Stallion PCI boards.
  319. */
  320. static struct pci_device_id stl_pcibrds[] = {
  321. { PCI_DEVICE(PCI_VENDOR_ID_STALLION, PCI_DEVICE_ID_ECHPCI864),
  322. .driver_data = BRD_ECH64PCI },
  323. { PCI_DEVICE(PCI_VENDOR_ID_STALLION, PCI_DEVICE_ID_EIOPCI),
  324. .driver_data = BRD_EASYIOPCI },
  325. { PCI_DEVICE(PCI_VENDOR_ID_STALLION, PCI_DEVICE_ID_ECHPCI832),
  326. .driver_data = BRD_ECHPCI },
  327. { PCI_DEVICE(PCI_VENDOR_ID_NS, PCI_DEVICE_ID_NS_87410),
  328. .driver_data = BRD_ECHPCI },
  329. { }
  330. };
  331. MODULE_DEVICE_TABLE(pci, stl_pcibrds);
  332. /*****************************************************************************/
  333. /*
  334. * Define macros to extract a brd/port number from a minor number.
  335. */
  336. #define MINOR2BRD(min) (((min) & 0xc0) >> 6)
  337. #define MINOR2PORT(min) ((min) & 0x3f)
  338. /*
  339. * Define a baud rate table that converts termios baud rate selector
  340. * into the actual baud rate value. All baud rate calculations are
  341. * based on the actual baud rate required.
  342. */
  343. static unsigned int stl_baudrates[] = {
  344. 0, 50, 75, 110, 134, 150, 200, 300, 600, 1200, 1800, 2400, 4800,
  345. 9600, 19200, 38400, 57600, 115200, 230400, 460800, 921600
  346. };
  347. /*****************************************************************************/
  348. /*
  349. * Declare all those functions in this driver!
  350. */
  351. static int stl_memioctl(struct inode *ip, struct file *fp, unsigned int cmd, unsigned long arg);
  352. static int stl_brdinit(struct stlbrd *brdp);
  353. static int stl_getportstats(struct stlport *portp, comstats_t __user *cp);
  354. static int stl_clrportstats(struct stlport *portp, comstats_t __user *cp);
  355. static int stl_waitcarrier(struct stlport *portp, struct file *filp);
  356. /*
  357. * CD1400 uart specific handling functions.
  358. */
  359. static void stl_cd1400setreg(struct stlport *portp, int regnr, int value);
  360. static int stl_cd1400getreg(struct stlport *portp, int regnr);
  361. static int stl_cd1400updatereg(struct stlport *portp, int regnr, int value);
  362. static int stl_cd1400panelinit(struct stlbrd *brdp, struct stlpanel *panelp);
  363. static void stl_cd1400portinit(struct stlbrd *brdp, struct stlpanel *panelp, struct stlport *portp);
  364. static void stl_cd1400setport(struct stlport *portp, struct ktermios *tiosp);
  365. static int stl_cd1400getsignals(struct stlport *portp);
  366. static void stl_cd1400setsignals(struct stlport *portp, int dtr, int rts);
  367. static void stl_cd1400ccrwait(struct stlport *portp);
  368. static void stl_cd1400enablerxtx(struct stlport *portp, int rx, int tx);
  369. static void stl_cd1400startrxtx(struct stlport *portp, int rx, int tx);
  370. static void stl_cd1400disableintrs(struct stlport *portp);
  371. static void stl_cd1400sendbreak(struct stlport *portp, int len);
  372. static void stl_cd1400flowctrl(struct stlport *portp, int state);
  373. static void stl_cd1400sendflow(struct stlport *portp, int state);
  374. static void stl_cd1400flush(struct stlport *portp);
  375. static int stl_cd1400datastate(struct stlport *portp);
  376. static void stl_cd1400eiointr(struct stlpanel *panelp, unsigned int iobase);
  377. static void stl_cd1400echintr(struct stlpanel *panelp, unsigned int iobase);
  378. static void stl_cd1400txisr(struct stlpanel *panelp, int ioaddr);
  379. static void stl_cd1400rxisr(struct stlpanel *panelp, int ioaddr);
  380. static void stl_cd1400mdmisr(struct stlpanel *panelp, int ioaddr);
  381. static inline int stl_cd1400breakisr(struct stlport *portp, int ioaddr);
  382. /*
  383. * SC26198 uart specific handling functions.
  384. */
  385. static void stl_sc26198setreg(struct stlport *portp, int regnr, int value);
  386. static int stl_sc26198getreg(struct stlport *portp, int regnr);
  387. static int stl_sc26198updatereg(struct stlport *portp, int regnr, int value);
  388. static int stl_sc26198getglobreg(struct stlport *portp, int regnr);
  389. static int stl_sc26198panelinit(struct stlbrd *brdp, struct stlpanel *panelp);
  390. static void stl_sc26198portinit(struct stlbrd *brdp, struct stlpanel *panelp, struct stlport *portp);
  391. static void stl_sc26198setport(struct stlport *portp, struct ktermios *tiosp);
  392. static int stl_sc26198getsignals(struct stlport *portp);
  393. static void stl_sc26198setsignals(struct stlport *portp, int dtr, int rts);
  394. static void stl_sc26198enablerxtx(struct stlport *portp, int rx, int tx);
  395. static void stl_sc26198startrxtx(struct stlport *portp, int rx, int tx);
  396. static void stl_sc26198disableintrs(struct stlport *portp);
  397. static void stl_sc26198sendbreak(struct stlport *portp, int len);
  398. static void stl_sc26198flowctrl(struct stlport *portp, int state);
  399. static void stl_sc26198sendflow(struct stlport *portp, int state);
  400. static void stl_sc26198flush(struct stlport *portp);
  401. static int stl_sc26198datastate(struct stlport *portp);
  402. static void stl_sc26198wait(struct stlport *portp);
  403. static void stl_sc26198txunflow(struct stlport *portp, struct tty_struct *tty);
  404. static void stl_sc26198intr(struct stlpanel *panelp, unsigned int iobase);
  405. static void stl_sc26198txisr(struct stlport *port);
  406. static void stl_sc26198rxisr(struct stlport *port, unsigned int iack);
  407. static void stl_sc26198rxbadch(struct stlport *portp, unsigned char status, char ch);
  408. static void stl_sc26198rxbadchars(struct stlport *portp);
  409. static void stl_sc26198otherisr(struct stlport *port, unsigned int iack);
  410. /*****************************************************************************/
  411. /*
  412. * Generic UART support structure.
  413. */
  414. typedef struct uart {
  415. int (*panelinit)(struct stlbrd *brdp, struct stlpanel *panelp);
  416. void (*portinit)(struct stlbrd *brdp, struct stlpanel *panelp, struct stlport *portp);
  417. void (*setport)(struct stlport *portp, struct ktermios *tiosp);
  418. int (*getsignals)(struct stlport *portp);
  419. void (*setsignals)(struct stlport *portp, int dtr, int rts);
  420. void (*enablerxtx)(struct stlport *portp, int rx, int tx);
  421. void (*startrxtx)(struct stlport *portp, int rx, int tx);
  422. void (*disableintrs)(struct stlport *portp);
  423. void (*sendbreak)(struct stlport *portp, int len);
  424. void (*flowctrl)(struct stlport *portp, int state);
  425. void (*sendflow)(struct stlport *portp, int state);
  426. void (*flush)(struct stlport *portp);
  427. int (*datastate)(struct stlport *portp);
  428. void (*intr)(struct stlpanel *panelp, unsigned int iobase);
  429. } uart_t;
  430. /*
  431. * Define some macros to make calling these functions nice and clean.
  432. */
  433. #define stl_panelinit (* ((uart_t *) panelp->uartp)->panelinit)
  434. #define stl_portinit (* ((uart_t *) portp->uartp)->portinit)
  435. #define stl_setport (* ((uart_t *) portp->uartp)->setport)
  436. #define stl_getsignals (* ((uart_t *) portp->uartp)->getsignals)
  437. #define stl_setsignals (* ((uart_t *) portp->uartp)->setsignals)
  438. #define stl_enablerxtx (* ((uart_t *) portp->uartp)->enablerxtx)
  439. #define stl_startrxtx (* ((uart_t *) portp->uartp)->startrxtx)
  440. #define stl_disableintrs (* ((uart_t *) portp->uartp)->disableintrs)
  441. #define stl_sendbreak (* ((uart_t *) portp->uartp)->sendbreak)
  442. #define stl_flowctrl (* ((uart_t *) portp->uartp)->flowctrl)
  443. #define stl_sendflow (* ((uart_t *) portp->uartp)->sendflow)
  444. #define stl_flush (* ((uart_t *) portp->uartp)->flush)
  445. #define stl_datastate (* ((uart_t *) portp->uartp)->datastate)
  446. /*****************************************************************************/
  447. /*
  448. * CD1400 UART specific data initialization.
  449. */
  450. static uart_t stl_cd1400uart = {
  451. stl_cd1400panelinit,
  452. stl_cd1400portinit,
  453. stl_cd1400setport,
  454. stl_cd1400getsignals,
  455. stl_cd1400setsignals,
  456. stl_cd1400enablerxtx,
  457. stl_cd1400startrxtx,
  458. stl_cd1400disableintrs,
  459. stl_cd1400sendbreak,
  460. stl_cd1400flowctrl,
  461. stl_cd1400sendflow,
  462. stl_cd1400flush,
  463. stl_cd1400datastate,
  464. stl_cd1400eiointr
  465. };
  466. /*
  467. * Define the offsets within the register bank of a cd1400 based panel.
  468. * These io address offsets are common to the EasyIO board as well.
  469. */
  470. #define EREG_ADDR 0
  471. #define EREG_DATA 4
  472. #define EREG_RXACK 5
  473. #define EREG_TXACK 6
  474. #define EREG_MDACK 7
  475. #define EREG_BANKSIZE 8
  476. #define CD1400_CLK 25000000
  477. #define CD1400_CLK8M 20000000
  478. /*
  479. * Define the cd1400 baud rate clocks. These are used when calculating
  480. * what clock and divisor to use for the required baud rate. Also
  481. * define the maximum baud rate allowed, and the default base baud.
  482. */
  483. static int stl_cd1400clkdivs[] = {
  484. CD1400_CLK0, CD1400_CLK1, CD1400_CLK2, CD1400_CLK3, CD1400_CLK4
  485. };
  486. /*****************************************************************************/
  487. /*
  488. * SC26198 UART specific data initization.
  489. */
  490. static uart_t stl_sc26198uart = {
  491. stl_sc26198panelinit,
  492. stl_sc26198portinit,
  493. stl_sc26198setport,
  494. stl_sc26198getsignals,
  495. stl_sc26198setsignals,
  496. stl_sc26198enablerxtx,
  497. stl_sc26198startrxtx,
  498. stl_sc26198disableintrs,
  499. stl_sc26198sendbreak,
  500. stl_sc26198flowctrl,
  501. stl_sc26198sendflow,
  502. stl_sc26198flush,
  503. stl_sc26198datastate,
  504. stl_sc26198intr
  505. };
  506. /*
  507. * Define the offsets within the register bank of a sc26198 based panel.
  508. */
  509. #define XP_DATA 0
  510. #define XP_ADDR 1
  511. #define XP_MODID 2
  512. #define XP_STATUS 2
  513. #define XP_IACK 3
  514. #define XP_BANKSIZE 4
  515. /*
  516. * Define the sc26198 baud rate table. Offsets within the table
  517. * represent the actual baud rate selector of sc26198 registers.
  518. */
  519. static unsigned int sc26198_baudtable[] = {
  520. 50, 75, 150, 200, 300, 450, 600, 900, 1200, 1800, 2400, 3600,
  521. 4800, 7200, 9600, 14400, 19200, 28800, 38400, 57600, 115200,
  522. 230400, 460800, 921600
  523. };
  524. #define SC26198_NRBAUDS ARRAY_SIZE(sc26198_baudtable)
  525. /*****************************************************************************/
  526. /*
  527. * Define the driver info for a user level control device. Used mainly
  528. * to get at port stats - only not using the port device itself.
  529. */
  530. static const struct file_operations stl_fsiomem = {
  531. .owner = THIS_MODULE,
  532. .ioctl = stl_memioctl,
  533. };
  534. static struct class *stallion_class;
  535. static void stl_cd_change(struct stlport *portp)
  536. {
  537. unsigned int oldsigs = portp->sigs;
  538. if (!portp->tty)
  539. return;
  540. portp->sigs = stl_getsignals(portp);
  541. if ((portp->sigs & TIOCM_CD) && ((oldsigs & TIOCM_CD) == 0))
  542. wake_up_interruptible(&portp->open_wait);
  543. if ((oldsigs & TIOCM_CD) && ((portp->sigs & TIOCM_CD) == 0))
  544. if (portp->flags & ASYNC_CHECK_CD)
  545. tty_hangup(portp->tty);
  546. }
  547. /*
  548. * Check for any arguments passed in on the module load command line.
  549. */
  550. /*****************************************************************************/
  551. /*
  552. * Parse the supplied argument string, into the board conf struct.
  553. */
  554. static int __init stl_parsebrd(struct stlconf *confp, char **argp)
  555. {
  556. char *sp;
  557. unsigned int i;
  558. pr_debug("stl_parsebrd(confp=%p,argp=%p)\n", confp, argp);
  559. if ((argp[0] == NULL) || (*argp[0] == 0))
  560. return 0;
  561. for (sp = argp[0], i = 0; (*sp != 0) && (i < 25); sp++, i++)
  562. *sp = tolower(*sp);
  563. for (i = 0; i < ARRAY_SIZE(stl_brdstr); i++)
  564. if (strcmp(stl_brdstr[i].name, argp[0]) == 0)
  565. break;
  566. if (i == ARRAY_SIZE(stl_brdstr)) {
  567. printk("STALLION: unknown board name, %s?\n", argp[0]);
  568. return 0;
  569. }
  570. confp->brdtype = stl_brdstr[i].type;
  571. i = 1;
  572. if ((argp[i] != NULL) && (*argp[i] != 0))
  573. confp->ioaddr1 = simple_strtoul(argp[i], NULL, 0);
  574. i++;
  575. if (confp->brdtype == BRD_ECH) {
  576. if ((argp[i] != NULL) && (*argp[i] != 0))
  577. confp->ioaddr2 = simple_strtoul(argp[i], NULL, 0);
  578. i++;
  579. }
  580. if ((argp[i] != NULL) && (*argp[i] != 0))
  581. confp->irq = simple_strtoul(argp[i], NULL, 0);
  582. return 1;
  583. }
  584. /*****************************************************************************/
  585. /*
  586. * Allocate a new board structure. Fill out the basic info in it.
  587. */
  588. static struct stlbrd *stl_allocbrd(void)
  589. {
  590. struct stlbrd *brdp;
  591. brdp = kzalloc(sizeof(struct stlbrd), GFP_KERNEL);
  592. if (!brdp) {
  593. printk("STALLION: failed to allocate memory (size=%Zd)\n",
  594. sizeof(struct stlbrd));
  595. return NULL;
  596. }
  597. brdp->magic = STL_BOARDMAGIC;
  598. return brdp;
  599. }
  600. /*****************************************************************************/
  601. static int stl_open(struct tty_struct *tty, struct file *filp)
  602. {
  603. struct stlport *portp;
  604. struct stlbrd *brdp;
  605. unsigned int minordev, brdnr, panelnr;
  606. int portnr, rc;
  607. pr_debug("stl_open(tty=%p,filp=%p): device=%s\n", tty, filp, tty->name);
  608. minordev = tty->index;
  609. brdnr = MINOR2BRD(minordev);
  610. if (brdnr >= stl_nrbrds)
  611. return -ENODEV;
  612. brdp = stl_brds[brdnr];
  613. if (brdp == NULL)
  614. return -ENODEV;
  615. minordev = MINOR2PORT(minordev);
  616. for (portnr = -1, panelnr = 0; panelnr < STL_MAXPANELS; panelnr++) {
  617. if (brdp->panels[panelnr] == NULL)
  618. break;
  619. if (minordev < brdp->panels[panelnr]->nrports) {
  620. portnr = minordev;
  621. break;
  622. }
  623. minordev -= brdp->panels[panelnr]->nrports;
  624. }
  625. if (portnr < 0)
  626. return -ENODEV;
  627. portp = brdp->panels[panelnr]->ports[portnr];
  628. if (portp == NULL)
  629. return -ENODEV;
  630. /*
  631. * On the first open of the device setup the port hardware, and
  632. * initialize the per port data structure.
  633. */
  634. portp->tty = tty;
  635. tty->driver_data = portp;
  636. portp->refcount++;
  637. if ((portp->flags & ASYNC_INITIALIZED) == 0) {
  638. if (!portp->tx.buf) {
  639. portp->tx.buf = kmalloc(STL_TXBUFSIZE, GFP_KERNEL);
  640. if (!portp->tx.buf)
  641. return -ENOMEM;
  642. portp->tx.head = portp->tx.buf;
  643. portp->tx.tail = portp->tx.buf;
  644. }
  645. stl_setport(portp, tty->termios);
  646. portp->sigs = stl_getsignals(portp);
  647. stl_setsignals(portp, 1, 1);
  648. stl_enablerxtx(portp, 1, 1);
  649. stl_startrxtx(portp, 1, 0);
  650. clear_bit(TTY_IO_ERROR, &tty->flags);
  651. portp->flags |= ASYNC_INITIALIZED;
  652. }
  653. /*
  654. * Check if this port is in the middle of closing. If so then wait
  655. * until it is closed then return error status, based on flag settings.
  656. * The sleep here does not need interrupt protection since the wakeup
  657. * for it is done with the same context.
  658. */
  659. if (portp->flags & ASYNC_CLOSING) {
  660. interruptible_sleep_on(&portp->close_wait);
  661. if (portp->flags & ASYNC_HUP_NOTIFY)
  662. return -EAGAIN;
  663. return -ERESTARTSYS;
  664. }
  665. /*
  666. * Based on type of open being done check if it can overlap with any
  667. * previous opens still in effect. If we are a normal serial device
  668. * then also we might have to wait for carrier.
  669. */
  670. if (!(filp->f_flags & O_NONBLOCK))
  671. if ((rc = stl_waitcarrier(portp, filp)) != 0)
  672. return rc;
  673. portp->flags |= ASYNC_NORMAL_ACTIVE;
  674. return 0;
  675. }
  676. /*****************************************************************************/
  677. /*
  678. * Possibly need to wait for carrier (DCD signal) to come high. Say
  679. * maybe because if we are clocal then we don't need to wait...
  680. */
  681. static int stl_waitcarrier(struct stlport *portp, struct file *filp)
  682. {
  683. unsigned long flags;
  684. int rc, doclocal;
  685. pr_debug("stl_waitcarrier(portp=%p,filp=%p)\n", portp, filp);
  686. rc = 0;
  687. doclocal = 0;
  688. spin_lock_irqsave(&stallion_lock, flags);
  689. if (portp->tty->termios->c_cflag & CLOCAL)
  690. doclocal++;
  691. portp->openwaitcnt++;
  692. if (! tty_hung_up_p(filp))
  693. portp->refcount--;
  694. for (;;) {
  695. /* Takes brd_lock internally */
  696. stl_setsignals(portp, 1, 1);
  697. if (tty_hung_up_p(filp) ||
  698. ((portp->flags & ASYNC_INITIALIZED) == 0)) {
  699. if (portp->flags & ASYNC_HUP_NOTIFY)
  700. rc = -EBUSY;
  701. else
  702. rc = -ERESTARTSYS;
  703. break;
  704. }
  705. if (((portp->flags & ASYNC_CLOSING) == 0) &&
  706. (doclocal || (portp->sigs & TIOCM_CD)))
  707. break;
  708. if (signal_pending(current)) {
  709. rc = -ERESTARTSYS;
  710. break;
  711. }
  712. /* FIXME */
  713. interruptible_sleep_on(&portp->open_wait);
  714. }
  715. if (! tty_hung_up_p(filp))
  716. portp->refcount++;
  717. portp->openwaitcnt--;
  718. spin_unlock_irqrestore(&stallion_lock, flags);
  719. return rc;
  720. }
  721. /*****************************************************************************/
  722. static void stl_flushbuffer(struct tty_struct *tty)
  723. {
  724. struct stlport *portp;
  725. pr_debug("stl_flushbuffer(tty=%p)\n", tty);
  726. if (tty == NULL)
  727. return;
  728. portp = tty->driver_data;
  729. if (portp == NULL)
  730. return;
  731. stl_flush(portp);
  732. tty_wakeup(tty);
  733. }
  734. /*****************************************************************************/
  735. static void stl_waituntilsent(struct tty_struct *tty, int timeout)
  736. {
  737. struct stlport *portp;
  738. unsigned long tend;
  739. pr_debug("stl_waituntilsent(tty=%p,timeout=%d)\n", tty, timeout);
  740. if (tty == NULL)
  741. return;
  742. portp = tty->driver_data;
  743. if (portp == NULL)
  744. return;
  745. if (timeout == 0)
  746. timeout = HZ;
  747. tend = jiffies + timeout;
  748. while (stl_datastate(portp)) {
  749. if (signal_pending(current))
  750. break;
  751. msleep_interruptible(20);
  752. if (time_after_eq(jiffies, tend))
  753. break;
  754. }
  755. }
  756. /*****************************************************************************/
  757. static void stl_close(struct tty_struct *tty, struct file *filp)
  758. {
  759. struct stlport *portp;
  760. unsigned long flags;
  761. pr_debug("stl_close(tty=%p,filp=%p)\n", tty, filp);
  762. portp = tty->driver_data;
  763. if (portp == NULL)
  764. return;
  765. spin_lock_irqsave(&stallion_lock, flags);
  766. if (tty_hung_up_p(filp)) {
  767. spin_unlock_irqrestore(&stallion_lock, flags);
  768. return;
  769. }
  770. if ((tty->count == 1) && (portp->refcount != 1))
  771. portp->refcount = 1;
  772. if (portp->refcount-- > 1) {
  773. spin_unlock_irqrestore(&stallion_lock, flags);
  774. return;
  775. }
  776. portp->refcount = 0;
  777. portp->flags |= ASYNC_CLOSING;
  778. /*
  779. * May want to wait for any data to drain before closing. The BUSY
  780. * flag keeps track of whether we are still sending or not - it is
  781. * very accurate for the cd1400, not quite so for the sc26198.
  782. * (The sc26198 has no "end-of-data" interrupt only empty FIFO)
  783. */
  784. tty->closing = 1;
  785. spin_unlock_irqrestore(&stallion_lock, flags);
  786. if (portp->closing_wait != ASYNC_CLOSING_WAIT_NONE)
  787. tty_wait_until_sent(tty, portp->closing_wait);
  788. stl_waituntilsent(tty, (HZ / 2));
  789. spin_lock_irqsave(&stallion_lock, flags);
  790. portp->flags &= ~ASYNC_INITIALIZED;
  791. spin_unlock_irqrestore(&stallion_lock, flags);
  792. stl_disableintrs(portp);
  793. if (tty->termios->c_cflag & HUPCL)
  794. stl_setsignals(portp, 0, 0);
  795. stl_enablerxtx(portp, 0, 0);
  796. stl_flushbuffer(tty);
  797. portp->istate = 0;
  798. if (portp->tx.buf != NULL) {
  799. kfree(portp->tx.buf);
  800. portp->tx.buf = NULL;
  801. portp->tx.head = NULL;
  802. portp->tx.tail = NULL;
  803. }
  804. set_bit(TTY_IO_ERROR, &tty->flags);
  805. tty_ldisc_flush(tty);
  806. tty->closing = 0;
  807. portp->tty = NULL;
  808. if (portp->openwaitcnt) {
  809. if (portp->close_delay)
  810. msleep_interruptible(jiffies_to_msecs(portp->close_delay));
  811. wake_up_interruptible(&portp->open_wait);
  812. }
  813. portp->flags &= ~(ASYNC_NORMAL_ACTIVE|ASYNC_CLOSING);
  814. wake_up_interruptible(&portp->close_wait);
  815. }
  816. /*****************************************************************************/
  817. /*
  818. * Write routine. Take data and stuff it in to the TX ring queue.
  819. * If transmit interrupts are not running then start them.
  820. */
  821. static int stl_write(struct tty_struct *tty, const unsigned char *buf, int count)
  822. {
  823. struct stlport *portp;
  824. unsigned int len, stlen;
  825. unsigned char *chbuf;
  826. char *head, *tail;
  827. pr_debug("stl_write(tty=%p,buf=%p,count=%d)\n", tty, buf, count);
  828. portp = tty->driver_data;
  829. if (portp == NULL)
  830. return 0;
  831. if (portp->tx.buf == NULL)
  832. return 0;
  833. /*
  834. * If copying direct from user space we must cater for page faults,
  835. * causing us to "sleep" here for a while. To handle this copy in all
  836. * the data we need now, into a local buffer. Then when we got it all
  837. * copy it into the TX buffer.
  838. */
  839. chbuf = (unsigned char *) buf;
  840. head = portp->tx.head;
  841. tail = portp->tx.tail;
  842. if (head >= tail) {
  843. len = STL_TXBUFSIZE - (head - tail) - 1;
  844. stlen = STL_TXBUFSIZE - (head - portp->tx.buf);
  845. } else {
  846. len = tail - head - 1;
  847. stlen = len;
  848. }
  849. len = min(len, (unsigned int)count);
  850. count = 0;
  851. while (len > 0) {
  852. stlen = min(len, stlen);
  853. memcpy(head, chbuf, stlen);
  854. len -= stlen;
  855. chbuf += stlen;
  856. count += stlen;
  857. head += stlen;
  858. if (head >= (portp->tx.buf + STL_TXBUFSIZE)) {
  859. head = portp->tx.buf;
  860. stlen = tail - head;
  861. }
  862. }
  863. portp->tx.head = head;
  864. clear_bit(ASYI_TXLOW, &portp->istate);
  865. stl_startrxtx(portp, -1, 1);
  866. return count;
  867. }
  868. /*****************************************************************************/
  869. static void stl_putchar(struct tty_struct *tty, unsigned char ch)
  870. {
  871. struct stlport *portp;
  872. unsigned int len;
  873. char *head, *tail;
  874. pr_debug("stl_putchar(tty=%p,ch=%x)\n", tty, ch);
  875. if (tty == NULL)
  876. return;
  877. portp = tty->driver_data;
  878. if (portp == NULL)
  879. return;
  880. if (portp->tx.buf == NULL)
  881. return;
  882. head = portp->tx.head;
  883. tail = portp->tx.tail;
  884. len = (head >= tail) ? (STL_TXBUFSIZE - (head - tail)) : (tail - head);
  885. len--;
  886. if (len > 0) {
  887. *head++ = ch;
  888. if (head >= (portp->tx.buf + STL_TXBUFSIZE))
  889. head = portp->tx.buf;
  890. }
  891. portp->tx.head = head;
  892. }
  893. /*****************************************************************************/
  894. /*
  895. * If there are any characters in the buffer then make sure that TX
  896. * interrupts are on and get'em out. Normally used after the putchar
  897. * routine has been called.
  898. */
  899. static void stl_flushchars(struct tty_struct *tty)
  900. {
  901. struct stlport *portp;
  902. pr_debug("stl_flushchars(tty=%p)\n", tty);
  903. if (tty == NULL)
  904. return;
  905. portp = tty->driver_data;
  906. if (portp == NULL)
  907. return;
  908. if (portp->tx.buf == NULL)
  909. return;
  910. stl_startrxtx(portp, -1, 1);
  911. }
  912. /*****************************************************************************/
  913. static int stl_writeroom(struct tty_struct *tty)
  914. {
  915. struct stlport *portp;
  916. char *head, *tail;
  917. pr_debug("stl_writeroom(tty=%p)\n", tty);
  918. if (tty == NULL)
  919. return 0;
  920. portp = tty->driver_data;
  921. if (portp == NULL)
  922. return 0;
  923. if (portp->tx.buf == NULL)
  924. return 0;
  925. head = portp->tx.head;
  926. tail = portp->tx.tail;
  927. return (head >= tail) ? (STL_TXBUFSIZE - (head - tail) - 1) : (tail - head - 1);
  928. }
  929. /*****************************************************************************/
  930. /*
  931. * Return number of chars in the TX buffer. Normally we would just
  932. * calculate the number of chars in the buffer and return that, but if
  933. * the buffer is empty and TX interrupts are still on then we return
  934. * that the buffer still has 1 char in it. This way whoever called us
  935. * will not think that ALL chars have drained - since the UART still
  936. * must have some chars in it (we are busy after all).
  937. */
  938. static int stl_charsinbuffer(struct tty_struct *tty)
  939. {
  940. struct stlport *portp;
  941. unsigned int size;
  942. char *head, *tail;
  943. pr_debug("stl_charsinbuffer(tty=%p)\n", tty);
  944. if (tty == NULL)
  945. return 0;
  946. portp = tty->driver_data;
  947. if (portp == NULL)
  948. return 0;
  949. if (portp->tx.buf == NULL)
  950. return 0;
  951. head = portp->tx.head;
  952. tail = portp->tx.tail;
  953. size = (head >= tail) ? (head - tail) : (STL_TXBUFSIZE - (tail - head));
  954. if ((size == 0) && test_bit(ASYI_TXBUSY, &portp->istate))
  955. size = 1;
  956. return size;
  957. }
  958. /*****************************************************************************/
  959. /*
  960. * Generate the serial struct info.
  961. */
  962. static int stl_getserial(struct stlport *portp, struct serial_struct __user *sp)
  963. {
  964. struct serial_struct sio;
  965. struct stlbrd *brdp;
  966. pr_debug("stl_getserial(portp=%p,sp=%p)\n", portp, sp);
  967. memset(&sio, 0, sizeof(struct serial_struct));
  968. sio.line = portp->portnr;
  969. sio.port = portp->ioaddr;
  970. sio.flags = portp->flags;
  971. sio.baud_base = portp->baud_base;
  972. sio.close_delay = portp->close_delay;
  973. sio.closing_wait = portp->closing_wait;
  974. sio.custom_divisor = portp->custom_divisor;
  975. sio.hub6 = 0;
  976. if (portp->uartp == &stl_cd1400uart) {
  977. sio.type = PORT_CIRRUS;
  978. sio.xmit_fifo_size = CD1400_TXFIFOSIZE;
  979. } else {
  980. sio.type = PORT_UNKNOWN;
  981. sio.xmit_fifo_size = SC26198_TXFIFOSIZE;
  982. }
  983. brdp = stl_brds[portp->brdnr];
  984. if (brdp != NULL)
  985. sio.irq = brdp->irq;
  986. return copy_to_user(sp, &sio, sizeof(struct serial_struct)) ? -EFAULT : 0;
  987. }
  988. /*****************************************************************************/
  989. /*
  990. * Set port according to the serial struct info.
  991. * At this point we do not do any auto-configure stuff, so we will
  992. * just quietly ignore any requests to change irq, etc.
  993. */
  994. static int stl_setserial(struct stlport *portp, struct serial_struct __user *sp)
  995. {
  996. struct serial_struct sio;
  997. pr_debug("stl_setserial(portp=%p,sp=%p)\n", portp, sp);
  998. if (copy_from_user(&sio, sp, sizeof(struct serial_struct)))
  999. return -EFAULT;
  1000. if (!capable(CAP_SYS_ADMIN)) {
  1001. if ((sio.baud_base != portp->baud_base) ||
  1002. (sio.close_delay != portp->close_delay) ||
  1003. ((sio.flags & ~ASYNC_USR_MASK) !=
  1004. (portp->flags & ~ASYNC_USR_MASK)))
  1005. return -EPERM;
  1006. }
  1007. portp->flags = (portp->flags & ~ASYNC_USR_MASK) |
  1008. (sio.flags & ASYNC_USR_MASK);
  1009. portp->baud_base = sio.baud_base;
  1010. portp->close_delay = sio.close_delay;
  1011. portp->closing_wait = sio.closing_wait;
  1012. portp->custom_divisor = sio.custom_divisor;
  1013. stl_setport(portp, portp->tty->termios);
  1014. return 0;
  1015. }
  1016. /*****************************************************************************/
  1017. static int stl_tiocmget(struct tty_struct *tty, struct file *file)
  1018. {
  1019. struct stlport *portp;
  1020. if (tty == NULL)
  1021. return -ENODEV;
  1022. portp = tty->driver_data;
  1023. if (portp == NULL)
  1024. return -ENODEV;
  1025. if (tty->flags & (1 << TTY_IO_ERROR))
  1026. return -EIO;
  1027. return stl_getsignals(portp);
  1028. }
  1029. static int stl_tiocmset(struct tty_struct *tty, struct file *file,
  1030. unsigned int set, unsigned int clear)
  1031. {
  1032. struct stlport *portp;
  1033. int rts = -1, dtr = -1;
  1034. if (tty == NULL)
  1035. return -ENODEV;
  1036. portp = tty->driver_data;
  1037. if (portp == NULL)
  1038. return -ENODEV;
  1039. if (tty->flags & (1 << TTY_IO_ERROR))
  1040. return -EIO;
  1041. if (set & TIOCM_RTS)
  1042. rts = 1;
  1043. if (set & TIOCM_DTR)
  1044. dtr = 1;
  1045. if (clear & TIOCM_RTS)
  1046. rts = 0;
  1047. if (clear & TIOCM_DTR)
  1048. dtr = 0;
  1049. stl_setsignals(portp, dtr, rts);
  1050. return 0;
  1051. }
  1052. static int stl_ioctl(struct tty_struct *tty, struct file *file, unsigned int cmd, unsigned long arg)
  1053. {
  1054. struct stlport *portp;
  1055. unsigned int ival;
  1056. int rc;
  1057. void __user *argp = (void __user *)arg;
  1058. pr_debug("stl_ioctl(tty=%p,file=%p,cmd=%x,arg=%lx)\n", tty, file, cmd,
  1059. arg);
  1060. if (tty == NULL)
  1061. return -ENODEV;
  1062. portp = tty->driver_data;
  1063. if (portp == NULL)
  1064. return -ENODEV;
  1065. if ((cmd != TIOCGSERIAL) && (cmd != TIOCSSERIAL) &&
  1066. (cmd != COM_GETPORTSTATS) && (cmd != COM_CLRPORTSTATS))
  1067. if (tty->flags & (1 << TTY_IO_ERROR))
  1068. return -EIO;
  1069. rc = 0;
  1070. lock_kernel();
  1071. switch (cmd) {
  1072. case TIOCGSERIAL:
  1073. rc = stl_getserial(portp, argp);
  1074. break;
  1075. case TIOCSSERIAL:
  1076. rc = stl_setserial(portp, argp);
  1077. break;
  1078. case COM_GETPORTSTATS:
  1079. rc = stl_getportstats(portp, argp);
  1080. break;
  1081. case COM_CLRPORTSTATS:
  1082. rc = stl_clrportstats(portp, argp);
  1083. break;
  1084. case TIOCSERCONFIG:
  1085. case TIOCSERGWILD:
  1086. case TIOCSERSWILD:
  1087. case TIOCSERGETLSR:
  1088. case TIOCSERGSTRUCT:
  1089. case TIOCSERGETMULTI:
  1090. case TIOCSERSETMULTI:
  1091. default:
  1092. rc = -ENOIOCTLCMD;
  1093. break;
  1094. }
  1095. unlock_kernel();
  1096. return rc;
  1097. }
  1098. /*****************************************************************************/
  1099. /*
  1100. * Start the transmitter again. Just turn TX interrupts back on.
  1101. */
  1102. static void stl_start(struct tty_struct *tty)
  1103. {
  1104. struct stlport *portp;
  1105. pr_debug("stl_start(tty=%p)\n", tty);
  1106. if (tty == NULL)
  1107. return;
  1108. portp = tty->driver_data;
  1109. if (portp == NULL)
  1110. return;
  1111. stl_startrxtx(portp, -1, 1);
  1112. }
  1113. /*****************************************************************************/
  1114. static void stl_settermios(struct tty_struct *tty, struct ktermios *old)
  1115. {
  1116. struct stlport *portp;
  1117. struct ktermios *tiosp;
  1118. pr_debug("stl_settermios(tty=%p,old=%p)\n", tty, old);
  1119. if (tty == NULL)
  1120. return;
  1121. portp = tty->driver_data;
  1122. if (portp == NULL)
  1123. return;
  1124. tiosp = tty->termios;
  1125. if ((tiosp->c_cflag == old->c_cflag) &&
  1126. (tiosp->c_iflag == old->c_iflag))
  1127. return;
  1128. stl_setport(portp, tiosp);
  1129. stl_setsignals(portp, ((tiosp->c_cflag & (CBAUD & ~CBAUDEX)) ? 1 : 0),
  1130. -1);
  1131. if ((old->c_cflag & CRTSCTS) && ((tiosp->c_cflag & CRTSCTS) == 0)) {
  1132. tty->hw_stopped = 0;
  1133. stl_start(tty);
  1134. }
  1135. if (((old->c_cflag & CLOCAL) == 0) && (tiosp->c_cflag & CLOCAL))
  1136. wake_up_interruptible(&portp->open_wait);
  1137. }
  1138. /*****************************************************************************/
  1139. /*
  1140. * Attempt to flow control who ever is sending us data. Based on termios
  1141. * settings use software or/and hardware flow control.
  1142. */
  1143. static void stl_throttle(struct tty_struct *tty)
  1144. {
  1145. struct stlport *portp;
  1146. pr_debug("stl_throttle(tty=%p)\n", tty);
  1147. if (tty == NULL)
  1148. return;
  1149. portp = tty->driver_data;
  1150. if (portp == NULL)
  1151. return;
  1152. stl_flowctrl(portp, 0);
  1153. }
  1154. /*****************************************************************************/
  1155. /*
  1156. * Unflow control the device sending us data...
  1157. */
  1158. static void stl_unthrottle(struct tty_struct *tty)
  1159. {
  1160. struct stlport *portp;
  1161. pr_debug("stl_unthrottle(tty=%p)\n", tty);
  1162. if (tty == NULL)
  1163. return;
  1164. portp = tty->driver_data;
  1165. if (portp == NULL)
  1166. return;
  1167. stl_flowctrl(portp, 1);
  1168. }
  1169. /*****************************************************************************/
  1170. /*
  1171. * Stop the transmitter. Basically to do this we will just turn TX
  1172. * interrupts off.
  1173. */
  1174. static void stl_stop(struct tty_struct *tty)
  1175. {
  1176. struct stlport *portp;
  1177. pr_debug("stl_stop(tty=%p)\n", tty);
  1178. if (tty == NULL)
  1179. return;
  1180. portp = tty->driver_data;
  1181. if (portp == NULL)
  1182. return;
  1183. stl_startrxtx(portp, -1, 0);
  1184. }
  1185. /*****************************************************************************/
  1186. /*
  1187. * Hangup this port. This is pretty much like closing the port, only
  1188. * a little more brutal. No waiting for data to drain. Shutdown the
  1189. * port and maybe drop signals.
  1190. */
  1191. static void stl_hangup(struct tty_struct *tty)
  1192. {
  1193. struct stlport *portp;
  1194. pr_debug("stl_hangup(tty=%p)\n", tty);
  1195. if (tty == NULL)
  1196. return;
  1197. portp = tty->driver_data;
  1198. if (portp == NULL)
  1199. return;
  1200. portp->flags &= ~ASYNC_INITIALIZED;
  1201. stl_disableintrs(portp);
  1202. if (tty->termios->c_cflag & HUPCL)
  1203. stl_setsignals(portp, 0, 0);
  1204. stl_enablerxtx(portp, 0, 0);
  1205. stl_flushbuffer(tty);
  1206. portp->istate = 0;
  1207. set_bit(TTY_IO_ERROR, &tty->flags);
  1208. if (portp->tx.buf != NULL) {
  1209. kfree(portp->tx.buf);
  1210. portp->tx.buf = NULL;
  1211. portp->tx.head = NULL;
  1212. portp->tx.tail = NULL;
  1213. }
  1214. portp->tty = NULL;
  1215. portp->flags &= ~ASYNC_NORMAL_ACTIVE;
  1216. portp->refcount = 0;
  1217. wake_up_interruptible(&portp->open_wait);
  1218. }
  1219. /*****************************************************************************/
  1220. static void stl_breakctl(struct tty_struct *tty, int state)
  1221. {
  1222. struct stlport *portp;
  1223. pr_debug("stl_breakctl(tty=%p,state=%d)\n", tty, state);
  1224. if (tty == NULL)
  1225. return;
  1226. portp = tty->driver_data;
  1227. if (portp == NULL)
  1228. return;
  1229. stl_sendbreak(portp, ((state == -1) ? 1 : 2));
  1230. }
  1231. /*****************************************************************************/
  1232. static void stl_sendxchar(struct tty_struct *tty, char ch)
  1233. {
  1234. struct stlport *portp;
  1235. pr_debug("stl_sendxchar(tty=%p,ch=%x)\n", tty, ch);
  1236. if (tty == NULL)
  1237. return;
  1238. portp = tty->driver_data;
  1239. if (portp == NULL)
  1240. return;
  1241. if (ch == STOP_CHAR(tty))
  1242. stl_sendflow(portp, 0);
  1243. else if (ch == START_CHAR(tty))
  1244. stl_sendflow(portp, 1);
  1245. else
  1246. stl_putchar(tty, ch);
  1247. }
  1248. /*****************************************************************************/
  1249. #define MAXLINE 80
  1250. /*
  1251. * Format info for a specified port. The line is deliberately limited
  1252. * to 80 characters. (If it is too long it will be truncated, if too
  1253. * short then padded with spaces).
  1254. */
  1255. static int stl_portinfo(struct stlport *portp, int portnr, char *pos)
  1256. {
  1257. char *sp;
  1258. int sigs, cnt;
  1259. sp = pos;
  1260. sp += sprintf(sp, "%d: uart:%s tx:%d rx:%d",
  1261. portnr, (portp->hwid == 1) ? "SC26198" : "CD1400",
  1262. (int) portp->stats.txtotal, (int) portp->stats.rxtotal);
  1263. if (portp->stats.rxframing)
  1264. sp += sprintf(sp, " fe:%d", (int) portp->stats.rxframing);
  1265. if (portp->stats.rxparity)
  1266. sp += sprintf(sp, " pe:%d", (int) portp->stats.rxparity);
  1267. if (portp->stats.rxbreaks)
  1268. sp += sprintf(sp, " brk:%d", (int) portp->stats.rxbreaks);
  1269. if (portp->stats.rxoverrun)
  1270. sp += sprintf(sp, " oe:%d", (int) portp->stats.rxoverrun);
  1271. sigs = stl_getsignals(portp);
  1272. cnt = sprintf(sp, "%s%s%s%s%s ",
  1273. (sigs & TIOCM_RTS) ? "|RTS" : "",
  1274. (sigs & TIOCM_CTS) ? "|CTS" : "",
  1275. (sigs & TIOCM_DTR) ? "|DTR" : "",
  1276. (sigs & TIOCM_CD) ? "|DCD" : "",
  1277. (sigs & TIOCM_DSR) ? "|DSR" : "");
  1278. *sp = ' ';
  1279. sp += cnt;
  1280. for (cnt = sp - pos; cnt < (MAXLINE - 1); cnt++)
  1281. *sp++ = ' ';
  1282. if (cnt >= MAXLINE)
  1283. pos[(MAXLINE - 2)] = '+';
  1284. pos[(MAXLINE - 1)] = '\n';
  1285. return MAXLINE;
  1286. }
  1287. /*****************************************************************************/
  1288. /*
  1289. * Port info, read from the /proc file system.
  1290. */
  1291. static int stl_readproc(char *page, char **start, off_t off, int count, int *eof, void *data)
  1292. {
  1293. struct stlbrd *brdp;
  1294. struct stlpanel *panelp;
  1295. struct stlport *portp;
  1296. unsigned int brdnr, panelnr, portnr;
  1297. int totalport, curoff, maxoff;
  1298. char *pos;
  1299. pr_debug("stl_readproc(page=%p,start=%p,off=%lx,count=%d,eof=%p,"
  1300. "data=%p\n", page, start, off, count, eof, data);
  1301. pos = page;
  1302. totalport = 0;
  1303. curoff = 0;
  1304. if (off == 0) {
  1305. pos += sprintf(pos, "%s: version %s", stl_drvtitle,
  1306. stl_drvversion);
  1307. while (pos < (page + MAXLINE - 1))
  1308. *pos++ = ' ';
  1309. *pos++ = '\n';
  1310. }
  1311. curoff = MAXLINE;
  1312. /*
  1313. * We scan through for each board, panel and port. The offset is
  1314. * calculated on the fly, and irrelevant ports are skipped.
  1315. */
  1316. for (brdnr = 0; brdnr < stl_nrbrds; brdnr++) {
  1317. brdp = stl_brds[brdnr];
  1318. if (brdp == NULL)
  1319. continue;
  1320. if (brdp->state == 0)
  1321. continue;
  1322. maxoff = curoff + (brdp->nrports * MAXLINE);
  1323. if (off >= maxoff) {
  1324. curoff = maxoff;
  1325. continue;
  1326. }
  1327. totalport = brdnr * STL_MAXPORTS;
  1328. for (panelnr = 0; panelnr < brdp->nrpanels; panelnr++) {
  1329. panelp = brdp->panels[panelnr];
  1330. if (panelp == NULL)
  1331. continue;
  1332. maxoff = curoff + (panelp->nrports * MAXLINE);
  1333. if (off >= maxoff) {
  1334. curoff = maxoff;
  1335. totalport += panelp->nrports;
  1336. continue;
  1337. }
  1338. for (portnr = 0; portnr < panelp->nrports; portnr++,
  1339. totalport++) {
  1340. portp = panelp->ports[portnr];
  1341. if (portp == NULL)
  1342. continue;
  1343. if (off >= (curoff += MAXLINE))
  1344. continue;
  1345. if ((pos - page + MAXLINE) > count)
  1346. goto stl_readdone;
  1347. pos += stl_portinfo(portp, totalport, pos);
  1348. }
  1349. }
  1350. }
  1351. *eof = 1;
  1352. stl_readdone:
  1353. *start = page;
  1354. return pos - page;
  1355. }
  1356. /*****************************************************************************/
  1357. /*
  1358. * All board interrupts are vectored through here first. This code then
  1359. * calls off to the approrpriate board interrupt handlers.
  1360. */
  1361. static irqreturn_t stl_intr(int irq, void *dev_id)
  1362. {
  1363. struct stlbrd *brdp = dev_id;
  1364. pr_debug("stl_intr(brdp=%p,irq=%d)\n", brdp, brdp->irq);
  1365. return IRQ_RETVAL((* brdp->isr)(brdp));
  1366. }
  1367. /*****************************************************************************/
  1368. /*
  1369. * Interrupt service routine for EasyIO board types.
  1370. */
  1371. static int stl_eiointr(struct stlbrd *brdp)
  1372. {
  1373. struct stlpanel *panelp;
  1374. unsigned int iobase;
  1375. int handled = 0;
  1376. spin_lock(&brd_lock);
  1377. panelp = brdp->panels[0];
  1378. iobase = panelp->iobase;
  1379. while (inb(brdp->iostatus) & EIO_INTRPEND) {
  1380. handled = 1;
  1381. (* panelp->isr)(panelp, iobase);
  1382. }
  1383. spin_unlock(&brd_lock);
  1384. return handled;
  1385. }
  1386. /*****************************************************************************/
  1387. /*
  1388. * Interrupt service routine for ECH-AT board types.
  1389. */
  1390. static int stl_echatintr(struct stlbrd *brdp)
  1391. {
  1392. struct stlpanel *panelp;
  1393. unsigned int ioaddr, bnknr;
  1394. int handled = 0;
  1395. outb((brdp->ioctrlval | ECH_BRDENABLE), brdp->ioctrl);
  1396. while (inb(brdp->iostatus) & ECH_INTRPEND) {
  1397. handled = 1;
  1398. for (bnknr = 0; bnknr < brdp->nrbnks; bnknr++) {
  1399. ioaddr = brdp->bnkstataddr[bnknr];
  1400. if (inb(ioaddr) & ECH_PNLINTRPEND) {
  1401. panelp = brdp->bnk2panel[bnknr];
  1402. (* panelp->isr)(panelp, (ioaddr & 0xfffc));
  1403. }
  1404. }
  1405. }
  1406. outb((brdp->ioctrlval | ECH_BRDDISABLE), brdp->ioctrl);
  1407. return handled;
  1408. }
  1409. /*****************************************************************************/
  1410. /*
  1411. * Interrupt service routine for ECH-MCA board types.
  1412. */
  1413. static int stl_echmcaintr(struct stlbrd *brdp)
  1414. {
  1415. struct stlpanel *panelp;
  1416. unsigned int ioaddr, bnknr;
  1417. int handled = 0;
  1418. while (inb(brdp->iostatus) & ECH_INTRPEND) {
  1419. handled = 1;
  1420. for (bnknr = 0; bnknr < brdp->nrbnks; bnknr++) {
  1421. ioaddr = brdp->bnkstataddr[bnknr];
  1422. if (inb(ioaddr) & ECH_PNLINTRPEND) {
  1423. panelp = brdp->bnk2panel[bnknr];
  1424. (* panelp->isr)(panelp, (ioaddr & 0xfffc));
  1425. }
  1426. }
  1427. }
  1428. return handled;
  1429. }
  1430. /*****************************************************************************/
  1431. /*
  1432. * Interrupt service routine for ECH-PCI board types.
  1433. */
  1434. static int stl_echpciintr(struct stlbrd *brdp)
  1435. {
  1436. struct stlpanel *panelp;
  1437. unsigned int ioaddr, bnknr, recheck;
  1438. int handled = 0;
  1439. while (1) {
  1440. recheck = 0;
  1441. for (bnknr = 0; bnknr < brdp->nrbnks; bnknr++) {
  1442. outb(brdp->bnkpageaddr[bnknr], brdp->ioctrl);
  1443. ioaddr = brdp->bnkstataddr[bnknr];
  1444. if (inb(ioaddr) & ECH_PNLINTRPEND) {
  1445. panelp = brdp->bnk2panel[bnknr];
  1446. (* panelp->isr)(panelp, (ioaddr & 0xfffc));
  1447. recheck++;
  1448. handled = 1;
  1449. }
  1450. }
  1451. if (! recheck)
  1452. break;
  1453. }
  1454. return handled;
  1455. }
  1456. /*****************************************************************************/
  1457. /*
  1458. * Interrupt service routine for ECH-8/64-PCI board types.
  1459. */
  1460. static int stl_echpci64intr(struct stlbrd *brdp)
  1461. {
  1462. struct stlpanel *panelp;
  1463. unsigned int ioaddr, bnknr;
  1464. int handled = 0;
  1465. while (inb(brdp->ioctrl) & 0x1) {
  1466. handled = 1;
  1467. for (bnknr = 0; bnknr < brdp->nrbnks; bnknr++) {
  1468. ioaddr = brdp->bnkstataddr[bnknr];
  1469. if (inb(ioaddr) & ECH_PNLINTRPEND) {
  1470. panelp = brdp->bnk2panel[bnknr];
  1471. (* panelp->isr)(panelp, (ioaddr & 0xfffc));
  1472. }
  1473. }
  1474. }
  1475. return handled;
  1476. }
  1477. /*****************************************************************************/
  1478. /*
  1479. * Initialize all the ports on a panel.
  1480. */
  1481. static int __devinit stl_initports(struct stlbrd *brdp, struct stlpanel *panelp)
  1482. {
  1483. struct stlport *portp;
  1484. unsigned int i;
  1485. int chipmask;
  1486. pr_debug("stl_initports(brdp=%p,panelp=%p)\n", brdp, panelp);
  1487. chipmask = stl_panelinit(brdp, panelp);
  1488. /*
  1489. * All UART's are initialized (if found!). Now go through and setup
  1490. * each ports data structures.
  1491. */
  1492. for (i = 0; i < panelp->nrports; i++) {
  1493. portp = kzalloc(sizeof(struct stlport), GFP_KERNEL);
  1494. if (!portp) {
  1495. printk("STALLION: failed to allocate memory "
  1496. "(size=%Zd)\n", sizeof(struct stlport));
  1497. break;
  1498. }
  1499. portp->magic = STL_PORTMAGIC;
  1500. portp->portnr = i;
  1501. portp->brdnr = panelp->brdnr;
  1502. portp->panelnr = panelp->panelnr;
  1503. portp->uartp = panelp->uartp;
  1504. portp->clk = brdp->clk;
  1505. portp->baud_base = STL_BAUDBASE;
  1506. portp->close_delay = STL_CLOSEDELAY;
  1507. portp->closing_wait = 30 * HZ;
  1508. init_waitqueue_head(&portp->open_wait);
  1509. init_waitqueue_head(&portp->close_wait);
  1510. portp->stats.brd = portp->brdnr;
  1511. portp->stats.panel = portp->panelnr;
  1512. portp->stats.port = portp->portnr;
  1513. panelp->ports[i] = portp;
  1514. stl_portinit(brdp, panelp, portp);
  1515. }
  1516. return 0;
  1517. }
  1518. static void stl_cleanup_panels(struct stlbrd *brdp)
  1519. {
  1520. struct stlpanel *panelp;
  1521. struct stlport *portp;
  1522. unsigned int j, k;
  1523. for (j = 0; j < STL_MAXPANELS; j++) {
  1524. panelp = brdp->panels[j];
  1525. if (panelp == NULL)
  1526. continue;
  1527. for (k = 0; k < STL_PORTSPERPANEL; k++) {
  1528. portp = panelp->ports[k];
  1529. if (portp == NULL)
  1530. continue;
  1531. if (portp->tty != NULL)
  1532. stl_hangup(portp->tty);
  1533. kfree(portp->tx.buf);
  1534. kfree(portp);
  1535. }
  1536. kfree(panelp);
  1537. }
  1538. }
  1539. /*****************************************************************************/
  1540. /*
  1541. * Try to find and initialize an EasyIO board.
  1542. */
  1543. static int __devinit stl_initeio(struct stlbrd *brdp)
  1544. {
  1545. struct stlpanel *panelp;
  1546. unsigned int status;
  1547. char *name;
  1548. int retval;
  1549. pr_debug("stl_initeio(brdp=%p)\n", brdp);
  1550. brdp->ioctrl = brdp->ioaddr1 + 1;
  1551. brdp->iostatus = brdp->ioaddr1 + 2;
  1552. status = inb(brdp->iostatus);
  1553. if ((status & EIO_IDBITMASK) == EIO_MK3)
  1554. brdp->ioctrl++;
  1555. /*
  1556. * Handle board specific stuff now. The real difference is PCI
  1557. * or not PCI.
  1558. */
  1559. if (brdp->brdtype == BRD_EASYIOPCI) {
  1560. brdp->iosize1 = 0x80;
  1561. brdp->iosize2 = 0x80;
  1562. name = "serial(EIO-PCI)";
  1563. outb(0x41, (brdp->ioaddr2 + 0x4c));
  1564. } else {
  1565. brdp->iosize1 = 8;
  1566. name = "serial(EIO)";
  1567. if ((brdp->irq < 0) || (brdp->irq > 15) ||
  1568. (stl_vecmap[brdp->irq] == (unsigned char) 0xff)) {
  1569. printk("STALLION: invalid irq=%d for brd=%d\n",
  1570. brdp->irq, brdp->brdnr);
  1571. retval = -EINVAL;
  1572. goto err;
  1573. }
  1574. outb((stl_vecmap[brdp->irq] | EIO_0WS |
  1575. ((brdp->irqtype) ? EIO_INTLEVEL : EIO_INTEDGE)),
  1576. brdp->ioctrl);
  1577. }
  1578. retval = -EBUSY;
  1579. if (!request_region(brdp->ioaddr1, brdp->iosize1, name)) {
  1580. printk(KERN_WARNING "STALLION: Warning, board %d I/O address "
  1581. "%x conflicts with another device\n", brdp->brdnr,
  1582. brdp->ioaddr1);
  1583. goto err;
  1584. }
  1585. if (brdp->iosize2 > 0)
  1586. if (!request_region(brdp->ioaddr2, brdp->iosize2, name)) {
  1587. printk(KERN_WARNING "STALLION: Warning, board %d I/O "
  1588. "address %x conflicts with another device\n",
  1589. brdp->brdnr, brdp->ioaddr2);
  1590. printk(KERN_WARNING "STALLION: Warning, also "
  1591. "releasing board %d I/O address %x \n",
  1592. brdp->brdnr, brdp->ioaddr1);
  1593. goto err_rel1;
  1594. }
  1595. /*
  1596. * Everything looks OK, so let's go ahead and probe for the hardware.
  1597. */
  1598. brdp->clk = CD1400_CLK;
  1599. brdp->isr = stl_eiointr;
  1600. retval = -ENODEV;
  1601. switch (status & EIO_IDBITMASK) {
  1602. case EIO_8PORTM:
  1603. brdp->clk = CD1400_CLK8M;
  1604. /* fall thru */
  1605. case EIO_8PORTRS:
  1606. case EIO_8PORTDI:
  1607. brdp->nrports = 8;
  1608. break;
  1609. case EIO_4PORTRS:
  1610. brdp->nrports = 4;
  1611. break;
  1612. case EIO_MK3:
  1613. switch (status & EIO_BRDMASK) {
  1614. case ID_BRD4:
  1615. brdp->nrports = 4;
  1616. break;
  1617. case ID_BRD8:
  1618. brdp->nrports = 8;
  1619. break;
  1620. case ID_BRD16:
  1621. brdp->nrports = 16;
  1622. break;
  1623. default:
  1624. goto err_rel2;
  1625. }
  1626. break;
  1627. default:
  1628. goto err_rel2;
  1629. }
  1630. /*
  1631. * We have verified that the board is actually present, so now we
  1632. * can complete the setup.
  1633. */
  1634. panelp = kzalloc(sizeof(struct stlpanel), GFP_KERNEL);
  1635. if (!panelp) {
  1636. printk(KERN_WARNING "STALLION: failed to allocate memory "
  1637. "(size=%Zd)\n", sizeof(struct stlpanel));
  1638. retval = -ENOMEM;
  1639. goto err_rel2;
  1640. }
  1641. panelp->magic = STL_PANELMAGIC;
  1642. panelp->brdnr = brdp->brdnr;
  1643. panelp->panelnr = 0;
  1644. panelp->nrports = brdp->nrports;
  1645. panelp->iobase = brdp->ioaddr1;
  1646. panelp->hwid = status;
  1647. if ((status & EIO_IDBITMASK) == EIO_MK3) {
  1648. panelp->uartp = &stl_sc26198uart;
  1649. panelp->isr = stl_sc26198intr;
  1650. } else {
  1651. panelp->uartp = &stl_cd1400uart;
  1652. panelp->isr = stl_cd1400eiointr;
  1653. }
  1654. brdp->panels[0] = panelp;
  1655. brdp->nrpanels = 1;
  1656. brdp->state |= BRD_FOUND;
  1657. brdp->hwid = status;
  1658. if (request_irq(brdp->irq, stl_intr, IRQF_SHARED, name, brdp) != 0) {
  1659. printk("STALLION: failed to register interrupt "
  1660. "routine for %s irq=%d\n", name, brdp->irq);
  1661. retval = -ENODEV;
  1662. goto err_fr;
  1663. }
  1664. return 0;
  1665. err_fr:
  1666. stl_cleanup_panels(brdp);
  1667. err_rel2:
  1668. if (brdp->iosize2 > 0)
  1669. release_region(brdp->ioaddr2, brdp->iosize2);
  1670. err_rel1:
  1671. release_region(brdp->ioaddr1, brdp->iosize1);
  1672. err:
  1673. return retval;
  1674. }
  1675. /*****************************************************************************/
  1676. /*
  1677. * Try to find an ECH board and initialize it. This code is capable of
  1678. * dealing with all types of ECH board.
  1679. */
  1680. static int __devinit stl_initech(struct stlbrd *brdp)
  1681. {
  1682. struct stlpanel *panelp;
  1683. unsigned int status, nxtid, ioaddr, conflict, panelnr, banknr, i;
  1684. int retval;
  1685. char *name;
  1686. pr_debug("stl_initech(brdp=%p)\n", brdp);
  1687. status = 0;
  1688. conflict = 0;
  1689. /*
  1690. * Set up the initial board register contents for boards. This varies a
  1691. * bit between the different board types. So we need to handle each
  1692. * separately. Also do a check that the supplied IRQ is good.
  1693. */
  1694. switch (brdp->brdtype) {
  1695. case BRD_ECH:
  1696. brdp->isr = stl_echatintr;
  1697. brdp->ioctrl = brdp->ioaddr1 + 1;
  1698. brdp->iostatus = brdp->ioaddr1 + 1;
  1699. status = inb(brdp->iostatus);
  1700. if ((status & ECH_IDBITMASK) != ECH_ID) {
  1701. retval = -ENODEV;
  1702. goto err;
  1703. }
  1704. if ((brdp->irq < 0) || (brdp->irq > 15) ||
  1705. (stl_vecmap[brdp->irq] == (unsigned char) 0xff)) {
  1706. printk("STALLION: invalid irq=%d for brd=%d\n",
  1707. brdp->irq, brdp->brdnr);
  1708. retval = -EINVAL;
  1709. goto err;
  1710. }
  1711. status = ((brdp->ioaddr2 & ECH_ADDR2MASK) >> 1);
  1712. status |= (stl_vecmap[brdp->irq] << 1);
  1713. outb((status | ECH_BRDRESET), brdp->ioaddr1);
  1714. brdp->ioctrlval = ECH_INTENABLE |
  1715. ((brdp->irqtype) ? ECH_INTLEVEL : ECH_INTEDGE);
  1716. for (i = 0; i < 10; i++)
  1717. outb((brdp->ioctrlval | ECH_BRDENABLE), brdp->ioctrl);
  1718. brdp->iosize1 = 2;
  1719. brdp->iosize2 = 32;
  1720. name = "serial(EC8/32)";
  1721. outb(status, brdp->ioaddr1);
  1722. break;
  1723. case BRD_ECHMC:
  1724. brdp->isr = stl_echmcaintr;
  1725. brdp->ioctrl = brdp->ioaddr1 + 0x20;
  1726. brdp->iostatus = brdp->ioctrl;
  1727. status = inb(brdp->iostatus);
  1728. if ((status & ECH_IDBITMASK) != ECH_ID) {
  1729. retval = -ENODEV;
  1730. goto err;
  1731. }
  1732. if ((brdp->irq < 0) || (brdp->irq > 15) ||
  1733. (stl_vecmap[brdp->irq] == (unsigned char) 0xff)) {
  1734. printk("STALLION: invalid irq=%d for brd=%d\n",
  1735. brdp->irq, brdp->brdnr);
  1736. retval = -EINVAL;
  1737. goto err;
  1738. }
  1739. outb(ECHMC_BRDRESET, brdp->ioctrl);
  1740. outb(ECHMC_INTENABLE, brdp->ioctrl);
  1741. brdp->iosize1 = 64;
  1742. name = "serial(EC8/32-MC)";
  1743. break;
  1744. case BRD_ECHPCI:
  1745. brdp->isr = stl_echpciintr;
  1746. brdp->ioctrl = brdp->ioaddr1 + 2;
  1747. brdp->iosize1 = 4;
  1748. brdp->iosize2 = 8;
  1749. name = "serial(EC8/32-PCI)";
  1750. break;
  1751. case BRD_ECH64PCI:
  1752. brdp->isr = stl_echpci64intr;
  1753. brdp->ioctrl = brdp->ioaddr2 + 0x40;
  1754. outb(0x43, (brdp->ioaddr1 + 0x4c));
  1755. brdp->iosize1 = 0x80;
  1756. brdp->iosize2 = 0x80;
  1757. name = "serial(EC8/64-PCI)";
  1758. break;
  1759. default:
  1760. printk("STALLION: unknown board type=%d\n", brdp->brdtype);
  1761. retval = -EINVAL;
  1762. goto err;
  1763. }
  1764. /*
  1765. * Check boards for possible IO address conflicts and return fail status
  1766. * if an IO conflict found.
  1767. */
  1768. retval = -EBUSY;
  1769. if (!request_region(brdp->ioaddr1, brdp->iosize1, name)) {
  1770. printk(KERN_WARNING "STALLION: Warning, board %d I/O address "
  1771. "%x conflicts with another device\n", brdp->brdnr,
  1772. brdp->ioaddr1);
  1773. goto err;
  1774. }
  1775. if (brdp->iosize2 > 0)
  1776. if (!request_region(brdp->ioaddr2, brdp->iosize2, name)) {
  1777. printk(KERN_WARNING "STALLION: Warning, board %d I/O "
  1778. "address %x conflicts with another device\n",
  1779. brdp->brdnr, brdp->ioaddr2);
  1780. printk(KERN_WARNING "STALLION: Warning, also "
  1781. "releasing board %d I/O address %x \n",
  1782. brdp->brdnr, brdp->ioaddr1);
  1783. goto err_rel1;
  1784. }
  1785. /*
  1786. * Scan through the secondary io address space looking for panels.
  1787. * As we find'em allocate and initialize panel structures for each.
  1788. */
  1789. brdp->clk = CD1400_CLK;
  1790. brdp->hwid = status;
  1791. ioaddr = brdp->ioaddr2;
  1792. banknr = 0;
  1793. panelnr = 0;
  1794. nxtid = 0;
  1795. for (i = 0; i < STL_MAXPANELS; i++) {
  1796. if (brdp->brdtype == BRD_ECHPCI) {
  1797. outb(nxtid, brdp->ioctrl);
  1798. ioaddr = brdp->ioaddr2;
  1799. }
  1800. status = inb(ioaddr + ECH_PNLSTATUS);
  1801. if ((status & ECH_PNLIDMASK) != nxtid)
  1802. break;
  1803. panelp = kzalloc(sizeof(struct stlpanel), GFP_KERNEL);
  1804. if (!panelp) {
  1805. printk("STALLION: failed to allocate memory "
  1806. "(size=%Zd)\n", sizeof(struct stlpanel));
  1807. retval = -ENOMEM;
  1808. goto err_fr;
  1809. }
  1810. panelp->magic = STL_PANELMAGIC;
  1811. panelp->brdnr = brdp->brdnr;
  1812. panelp->panelnr = panelnr;
  1813. panelp->iobase = ioaddr;
  1814. panelp->pagenr = nxtid;
  1815. panelp->hwid = status;
  1816. brdp->bnk2panel[banknr] = panelp;
  1817. brdp->bnkpageaddr[banknr] = nxtid;
  1818. brdp->bnkstataddr[banknr++] = ioaddr + ECH_PNLSTATUS;
  1819. if (status & ECH_PNLXPID) {
  1820. panelp->uartp = &stl_sc26198uart;
  1821. panelp->isr = stl_sc26198intr;
  1822. if (status & ECH_PNL16PORT) {
  1823. panelp->nrports = 16;
  1824. brdp->bnk2panel[banknr] = panelp;
  1825. brdp->bnkpageaddr[banknr] = nxtid;
  1826. brdp->bnkstataddr[banknr++] = ioaddr + 4 +
  1827. ECH_PNLSTATUS;
  1828. } else
  1829. panelp->nrports = 8;
  1830. } else {
  1831. panelp->uartp = &stl_cd1400uart;
  1832. panelp->isr = stl_cd1400echintr;
  1833. if (status & ECH_PNL16PORT) {
  1834. panelp->nrports = 16;
  1835. panelp->ackmask = 0x80;
  1836. if (brdp->brdtype != BRD_ECHPCI)
  1837. ioaddr += EREG_BANKSIZE;
  1838. brdp->bnk2panel[banknr] = panelp;
  1839. brdp->bnkpageaddr[banknr] = ++nxtid;
  1840. brdp->bnkstataddr[banknr++] = ioaddr +
  1841. ECH_PNLSTATUS;
  1842. } else {
  1843. panelp->nrports = 8;
  1844. panelp->ackmask = 0xc0;
  1845. }
  1846. }
  1847. nxtid++;
  1848. ioaddr += EREG_BANKSIZE;
  1849. brdp->nrports += panelp->nrports;
  1850. brdp->panels[panelnr++] = panelp;
  1851. if ((brdp->brdtype != BRD_ECHPCI) &&
  1852. (ioaddr >= (brdp->ioaddr2 + brdp->iosize2))) {
  1853. retval = -EINVAL;
  1854. goto err_fr;
  1855. }
  1856. }
  1857. brdp->nrpanels = panelnr;
  1858. brdp->nrbnks = banknr;
  1859. if (brdp->brdtype == BRD_ECH)
  1860. outb((brdp->ioctrlval | ECH_BRDDISABLE), brdp->ioctrl);
  1861. brdp->state |= BRD_FOUND;
  1862. if (request_irq(brdp->irq, stl_intr, IRQF_SHARED, name, brdp) != 0) {
  1863. printk("STALLION: failed to register interrupt "
  1864. "routine for %s irq=%d\n", name, brdp->irq);
  1865. retval = -ENODEV;
  1866. goto err_fr;
  1867. }
  1868. return 0;
  1869. err_fr:
  1870. stl_cleanup_panels(brdp);
  1871. if (brdp->iosize2 > 0)
  1872. release_region(brdp->ioaddr2, brdp->iosize2);
  1873. err_rel1:
  1874. release_region(brdp->ioaddr1, brdp->iosize1);
  1875. err:
  1876. return retval;
  1877. }
  1878. /*****************************************************************************/
  1879. /*
  1880. * Initialize and configure the specified board.
  1881. * Scan through all the boards in the configuration and see what we
  1882. * can find. Handle EIO and the ECH boards a little differently here
  1883. * since the initial search and setup is very different.
  1884. */
  1885. static int __devinit stl_brdinit(struct stlbrd *brdp)
  1886. {
  1887. int i, retval;
  1888. pr_debug("stl_brdinit(brdp=%p)\n", brdp);
  1889. switch (brdp->brdtype) {
  1890. case BRD_EASYIO:
  1891. case BRD_EASYIOPCI:
  1892. retval = stl_initeio(brdp);
  1893. if (retval)
  1894. goto err;
  1895. break;
  1896. case BRD_ECH:
  1897. case BRD_ECHMC:
  1898. case BRD_ECHPCI:
  1899. case BRD_ECH64PCI:
  1900. retval = stl_initech(brdp);
  1901. if (retval)
  1902. goto err;
  1903. break;
  1904. default:
  1905. printk("STALLION: board=%d is unknown board type=%d\n",
  1906. brdp->brdnr, brdp->brdtype);
  1907. retval = -ENODEV;
  1908. goto err;
  1909. }
  1910. if ((brdp->state & BRD_FOUND) == 0) {
  1911. printk("STALLION: %s board not found, board=%d io=%x irq=%d\n",
  1912. stl_brdnames[brdp->brdtype], brdp->brdnr,
  1913. brdp->ioaddr1, brdp->irq);
  1914. goto err_free;
  1915. }
  1916. for (i = 0; i < STL_MAXPANELS; i++)
  1917. if (brdp->panels[i] != NULL)
  1918. stl_initports(brdp, brdp->panels[i]);
  1919. printk("STALLION: %s found, board=%d io=%x irq=%d "
  1920. "nrpanels=%d nrports=%d\n", stl_brdnames[brdp->brdtype],
  1921. brdp->brdnr, brdp->ioaddr1, brdp->irq, brdp->nrpanels,
  1922. brdp->nrports);
  1923. return 0;
  1924. err_free:
  1925. free_irq(brdp->irq, brdp);
  1926. stl_cleanup_panels(brdp);
  1927. release_region(brdp->ioaddr1, brdp->iosize1);
  1928. if (brdp->iosize2 > 0)
  1929. release_region(brdp->ioaddr2, brdp->iosize2);
  1930. err:
  1931. return retval;
  1932. }
  1933. /*****************************************************************************/
  1934. /*
  1935. * Find the next available board number that is free.
  1936. */
  1937. static int __devinit stl_getbrdnr(void)
  1938. {
  1939. unsigned int i;
  1940. for (i = 0; i < STL_MAXBRDS; i++)
  1941. if (stl_brds[i] == NULL) {
  1942. if (i >= stl_nrbrds)
  1943. stl_nrbrds = i + 1;
  1944. return i;
  1945. }
  1946. return -1;
  1947. }
  1948. /*****************************************************************************/
  1949. /*
  1950. * We have a Stallion board. Allocate a board structure and
  1951. * initialize it. Read its IO and IRQ resources from PCI
  1952. * configuration space.
  1953. */
  1954. static int __devinit stl_pciprobe(struct pci_dev *pdev,
  1955. const struct pci_device_id *ent)
  1956. {
  1957. struct stlbrd *brdp;
  1958. unsigned int i, brdtype = ent->driver_data;
  1959. int brdnr, retval = -ENODEV;
  1960. if ((pdev->class >> 8) == PCI_CLASS_STORAGE_IDE)
  1961. goto err;
  1962. retval = pci_enable_device(pdev);
  1963. if (retval)
  1964. goto err;
  1965. brdp = stl_allocbrd();
  1966. if (brdp == NULL) {
  1967. retval = -ENOMEM;
  1968. goto err;
  1969. }
  1970. mutex_lock(&stl_brdslock);
  1971. brdnr = stl_getbrdnr();
  1972. if (brdnr < 0) {
  1973. dev_err(&pdev->dev, "too many boards found, "
  1974. "maximum supported %d\n", STL_MAXBRDS);
  1975. mutex_unlock(&stl_brdslock);
  1976. retval = -ENODEV;
  1977. goto err_fr;
  1978. }
  1979. brdp->brdnr = (unsigned int)brdnr;
  1980. stl_brds[brdp->brdnr] = brdp;
  1981. mutex_unlock(&stl_brdslock);
  1982. brdp->brdtype = brdtype;
  1983. brdp->state |= STL_PROBED;
  1984. /*
  1985. * We have all resources from the board, so let's setup the actual
  1986. * board structure now.
  1987. */
  1988. switch (brdtype) {
  1989. case BRD_ECHPCI:
  1990. brdp->ioaddr2 = pci_resource_start(pdev, 0);
  1991. brdp->ioaddr1 = pci_resource_start(pdev, 1);
  1992. break;
  1993. case BRD_ECH64PCI:
  1994. brdp->ioaddr2 = pci_resource_start(pdev, 2);
  1995. brdp->ioaddr1 = pci_resource_start(pdev, 1);
  1996. break;
  1997. case BRD_EASYIOPCI:
  1998. brdp->ioaddr1 = pci_resource_start(pdev, 2);
  1999. brdp->ioaddr2 = pci_resource_start(pdev, 1);
  2000. break;
  2001. default:
  2002. dev_err(&pdev->dev, "unknown PCI board type=%u\n", brdtype);
  2003. break;
  2004. }
  2005. brdp->irq = pdev->irq;
  2006. retval = stl_brdinit(brdp);
  2007. if (retval)
  2008. goto err_null;
  2009. pci_set_drvdata(pdev, brdp);
  2010. for (i = 0; i < brdp->nrports; i++)
  2011. tty_register_device(stl_serial,
  2012. brdp->brdnr * STL_MAXPORTS + i, &pdev->dev);
  2013. return 0;
  2014. err_null:
  2015. stl_brds[brdp->brdnr] = NULL;
  2016. err_fr:
  2017. kfree(brdp);
  2018. err:
  2019. return retval;
  2020. }
  2021. static void __devexit stl_pciremove(struct pci_dev *pdev)
  2022. {
  2023. struct stlbrd *brdp = pci_get_drvdata(pdev);
  2024. unsigned int i;
  2025. free_irq(brdp->irq, brdp);
  2026. stl_cleanup_panels(brdp);
  2027. release_region(brdp->ioaddr1, brdp->iosize1);
  2028. if (brdp->iosize2 > 0)
  2029. release_region(brdp->ioaddr2, brdp->iosize2);
  2030. for (i = 0; i < brdp->nrports; i++)
  2031. tty_unregister_device(stl_serial,
  2032. brdp->brdnr * STL_MAXPORTS + i);
  2033. stl_brds[brdp->brdnr] = NULL;
  2034. kfree(brdp);
  2035. }
  2036. static struct pci_driver stl_pcidriver = {
  2037. .name = "stallion",
  2038. .id_table = stl_pcibrds,
  2039. .probe = stl_pciprobe,
  2040. .remove = __devexit_p(stl_pciremove)
  2041. };
  2042. /*****************************************************************************/
  2043. /*
  2044. * Return the board stats structure to user app.
  2045. */
  2046. static int stl_getbrdstats(combrd_t __user *bp)
  2047. {
  2048. combrd_t stl_brdstats;
  2049. struct stlbrd *brdp;
  2050. struct stlpanel *panelp;
  2051. unsigned int i;
  2052. if (copy_from_user(&stl_brdstats, bp, sizeof(combrd_t)))
  2053. return -EFAULT;
  2054. if (stl_brdstats.brd >= STL_MAXBRDS)
  2055. return -ENODEV;
  2056. brdp = stl_brds[stl_brdstats.brd];
  2057. if (brdp == NULL)
  2058. return -ENODEV;
  2059. memset(&stl_brdstats, 0, sizeof(combrd_t));
  2060. stl_brdstats.brd = brdp->brdnr;
  2061. stl_brdstats.type = brdp->brdtype;
  2062. stl_brdstats.hwid = brdp->hwid;
  2063. stl_brdstats.state = brdp->state;
  2064. stl_brdstats.ioaddr = brdp->ioaddr1;
  2065. stl_brdstats.ioaddr2 = brdp->ioaddr2;
  2066. stl_brdstats.irq = brdp->irq;
  2067. stl_brdstats.nrpanels = brdp->nrpanels;
  2068. stl_brdstats.nrports = brdp->nrports;
  2069. for (i = 0; i < brdp->nrpanels; i++) {
  2070. panelp = brdp->panels[i];
  2071. stl_brdstats.panels[i].panel = i;
  2072. stl_brdstats.panels[i].hwid = panelp->hwid;
  2073. stl_brdstats.panels[i].nrports = panelp->nrports;
  2074. }
  2075. return copy_to_user(bp, &stl_brdstats, sizeof(combrd_t)) ? -EFAULT : 0;
  2076. }
  2077. /*****************************************************************************/
  2078. /*
  2079. * Resolve the referenced port number into a port struct pointer.
  2080. */
  2081. static struct stlport *stl_getport(int brdnr, int panelnr, int portnr)
  2082. {
  2083. struct stlbrd *brdp;
  2084. struct stlpanel *panelp;
  2085. if (brdnr < 0 || brdnr >= STL_MAXBRDS)
  2086. return NULL;
  2087. brdp = stl_brds[brdnr];
  2088. if (brdp == NULL)
  2089. return NULL;
  2090. if (panelnr < 0 || (unsigned int)panelnr >= brdp->nrpanels)
  2091. return NULL;
  2092. panelp = brdp->panels[panelnr];
  2093. if (panelp == NULL)
  2094. return NULL;
  2095. if (portnr < 0 || (unsigned int)portnr >= panelp->nrports)
  2096. return NULL;
  2097. return panelp->ports[portnr];
  2098. }
  2099. /*****************************************************************************/
  2100. /*
  2101. * Return the port stats structure to user app. A NULL port struct
  2102. * pointer passed in means that we need to find out from the app
  2103. * what port to get stats for (used through board control device).
  2104. */
  2105. static int stl_getportstats(struct stlport *portp, comstats_t __user *cp)
  2106. {
  2107. comstats_t stl_comstats;
  2108. unsigned char *head, *tail;
  2109. unsigned long flags;
  2110. if (!portp) {
  2111. if (copy_from_user(&stl_comstats, cp, sizeof(comstats_t)))
  2112. return -EFAULT;
  2113. portp = stl_getport(stl_comstats.brd, stl_comstats.panel,
  2114. stl_comstats.port);
  2115. if (portp == NULL)
  2116. return -ENODEV;
  2117. }
  2118. portp->stats.state = portp->istate;
  2119. portp->stats.flags = portp->flags;
  2120. portp->stats.hwid = portp->hwid;
  2121. portp->stats.ttystate = 0;
  2122. portp->stats.cflags = 0;
  2123. portp->stats.iflags = 0;
  2124. portp->stats.oflags = 0;
  2125. portp->stats.lflags = 0;
  2126. portp->stats.rxbuffered = 0;
  2127. spin_lock_irqsave(&stallion_lock, flags);
  2128. if (portp->tty != NULL)
  2129. if (portp->tty->driver_data == portp) {
  2130. portp->stats.ttystate = portp->tty->flags;
  2131. /* No longer available as a statistic */
  2132. portp->stats.rxbuffered = 1; /*portp->tty->flip.count; */
  2133. if (portp->tty->termios != NULL) {
  2134. portp->stats.cflags = portp->tty->termios->c_cflag;
  2135. portp->stats.iflags = portp->tty->termios->c_iflag;
  2136. portp->stats.oflags = portp->tty->termios->c_oflag;
  2137. portp->stats.lflags = portp->tty->termios->c_lflag;
  2138. }
  2139. }
  2140. spin_unlock_irqrestore(&stallion_lock, flags);
  2141. head = portp->tx.head;
  2142. tail = portp->tx.tail;
  2143. portp->stats.txbuffered = (head >= tail) ? (head - tail) :
  2144. (STL_TXBUFSIZE - (tail - head));
  2145. portp->stats.signals = (unsigned long) stl_getsignals(portp);
  2146. return copy_to_user(cp, &portp->stats,
  2147. sizeof(comstats_t)) ? -EFAULT : 0;
  2148. }
  2149. /*****************************************************************************/
  2150. /*
  2151. * Clear the port stats structure. We also return it zeroed out...
  2152. */
  2153. static int stl_clrportstats(struct stlport *portp, comstats_t __user *cp)
  2154. {
  2155. comstats_t stl_comstats;
  2156. if (!portp) {
  2157. if (copy_from_user(&stl_comstats, cp, sizeof(comstats_t)))
  2158. return -EFAULT;
  2159. portp = stl_getport(stl_comstats.brd, stl_comstats.panel,
  2160. stl_comstats.port);
  2161. if (portp == NULL)
  2162. return -ENODEV;
  2163. }
  2164. memset(&portp->stats, 0, sizeof(comstats_t));
  2165. portp->stats.brd = portp->brdnr;
  2166. portp->stats.panel = portp->panelnr;
  2167. portp->stats.port = portp->portnr;
  2168. return copy_to_user(cp, &portp->stats,
  2169. sizeof(comstats_t)) ? -EFAULT : 0;
  2170. }
  2171. /*****************************************************************************/
  2172. /*
  2173. * Return the entire driver ports structure to a user app.
  2174. */
  2175. static int stl_getportstruct(struct stlport __user *arg)
  2176. {
  2177. struct stlport stl_dummyport;
  2178. struct stlport *portp;
  2179. if (copy_from_user(&stl_dummyport, arg, sizeof(struct stlport)))
  2180. return -EFAULT;
  2181. portp = stl_getport(stl_dummyport.brdnr, stl_dummyport.panelnr,
  2182. stl_dummyport.portnr);
  2183. if (!portp)
  2184. return -ENODEV;
  2185. return copy_to_user(arg, portp, sizeof(struct stlport)) ? -EFAULT : 0;
  2186. }
  2187. /*****************************************************************************/
  2188. /*
  2189. * Return the entire driver board structure to a user app.
  2190. */
  2191. static int stl_getbrdstruct(struct stlbrd __user *arg)
  2192. {
  2193. struct stlbrd stl_dummybrd;
  2194. struct stlbrd *brdp;
  2195. if (copy_from_user(&stl_dummybrd, arg, sizeof(struct stlbrd)))
  2196. return -EFAULT;
  2197. if (stl_dummybrd.brdnr >= STL_MAXBRDS)
  2198. return -ENODEV;
  2199. brdp = stl_brds[stl_dummybrd.brdnr];
  2200. if (!brdp)
  2201. return -ENODEV;
  2202. return copy_to_user(arg, brdp, sizeof(struct stlbrd)) ? -EFAULT : 0;
  2203. }
  2204. /*****************************************************************************/
  2205. /*
  2206. * The "staliomem" device is also required to do some special operations
  2207. * on the board and/or ports. In this driver it is mostly used for stats
  2208. * collection.
  2209. */
  2210. static int stl_memioctl(struct inode *ip, struct file *fp, unsigned int cmd, unsigned long arg)
  2211. {
  2212. int brdnr, rc;
  2213. void __user *argp = (void __user *)arg;
  2214. pr_debug("stl_memioctl(ip=%p,fp=%p,cmd=%x,arg=%lx)\n", ip, fp, cmd,arg);
  2215. brdnr = iminor(ip);
  2216. if (brdnr >= STL_MAXBRDS)
  2217. return -ENODEV;
  2218. rc = 0;
  2219. switch (cmd) {
  2220. case COM_GETPORTSTATS:
  2221. rc = stl_getportstats(NULL, argp);
  2222. break;
  2223. case COM_CLRPORTSTATS:
  2224. rc = stl_clrportstats(NULL, argp);
  2225. break;
  2226. case COM_GETBRDSTATS:
  2227. rc = stl_getbrdstats(argp);
  2228. break;
  2229. case COM_READPORT:
  2230. rc = stl_getportstruct(argp);
  2231. break;
  2232. case COM_READBOARD:
  2233. rc = stl_getbrdstruct(argp);
  2234. break;
  2235. default:
  2236. rc = -ENOIOCTLCMD;
  2237. break;
  2238. }
  2239. return rc;
  2240. }
  2241. static const struct tty_operations stl_ops = {
  2242. .open = stl_open,
  2243. .close = stl_close,
  2244. .write = stl_write,
  2245. .put_char = stl_putchar,
  2246. .flush_chars = stl_flushchars,
  2247. .write_room = stl_writeroom,
  2248. .chars_in_buffer = stl_charsinbuffer,
  2249. .ioctl = stl_ioctl,
  2250. .set_termios = stl_settermios,
  2251. .throttle = stl_throttle,
  2252. .unthrottle = stl_unthrottle,
  2253. .stop = stl_stop,
  2254. .start = stl_start,
  2255. .hangup = stl_hangup,
  2256. .flush_buffer = stl_flushbuffer,
  2257. .break_ctl = stl_breakctl,
  2258. .wait_until_sent = stl_waituntilsent,
  2259. .send_xchar = stl_sendxchar,
  2260. .read_proc = stl_readproc,
  2261. .tiocmget = stl_tiocmget,
  2262. .tiocmset = stl_tiocmset,
  2263. };
  2264. /*****************************************************************************/
  2265. /* CD1400 HARDWARE FUNCTIONS */
  2266. /*****************************************************************************/
  2267. /*
  2268. * These functions get/set/update the registers of the cd1400 UARTs.
  2269. * Access to the cd1400 registers is via an address/data io port pair.
  2270. * (Maybe should make this inline...)
  2271. */
  2272. static int stl_cd1400getreg(struct stlport *portp, int regnr)
  2273. {
  2274. outb((regnr + portp->uartaddr), portp->ioaddr);
  2275. return inb(portp->ioaddr + EREG_DATA);
  2276. }
  2277. static void stl_cd1400setreg(struct stlport *portp, int regnr, int value)
  2278. {
  2279. outb(regnr + portp->uartaddr, portp->ioaddr);
  2280. outb(value, portp->ioaddr + EREG_DATA);
  2281. }
  2282. static int stl_cd1400updatereg(struct stlport *portp, int regnr, int value)
  2283. {
  2284. outb(regnr + portp->uartaddr, portp->ioaddr);
  2285. if (inb(portp->ioaddr + EREG_DATA) != value) {
  2286. outb(value, portp->ioaddr + EREG_DATA);
  2287. return 1;
  2288. }
  2289. return 0;
  2290. }
  2291. /*****************************************************************************/
  2292. /*
  2293. * Inbitialize the UARTs in a panel. We don't care what sort of board
  2294. * these ports are on - since the port io registers are almost
  2295. * identical when dealing with ports.
  2296. */
  2297. static int stl_cd1400panelinit(struct stlbrd *brdp, struct stlpanel *panelp)
  2298. {
  2299. unsigned int gfrcr;
  2300. int chipmask, i, j;
  2301. int nrchips, uartaddr, ioaddr;
  2302. unsigned long flags;
  2303. pr_debug("stl_panelinit(brdp=%p,panelp=%p)\n", brdp, panelp);
  2304. spin_lock_irqsave(&brd_lock, flags);
  2305. BRDENABLE(panelp->brdnr, panelp->pagenr);
  2306. /*
  2307. * Check that each chip is present and started up OK.
  2308. */
  2309. chipmask = 0;
  2310. nrchips = panelp->nrports / CD1400_PORTS;
  2311. for (i = 0; i < nrchips; i++) {
  2312. if (brdp->brdtype == BRD_ECHPCI) {
  2313. outb((panelp->pagenr + (i >> 1)), brdp->ioctrl);
  2314. ioaddr = panelp->iobase;
  2315. } else
  2316. ioaddr = panelp->iobase + (EREG_BANKSIZE * (i >> 1));
  2317. uartaddr = (i & 0x01) ? 0x080 : 0;
  2318. outb((GFRCR + uartaddr), ioaddr);
  2319. outb(0, (ioaddr + EREG_DATA));
  2320. outb((CCR + uartaddr), ioaddr);
  2321. outb(CCR_RESETFULL, (ioaddr + EREG_DATA));
  2322. outb(CCR_RESETFULL, (ioaddr + EREG_DATA));
  2323. outb((GFRCR + uartaddr), ioaddr);
  2324. for (j = 0; j < CCR_MAXWAIT; j++)
  2325. if ((gfrcr = inb(ioaddr + EREG_DATA)) != 0)
  2326. break;
  2327. if ((j >= CCR_MAXWAIT) || (gfrcr < 0x40) || (gfrcr > 0x60)) {
  2328. printk("STALLION: cd1400 not responding, "
  2329. "brd=%d panel=%d chip=%d\n",
  2330. panelp->brdnr, panelp->panelnr, i);
  2331. continue;
  2332. }
  2333. chipmask |= (0x1 << i);
  2334. outb((PPR + uartaddr), ioaddr);
  2335. outb(PPR_SCALAR, (ioaddr + EREG_DATA));
  2336. }
  2337. BRDDISABLE(panelp->brdnr);
  2338. spin_unlock_irqrestore(&brd_lock, flags);
  2339. return chipmask;
  2340. }
  2341. /*****************************************************************************/
  2342. /*
  2343. * Initialize hardware specific port registers.
  2344. */
  2345. static void stl_cd1400portinit(struct stlbrd *brdp, struct stlpanel *panelp, struct stlport *portp)
  2346. {
  2347. unsigned long flags;
  2348. pr_debug("stl_cd1400portinit(brdp=%p,panelp=%p,portp=%p)\n", brdp,
  2349. panelp, portp);
  2350. if ((brdp == NULL) || (panelp == NULL) ||
  2351. (portp == NULL))
  2352. return;
  2353. spin_lock_irqsave(&brd_lock, flags);
  2354. portp->ioaddr = panelp->iobase + (((brdp->brdtype == BRD_ECHPCI) ||
  2355. (portp->portnr < 8)) ? 0 : EREG_BANKSIZE);
  2356. portp->uartaddr = (portp->portnr & 0x04) << 5;
  2357. portp->pagenr = panelp->pagenr + (portp->portnr >> 3);
  2358. BRDENABLE(portp->brdnr, portp->pagenr);
  2359. stl_cd1400setreg(portp, CAR, (portp->portnr & 0x03));
  2360. stl_cd1400setreg(portp, LIVR, (portp->portnr << 3));
  2361. portp->hwid = stl_cd1400getreg(portp, GFRCR);
  2362. BRDDISABLE(portp->brdnr);
  2363. spin_unlock_irqrestore(&brd_lock, flags);
  2364. }
  2365. /*****************************************************************************/
  2366. /*
  2367. * Wait for the command register to be ready. We will poll this,
  2368. * since it won't usually take too long to be ready.
  2369. */
  2370. static void stl_cd1400ccrwait(struct stlport *portp)
  2371. {
  2372. int i;
  2373. for (i = 0; i < CCR_MAXWAIT; i++)
  2374. if (stl_cd1400getreg(portp, CCR) == 0)
  2375. return;
  2376. printk("STALLION: cd1400 not responding, port=%d panel=%d brd=%d\n",
  2377. portp->portnr, portp->panelnr, portp->brdnr);
  2378. }
  2379. /*****************************************************************************/
  2380. /*
  2381. * Set up the cd1400 registers for a port based on the termios port
  2382. * settings.
  2383. */
  2384. static void stl_cd1400setport(struct stlport *portp, struct ktermios *tiosp)
  2385. {
  2386. struct stlbrd *brdp;
  2387. unsigned long flags;
  2388. unsigned int clkdiv, baudrate;
  2389. unsigned char cor1, cor2, cor3;
  2390. unsigned char cor4, cor5, ccr;
  2391. unsigned char srer, sreron, sreroff;
  2392. unsigned char mcor1, mcor2, rtpr;
  2393. unsigned char clk, div;
  2394. cor1 = 0;
  2395. cor2 = 0;
  2396. cor3 = 0;
  2397. cor4 = 0;
  2398. cor5 = 0;
  2399. ccr = 0;
  2400. rtpr = 0;
  2401. clk = 0;
  2402. div = 0;
  2403. mcor1 = 0;
  2404. mcor2 = 0;
  2405. sreron = 0;
  2406. sreroff = 0;
  2407. brdp = stl_brds[portp->brdnr];
  2408. if (brdp == NULL)
  2409. return;
  2410. /*
  2411. * Set up the RX char ignore mask with those RX error types we
  2412. * can ignore. We can get the cd1400 to help us out a little here,
  2413. * it will ignore parity errors and breaks for us.
  2414. */
  2415. portp->rxignoremsk = 0;
  2416. if (tiosp->c_iflag & IGNPAR) {
  2417. portp->rxignoremsk |= (ST_PARITY | ST_FRAMING | ST_OVERRUN);
  2418. cor1 |= COR1_PARIGNORE;
  2419. }
  2420. if (tiosp->c_iflag & IGNBRK) {
  2421. portp->rxignoremsk |= ST_BREAK;
  2422. cor4 |= COR4_IGNBRK;
  2423. }
  2424. portp->rxmarkmsk = ST_OVERRUN;
  2425. if (tiosp->c_iflag & (INPCK | PARMRK))
  2426. portp->rxmarkmsk |= (ST_PARITY | ST_FRAMING);
  2427. if (tiosp->c_iflag & BRKINT)
  2428. portp->rxmarkmsk |= ST_BREAK;
  2429. /*
  2430. * Go through the char size, parity and stop bits and set all the
  2431. * option register appropriately.
  2432. */
  2433. switch (tiosp->c_cflag & CSIZE) {
  2434. case CS5:
  2435. cor1 |= COR1_CHL5;
  2436. break;
  2437. case CS6:
  2438. cor1 |= COR1_CHL6;
  2439. break;
  2440. case CS7:
  2441. cor1 |= COR1_CHL7;
  2442. break;
  2443. default:
  2444. cor1 |= COR1_CHL8;
  2445. break;
  2446. }
  2447. if (tiosp->c_cflag & CSTOPB)
  2448. cor1 |= COR1_STOP2;
  2449. else
  2450. cor1 |= COR1_STOP1;
  2451. if (tiosp->c_cflag & PARENB) {
  2452. if (tiosp->c_cflag & PARODD)
  2453. cor1 |= (COR1_PARENB | COR1_PARODD);
  2454. else
  2455. cor1 |= (COR1_PARENB | COR1_PAREVEN);
  2456. } else {
  2457. cor1 |= COR1_PARNONE;
  2458. }
  2459. /*
  2460. * Set the RX FIFO threshold at 6 chars. This gives a bit of breathing
  2461. * space for hardware flow control and the like. This should be set to
  2462. * VMIN. Also here we will set the RX data timeout to 10ms - this should
  2463. * really be based on VTIME.
  2464. */
  2465. cor3 |= FIFO_RXTHRESHOLD;
  2466. rtpr = 2;
  2467. /*
  2468. * Calculate the baud rate timers. For now we will just assume that
  2469. * the input and output baud are the same. Could have used a baud
  2470. * table here, but this way we can generate virtually any baud rate
  2471. * we like!
  2472. */
  2473. baudrate = tiosp->c_cflag & CBAUD;
  2474. if (baudrate & CBAUDEX) {
  2475. baudrate &= ~CBAUDEX;
  2476. if ((baudrate < 1) || (baudrate > 4))
  2477. tiosp->c_cflag &= ~CBAUDEX;
  2478. else
  2479. baudrate += 15;
  2480. }
  2481. baudrate = stl_baudrates[baudrate];
  2482. if ((tiosp->c_cflag & CBAUD) == B38400) {
  2483. if ((portp->flags & ASYNC_SPD_MASK) == ASYNC_SPD_HI)
  2484. baudrate = 57600;
  2485. else if ((portp->flags & ASYNC_SPD_MASK) == ASYNC_SPD_VHI)
  2486. baudrate = 115200;
  2487. else if ((portp->flags & ASYNC_SPD_MASK) == ASYNC_SPD_SHI)
  2488. baudrate = 230400;
  2489. else if ((portp->flags & ASYNC_SPD_MASK) == ASYNC_SPD_WARP)
  2490. baudrate = 460800;
  2491. else if ((portp->flags & ASYNC_SPD_MASK) == ASYNC_SPD_CUST)
  2492. baudrate = (portp->baud_base / portp->custom_divisor);
  2493. }
  2494. if (baudrate > STL_CD1400MAXBAUD)
  2495. baudrate = STL_CD1400MAXBAUD;
  2496. if (baudrate > 0) {
  2497. for (clk = 0; clk < CD1400_NUMCLKS; clk++) {
  2498. clkdiv = (portp->clk / stl_cd1400clkdivs[clk]) / baudrate;
  2499. if (clkdiv < 0x100)
  2500. break;
  2501. }
  2502. div = (unsigned char) clkdiv;
  2503. }
  2504. /*
  2505. * Check what form of modem signaling is required and set it up.
  2506. */
  2507. if ((tiosp->c_cflag & CLOCAL) == 0) {
  2508. mcor1 |= MCOR1_DCD;
  2509. mcor2 |= MCOR2_DCD;
  2510. sreron |= SRER_MODEM;
  2511. portp->flags |= ASYNC_CHECK_CD;
  2512. } else
  2513. portp->flags &= ~ASYNC_CHECK_CD;
  2514. /*
  2515. * Setup cd1400 enhanced modes if we can. In particular we want to
  2516. * handle as much of the flow control as possible automatically. As
  2517. * well as saving a few CPU cycles it will also greatly improve flow
  2518. * control reliability.
  2519. */
  2520. if (tiosp->c_iflag & IXON) {
  2521. cor2 |= COR2_TXIBE;
  2522. cor3 |= COR3_SCD12;
  2523. if (tiosp->c_iflag & IXANY)
  2524. cor2 |= COR2_IXM;
  2525. }
  2526. if (tiosp->c_cflag & CRTSCTS) {
  2527. cor2 |= COR2_CTSAE;
  2528. mcor1 |= FIFO_RTSTHRESHOLD;
  2529. }
  2530. /*
  2531. * All cd1400 register values calculated so go through and set
  2532. * them all up.
  2533. */
  2534. pr_debug("SETPORT: portnr=%d panelnr=%d brdnr=%d\n",
  2535. portp->portnr, portp->panelnr, portp->brdnr);
  2536. pr_debug(" cor1=%x cor2=%x cor3=%x cor4=%x cor5=%x\n",
  2537. cor1, cor2, cor3, cor4, cor5);
  2538. pr_debug(" mcor1=%x mcor2=%x rtpr=%x sreron=%x sreroff=%x\n",
  2539. mcor1, mcor2, rtpr, sreron, sreroff);
  2540. pr_debug(" tcor=%x tbpr=%x rcor=%x rbpr=%x\n", clk, div, clk, div);
  2541. pr_debug(" schr1=%x schr2=%x schr3=%x schr4=%x\n",
  2542. tiosp->c_cc[VSTART], tiosp->c_cc[VSTOP],
  2543. tiosp->c_cc[VSTART], tiosp->c_cc[VSTOP]);
  2544. spin_lock_irqsave(&brd_lock, flags);
  2545. BRDENABLE(portp->brdnr, portp->pagenr);
  2546. stl_cd1400setreg(portp, CAR, (portp->portnr & 0x3));
  2547. srer = stl_cd1400getreg(portp, SRER);
  2548. stl_cd1400setreg(portp, SRER, 0);
  2549. if (stl_cd1400updatereg(portp, COR1, cor1))
  2550. ccr = 1;
  2551. if (stl_cd1400updatereg(portp, COR2, cor2))
  2552. ccr = 1;
  2553. if (stl_cd1400updatereg(portp, COR3, cor3))
  2554. ccr = 1;
  2555. if (ccr) {
  2556. stl_cd1400ccrwait(portp);
  2557. stl_cd1400setreg(portp, CCR, CCR_CORCHANGE);
  2558. }
  2559. stl_cd1400setreg(portp, COR4, cor4);
  2560. stl_cd1400setreg(portp, COR5, cor5);
  2561. stl_cd1400setreg(portp, MCOR1, mcor1);
  2562. stl_cd1400setreg(portp, MCOR2, mcor2);
  2563. if (baudrate > 0) {
  2564. stl_cd1400setreg(portp, TCOR, clk);
  2565. stl_cd1400setreg(portp, TBPR, div);
  2566. stl_cd1400setreg(portp, RCOR, clk);
  2567. stl_cd1400setreg(portp, RBPR, div);
  2568. }
  2569. stl_cd1400setreg(portp, SCHR1, tiosp->c_cc[VSTART]);
  2570. stl_cd1400setreg(portp, SCHR2, tiosp->c_cc[VSTOP]);
  2571. stl_cd1400setreg(portp, SCHR3, tiosp->c_cc[VSTART]);
  2572. stl_cd1400setreg(portp, SCHR4, tiosp->c_cc[VSTOP]);
  2573. stl_cd1400setreg(portp, RTPR, rtpr);
  2574. mcor1 = stl_cd1400getreg(portp, MSVR1);
  2575. if (mcor1 & MSVR1_DCD)
  2576. portp->sigs |= TIOCM_CD;
  2577. else
  2578. portp->sigs &= ~TIOCM_CD;
  2579. stl_cd1400setreg(portp, SRER, ((srer & ~sreroff) | sreron));
  2580. BRDDISABLE(portp->brdnr);
  2581. spin_unlock_irqrestore(&brd_lock, flags);
  2582. }
  2583. /*****************************************************************************/
  2584. /*
  2585. * Set the state of the DTR and RTS signals.
  2586. */
  2587. static void stl_cd1400setsignals(struct stlport *portp, int dtr, int rts)
  2588. {
  2589. unsigned char msvr1, msvr2;
  2590. unsigned long flags;
  2591. pr_debug("stl_cd1400setsignals(portp=%p,dtr=%d,rts=%d)\n",
  2592. portp, dtr, rts);
  2593. msvr1 = 0;
  2594. msvr2 = 0;
  2595. if (dtr > 0)
  2596. msvr1 = MSVR1_DTR;
  2597. if (rts > 0)
  2598. msvr2 = MSVR2_RTS;
  2599. spin_lock_irqsave(&brd_lock, flags);
  2600. BRDENABLE(portp->brdnr, portp->pagenr);
  2601. stl_cd1400setreg(portp, CAR, (portp->portnr & 0x03));
  2602. if (rts >= 0)
  2603. stl_cd1400setreg(portp, MSVR2, msvr2);
  2604. if (dtr >= 0)
  2605. stl_cd1400setreg(portp, MSVR1, msvr1);
  2606. BRDDISABLE(portp->brdnr);
  2607. spin_unlock_irqrestore(&brd_lock, flags);
  2608. }
  2609. /*****************************************************************************/
  2610. /*
  2611. * Return the state of the signals.
  2612. */
  2613. static int stl_cd1400getsignals(struct stlport *portp)
  2614. {
  2615. unsigned char msvr1, msvr2;
  2616. unsigned long flags;
  2617. int sigs;
  2618. pr_debug("stl_cd1400getsignals(portp=%p)\n", portp);
  2619. spin_lock_irqsave(&brd_lock, flags);
  2620. BRDENABLE(portp->brdnr, portp->pagenr);
  2621. stl_cd1400setreg(portp, CAR, (portp->portnr & 0x03));
  2622. msvr1 = stl_cd1400getreg(portp, MSVR1);
  2623. msvr2 = stl_cd1400getreg(portp, MSVR2);
  2624. BRDDISABLE(portp->brdnr);
  2625. spin_unlock_irqrestore(&brd_lock, flags);
  2626. sigs = 0;
  2627. sigs |= (msvr1 & MSVR1_DCD) ? TIOCM_CD : 0;
  2628. sigs |= (msvr1 & MSVR1_CTS) ? TIOCM_CTS : 0;
  2629. sigs |= (msvr1 & MSVR1_DTR) ? TIOCM_DTR : 0;
  2630. sigs |= (msvr2 & MSVR2_RTS) ? TIOCM_RTS : 0;
  2631. #if 0
  2632. sigs |= (msvr1 & MSVR1_RI) ? TIOCM_RI : 0;
  2633. sigs |= (msvr1 & MSVR1_DSR) ? TIOCM_DSR : 0;
  2634. #else
  2635. sigs |= TIOCM_DSR;
  2636. #endif
  2637. return sigs;
  2638. }
  2639. /*****************************************************************************/
  2640. /*
  2641. * Enable/Disable the Transmitter and/or Receiver.
  2642. */
  2643. static void stl_cd1400enablerxtx(struct stlport *portp, int rx, int tx)
  2644. {
  2645. unsigned char ccr;
  2646. unsigned long flags;
  2647. pr_debug("stl_cd1400enablerxtx(portp=%p,rx=%d,tx=%d)\n", portp, rx, tx);
  2648. ccr = 0;
  2649. if (tx == 0)
  2650. ccr |= CCR_TXDISABLE;
  2651. else if (tx > 0)
  2652. ccr |= CCR_TXENABLE;
  2653. if (rx == 0)
  2654. ccr |= CCR_RXDISABLE;
  2655. else if (rx > 0)
  2656. ccr |= CCR_RXENABLE;
  2657. spin_lock_irqsave(&brd_lock, flags);
  2658. BRDENABLE(portp->brdnr, portp->pagenr);
  2659. stl_cd1400setreg(portp, CAR, (portp->portnr & 0x03));
  2660. stl_cd1400ccrwait(portp);
  2661. stl_cd1400setreg(portp, CCR, ccr);
  2662. stl_cd1400ccrwait(portp);
  2663. BRDDISABLE(portp->brdnr);
  2664. spin_unlock_irqrestore(&brd_lock, flags);
  2665. }
  2666. /*****************************************************************************/
  2667. /*
  2668. * Start/stop the Transmitter and/or Receiver.
  2669. */
  2670. static void stl_cd1400startrxtx(struct stlport *portp, int rx, int tx)
  2671. {
  2672. unsigned char sreron, sreroff;
  2673. unsigned long flags;
  2674. pr_debug("stl_cd1400startrxtx(portp=%p,rx=%d,tx=%d)\n", portp, rx, tx);
  2675. sreron = 0;
  2676. sreroff = 0;
  2677. if (tx == 0)
  2678. sreroff |= (SRER_TXDATA | SRER_TXEMPTY);
  2679. else if (tx == 1)
  2680. sreron |= SRER_TXDATA;
  2681. else if (tx >= 2)
  2682. sreron |= SRER_TXEMPTY;
  2683. if (rx == 0)
  2684. sreroff |= SRER_RXDATA;
  2685. else if (rx > 0)
  2686. sreron |= SRER_RXDATA;
  2687. spin_lock_irqsave(&brd_lock, flags);
  2688. BRDENABLE(portp->brdnr, portp->pagenr);
  2689. stl_cd1400setreg(portp, CAR, (portp->portnr & 0x03));
  2690. stl_cd1400setreg(portp, SRER,
  2691. ((stl_cd1400getreg(portp, SRER) & ~sreroff) | sreron));
  2692. BRDDISABLE(portp->brdnr);
  2693. if (tx > 0)
  2694. set_bit(ASYI_TXBUSY, &portp->istate);
  2695. spin_unlock_irqrestore(&brd_lock, flags);
  2696. }
  2697. /*****************************************************************************/
  2698. /*
  2699. * Disable all interrupts from this port.
  2700. */
  2701. static void stl_cd1400disableintrs(struct stlport *portp)
  2702. {
  2703. unsigned long flags;
  2704. pr_debug("stl_cd1400disableintrs(portp=%p)\n", portp);
  2705. spin_lock_irqsave(&brd_lock, flags);
  2706. BRDENABLE(portp->brdnr, portp->pagenr);
  2707. stl_cd1400setreg(portp, CAR, (portp->portnr & 0x03));
  2708. stl_cd1400setreg(portp, SRER, 0);
  2709. BRDDISABLE(portp->brdnr);
  2710. spin_unlock_irqrestore(&brd_lock, flags);
  2711. }
  2712. /*****************************************************************************/
  2713. static void stl_cd1400sendbreak(struct stlport *portp, int len)
  2714. {
  2715. unsigned long flags;
  2716. pr_debug("stl_cd1400sendbreak(portp=%p,len=%d)\n", portp, len);
  2717. spin_lock_irqsave(&brd_lock, flags);
  2718. BRDENABLE(portp->brdnr, portp->pagenr);
  2719. stl_cd1400setreg(portp, CAR, (portp->portnr & 0x03));
  2720. stl_cd1400setreg(portp, SRER,
  2721. ((stl_cd1400getreg(portp, SRER) & ~SRER_TXDATA) |
  2722. SRER_TXEMPTY));
  2723. BRDDISABLE(portp->brdnr);
  2724. portp->brklen = len;
  2725. if (len == 1)
  2726. portp->stats.txbreaks++;
  2727. spin_unlock_irqrestore(&brd_lock, flags);
  2728. }
  2729. /*****************************************************************************/
  2730. /*
  2731. * Take flow control actions...
  2732. */
  2733. static void stl_cd1400flowctrl(struct stlport *portp, int state)
  2734. {
  2735. struct tty_struct *tty;
  2736. unsigned long flags;
  2737. pr_debug("stl_cd1400flowctrl(portp=%p,state=%x)\n", portp, state);
  2738. if (portp == NULL)
  2739. return;
  2740. tty = portp->tty;
  2741. if (tty == NULL)
  2742. return;
  2743. spin_lock_irqsave(&brd_lock, flags);
  2744. BRDENABLE(portp->brdnr, portp->pagenr);
  2745. stl_cd1400setreg(portp, CAR, (portp->portnr & 0x03));
  2746. if (state) {
  2747. if (tty->termios->c_iflag & IXOFF) {
  2748. stl_cd1400ccrwait(portp);
  2749. stl_cd1400setreg(portp, CCR, CCR_SENDSCHR1);
  2750. portp->stats.rxxon++;
  2751. stl_cd1400ccrwait(portp);
  2752. }
  2753. /*
  2754. * Question: should we return RTS to what it was before? It may
  2755. * have been set by an ioctl... Suppose not, since if you have
  2756. * hardware flow control set then it is pretty silly to go and
  2757. * set the RTS line by hand.
  2758. */
  2759. if (tty->termios->c_cflag & CRTSCTS) {
  2760. stl_cd1400setreg(portp, MCOR1,
  2761. (stl_cd1400getreg(portp, MCOR1) |
  2762. FIFO_RTSTHRESHOLD));
  2763. stl_cd1400setreg(portp, MSVR2, MSVR2_RTS);
  2764. portp->stats.rxrtson++;
  2765. }
  2766. } else {
  2767. if (tty->termios->c_iflag & IXOFF) {
  2768. stl_cd1400ccrwait(portp);
  2769. stl_cd1400setreg(portp, CCR, CCR_SENDSCHR2);
  2770. portp->stats.rxxoff++;
  2771. stl_cd1400ccrwait(portp);
  2772. }
  2773. if (tty->termios->c_cflag & CRTSCTS) {
  2774. stl_cd1400setreg(portp, MCOR1,
  2775. (stl_cd1400getreg(portp, MCOR1) & 0xf0));
  2776. stl_cd1400setreg(portp, MSVR2, 0);
  2777. portp->stats.rxrtsoff++;
  2778. }
  2779. }
  2780. BRDDISABLE(portp->brdnr);
  2781. spin_unlock_irqrestore(&brd_lock, flags);
  2782. }
  2783. /*****************************************************************************/
  2784. /*
  2785. * Send a flow control character...
  2786. */
  2787. static void stl_cd1400sendflow(struct stlport *portp, int state)
  2788. {
  2789. struct tty_struct *tty;
  2790. unsigned long flags;
  2791. pr_debug("stl_cd1400sendflow(portp=%p,state=%x)\n", portp, state);
  2792. if (portp == NULL)
  2793. return;
  2794. tty = portp->tty;
  2795. if (tty == NULL)
  2796. return;
  2797. spin_lock_irqsave(&brd_lock, flags);
  2798. BRDENABLE(portp->brdnr, portp->pagenr);
  2799. stl_cd1400setreg(portp, CAR, (portp->portnr & 0x03));
  2800. if (state) {
  2801. stl_cd1400ccrwait(portp);
  2802. stl_cd1400setreg(portp, CCR, CCR_SENDSCHR1);
  2803. portp->stats.rxxon++;
  2804. stl_cd1400ccrwait(portp);
  2805. } else {
  2806. stl_cd1400ccrwait(portp);
  2807. stl_cd1400setreg(portp, CCR, CCR_SENDSCHR2);
  2808. portp->stats.rxxoff++;
  2809. stl_cd1400ccrwait(portp);
  2810. }
  2811. BRDDISABLE(portp->brdnr);
  2812. spin_unlock_irqrestore(&brd_lock, flags);
  2813. }
  2814. /*****************************************************************************/
  2815. static void stl_cd1400flush(struct stlport *portp)
  2816. {
  2817. unsigned long flags;
  2818. pr_debug("stl_cd1400flush(portp=%p)\n", portp);
  2819. if (portp == NULL)
  2820. return;
  2821. spin_lock_irqsave(&brd_lock, flags);
  2822. BRDENABLE(portp->brdnr, portp->pagenr);
  2823. stl_cd1400setreg(portp, CAR, (portp->portnr & 0x03));
  2824. stl_cd1400ccrwait(portp);
  2825. stl_cd1400setreg(portp, CCR, CCR_TXFLUSHFIFO);
  2826. stl_cd1400ccrwait(portp);
  2827. portp->tx.tail = portp->tx.head;
  2828. BRDDISABLE(portp->brdnr);
  2829. spin_unlock_irqrestore(&brd_lock, flags);
  2830. }
  2831. /*****************************************************************************/
  2832. /*
  2833. * Return the current state of data flow on this port. This is only
  2834. * really interresting when determining if data has fully completed
  2835. * transmission or not... This is easy for the cd1400, it accurately
  2836. * maintains the busy port flag.
  2837. */
  2838. static int stl_cd1400datastate(struct stlport *portp)
  2839. {
  2840. pr_debug("stl_cd1400datastate(portp=%p)\n", portp);
  2841. if (portp == NULL)
  2842. return 0;
  2843. return test_bit(ASYI_TXBUSY, &portp->istate) ? 1 : 0;
  2844. }
  2845. /*****************************************************************************/
  2846. /*
  2847. * Interrupt service routine for cd1400 EasyIO boards.
  2848. */
  2849. static void stl_cd1400eiointr(struct stlpanel *panelp, unsigned int iobase)
  2850. {
  2851. unsigned char svrtype;
  2852. pr_debug("stl_cd1400eiointr(panelp=%p,iobase=%x)\n", panelp, iobase);
  2853. spin_lock(&brd_lock);
  2854. outb(SVRR, iobase);
  2855. svrtype = inb(iobase + EREG_DATA);
  2856. if (panelp->nrports > 4) {
  2857. outb((SVRR + 0x80), iobase);
  2858. svrtype |= inb(iobase + EREG_DATA);
  2859. }
  2860. if (svrtype & SVRR_RX)
  2861. stl_cd1400rxisr(panelp, iobase);
  2862. else if (svrtype & SVRR_TX)
  2863. stl_cd1400txisr(panelp, iobase);
  2864. else if (svrtype & SVRR_MDM)
  2865. stl_cd1400mdmisr(panelp, iobase);
  2866. spin_unlock(&brd_lock);
  2867. }
  2868. /*****************************************************************************/
  2869. /*
  2870. * Interrupt service routine for cd1400 panels.
  2871. */
  2872. static void stl_cd1400echintr(struct stlpanel *panelp, unsigned int iobase)
  2873. {
  2874. unsigned char svrtype;
  2875. pr_debug("stl_cd1400echintr(panelp=%p,iobase=%x)\n", panelp, iobase);
  2876. outb(SVRR, iobase);
  2877. svrtype = inb(iobase + EREG_DATA);
  2878. outb((SVRR + 0x80), iobase);
  2879. svrtype |= inb(iobase + EREG_DATA);
  2880. if (svrtype & SVRR_RX)
  2881. stl_cd1400rxisr(panelp, iobase);
  2882. else if (svrtype & SVRR_TX)
  2883. stl_cd1400txisr(panelp, iobase);
  2884. else if (svrtype & SVRR_MDM)
  2885. stl_cd1400mdmisr(panelp, iobase);
  2886. }
  2887. /*****************************************************************************/
  2888. /*
  2889. * Unfortunately we need to handle breaks in the TX data stream, since
  2890. * this is the only way to generate them on the cd1400.
  2891. */
  2892. static int stl_cd1400breakisr(struct stlport *portp, int ioaddr)
  2893. {
  2894. if (portp->brklen == 1) {
  2895. outb((COR2 + portp->uartaddr), ioaddr);
  2896. outb((inb(ioaddr + EREG_DATA) | COR2_ETC),
  2897. (ioaddr + EREG_DATA));
  2898. outb((TDR + portp->uartaddr), ioaddr);
  2899. outb(ETC_CMD, (ioaddr + EREG_DATA));
  2900. outb(ETC_STARTBREAK, (ioaddr + EREG_DATA));
  2901. outb((SRER + portp->uartaddr), ioaddr);
  2902. outb((inb(ioaddr + EREG_DATA) & ~(SRER_TXDATA | SRER_TXEMPTY)),
  2903. (ioaddr + EREG_DATA));
  2904. return 1;
  2905. } else if (portp->brklen > 1) {
  2906. outb((TDR + portp->uartaddr), ioaddr);
  2907. outb(ETC_CMD, (ioaddr + EREG_DATA));
  2908. outb(ETC_STOPBREAK, (ioaddr + EREG_DATA));
  2909. portp->brklen = -1;
  2910. return 1;
  2911. } else {
  2912. outb((COR2 + portp->uartaddr), ioaddr);
  2913. outb((inb(ioaddr + EREG_DATA) & ~COR2_ETC),
  2914. (ioaddr + EREG_DATA));
  2915. portp->brklen = 0;
  2916. }
  2917. return 0;
  2918. }
  2919. /*****************************************************************************/
  2920. /*
  2921. * Transmit interrupt handler. This has gotta be fast! Handling TX
  2922. * chars is pretty simple, stuff as many as possible from the TX buffer
  2923. * into the cd1400 FIFO. Must also handle TX breaks here, since they
  2924. * are embedded as commands in the data stream. Oh no, had to use a goto!
  2925. * This could be optimized more, will do when I get time...
  2926. * In practice it is possible that interrupts are enabled but that the
  2927. * port has been hung up. Need to handle not having any TX buffer here,
  2928. * this is done by using the side effect that head and tail will also
  2929. * be NULL if the buffer has been freed.
  2930. */
  2931. static void stl_cd1400txisr(struct stlpanel *panelp, int ioaddr)
  2932. {
  2933. struct stlport *portp;
  2934. int len, stlen;
  2935. char *head, *tail;
  2936. unsigned char ioack, srer;
  2937. pr_debug("stl_cd1400txisr(panelp=%p,ioaddr=%x)\n", panelp, ioaddr);
  2938. ioack = inb(ioaddr + EREG_TXACK);
  2939. if (((ioack & panelp->ackmask) != 0) ||
  2940. ((ioack & ACK_TYPMASK) != ACK_TYPTX)) {
  2941. printk("STALLION: bad TX interrupt ack value=%x\n", ioack);
  2942. return;
  2943. }
  2944. portp = panelp->ports[(ioack >> 3)];
  2945. /*
  2946. * Unfortunately we need to handle breaks in the data stream, since
  2947. * this is the only way to generate them on the cd1400. Do it now if
  2948. * a break is to be sent.
  2949. */
  2950. if (portp->brklen != 0)
  2951. if (stl_cd1400breakisr(portp, ioaddr))
  2952. goto stl_txalldone;
  2953. head = portp->tx.head;
  2954. tail = portp->tx.tail;
  2955. len = (head >= tail) ? (head - tail) : (STL_TXBUFSIZE - (tail - head));
  2956. if ((len == 0) || ((len < STL_TXBUFLOW) &&
  2957. (test_bit(ASYI_TXLOW, &portp->istate) == 0))) {
  2958. set_bit(ASYI_TXLOW, &portp->istate);
  2959. if (portp->tty)
  2960. tty_wakeup(portp->tty);
  2961. }
  2962. if (len == 0) {
  2963. outb((SRER + portp->uartaddr), ioaddr);
  2964. srer = inb(ioaddr + EREG_DATA);
  2965. if (srer & SRER_TXDATA) {
  2966. srer = (srer & ~SRER_TXDATA) | SRER_TXEMPTY;
  2967. } else {
  2968. srer &= ~(SRER_TXDATA | SRER_TXEMPTY);
  2969. clear_bit(ASYI_TXBUSY, &portp->istate);
  2970. }
  2971. outb(srer, (ioaddr + EREG_DATA));
  2972. } else {
  2973. len = min(len, CD1400_TXFIFOSIZE);
  2974. portp->stats.txtotal += len;
  2975. stlen = min_t(unsigned int, len,
  2976. (portp->tx.buf + STL_TXBUFSIZE) - tail);
  2977. outb((TDR + portp->uartaddr), ioaddr);
  2978. outsb((ioaddr + EREG_DATA), tail, stlen);
  2979. len -= stlen;
  2980. tail += stlen;
  2981. if (tail >= (portp->tx.buf + STL_TXBUFSIZE))
  2982. tail = portp->tx.buf;
  2983. if (len > 0) {
  2984. outsb((ioaddr + EREG_DATA), tail, len);
  2985. tail += len;
  2986. }
  2987. portp->tx.tail = tail;
  2988. }
  2989. stl_txalldone:
  2990. outb((EOSRR + portp->uartaddr), ioaddr);
  2991. outb(0, (ioaddr + EREG_DATA));
  2992. }
  2993. /*****************************************************************************/
  2994. /*
  2995. * Receive character interrupt handler. Determine if we have good chars
  2996. * or bad chars and then process appropriately. Good chars are easy
  2997. * just shove the lot into the RX buffer and set all status byte to 0.
  2998. * If a bad RX char then process as required. This routine needs to be
  2999. * fast! In practice it is possible that we get an interrupt on a port
  3000. * that is closed. This can happen on hangups - since they completely
  3001. * shutdown a port not in user context. Need to handle this case.
  3002. */
  3003. static void stl_cd1400rxisr(struct stlpanel *panelp, int ioaddr)
  3004. {
  3005. struct stlport *portp;
  3006. struct tty_struct *tty;
  3007. unsigned int ioack, len, buflen;
  3008. unsigned char status;
  3009. char ch;
  3010. pr_debug("stl_cd1400rxisr(panelp=%p,ioaddr=%x)\n", panelp, ioaddr);
  3011. ioack = inb(ioaddr + EREG_RXACK);
  3012. if ((ioack & panelp->ackmask) != 0) {
  3013. printk("STALLION: bad RX interrupt ack value=%x\n", ioack);
  3014. return;
  3015. }
  3016. portp = panelp->ports[(ioack >> 3)];
  3017. tty = portp->tty;
  3018. if ((ioack & ACK_TYPMASK) == ACK_TYPRXGOOD) {
  3019. outb((RDCR + portp->uartaddr), ioaddr);
  3020. len = inb(ioaddr + EREG_DATA);
  3021. if (tty == NULL || (buflen = tty_buffer_request_room(tty, len)) == 0) {
  3022. len = min_t(unsigned int, len, sizeof(stl_unwanted));
  3023. outb((RDSR + portp->uartaddr), ioaddr);
  3024. insb((ioaddr + EREG_DATA), &stl_unwanted[0], len);
  3025. portp->stats.rxlost += len;
  3026. portp->stats.rxtotal += len;
  3027. } else {
  3028. len = min(len, buflen);
  3029. if (len > 0) {
  3030. unsigned char *ptr;
  3031. outb((RDSR + portp->uartaddr), ioaddr);
  3032. tty_prepare_flip_string(tty, &ptr, len);
  3033. insb((ioaddr + EREG_DATA), ptr, len);
  3034. tty_schedule_flip(tty);
  3035. portp->stats.rxtotal += len;
  3036. }
  3037. }
  3038. } else if ((ioack & ACK_TYPMASK) == ACK_TYPRXBAD) {
  3039. outb((RDSR + portp->uartaddr), ioaddr);
  3040. status = inb(ioaddr + EREG_DATA);
  3041. ch = inb(ioaddr + EREG_DATA);
  3042. if (status & ST_PARITY)
  3043. portp->stats.rxparity++;
  3044. if (status & ST_FRAMING)
  3045. portp->stats.rxframing++;
  3046. if (status & ST_OVERRUN)
  3047. portp->stats.rxoverrun++;
  3048. if (status & ST_BREAK)
  3049. portp->stats.rxbreaks++;
  3050. if (status & ST_SCHARMASK) {
  3051. if ((status & ST_SCHARMASK) == ST_SCHAR1)
  3052. portp->stats.txxon++;
  3053. if ((status & ST_SCHARMASK) == ST_SCHAR2)
  3054. portp->stats.txxoff++;
  3055. goto stl_rxalldone;
  3056. }
  3057. if (tty != NULL && (portp->rxignoremsk & status) == 0) {
  3058. if (portp->rxmarkmsk & status) {
  3059. if (status & ST_BREAK) {
  3060. status = TTY_BREAK;
  3061. if (portp->flags & ASYNC_SAK) {
  3062. do_SAK(tty);
  3063. BRDENABLE(portp->brdnr, portp->pagenr);
  3064. }
  3065. } else if (status & ST_PARITY)
  3066. status = TTY_PARITY;
  3067. else if (status & ST_FRAMING)
  3068. status = TTY_FRAME;
  3069. else if(status & ST_OVERRUN)
  3070. status = TTY_OVERRUN;
  3071. else
  3072. status = 0;
  3073. } else
  3074. status = 0;
  3075. tty_insert_flip_char(tty, ch, status);
  3076. tty_schedule_flip(tty);
  3077. }
  3078. } else {
  3079. printk("STALLION: bad RX interrupt ack value=%x\n", ioack);
  3080. return;
  3081. }
  3082. stl_rxalldone:
  3083. outb((EOSRR + portp->uartaddr), ioaddr);
  3084. outb(0, (ioaddr + EREG_DATA));
  3085. }
  3086. /*****************************************************************************/
  3087. /*
  3088. * Modem interrupt handler. The is called when the modem signal line
  3089. * (DCD) has changed state. Leave most of the work to the off-level
  3090. * processing routine.
  3091. */
  3092. static void stl_cd1400mdmisr(struct stlpanel *panelp, int ioaddr)
  3093. {
  3094. struct stlport *portp;
  3095. unsigned int ioack;
  3096. unsigned char misr;
  3097. pr_debug("stl_cd1400mdmisr(panelp=%p)\n", panelp);
  3098. ioack = inb(ioaddr + EREG_MDACK);
  3099. if (((ioack & panelp->ackmask) != 0) ||
  3100. ((ioack & ACK_TYPMASK) != ACK_TYPMDM)) {
  3101. printk("STALLION: bad MODEM interrupt ack value=%x\n", ioack);
  3102. return;
  3103. }
  3104. portp = panelp->ports[(ioack >> 3)];
  3105. outb((MISR + portp->uartaddr), ioaddr);
  3106. misr = inb(ioaddr + EREG_DATA);
  3107. if (misr & MISR_DCD) {
  3108. stl_cd_change(portp);
  3109. portp->stats.modem++;
  3110. }
  3111. outb((EOSRR + portp->uartaddr), ioaddr);
  3112. outb(0, (ioaddr + EREG_DATA));
  3113. }
  3114. /*****************************************************************************/
  3115. /* SC26198 HARDWARE FUNCTIONS */
  3116. /*****************************************************************************/
  3117. /*
  3118. * These functions get/set/update the registers of the sc26198 UARTs.
  3119. * Access to the sc26198 registers is via an address/data io port pair.
  3120. * (Maybe should make this inline...)
  3121. */
  3122. static int stl_sc26198getreg(struct stlport *portp, int regnr)
  3123. {
  3124. outb((regnr | portp->uartaddr), (portp->ioaddr + XP_ADDR));
  3125. return inb(portp->ioaddr + XP_DATA);
  3126. }
  3127. static void stl_sc26198setreg(struct stlport *portp, int regnr, int value)
  3128. {
  3129. outb((regnr | portp->uartaddr), (portp->ioaddr + XP_ADDR));
  3130. outb(value, (portp->ioaddr + XP_DATA));
  3131. }
  3132. static int stl_sc26198updatereg(struct stlport *portp, int regnr, int value)
  3133. {
  3134. outb((regnr | portp->uartaddr), (portp->ioaddr + XP_ADDR));
  3135. if (inb(portp->ioaddr + XP_DATA) != value) {
  3136. outb(value, (portp->ioaddr + XP_DATA));
  3137. return 1;
  3138. }
  3139. return 0;
  3140. }
  3141. /*****************************************************************************/
  3142. /*
  3143. * Functions to get and set the sc26198 global registers.
  3144. */
  3145. static int stl_sc26198getglobreg(struct stlport *portp, int regnr)
  3146. {
  3147. outb(regnr, (portp->ioaddr + XP_ADDR));
  3148. return inb(portp->ioaddr + XP_DATA);
  3149. }
  3150. #if 0
  3151. static void stl_sc26198setglobreg(struct stlport *portp, int regnr, int value)
  3152. {
  3153. outb(regnr, (portp->ioaddr + XP_ADDR));
  3154. outb(value, (portp->ioaddr + XP_DATA));
  3155. }
  3156. #endif
  3157. /*****************************************************************************/
  3158. /*
  3159. * Inbitialize the UARTs in a panel. We don't care what sort of board
  3160. * these ports are on - since the port io registers are almost
  3161. * identical when dealing with ports.
  3162. */
  3163. static int stl_sc26198panelinit(struct stlbrd *brdp, struct stlpanel *panelp)
  3164. {
  3165. int chipmask, i;
  3166. int nrchips, ioaddr;
  3167. pr_debug("stl_sc26198panelinit(brdp=%p,panelp=%p)\n", brdp, panelp);
  3168. BRDENABLE(panelp->brdnr, panelp->pagenr);
  3169. /*
  3170. * Check that each chip is present and started up OK.
  3171. */
  3172. chipmask = 0;
  3173. nrchips = (panelp->nrports + 4) / SC26198_PORTS;
  3174. if (brdp->brdtype == BRD_ECHPCI)
  3175. outb(panelp->pagenr, brdp->ioctrl);
  3176. for (i = 0; i < nrchips; i++) {
  3177. ioaddr = panelp->iobase + (i * 4);
  3178. outb(SCCR, (ioaddr + XP_ADDR));
  3179. outb(CR_RESETALL, (ioaddr + XP_DATA));
  3180. outb(TSTR, (ioaddr + XP_ADDR));
  3181. if (inb(ioaddr + XP_DATA) != 0) {
  3182. printk("STALLION: sc26198 not responding, "
  3183. "brd=%d panel=%d chip=%d\n",
  3184. panelp->brdnr, panelp->panelnr, i);
  3185. continue;
  3186. }
  3187. chipmask |= (0x1 << i);
  3188. outb(GCCR, (ioaddr + XP_ADDR));
  3189. outb(GCCR_IVRTYPCHANACK, (ioaddr + XP_DATA));
  3190. outb(WDTRCR, (ioaddr + XP_ADDR));
  3191. outb(0xff, (ioaddr + XP_DATA));
  3192. }
  3193. BRDDISABLE(panelp->brdnr);
  3194. return chipmask;
  3195. }
  3196. /*****************************************************************************/
  3197. /*
  3198. * Initialize hardware specific port registers.
  3199. */
  3200. static void stl_sc26198portinit(struct stlbrd *brdp, struct stlpanel *panelp, struct stlport *portp)
  3201. {
  3202. pr_debug("stl_sc26198portinit(brdp=%p,panelp=%p,portp=%p)\n", brdp,
  3203. panelp, portp);
  3204. if ((brdp == NULL) || (panelp == NULL) ||
  3205. (portp == NULL))
  3206. return;
  3207. portp->ioaddr = panelp->iobase + ((portp->portnr < 8) ? 0 : 4);
  3208. portp->uartaddr = (portp->portnr & 0x07) << 4;
  3209. portp->pagenr = panelp->pagenr;
  3210. portp->hwid = 0x1;
  3211. BRDENABLE(portp->brdnr, portp->pagenr);
  3212. stl_sc26198setreg(portp, IOPCR, IOPCR_SETSIGS);
  3213. BRDDISABLE(portp->brdnr);
  3214. }
  3215. /*****************************************************************************/
  3216. /*
  3217. * Set up the sc26198 registers for a port based on the termios port
  3218. * settings.
  3219. */
  3220. static void stl_sc26198setport(struct stlport *portp, struct ktermios *tiosp)
  3221. {
  3222. struct stlbrd *brdp;
  3223. unsigned long flags;
  3224. unsigned int baudrate;
  3225. unsigned char mr0, mr1, mr2, clk;
  3226. unsigned char imron, imroff, iopr, ipr;
  3227. mr0 = 0;
  3228. mr1 = 0;
  3229. mr2 = 0;
  3230. clk = 0;
  3231. iopr = 0;
  3232. imron = 0;
  3233. imroff = 0;
  3234. brdp = stl_brds[portp->brdnr];
  3235. if (brdp == NULL)
  3236. return;
  3237. /*
  3238. * Set up the RX char ignore mask with those RX error types we
  3239. * can ignore.
  3240. */
  3241. portp->rxignoremsk = 0;
  3242. if (tiosp->c_iflag & IGNPAR)
  3243. portp->rxignoremsk |= (SR_RXPARITY | SR_RXFRAMING |
  3244. SR_RXOVERRUN);
  3245. if (tiosp->c_iflag & IGNBRK)
  3246. portp->rxignoremsk |= SR_RXBREAK;
  3247. portp->rxmarkmsk = SR_RXOVERRUN;
  3248. if (tiosp->c_iflag & (INPCK | PARMRK))
  3249. portp->rxmarkmsk |= (SR_RXPARITY | SR_RXFRAMING);
  3250. if (tiosp->c_iflag & BRKINT)
  3251. portp->rxmarkmsk |= SR_RXBREAK;
  3252. /*
  3253. * Go through the char size, parity and stop bits and set all the
  3254. * option register appropriately.
  3255. */
  3256. switch (tiosp->c_cflag & CSIZE) {
  3257. case CS5:
  3258. mr1 |= MR1_CS5;
  3259. break;
  3260. case CS6:
  3261. mr1 |= MR1_CS6;
  3262. break;
  3263. case CS7:
  3264. mr1 |= MR1_CS7;
  3265. break;
  3266. default:
  3267. mr1 |= MR1_CS8;
  3268. break;
  3269. }
  3270. if (tiosp->c_cflag & CSTOPB)
  3271. mr2 |= MR2_STOP2;
  3272. else
  3273. mr2 |= MR2_STOP1;
  3274. if (tiosp->c_cflag & PARENB) {
  3275. if (tiosp->c_cflag & PARODD)
  3276. mr1 |= (MR1_PARENB | MR1_PARODD);
  3277. else
  3278. mr1 |= (MR1_PARENB | MR1_PAREVEN);
  3279. } else
  3280. mr1 |= MR1_PARNONE;
  3281. mr1 |= MR1_ERRBLOCK;
  3282. /*
  3283. * Set the RX FIFO threshold at 8 chars. This gives a bit of breathing
  3284. * space for hardware flow control and the like. This should be set to
  3285. * VMIN.
  3286. */
  3287. mr2 |= MR2_RXFIFOHALF;
  3288. /*
  3289. * Calculate the baud rate timers. For now we will just assume that
  3290. * the input and output baud are the same. The sc26198 has a fixed
  3291. * baud rate table, so only discrete baud rates possible.
  3292. */
  3293. baudrate = tiosp->c_cflag & CBAUD;
  3294. if (baudrate & CBAUDEX) {
  3295. baudrate &= ~CBAUDEX;
  3296. if ((baudrate < 1) || (baudrate > 4))
  3297. tiosp->c_cflag &= ~CBAUDEX;
  3298. else
  3299. baudrate += 15;
  3300. }
  3301. baudrate = stl_baudrates[baudrate];
  3302. if ((tiosp->c_cflag & CBAUD) == B38400) {
  3303. if ((portp->flags & ASYNC_SPD_MASK) == ASYNC_SPD_HI)
  3304. baudrate = 57600;
  3305. else if ((portp->flags & ASYNC_SPD_MASK) == ASYNC_SPD_VHI)
  3306. baudrate = 115200;
  3307. else if ((portp->flags & ASYNC_SPD_MASK) == ASYNC_SPD_SHI)
  3308. baudrate = 230400;
  3309. else if ((portp->flags & ASYNC_SPD_MASK) == ASYNC_SPD_WARP)
  3310. baudrate = 460800;
  3311. else if ((portp->flags & ASYNC_SPD_MASK) == ASYNC_SPD_CUST)
  3312. baudrate = (portp->baud_base / portp->custom_divisor);
  3313. }
  3314. if (baudrate > STL_SC26198MAXBAUD)
  3315. baudrate = STL_SC26198MAXBAUD;
  3316. if (baudrate > 0)
  3317. for (clk = 0; clk < SC26198_NRBAUDS; clk++)
  3318. if (baudrate <= sc26198_baudtable[clk])
  3319. break;
  3320. /*
  3321. * Check what form of modem signaling is required and set it up.
  3322. */
  3323. if (tiosp->c_cflag & CLOCAL) {
  3324. portp->flags &= ~ASYNC_CHECK_CD;
  3325. } else {
  3326. iopr |= IOPR_DCDCOS;
  3327. imron |= IR_IOPORT;
  3328. portp->flags |= ASYNC_CHECK_CD;
  3329. }
  3330. /*
  3331. * Setup sc26198 enhanced modes if we can. In particular we want to
  3332. * handle as much of the flow control as possible automatically. As
  3333. * well as saving a few CPU cycles it will also greatly improve flow
  3334. * control reliability.
  3335. */
  3336. if (tiosp->c_iflag & IXON) {
  3337. mr0 |= MR0_SWFTX | MR0_SWFT;
  3338. imron |= IR_XONXOFF;
  3339. } else
  3340. imroff |= IR_XONXOFF;
  3341. if (tiosp->c_iflag & IXOFF)
  3342. mr0 |= MR0_SWFRX;
  3343. if (tiosp->c_cflag & CRTSCTS) {
  3344. mr2 |= MR2_AUTOCTS;
  3345. mr1 |= MR1_AUTORTS;
  3346. }
  3347. /*
  3348. * All sc26198 register values calculated so go through and set
  3349. * them all up.
  3350. */
  3351. pr_debug("SETPORT: portnr=%d panelnr=%d brdnr=%d\n",
  3352. portp->portnr, portp->panelnr, portp->brdnr);
  3353. pr_debug(" mr0=%x mr1=%x mr2=%x clk=%x\n", mr0, mr1, mr2, clk);
  3354. pr_debug(" iopr=%x imron=%x imroff=%x\n", iopr, imron, imroff);
  3355. pr_debug(" schr1=%x schr2=%x schr3=%x schr4=%x\n",
  3356. tiosp->c_cc[VSTART], tiosp->c_cc[VSTOP],
  3357. tiosp->c_cc[VSTART], tiosp->c_cc[VSTOP]);
  3358. spin_lock_irqsave(&brd_lock, flags);
  3359. BRDENABLE(portp->brdnr, portp->pagenr);
  3360. stl_sc26198setreg(portp, IMR, 0);
  3361. stl_sc26198updatereg(portp, MR0, mr0);
  3362. stl_sc26198updatereg(portp, MR1, mr1);
  3363. stl_sc26198setreg(portp, SCCR, CR_RXERRBLOCK);
  3364. stl_sc26198updatereg(portp, MR2, mr2);
  3365. stl_sc26198updatereg(portp, IOPIOR,
  3366. ((stl_sc26198getreg(portp, IOPIOR) & ~IPR_CHANGEMASK) | iopr));
  3367. if (baudrate > 0) {
  3368. stl_sc26198setreg(portp, TXCSR, clk);
  3369. stl_sc26198setreg(portp, RXCSR, clk);
  3370. }
  3371. stl_sc26198setreg(portp, XONCR, tiosp->c_cc[VSTART]);
  3372. stl_sc26198setreg(portp, XOFFCR, tiosp->c_cc[VSTOP]);
  3373. ipr = stl_sc26198getreg(portp, IPR);
  3374. if (ipr & IPR_DCD)
  3375. portp->sigs &= ~TIOCM_CD;
  3376. else
  3377. portp->sigs |= TIOCM_CD;
  3378. portp->imr = (portp->imr & ~imroff) | imron;
  3379. stl_sc26198setreg(portp, IMR, portp->imr);
  3380. BRDDISABLE(portp->brdnr);
  3381. spin_unlock_irqrestore(&brd_lock, flags);
  3382. }
  3383. /*****************************************************************************/
  3384. /*
  3385. * Set the state of the DTR and RTS signals.
  3386. */
  3387. static void stl_sc26198setsignals(struct stlport *portp, int dtr, int rts)
  3388. {
  3389. unsigned char iopioron, iopioroff;
  3390. unsigned long flags;
  3391. pr_debug("stl_sc26198setsignals(portp=%p,dtr=%d,rts=%d)\n", portp,
  3392. dtr, rts);
  3393. iopioron = 0;
  3394. iopioroff = 0;
  3395. if (dtr == 0)
  3396. iopioroff |= IPR_DTR;
  3397. else if (dtr > 0)
  3398. iopioron |= IPR_DTR;
  3399. if (rts == 0)
  3400. iopioroff |= IPR_RTS;
  3401. else if (rts > 0)
  3402. iopioron |= IPR_RTS;
  3403. spin_lock_irqsave(&brd_lock, flags);
  3404. BRDENABLE(portp->brdnr, portp->pagenr);
  3405. stl_sc26198setreg(portp, IOPIOR,
  3406. ((stl_sc26198getreg(portp, IOPIOR) & ~iopioroff) | iopioron));
  3407. BRDDISABLE(portp->brdnr);
  3408. spin_unlock_irqrestore(&brd_lock, flags);
  3409. }
  3410. /*****************************************************************************/
  3411. /*
  3412. * Return the state of the signals.
  3413. */
  3414. static int stl_sc26198getsignals(struct stlport *portp)
  3415. {
  3416. unsigned char ipr;
  3417. unsigned long flags;
  3418. int sigs;
  3419. pr_debug("stl_sc26198getsignals(portp=%p)\n", portp);
  3420. spin_lock_irqsave(&brd_lock, flags);
  3421. BRDENABLE(portp->brdnr, portp->pagenr);
  3422. ipr = stl_sc26198getreg(portp, IPR);
  3423. BRDDISABLE(portp->brdnr);
  3424. spin_unlock_irqrestore(&brd_lock, flags);
  3425. sigs = 0;
  3426. sigs |= (ipr & IPR_DCD) ? 0 : TIOCM_CD;
  3427. sigs |= (ipr & IPR_CTS) ? 0 : TIOCM_CTS;
  3428. sigs |= (ipr & IPR_DTR) ? 0: TIOCM_DTR;
  3429. sigs |= (ipr & IPR_RTS) ? 0: TIOCM_RTS;
  3430. sigs |= TIOCM_DSR;
  3431. return sigs;
  3432. }
  3433. /*****************************************************************************/
  3434. /*
  3435. * Enable/Disable the Transmitter and/or Receiver.
  3436. */
  3437. static void stl_sc26198enablerxtx(struct stlport *portp, int rx, int tx)
  3438. {
  3439. unsigned char ccr;
  3440. unsigned long flags;
  3441. pr_debug("stl_sc26198enablerxtx(portp=%p,rx=%d,tx=%d)\n", portp, rx,tx);
  3442. ccr = portp->crenable;
  3443. if (tx == 0)
  3444. ccr &= ~CR_TXENABLE;
  3445. else if (tx > 0)
  3446. ccr |= CR_TXENABLE;
  3447. if (rx == 0)
  3448. ccr &= ~CR_RXENABLE;
  3449. else if (rx > 0)
  3450. ccr |= CR_RXENABLE;
  3451. spin_lock_irqsave(&brd_lock, flags);
  3452. BRDENABLE(portp->brdnr, portp->pagenr);
  3453. stl_sc26198setreg(portp, SCCR, ccr);
  3454. BRDDISABLE(portp->brdnr);
  3455. portp->crenable = ccr;
  3456. spin_unlock_irqrestore(&brd_lock, flags);
  3457. }
  3458. /*****************************************************************************/
  3459. /*
  3460. * Start/stop the Transmitter and/or Receiver.
  3461. */
  3462. static void stl_sc26198startrxtx(struct stlport *portp, int rx, int tx)
  3463. {
  3464. unsigned char imr;
  3465. unsigned long flags;
  3466. pr_debug("stl_sc26198startrxtx(portp=%p,rx=%d,tx=%d)\n", portp, rx, tx);
  3467. imr = portp->imr;
  3468. if (tx == 0)
  3469. imr &= ~IR_TXRDY;
  3470. else if (tx == 1)
  3471. imr |= IR_TXRDY;
  3472. if (rx == 0)
  3473. imr &= ~(IR_RXRDY | IR_RXBREAK | IR_RXWATCHDOG);
  3474. else if (rx > 0)
  3475. imr |= IR_RXRDY | IR_RXBREAK | IR_RXWATCHDOG;
  3476. spin_lock_irqsave(&brd_lock, flags);
  3477. BRDENABLE(portp->brdnr, portp->pagenr);
  3478. stl_sc26198setreg(portp, IMR, imr);
  3479. BRDDISABLE(portp->brdnr);
  3480. portp->imr = imr;
  3481. if (tx > 0)
  3482. set_bit(ASYI_TXBUSY, &portp->istate);
  3483. spin_unlock_irqrestore(&brd_lock, flags);
  3484. }
  3485. /*****************************************************************************/
  3486. /*
  3487. * Disable all interrupts from this port.
  3488. */
  3489. static void stl_sc26198disableintrs(struct stlport *portp)
  3490. {
  3491. unsigned long flags;
  3492. pr_debug("stl_sc26198disableintrs(portp=%p)\n", portp);
  3493. spin_lock_irqsave(&brd_lock, flags);
  3494. BRDENABLE(portp->brdnr, portp->pagenr);
  3495. portp->imr = 0;
  3496. stl_sc26198setreg(portp, IMR, 0);
  3497. BRDDISABLE(portp->brdnr);
  3498. spin_unlock_irqrestore(&brd_lock, flags);
  3499. }
  3500. /*****************************************************************************/
  3501. static void stl_sc26198sendbreak(struct stlport *portp, int len)
  3502. {
  3503. unsigned long flags;
  3504. pr_debug("stl_sc26198sendbreak(portp=%p,len=%d)\n", portp, len);
  3505. spin_lock_irqsave(&brd_lock, flags);
  3506. BRDENABLE(portp->brdnr, portp->pagenr);
  3507. if (len == 1) {
  3508. stl_sc26198setreg(portp, SCCR, CR_TXSTARTBREAK);
  3509. portp->stats.txbreaks++;
  3510. } else
  3511. stl_sc26198setreg(portp, SCCR, CR_TXSTOPBREAK);
  3512. BRDDISABLE(portp->brdnr);
  3513. spin_unlock_irqrestore(&brd_lock, flags);
  3514. }
  3515. /*****************************************************************************/
  3516. /*
  3517. * Take flow control actions...
  3518. */
  3519. static void stl_sc26198flowctrl(struct stlport *portp, int state)
  3520. {
  3521. struct tty_struct *tty;
  3522. unsigned long flags;
  3523. unsigned char mr0;
  3524. pr_debug("stl_sc26198flowctrl(portp=%p,state=%x)\n", portp, state);
  3525. if (portp == NULL)
  3526. return;
  3527. tty = portp->tty;
  3528. if (tty == NULL)
  3529. return;
  3530. spin_lock_irqsave(&brd_lock, flags);
  3531. BRDENABLE(portp->brdnr, portp->pagenr);
  3532. if (state) {
  3533. if (tty->termios->c_iflag & IXOFF) {
  3534. mr0 = stl_sc26198getreg(portp, MR0);
  3535. stl_sc26198setreg(portp, MR0, (mr0 & ~MR0_SWFRXTX));
  3536. stl_sc26198setreg(portp, SCCR, CR_TXSENDXON);
  3537. mr0 |= MR0_SWFRX;
  3538. portp->stats.rxxon++;
  3539. stl_sc26198wait(portp);
  3540. stl_sc26198setreg(portp, MR0, mr0);
  3541. }
  3542. /*
  3543. * Question: should we return RTS to what it was before? It may
  3544. * have been set by an ioctl... Suppose not, since if you have
  3545. * hardware flow control set then it is pretty silly to go and
  3546. * set the RTS line by hand.
  3547. */
  3548. if (tty->termios->c_cflag & CRTSCTS) {
  3549. stl_sc26198setreg(portp, MR1,
  3550. (stl_sc26198getreg(portp, MR1) | MR1_AUTORTS));
  3551. stl_sc26198setreg(portp, IOPIOR,
  3552. (stl_sc26198getreg(portp, IOPIOR) | IOPR_RTS));
  3553. portp->stats.rxrtson++;
  3554. }
  3555. } else {
  3556. if (tty->termios->c_iflag & IXOFF) {
  3557. mr0 = stl_sc26198getreg(portp, MR0);
  3558. stl_sc26198setreg(portp, MR0, (mr0 & ~MR0_SWFRXTX));
  3559. stl_sc26198setreg(portp, SCCR, CR_TXSENDXOFF);
  3560. mr0 &= ~MR0_SWFRX;
  3561. portp->stats.rxxoff++;
  3562. stl_sc26198wait(portp);
  3563. stl_sc26198setreg(portp, MR0, mr0);
  3564. }
  3565. if (tty->termios->c_cflag & CRTSCTS) {
  3566. stl_sc26198setreg(portp, MR1,
  3567. (stl_sc26198getreg(portp, MR1) & ~MR1_AUTORTS));
  3568. stl_sc26198setreg(portp, IOPIOR,
  3569. (stl_sc26198getreg(portp, IOPIOR) & ~IOPR_RTS));
  3570. portp->stats.rxrtsoff++;
  3571. }
  3572. }
  3573. BRDDISABLE(portp->brdnr);
  3574. spin_unlock_irqrestore(&brd_lock, flags);
  3575. }
  3576. /*****************************************************************************/
  3577. /*
  3578. * Send a flow control character.
  3579. */
  3580. static void stl_sc26198sendflow(struct stlport *portp, int state)
  3581. {
  3582. struct tty_struct *tty;
  3583. unsigned long flags;
  3584. unsigned char mr0;
  3585. pr_debug("stl_sc26198sendflow(portp=%p,state=%x)\n", portp, state);
  3586. if (portp == NULL)
  3587. return;
  3588. tty = portp->tty;
  3589. if (tty == NULL)
  3590. return;
  3591. spin_lock_irqsave(&brd_lock, flags);
  3592. BRDENABLE(portp->brdnr, portp->pagenr);
  3593. if (state) {
  3594. mr0 = stl_sc26198getreg(portp, MR0);
  3595. stl_sc26198setreg(portp, MR0, (mr0 & ~MR0_SWFRXTX));
  3596. stl_sc26198setreg(portp, SCCR, CR_TXSENDXON);
  3597. mr0 |= MR0_SWFRX;
  3598. portp->stats.rxxon++;
  3599. stl_sc26198wait(portp);
  3600. stl_sc26198setreg(portp, MR0, mr0);
  3601. } else {
  3602. mr0 = stl_sc26198getreg(portp, MR0);
  3603. stl_sc26198setreg(portp, MR0, (mr0 & ~MR0_SWFRXTX));
  3604. stl_sc26198setreg(portp, SCCR, CR_TXSENDXOFF);
  3605. mr0 &= ~MR0_SWFRX;
  3606. portp->stats.rxxoff++;
  3607. stl_sc26198wait(portp);
  3608. stl_sc26198setreg(portp, MR0, mr0);
  3609. }
  3610. BRDDISABLE(portp->brdnr);
  3611. spin_unlock_irqrestore(&brd_lock, flags);
  3612. }
  3613. /*****************************************************************************/
  3614. static void stl_sc26198flush(struct stlport *portp)
  3615. {
  3616. unsigned long flags;
  3617. pr_debug("stl_sc26198flush(portp=%p)\n", portp);
  3618. if (portp == NULL)
  3619. return;
  3620. spin_lock_irqsave(&brd_lock, flags);
  3621. BRDENABLE(portp->brdnr, portp->pagenr);
  3622. stl_sc26198setreg(portp, SCCR, CR_TXRESET);
  3623. stl_sc26198setreg(portp, SCCR, portp->crenable);
  3624. BRDDISABLE(portp->brdnr);
  3625. portp->tx.tail = portp->tx.head;
  3626. spin_unlock_irqrestore(&brd_lock, flags);
  3627. }
  3628. /*****************************************************************************/
  3629. /*
  3630. * Return the current state of data flow on this port. This is only
  3631. * really interresting when determining if data has fully completed
  3632. * transmission or not... The sc26198 interrupt scheme cannot
  3633. * determine when all data has actually drained, so we need to
  3634. * check the port statusy register to be sure.
  3635. */
  3636. static int stl_sc26198datastate(struct stlport *portp)
  3637. {
  3638. unsigned long flags;
  3639. unsigned char sr;
  3640. pr_debug("stl_sc26198datastate(portp=%p)\n", portp);
  3641. if (portp == NULL)
  3642. return 0;
  3643. if (test_bit(ASYI_TXBUSY, &portp->istate))
  3644. return 1;
  3645. spin_lock_irqsave(&brd_lock, flags);
  3646. BRDENABLE(portp->brdnr, portp->pagenr);
  3647. sr = stl_sc26198getreg(portp, SR);
  3648. BRDDISABLE(portp->brdnr);
  3649. spin_unlock_irqrestore(&brd_lock, flags);
  3650. return (sr & SR_TXEMPTY) ? 0 : 1;
  3651. }
  3652. /*****************************************************************************/
  3653. /*
  3654. * Delay for a small amount of time, to give the sc26198 a chance
  3655. * to process a command...
  3656. */
  3657. static void stl_sc26198wait(struct stlport *portp)
  3658. {
  3659. int i;
  3660. pr_debug("stl_sc26198wait(portp=%p)\n", portp);
  3661. if (portp == NULL)
  3662. return;
  3663. for (i = 0; i < 20; i++)
  3664. stl_sc26198getglobreg(portp, TSTR);
  3665. }
  3666. /*****************************************************************************/
  3667. /*
  3668. * If we are TX flow controlled and in IXANY mode then we may
  3669. * need to unflow control here. We gotta do this because of the
  3670. * automatic flow control modes of the sc26198.
  3671. */
  3672. static void stl_sc26198txunflow(struct stlport *portp, struct tty_struct *tty)
  3673. {
  3674. unsigned char mr0;
  3675. mr0 = stl_sc26198getreg(portp, MR0);
  3676. stl_sc26198setreg(portp, MR0, (mr0 & ~MR0_SWFRXTX));
  3677. stl_sc26198setreg(portp, SCCR, CR_HOSTXON);
  3678. stl_sc26198wait(portp);
  3679. stl_sc26198setreg(portp, MR0, mr0);
  3680. clear_bit(ASYI_TXFLOWED, &portp->istate);
  3681. }
  3682. /*****************************************************************************/
  3683. /*
  3684. * Interrupt service routine for sc26198 panels.
  3685. */
  3686. static void stl_sc26198intr(struct stlpanel *panelp, unsigned int iobase)
  3687. {
  3688. struct stlport *portp;
  3689. unsigned int iack;
  3690. spin_lock(&brd_lock);
  3691. /*
  3692. * Work around bug in sc26198 chip... Cannot have A6 address
  3693. * line of UART high, else iack will be returned as 0.
  3694. */
  3695. outb(0, (iobase + 1));
  3696. iack = inb(iobase + XP_IACK);
  3697. portp = panelp->ports[(iack & IVR_CHANMASK) + ((iobase & 0x4) << 1)];
  3698. if (iack & IVR_RXDATA)
  3699. stl_sc26198rxisr(portp, iack);
  3700. else if (iack & IVR_TXDATA)
  3701. stl_sc26198txisr(portp);
  3702. else
  3703. stl_sc26198otherisr(portp, iack);
  3704. spin_unlock(&brd_lock);
  3705. }
  3706. /*****************************************************************************/
  3707. /*
  3708. * Transmit interrupt handler. This has gotta be fast! Handling TX
  3709. * chars is pretty simple, stuff as many as possible from the TX buffer
  3710. * into the sc26198 FIFO.
  3711. * In practice it is possible that interrupts are enabled but that the
  3712. * port has been hung up. Need to handle not having any TX buffer here,
  3713. * this is done by using the side effect that head and tail will also
  3714. * be NULL if the buffer has been freed.
  3715. */
  3716. static void stl_sc26198txisr(struct stlport *portp)
  3717. {
  3718. unsigned int ioaddr;
  3719. unsigned char mr0;
  3720. int len, stlen;
  3721. char *head, *tail;
  3722. pr_debug("stl_sc26198txisr(portp=%p)\n", portp);
  3723. ioaddr = portp->ioaddr;
  3724. head = portp->tx.head;
  3725. tail = portp->tx.tail;
  3726. len = (head >= tail) ? (head - tail) : (STL_TXBUFSIZE - (tail - head));
  3727. if ((len == 0) || ((len < STL_TXBUFLOW) &&
  3728. (test_bit(ASYI_TXLOW, &portp->istate) == 0))) {
  3729. set_bit(ASYI_TXLOW, &portp->istate);
  3730. if (portp->tty)
  3731. tty_wakeup(portp->tty);
  3732. }
  3733. if (len == 0) {
  3734. outb((MR0 | portp->uartaddr), (ioaddr + XP_ADDR));
  3735. mr0 = inb(ioaddr + XP_DATA);
  3736. if ((mr0 & MR0_TXMASK) == MR0_TXEMPTY) {
  3737. portp->imr &= ~IR_TXRDY;
  3738. outb((IMR | portp->uartaddr), (ioaddr + XP_ADDR));
  3739. outb(portp->imr, (ioaddr + XP_DATA));
  3740. clear_bit(ASYI_TXBUSY, &portp->istate);
  3741. } else {
  3742. mr0 |= ((mr0 & ~MR0_TXMASK) | MR0_TXEMPTY);
  3743. outb(mr0, (ioaddr + XP_DATA));
  3744. }
  3745. } else {
  3746. len = min(len, SC26198_TXFIFOSIZE);
  3747. portp->stats.txtotal += len;
  3748. stlen = min_t(unsigned int, len,
  3749. (portp->tx.buf + STL_TXBUFSIZE) - tail);
  3750. outb(GTXFIFO, (ioaddr + XP_ADDR));
  3751. outsb((ioaddr + XP_DATA), tail, stlen);
  3752. len -= stlen;
  3753. tail += stlen;
  3754. if (tail >= (portp->tx.buf + STL_TXBUFSIZE))
  3755. tail = portp->tx.buf;
  3756. if (len > 0) {
  3757. outsb((ioaddr + XP_DATA), tail, len);
  3758. tail += len;
  3759. }
  3760. portp->tx.tail = tail;
  3761. }
  3762. }
  3763. /*****************************************************************************/
  3764. /*
  3765. * Receive character interrupt handler. Determine if we have good chars
  3766. * or bad chars and then process appropriately. Good chars are easy
  3767. * just shove the lot into the RX buffer and set all status byte to 0.
  3768. * If a bad RX char then process as required. This routine needs to be
  3769. * fast! In practice it is possible that we get an interrupt on a port
  3770. * that is closed. This can happen on hangups - since they completely
  3771. * shutdown a port not in user context. Need to handle this case.
  3772. */
  3773. static void stl_sc26198rxisr(struct stlport *portp, unsigned int iack)
  3774. {
  3775. struct tty_struct *tty;
  3776. unsigned int len, buflen, ioaddr;
  3777. pr_debug("stl_sc26198rxisr(portp=%p,iack=%x)\n", portp, iack);
  3778. tty = portp->tty;
  3779. ioaddr = portp->ioaddr;
  3780. outb(GIBCR, (ioaddr + XP_ADDR));
  3781. len = inb(ioaddr + XP_DATA) + 1;
  3782. if ((iack & IVR_TYPEMASK) == IVR_RXDATA) {
  3783. if (tty == NULL || (buflen = tty_buffer_request_room(tty, len)) == 0) {
  3784. len = min_t(unsigned int, len, sizeof(stl_unwanted));
  3785. outb(GRXFIFO, (ioaddr + XP_ADDR));
  3786. insb((ioaddr + XP_DATA), &stl_unwanted[0], len);
  3787. portp->stats.rxlost += len;
  3788. portp->stats.rxtotal += len;
  3789. } else {
  3790. len = min(len, buflen);
  3791. if (len > 0) {
  3792. unsigned char *ptr;
  3793. outb(GRXFIFO, (ioaddr + XP_ADDR));
  3794. tty_prepare_flip_string(tty, &ptr, len);
  3795. insb((ioaddr + XP_DATA), ptr, len);
  3796. tty_schedule_flip(tty);
  3797. portp->stats.rxtotal += len;
  3798. }
  3799. }
  3800. } else {
  3801. stl_sc26198rxbadchars(portp);
  3802. }
  3803. /*
  3804. * If we are TX flow controlled and in IXANY mode then we may need
  3805. * to unflow control here. We gotta do this because of the automatic
  3806. * flow control modes of the sc26198.
  3807. */
  3808. if (test_bit(ASYI_TXFLOWED, &portp->istate)) {
  3809. if ((tty != NULL) &&
  3810. (tty->termios != NULL) &&
  3811. (tty->termios->c_iflag & IXANY)) {
  3812. stl_sc26198txunflow(portp, tty);
  3813. }
  3814. }
  3815. }
  3816. /*****************************************************************************/
  3817. /*
  3818. * Process an RX bad character.
  3819. */
  3820. static void stl_sc26198rxbadch(struct stlport *portp, unsigned char status, char ch)
  3821. {
  3822. struct tty_struct *tty;
  3823. unsigned int ioaddr;
  3824. tty = portp->tty;
  3825. ioaddr = portp->ioaddr;
  3826. if (status & SR_RXPARITY)
  3827. portp->stats.rxparity++;
  3828. if (status & SR_RXFRAMING)
  3829. portp->stats.rxframing++;
  3830. if (status & SR_RXOVERRUN)
  3831. portp->stats.rxoverrun++;
  3832. if (status & SR_RXBREAK)
  3833. portp->stats.rxbreaks++;
  3834. if ((tty != NULL) &&
  3835. ((portp->rxignoremsk & status) == 0)) {
  3836. if (portp->rxmarkmsk & status) {
  3837. if (status & SR_RXBREAK) {
  3838. status = TTY_BREAK;
  3839. if (portp->flags & ASYNC_SAK) {
  3840. do_SAK(tty);
  3841. BRDENABLE(portp->brdnr, portp->pagenr);
  3842. }
  3843. } else if (status & SR_RXPARITY)
  3844. status = TTY_PARITY;
  3845. else if (status & SR_RXFRAMING)
  3846. status = TTY_FRAME;
  3847. else if(status & SR_RXOVERRUN)
  3848. status = TTY_OVERRUN;
  3849. else
  3850. status = 0;
  3851. } else
  3852. status = 0;
  3853. tty_insert_flip_char(tty, ch, status);
  3854. tty_schedule_flip(tty);
  3855. if (status == 0)
  3856. portp->stats.rxtotal++;
  3857. }
  3858. }
  3859. /*****************************************************************************/
  3860. /*
  3861. * Process all characters in the RX FIFO of the UART. Check all char
  3862. * status bytes as well, and process as required. We need to check
  3863. * all bytes in the FIFO, in case some more enter the FIFO while we
  3864. * are here. To get the exact character error type we need to switch
  3865. * into CHAR error mode (that is why we need to make sure we empty
  3866. * the FIFO).
  3867. */
  3868. static void stl_sc26198rxbadchars(struct stlport *portp)
  3869. {
  3870. unsigned char status, mr1;
  3871. char ch;
  3872. /*
  3873. * To get the precise error type for each character we must switch
  3874. * back into CHAR error mode.
  3875. */
  3876. mr1 = stl_sc26198getreg(portp, MR1);
  3877. stl_sc26198setreg(portp, MR1, (mr1 & ~MR1_ERRBLOCK));
  3878. while ((status = stl_sc26198getreg(portp, SR)) & SR_RXRDY) {
  3879. stl_sc26198setreg(portp, SCCR, CR_CLEARRXERR);
  3880. ch = stl_sc26198getreg(portp, RXFIFO);
  3881. stl_sc26198rxbadch(portp, status, ch);
  3882. }
  3883. /*
  3884. * To get correct interrupt class we must switch back into BLOCK
  3885. * error mode.
  3886. */
  3887. stl_sc26198setreg(portp, MR1, mr1);
  3888. }
  3889. /*****************************************************************************/
  3890. /*
  3891. * Other interrupt handler. This includes modem signals, flow
  3892. * control actions, etc. Most stuff is left to off-level interrupt
  3893. * processing time.
  3894. */
  3895. static void stl_sc26198otherisr(struct stlport *portp, unsigned int iack)
  3896. {
  3897. unsigned char cir, ipr, xisr;
  3898. pr_debug("stl_sc26198otherisr(portp=%p,iack=%x)\n", portp, iack);
  3899. cir = stl_sc26198getglobreg(portp, CIR);
  3900. switch (cir & CIR_SUBTYPEMASK) {
  3901. case CIR_SUBCOS:
  3902. ipr = stl_sc26198getreg(portp, IPR);
  3903. if (ipr & IPR_DCDCHANGE) {
  3904. stl_cd_change(portp);
  3905. portp->stats.modem++;
  3906. }
  3907. break;
  3908. case CIR_SUBXONXOFF:
  3909. xisr = stl_sc26198getreg(portp, XISR);
  3910. if (xisr & XISR_RXXONGOT) {
  3911. set_bit(ASYI_TXFLOWED, &portp->istate);
  3912. portp->stats.txxoff++;
  3913. }
  3914. if (xisr & XISR_RXXOFFGOT) {
  3915. clear_bit(ASYI_TXFLOWED, &portp->istate);
  3916. portp->stats.txxon++;
  3917. }
  3918. break;
  3919. case CIR_SUBBREAK:
  3920. stl_sc26198setreg(portp, SCCR, CR_BREAKRESET);
  3921. stl_sc26198rxbadchars(portp);
  3922. break;
  3923. default:
  3924. break;
  3925. }
  3926. }
  3927. static void stl_free_isabrds(void)
  3928. {
  3929. struct stlbrd *brdp;
  3930. unsigned int i;
  3931. for (i = 0; i < stl_nrbrds; i++) {
  3932. if ((brdp = stl_brds[i]) == NULL || (brdp->state & STL_PROBED))
  3933. continue;
  3934. free_irq(brdp->irq, brdp);
  3935. stl_cleanup_panels(brdp);
  3936. release_region(brdp->ioaddr1, brdp->iosize1);
  3937. if (brdp->iosize2 > 0)
  3938. release_region(brdp->ioaddr2, brdp->iosize2);
  3939. kfree(brdp);
  3940. stl_brds[i] = NULL;
  3941. }
  3942. }
  3943. /*
  3944. * Loadable module initialization stuff.
  3945. */
  3946. static int __init stallion_module_init(void)
  3947. {
  3948. struct stlbrd *brdp;
  3949. struct stlconf conf;
  3950. unsigned int i, j;
  3951. int retval;
  3952. printk(KERN_INFO "%s: version %s\n", stl_drvtitle, stl_drvversion);
  3953. spin_lock_init(&stallion_lock);
  3954. spin_lock_init(&brd_lock);
  3955. stl_serial = alloc_tty_driver(STL_MAXBRDS * STL_MAXPORTS);
  3956. if (!stl_serial) {
  3957. retval = -ENOMEM;
  3958. goto err;
  3959. }
  3960. stl_serial->owner = THIS_MODULE;
  3961. stl_serial->driver_name = stl_drvname;
  3962. stl_serial->name = "ttyE";
  3963. stl_serial->major = STL_SERIALMAJOR;
  3964. stl_serial->minor_start = 0;
  3965. stl_serial->type = TTY_DRIVER_TYPE_SERIAL;
  3966. stl_serial->subtype = SERIAL_TYPE_NORMAL;
  3967. stl_serial->init_termios = stl_deftermios;
  3968. stl_serial->flags = TTY_DRIVER_REAL_RAW | TTY_DRIVER_DYNAMIC_DEV;
  3969. tty_set_operations(stl_serial, &stl_ops);
  3970. retval = tty_register_driver(stl_serial);
  3971. if (retval) {
  3972. printk("STALLION: failed to register serial driver\n");
  3973. goto err_frtty;
  3974. }
  3975. /*
  3976. * Find any dynamically supported boards. That is via module load
  3977. * line options.
  3978. */
  3979. for (i = stl_nrbrds; i < stl_nargs; i++) {
  3980. memset(&conf, 0, sizeof(conf));
  3981. if (stl_parsebrd(&conf, stl_brdsp[i]) == 0)
  3982. continue;
  3983. if ((brdp = stl_allocbrd()) == NULL)
  3984. continue;
  3985. brdp->brdnr = i;
  3986. brdp->brdtype = conf.brdtype;
  3987. brdp->ioaddr1 = conf.ioaddr1;
  3988. brdp->ioaddr2 = conf.ioaddr2;
  3989. brdp->irq = conf.irq;
  3990. brdp->irqtype = conf.irqtype;
  3991. stl_brds[brdp->brdnr] = brdp;
  3992. if (stl_brdinit(brdp)) {
  3993. stl_brds[brdp->brdnr] = NULL;
  3994. kfree(brdp);
  3995. } else {
  3996. for (j = 0; j < brdp->nrports; j++)
  3997. tty_register_device(stl_serial,
  3998. brdp->brdnr * STL_MAXPORTS + j, NULL);
  3999. stl_nrbrds = i + 1;
  4000. }
  4001. }
  4002. /* this has to be _after_ isa finding because of locking */
  4003. retval = pci_register_driver(&stl_pcidriver);
  4004. if (retval && stl_nrbrds == 0) {
  4005. printk(KERN_ERR "STALLION: can't register pci driver\n");
  4006. goto err_unrtty;
  4007. }
  4008. /*
  4009. * Set up a character driver for per board stuff. This is mainly used
  4010. * to do stats ioctls on the ports.
  4011. */
  4012. if (register_chrdev(STL_SIOMEMMAJOR, "staliomem", &stl_fsiomem))
  4013. printk("STALLION: failed to register serial board device\n");
  4014. stallion_class = class_create(THIS_MODULE, "staliomem");
  4015. if (IS_ERR(stallion_class))
  4016. printk("STALLION: failed to create class\n");
  4017. for (i = 0; i < 4; i++)
  4018. device_create(stallion_class, NULL, MKDEV(STL_SIOMEMMAJOR, i),
  4019. "staliomem%d", i);
  4020. return 0;
  4021. err_unrtty:
  4022. tty_unregister_driver(stl_serial);
  4023. err_frtty:
  4024. put_tty_driver(stl_serial);
  4025. err:
  4026. return retval;
  4027. }
  4028. static void __exit stallion_module_exit(void)
  4029. {
  4030. struct stlbrd *brdp;
  4031. unsigned int i, j;
  4032. pr_debug("cleanup_module()\n");
  4033. printk(KERN_INFO "Unloading %s: version %s\n", stl_drvtitle,
  4034. stl_drvversion);
  4035. /*
  4036. * Free up all allocated resources used by the ports. This includes
  4037. * memory and interrupts. As part of this process we will also do
  4038. * a hangup on every open port - to try to flush out any processes
  4039. * hanging onto ports.
  4040. */
  4041. for (i = 0; i < stl_nrbrds; i++) {
  4042. if ((brdp = stl_brds[i]) == NULL || (brdp->state & STL_PROBED))
  4043. continue;
  4044. for (j = 0; j < brdp->nrports; j++)
  4045. tty_unregister_device(stl_serial,
  4046. brdp->brdnr * STL_MAXPORTS + j);
  4047. }
  4048. for (i = 0; i < 4; i++)
  4049. device_destroy(stallion_class, MKDEV(STL_SIOMEMMAJOR, i));
  4050. unregister_chrdev(STL_SIOMEMMAJOR, "staliomem");
  4051. class_destroy(stallion_class);
  4052. pci_unregister_driver(&stl_pcidriver);
  4053. stl_free_isabrds();
  4054. tty_unregister_driver(stl_serial);
  4055. put_tty_driver(stl_serial);
  4056. }
  4057. module_init(stallion_module_init);
  4058. module_exit(stallion_module_exit);
  4059. MODULE_AUTHOR("Greg Ungerer");
  4060. MODULE_DESCRIPTION("Stallion Multiport Serial Driver");
  4061. MODULE_LICENSE("GPL");