rioparam.c 20 KB

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  1. /*
  2. ** -----------------------------------------------------------------------------
  3. **
  4. ** Perle Specialix driver for Linux
  5. ** Ported from existing RIO Driver for SCO sources.
  6. *
  7. * (C) 1990 - 2000 Specialix International Ltd., Byfleet, Surrey, UK.
  8. *
  9. * This program is free software; you can redistribute it and/or modify
  10. * it under the terms of the GNU General Public License as published by
  11. * the Free Software Foundation; either version 2 of the License, or
  12. * (at your option) any later version.
  13. *
  14. * This program is distributed in the hope that it will be useful,
  15. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  16. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  17. * GNU General Public License for more details.
  18. *
  19. * You should have received a copy of the GNU General Public License
  20. * along with this program; if not, write to the Free Software
  21. * Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
  22. **
  23. ** Module : rioparam.c
  24. ** SID : 1.3
  25. ** Last Modified : 11/6/98 10:33:45
  26. ** Retrieved : 11/6/98 10:33:50
  27. **
  28. ** ident @(#)rioparam.c 1.3
  29. **
  30. ** -----------------------------------------------------------------------------
  31. */
  32. #ifdef SCCS_LABELS
  33. static char *_rioparam_c_sccs_ = "@(#)rioparam.c 1.3";
  34. #endif
  35. #include <linux/module.h>
  36. #include <linux/slab.h>
  37. #include <linux/errno.h>
  38. #include <linux/tty.h>
  39. #include <asm/io.h>
  40. #include <asm/system.h>
  41. #include <asm/string.h>
  42. #include <asm/semaphore.h>
  43. #include <asm/uaccess.h>
  44. #include <linux/termios.h>
  45. #include <linux/serial.h>
  46. #include <linux/generic_serial.h>
  47. #include "linux_compat.h"
  48. #include "rio_linux.h"
  49. #include "typdef.h"
  50. #include "pkt.h"
  51. #include "daemon.h"
  52. #include "rio.h"
  53. #include "riospace.h"
  54. #include "top.h"
  55. #include "cmdpkt.h"
  56. #include "map.h"
  57. #include "riotypes.h"
  58. #include "rup.h"
  59. #include "port.h"
  60. #include "riodrvr.h"
  61. #include "rioinfo.h"
  62. #include "func.h"
  63. #include "errors.h"
  64. #include "pci.h"
  65. #include "parmmap.h"
  66. #include "unixrup.h"
  67. #include "board.h"
  68. #include "host.h"
  69. #include "error.h"
  70. #include "phb.h"
  71. #include "link.h"
  72. #include "cmdblk.h"
  73. #include "route.h"
  74. #include "control.h"
  75. #include "cirrus.h"
  76. #include "rioioctl.h"
  77. #include "param.h"
  78. #include "list.h"
  79. #include "sam.h"
  80. /*
  81. ** The Scam, based on email from jeremyr@bugs.specialix.co.uk....
  82. **
  83. ** To send a command on a particular port, you put a packet with the
  84. ** command bit set onto the port. The command bit is in the len field,
  85. ** and gets ORed in with the actual byte count.
  86. **
  87. ** When you send a packet with the command bit set, then the first
  88. ** data byte ( data[0] ) is interpretted as the command to execute.
  89. ** It also governs what data structure overlay should accompany the packet.
  90. ** Commands are defined in cirrus/cirrus.h
  91. **
  92. ** If you want the command to pre-emt data already on the queue for the
  93. ** port, set the pre-emptive bit in conjunction with the command bit.
  94. ** It is not defined what will happen if you set the preemptive bit
  95. ** on a packet that is NOT a command.
  96. **
  97. ** Pre-emptive commands should be queued at the head of the queue using
  98. ** add_start(), whereas normal commands and data are enqueued using
  99. ** add_end().
  100. **
  101. ** Most commands do not use the remaining bytes in the data array. The
  102. ** exceptions are OPEN MOPEN and CONFIG. (NB. As with the SI CONFIG and
  103. ** OPEN are currently analagous). With these three commands the following
  104. ** 11 data bytes are all used to pass config information such as baud rate etc.
  105. ** The fields are also defined in cirrus.h. Some contain straightforward
  106. ** information such as the transmit XON character. Two contain the transmit and
  107. ** receive baud rates respectively. For most baud rates there is a direct
  108. ** mapping between the rates defined in <sys/termio.h> and the byte in the
  109. ** packet. There are additional (non UNIX-standard) rates defined in
  110. ** /u/dos/rio/cirrus/h/brates.h.
  111. **
  112. ** The rest of the data fields contain approximations to the Cirrus registers
  113. ** that are used to program number of bits etc. Each registers bit fields is
  114. ** defined in cirrus.h.
  115. **
  116. ** NB. Only use those bits that are defined as being driver specific
  117. ** or common to the RTA and the driver.
  118. **
  119. ** All commands going from RTA->Host will be dealt with by the Host code - you
  120. ** will never see them. As with the SI there will be three fields to look out
  121. ** for in each phb (not yet defined - needs defining a.s.a.p).
  122. **
  123. ** modem_status - current state of handshake pins.
  124. **
  125. ** port_status - current port status - equivalent to hi_stat for SI, indicates
  126. ** if port is IDLE_OPEN, IDLE_CLOSED etc.
  127. **
  128. ** break_status - bit X set if break has been received.
  129. **
  130. ** Happy hacking.
  131. **
  132. */
  133. /*
  134. ** RIOParam is used to open or configure a port. You pass it a PortP,
  135. ** which will have a tty struct attached to it. You also pass a command,
  136. ** either OPEN or CONFIG. The port's setup is taken from the t_ fields
  137. ** of the tty struct inside the PortP, and the port is either opened
  138. ** or re-configured. You must also tell RIOParam if the device is a modem
  139. ** device or not (i.e. top bit of minor number set or clear - take special
  140. ** care when deciding on this!).
  141. ** RIOParam neither flushes nor waits for drain, and is NOT preemptive.
  142. **
  143. ** RIOParam assumes it will be called at splrio(), and also assumes
  144. ** that CookMode is set correctly in the port structure.
  145. **
  146. ** NB. for MPX
  147. ** tty lock must NOT have been previously acquired.
  148. */
  149. int RIOParam(PortP, cmd, Modem, SleepFlag)
  150. struct Port *PortP;
  151. int cmd;
  152. int Modem;
  153. int SleepFlag;
  154. {
  155. register struct tty_struct *TtyP;
  156. int retval;
  157. register struct phb_param *phb_param_ptr;
  158. PKT *PacketP;
  159. int res;
  160. uchar Cor1 = 0, Cor2 = 0, Cor4 = 0, Cor5 = 0;
  161. uchar TxXon = 0, TxXoff = 0, RxXon = 0, RxXoff = 0;
  162. uchar LNext = 0, TxBaud = 0, RxBaud = 0;
  163. int retries = 0xff;
  164. unsigned long flags;
  165. func_enter();
  166. TtyP = PortP->gs.tty;
  167. rio_dprintk(RIO_DEBUG_PARAM, "RIOParam: Port:%d cmd:%d Modem:%d SleepFlag:%d Mapped: %d, tty=%p\n", PortP->PortNum, cmd, Modem, SleepFlag, PortP->Mapped, TtyP);
  168. if (!TtyP) {
  169. rio_dprintk(RIO_DEBUG_PARAM, "Can't call rioparam with null tty.\n");
  170. func_exit();
  171. return RIO_FAIL;
  172. }
  173. rio_spin_lock_irqsave(&PortP->portSem, flags);
  174. if (cmd == OPEN) {
  175. /*
  176. ** If the port is set to store or lock the parameters, and it is
  177. ** paramed with OPEN, we want to restore the saved port termio, but
  178. ** only if StoredTermio has been saved, i.e. NOT 1st open after reboot.
  179. */
  180. }
  181. /*
  182. ** wait for space
  183. */
  184. while (!(res = can_add_transmit(&PacketP, PortP)) || (PortP->InUse != NOT_INUSE)) {
  185. if (retries-- <= 0) {
  186. break;
  187. }
  188. if (PortP->InUse != NOT_INUSE) {
  189. rio_dprintk(RIO_DEBUG_PARAM, "Port IN_USE for pre-emptive command\n");
  190. }
  191. if (!res) {
  192. rio_dprintk(RIO_DEBUG_PARAM, "Port has no space on transmit queue\n");
  193. }
  194. if (SleepFlag != OK_TO_SLEEP) {
  195. rio_spin_unlock_irqrestore(&PortP->portSem, flags);
  196. func_exit();
  197. return RIO_FAIL;
  198. }
  199. rio_dprintk(RIO_DEBUG_PARAM, "wait for can_add_transmit\n");
  200. rio_spin_unlock_irqrestore(&PortP->portSem, flags);
  201. retval = RIODelay(PortP, HUNDRED_MS);
  202. rio_spin_lock_irqsave(&PortP->portSem, flags);
  203. if (retval == RIO_FAIL) {
  204. rio_dprintk(RIO_DEBUG_PARAM, "wait for can_add_transmit broken by signal\n");
  205. rio_spin_unlock_irqrestore(&PortP->portSem, flags);
  206. pseterr(EINTR);
  207. func_exit();
  208. return RIO_FAIL;
  209. }
  210. if (PortP->State & RIO_DELETED) {
  211. rio_spin_unlock_irqrestore(&PortP->portSem, flags);
  212. func_exit();
  213. return RIO_SUCCESS;
  214. }
  215. }
  216. if (!res) {
  217. rio_spin_unlock_irqrestore(&PortP->portSem, flags);
  218. func_exit();
  219. return RIO_FAIL;
  220. }
  221. rio_dprintk(RIO_DEBUG_PARAM, "can_add_transmit() returns %x\n", res);
  222. rio_dprintk(RIO_DEBUG_PARAM, "Packet is 0x%x\n", (int) PacketP);
  223. phb_param_ptr = (struct phb_param *) PacketP->data;
  224. switch (TtyP->termios->c_cflag & CSIZE) {
  225. case CS5:
  226. {
  227. rio_dprintk(RIO_DEBUG_PARAM, "5 bit data\n");
  228. Cor1 |= COR1_5BITS;
  229. break;
  230. }
  231. case CS6:
  232. {
  233. rio_dprintk(RIO_DEBUG_PARAM, "6 bit data\n");
  234. Cor1 |= COR1_6BITS;
  235. break;
  236. }
  237. case CS7:
  238. {
  239. rio_dprintk(RIO_DEBUG_PARAM, "7 bit data\n");
  240. Cor1 |= COR1_7BITS;
  241. break;
  242. }
  243. case CS8:
  244. {
  245. rio_dprintk(RIO_DEBUG_PARAM, "8 bit data\n");
  246. Cor1 |= COR1_8BITS;
  247. break;
  248. }
  249. }
  250. if (TtyP->termios->c_cflag & CSTOPB) {
  251. rio_dprintk(RIO_DEBUG_PARAM, "2 stop bits\n");
  252. Cor1 |= COR1_2STOP;
  253. } else {
  254. rio_dprintk(RIO_DEBUG_PARAM, "1 stop bit\n");
  255. Cor1 |= COR1_1STOP;
  256. }
  257. if (TtyP->termios->c_cflag & PARENB) {
  258. rio_dprintk(RIO_DEBUG_PARAM, "Enable parity\n");
  259. Cor1 |= COR1_NORMAL;
  260. } else {
  261. rio_dprintk(RIO_DEBUG_PARAM, "Disable parity\n");
  262. Cor1 |= COR1_NOP;
  263. }
  264. if (TtyP->termios->c_cflag & PARODD) {
  265. rio_dprintk(RIO_DEBUG_PARAM, "Odd parity\n");
  266. Cor1 |= COR1_ODD;
  267. } else {
  268. rio_dprintk(RIO_DEBUG_PARAM, "Even parity\n");
  269. Cor1 |= COR1_EVEN;
  270. }
  271. /*
  272. ** COR 2
  273. */
  274. if (TtyP->termios->c_iflag & IXON) {
  275. rio_dprintk(RIO_DEBUG_PARAM, "Enable start/stop output control\n");
  276. Cor2 |= COR2_IXON;
  277. } else {
  278. if (PortP->Config & RIO_IXON) {
  279. rio_dprintk(RIO_DEBUG_PARAM, "Force enable start/stop output control\n");
  280. Cor2 |= COR2_IXON;
  281. } else
  282. rio_dprintk(RIO_DEBUG_PARAM, "IXON has been disabled.\n");
  283. }
  284. if (TtyP->termios->c_iflag & IXANY) {
  285. if (PortP->Config & RIO_IXANY) {
  286. rio_dprintk(RIO_DEBUG_PARAM, "Enable any key to restart output\n");
  287. Cor2 |= COR2_IXANY;
  288. } else
  289. rio_dprintk(RIO_DEBUG_PARAM, "IXANY has been disabled due to sanity reasons.\n");
  290. }
  291. if (TtyP->termios->c_iflag & IXOFF) {
  292. rio_dprintk(RIO_DEBUG_PARAM, "Enable start/stop input control 2\n");
  293. Cor2 |= COR2_IXOFF;
  294. }
  295. if (TtyP->termios->c_cflag & HUPCL) {
  296. rio_dprintk(RIO_DEBUG_PARAM, "Hangup on last close\n");
  297. Cor2 |= COR2_HUPCL;
  298. }
  299. if (C_CRTSCTS(TtyP)) {
  300. rio_dprintk(RIO_DEBUG_PARAM, "Rx hardware flow control enabled\n");
  301. Cor2 |= COR2_CTSFLOW;
  302. Cor2 |= COR2_RTSFLOW;
  303. } else {
  304. rio_dprintk(RIO_DEBUG_PARAM, "Rx hardware flow control disabled\n");
  305. Cor2 &= ~COR2_CTSFLOW;
  306. Cor2 &= ~COR2_RTSFLOW;
  307. }
  308. if (TtyP->termios->c_cflag & CLOCAL) {
  309. rio_dprintk(RIO_DEBUG_PARAM, "Local line\n");
  310. } else {
  311. rio_dprintk(RIO_DEBUG_PARAM, "Possible Modem line\n");
  312. }
  313. /*
  314. ** COR 4 (there is no COR 3)
  315. */
  316. if (TtyP->termios->c_iflag & IGNBRK) {
  317. rio_dprintk(RIO_DEBUG_PARAM, "Ignore break condition\n");
  318. Cor4 |= COR4_IGNBRK;
  319. }
  320. if (!(TtyP->termios->c_iflag & BRKINT)) {
  321. rio_dprintk(RIO_DEBUG_PARAM, "Break generates NULL condition\n");
  322. Cor4 |= COR4_NBRKINT;
  323. } else {
  324. rio_dprintk(RIO_DEBUG_PARAM, "Interrupt on break condition\n");
  325. }
  326. if (TtyP->termios->c_iflag & INLCR) {
  327. rio_dprintk(RIO_DEBUG_PARAM, "Map newline to carriage return on input\n");
  328. Cor4 |= COR4_INLCR;
  329. }
  330. if (TtyP->termios->c_iflag & IGNCR) {
  331. rio_dprintk(RIO_DEBUG_PARAM, "Ignore carriage return on input\n");
  332. Cor4 |= COR4_IGNCR;
  333. }
  334. if (TtyP->termios->c_iflag & ICRNL) {
  335. rio_dprintk(RIO_DEBUG_PARAM, "Map carriage return to newline on input\n");
  336. Cor4 |= COR4_ICRNL;
  337. }
  338. if (TtyP->termios->c_iflag & IGNPAR) {
  339. rio_dprintk(RIO_DEBUG_PARAM, "Ignore characters with parity errors\n");
  340. Cor4 |= COR4_IGNPAR;
  341. }
  342. if (TtyP->termios->c_iflag & PARMRK) {
  343. rio_dprintk(RIO_DEBUG_PARAM, "Mark parity errors\n");
  344. Cor4 |= COR4_PARMRK;
  345. }
  346. /*
  347. ** Set the RAISEMOD flag to ensure that the modem lines are raised
  348. ** on reception of a config packet.
  349. ** The download code handles the zero baud condition.
  350. */
  351. Cor4 |= COR4_RAISEMOD;
  352. /*
  353. ** COR 5
  354. */
  355. Cor5 = COR5_CMOE;
  356. /*
  357. ** Set to monitor tbusy/tstop (or not).
  358. */
  359. if (PortP->MonitorTstate)
  360. Cor5 |= COR5_TSTATE_ON;
  361. else
  362. Cor5 |= COR5_TSTATE_OFF;
  363. /*
  364. ** Could set LNE here if you wanted LNext processing. SVR4 will use it.
  365. */
  366. if (TtyP->termios->c_iflag & ISTRIP) {
  367. rio_dprintk(RIO_DEBUG_PARAM, "Strip input characters\n");
  368. if (!(PortP->State & RIO_TRIAD_MODE)) {
  369. Cor5 |= COR5_ISTRIP;
  370. }
  371. }
  372. if (TtyP->termios->c_oflag & ONLCR) {
  373. rio_dprintk(RIO_DEBUG_PARAM, "Map newline to carriage-return, newline on output\n");
  374. if (PortP->CookMode == COOK_MEDIUM)
  375. Cor5 |= COR5_ONLCR;
  376. }
  377. if (TtyP->termios->c_oflag & OCRNL) {
  378. rio_dprintk(RIO_DEBUG_PARAM, "Map carriage return to newline on output\n");
  379. if (PortP->CookMode == COOK_MEDIUM)
  380. Cor5 |= COR5_OCRNL;
  381. }
  382. if ((TtyP->termios->c_oflag & TABDLY) == TAB3) {
  383. rio_dprintk(RIO_DEBUG_PARAM, "Tab delay 3 set\n");
  384. if (PortP->CookMode == COOK_MEDIUM)
  385. Cor5 |= COR5_TAB3;
  386. }
  387. /*
  388. ** Flow control bytes.
  389. */
  390. TxXon = TtyP->termios->c_cc[VSTART];
  391. TxXoff = TtyP->termios->c_cc[VSTOP];
  392. RxXon = TtyP->termios->c_cc[VSTART];
  393. RxXoff = TtyP->termios->c_cc[VSTOP];
  394. /*
  395. ** LNEXT byte
  396. */
  397. LNext = 0;
  398. /*
  399. ** Baud rate bytes
  400. */
  401. rio_dprintk(RIO_DEBUG_PARAM, "Mapping of rx/tx baud %x (%x)\n", TtyP->termios->c_cflag, CBAUD);
  402. switch (TtyP->termios->c_cflag & CBAUD) {
  403. #define e(b) case B ## b : RxBaud = TxBaud = RIO_B ## b ;break
  404. e(50);
  405. e(75);
  406. e(110);
  407. e(134);
  408. e(150);
  409. e(200);
  410. e(300);
  411. e(600);
  412. e(1200);
  413. e(1800);
  414. e(2400);
  415. e(4800);
  416. e(9600);
  417. e(19200);
  418. e(38400);
  419. e(57600);
  420. e(115200); /* e(230400);e(460800); e(921600); */
  421. }
  422. /* XXX MIssing conversion table. XXX */
  423. /* (TtyP->termios->c_cflag & V_CBAUD); */
  424. rio_dprintk(RIO_DEBUG_PARAM, "tx baud 0x%x, rx baud 0x%x\n", TxBaud, RxBaud);
  425. /*
  426. ** Leftovers
  427. */
  428. if (TtyP->termios->c_cflag & CREAD)
  429. rio_dprintk(RIO_DEBUG_PARAM, "Enable receiver\n");
  430. #ifdef RCV1EN
  431. if (TtyP->termios->c_cflag & RCV1EN)
  432. rio_dprintk(RIO_DEBUG_PARAM, "RCV1EN (?)\n");
  433. #endif
  434. #ifdef XMT1EN
  435. if (TtyP->termios->c_cflag & XMT1EN)
  436. rio_dprintk(RIO_DEBUG_PARAM, "XMT1EN (?)\n");
  437. #endif
  438. if (TtyP->termios->c_lflag & ISIG)
  439. rio_dprintk(RIO_DEBUG_PARAM, "Input character signal generating enabled\n");
  440. if (TtyP->termios->c_lflag & ICANON)
  441. rio_dprintk(RIO_DEBUG_PARAM, "Canonical input: erase and kill enabled\n");
  442. if (TtyP->termios->c_lflag & XCASE)
  443. rio_dprintk(RIO_DEBUG_PARAM, "Canonical upper/lower presentation\n");
  444. if (TtyP->termios->c_lflag & ECHO)
  445. rio_dprintk(RIO_DEBUG_PARAM, "Enable input echo\n");
  446. if (TtyP->termios->c_lflag & ECHOE)
  447. rio_dprintk(RIO_DEBUG_PARAM, "Enable echo erase\n");
  448. if (TtyP->termios->c_lflag & ECHOK)
  449. rio_dprintk(RIO_DEBUG_PARAM, "Enable echo kill\n");
  450. if (TtyP->termios->c_lflag & ECHONL)
  451. rio_dprintk(RIO_DEBUG_PARAM, "Enable echo newline\n");
  452. if (TtyP->termios->c_lflag & NOFLSH)
  453. rio_dprintk(RIO_DEBUG_PARAM, "Disable flush after interrupt or quit\n");
  454. #ifdef TOSTOP
  455. if (TtyP->termios->c_lflag & TOSTOP)
  456. rio_dprintk(RIO_DEBUG_PARAM, "Send SIGTTOU for background output\n");
  457. #endif
  458. #ifdef XCLUDE
  459. if (TtyP->termios->c_lflag & XCLUDE)
  460. rio_dprintk(RIO_DEBUG_PARAM, "Exclusive use of this line\n");
  461. #endif
  462. if (TtyP->termios->c_iflag & IUCLC)
  463. rio_dprintk(RIO_DEBUG_PARAM, "Map uppercase to lowercase on input\n");
  464. if (TtyP->termios->c_oflag & OPOST)
  465. rio_dprintk(RIO_DEBUG_PARAM, "Enable output post-processing\n");
  466. if (TtyP->termios->c_oflag & OLCUC)
  467. rio_dprintk(RIO_DEBUG_PARAM, "Map lowercase to uppercase on output\n");
  468. if (TtyP->termios->c_oflag & ONOCR)
  469. rio_dprintk(RIO_DEBUG_PARAM, "No carriage return output at column 0\n");
  470. if (TtyP->termios->c_oflag & ONLRET)
  471. rio_dprintk(RIO_DEBUG_PARAM, "Newline performs carriage return function\n");
  472. if (TtyP->termios->c_oflag & OFILL)
  473. rio_dprintk(RIO_DEBUG_PARAM, "Use fill characters for delay\n");
  474. if (TtyP->termios->c_oflag & OFDEL)
  475. rio_dprintk(RIO_DEBUG_PARAM, "Fill character is DEL\n");
  476. if (TtyP->termios->c_oflag & NLDLY)
  477. rio_dprintk(RIO_DEBUG_PARAM, "Newline delay set\n");
  478. if (TtyP->termios->c_oflag & CRDLY)
  479. rio_dprintk(RIO_DEBUG_PARAM, "Carriage return delay set\n");
  480. if (TtyP->termios->c_oflag & TABDLY)
  481. rio_dprintk(RIO_DEBUG_PARAM, "Tab delay set\n");
  482. /*
  483. ** These things are kind of useful in a later life!
  484. */
  485. PortP->Cor2Copy = Cor2;
  486. if (PortP->State & RIO_DELETED) {
  487. rio_spin_unlock_irqrestore(&PortP->portSem, flags);
  488. func_exit();
  489. return RIO_FAIL;
  490. }
  491. /*
  492. ** Actually write the info into the packet to be sent
  493. */
  494. WBYTE(phb_param_ptr->Cmd, cmd);
  495. WBYTE(phb_param_ptr->Cor1, Cor1);
  496. WBYTE(phb_param_ptr->Cor2, Cor2);
  497. WBYTE(phb_param_ptr->Cor4, Cor4);
  498. WBYTE(phb_param_ptr->Cor5, Cor5);
  499. WBYTE(phb_param_ptr->TxXon, TxXon);
  500. WBYTE(phb_param_ptr->RxXon, RxXon);
  501. WBYTE(phb_param_ptr->TxXoff, TxXoff);
  502. WBYTE(phb_param_ptr->RxXoff, RxXoff);
  503. WBYTE(phb_param_ptr->LNext, LNext);
  504. WBYTE(phb_param_ptr->TxBaud, TxBaud);
  505. WBYTE(phb_param_ptr->RxBaud, RxBaud);
  506. /*
  507. ** Set the length/command field
  508. */
  509. WBYTE(PacketP->len, 12 | PKT_CMD_BIT);
  510. /*
  511. ** The packet is formed - now, whack it off
  512. ** to its final destination:
  513. */
  514. add_transmit(PortP);
  515. /*
  516. ** Count characters transmitted for port statistics reporting
  517. */
  518. if (PortP->statsGather)
  519. PortP->txchars += 12;
  520. rio_spin_unlock_irqrestore(&PortP->portSem, flags);
  521. rio_dprintk(RIO_DEBUG_PARAM, "add_transmit returned.\n");
  522. /*
  523. ** job done.
  524. */
  525. func_exit();
  526. return RIO_SUCCESS;
  527. }
  528. /*
  529. ** We can add another packet to a transmit queue if the packet pointer pointed
  530. ** to by the TxAdd pointer has PKT_IN_USE clear in its address.
  531. */
  532. int can_add_transmit(PktP, PortP)
  533. PKT **PktP;
  534. struct Port *PortP;
  535. {
  536. register PKT *tp;
  537. *PktP = tp = (PKT *) RIO_PTR(PortP->Caddr, RWORD(*PortP->TxAdd));
  538. return !((uint) tp & PKT_IN_USE);
  539. }
  540. /*
  541. ** To add a packet to the queue, you set the PKT_IN_USE bit in the address,
  542. ** and then move the TxAdd pointer along one position to point to the next
  543. ** packet pointer. You must wrap the pointer from the end back to the start.
  544. */
  545. void add_transmit(PortP)
  546. struct Port *PortP;
  547. {
  548. if (RWORD(*PortP->TxAdd) & PKT_IN_USE) {
  549. rio_dprintk(RIO_DEBUG_PARAM, "add_transmit: Packet has been stolen!");
  550. }
  551. WWORD(*(ushort *) PortP->TxAdd, RWORD(*PortP->TxAdd) | PKT_IN_USE);
  552. PortP->TxAdd = (PortP->TxAdd == PortP->TxEnd) ? PortP->TxStart : PortP->TxAdd + 1;
  553. WWORD(PortP->PhbP->tx_add, RIO_OFF(PortP->Caddr, PortP->TxAdd));
  554. }
  555. /****************************************
  556. * Put a packet onto the end of the
  557. * free list
  558. ****************************************/
  559. void put_free_end(HostP, PktP)
  560. struct Host *HostP;
  561. PKT *PktP;
  562. {
  563. FREE_LIST *tmp_pointer;
  564. ushort old_end, new_end;
  565. unsigned long flags;
  566. rio_spin_lock_irqsave(&HostP->HostLock, flags);
  567. /*************************************************
  568. * Put a packet back onto the back of the free list
  569. *
  570. ************************************************/
  571. rio_dprintk(RIO_DEBUG_PFE, "put_free_end(PktP=%x)\n", (int) PktP);
  572. if ((old_end = RWORD(HostP->ParmMapP->free_list_end)) != TPNULL) {
  573. new_end = RIO_OFF(HostP->Caddr, PktP);
  574. tmp_pointer = (FREE_LIST *) RIO_PTR(HostP->Caddr, old_end);
  575. WWORD(tmp_pointer->next, new_end);
  576. WWORD(((FREE_LIST *) PktP)->prev, old_end);
  577. WWORD(((FREE_LIST *) PktP)->next, TPNULL);
  578. WWORD(HostP->ParmMapP->free_list_end, new_end);
  579. } else { /* First packet on the free list this should never happen! */
  580. rio_dprintk(RIO_DEBUG_PFE, "put_free_end(): This should never happen\n");
  581. WWORD(HostP->ParmMapP->free_list_end, RIO_OFF(HostP->Caddr, PktP));
  582. tmp_pointer = (FREE_LIST *) PktP;
  583. WWORD(tmp_pointer->prev, TPNULL);
  584. WWORD(tmp_pointer->next, TPNULL);
  585. }
  586. rio_dprintk(RIO_DEBUG_CMD, "Before unlock: %p\n", &HostP->HostLock);
  587. rio_spin_unlock_irqrestore(&HostP->HostLock, flags);
  588. }
  589. /*
  590. ** can_remove_receive(PktP,P) returns non-zero if PKT_IN_USE is set
  591. ** for the next packet on the queue. It will also set PktP to point to the
  592. ** relevant packet, [having cleared the PKT_IN_USE bit]. If PKT_IN_USE is clear,
  593. ** then can_remove_receive() returns 0.
  594. */
  595. int can_remove_receive(PktP, PortP)
  596. PKT **PktP;
  597. struct Port *PortP;
  598. {
  599. if (RWORD(*PortP->RxRemove) & PKT_IN_USE) {
  600. *PktP = (PKT *) RIO_PTR(PortP->Caddr, RWORD(*PortP->RxRemove) & ~PKT_IN_USE);
  601. return 1;
  602. }
  603. return 0;
  604. }
  605. /*
  606. ** To remove a packet from the receive queue you clear its PKT_IN_USE bit,
  607. ** and then bump the pointers. Once the pointers get to the end, they must
  608. ** be wrapped back to the start.
  609. */
  610. void remove_receive(PortP)
  611. struct Port *PortP;
  612. {
  613. WWORD(*PortP->RxRemove, RWORD(*PortP->RxRemove) & ~PKT_IN_USE);
  614. PortP->RxRemove = (PortP->RxRemove == PortP->RxEnd) ? PortP->RxStart : PortP->RxRemove + 1;
  615. WWORD(PortP->PhbP->rx_remove, RIO_OFF(PortP->Caddr, PortP->RxRemove));
  616. }