cz.c revision 1.34.8.4 1 /* $NetBSD: cz.c,v 1.34.8.4 2006/08/11 15:44:25 yamt Exp $ */
2
3 /*-
4 * Copyright (c) 2000 Zembu Labs, Inc.
5 * All rights reserved.
6 *
7 * Authors: Jason R. Thorpe <thorpej (at) zembu.com>
8 * Bill Studenmund <wrstuden (at) zembu.com>
9 *
10 * Redistribution and use in source and binary forms, with or without
11 * modification, are permitted provided that the following conditions
12 * are met:
13 * 1. Redistributions of source code must retain the above copyright
14 * notice, this list of conditions and the following disclaimer.
15 * 2. Redistributions in binary form must reproduce the above copyright
16 * notice, this list of conditions and the following disclaimer in the
17 * documentation and/or other materials provided with the distribution.
18 * 3. All advertising materials mentioning features or use of this software
19 * must display the following acknowledgement:
20 * This product includes software developed by Zembu Labs, Inc.
21 * 4. Neither the name of Zembu Labs nor the names of its employees may
22 * be used to endorse or promote products derived from this software
23 * without specific prior written permission.
24 *
25 * THIS SOFTWARE IS PROVIDED BY ZEMBU LABS, INC. ``AS IS'' AND ANY EXPRESS
26 * OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WAR-
27 * RANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DIS-
28 * CLAIMED. IN NO EVENT SHALL ZEMBU LABS BE LIABLE FOR ANY DIRECT, INDIRECT,
29 * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
30 * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
31 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
32 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
33 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
34 * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
35 */
36
37 /*
38 * Cyclades-Z series multi-port serial adapter driver for NetBSD.
39 *
40 * Some notes:
41 *
42 * - The Cyclades-Z has fully automatic hardware (and software!)
43 * flow control. We only use RTS/CTS flow control here,
44 * and it is implemented in a very simplistic manner. This
45 * may be an area of future work.
46 *
47 * - The PLX can map the either the board's RAM or host RAM
48 * into the MIPS's memory window. This would enable us to
49 * use less expensive (for us) memory reads/writes to host
50 * RAM, rather than time-consuming reads/writes to PCI
51 * memory space. However, the PLX can only map a 0-128M
52 * window, so we would have to ensure that the DMA address
53 * of the host RAM fits there. This is kind of a pain,
54 * so we just don't bother right now.
55 *
56 * - In a perfect world, we would use the autoconfiguration
57 * mechanism to attach the TTYs that we find. However,
58 * that leads to somewhat icky looking autoconfiguration
59 * messages (one for every TTY, up to 64 per board!). So
60 * we don't do it that way, but assign minors as if there
61 * were the max of 64 ports per board.
62 *
63 * - We don't bother with PPS support here. There are so many
64 * ports, each with a large amount of buffer space, that the
65 * normal mode of operation is to poll the boards regularly
66 * (generally, every 20ms or so). This makes this driver
67 * unsuitable for PPS, as the latency will be generally too
68 * high.
69 */
70 /*
71 * This driver inspired by the FreeBSD driver written by Brian J. McGovern
72 * for FreeBSD 3.2.
73 */
74
75 #include <sys/cdefs.h>
76 __KERNEL_RCSID(0, "$NetBSD: cz.c,v 1.34.8.4 2006/08/11 15:44:25 yamt Exp $");
77
78 #include <sys/param.h>
79 #include <sys/systm.h>
80 #include <sys/proc.h>
81 #include <sys/device.h>
82 #include <sys/malloc.h>
83 #include <sys/tty.h>
84 #include <sys/conf.h>
85 #include <sys/time.h>
86 #include <sys/kernel.h>
87 #include <sys/fcntl.h>
88 #include <sys/syslog.h>
89 #include <sys/kauth.h>
90
91 #include <sys/callout.h>
92
93 #include <dev/pci/pcireg.h>
94 #include <dev/pci/pcivar.h>
95 #include <dev/pci/pcidevs.h>
96 #include <dev/pci/czreg.h>
97
98 #include <dev/pci/plx9060reg.h>
99 #include <dev/pci/plx9060var.h>
100
101 #include <dev/microcode/cyclades-z/cyzfirm.h>
102
103 #define CZ_DRIVER_VERSION 0x20000411
104
105 #define CZ_POLL_MS 20
106
107 /* These are the interrupts we always use. */
108 #define CZ_INTERRUPTS \
109 (C_IN_MDSR | C_IN_MRI | C_IN_MRTS | C_IN_MCTS | C_IN_TXBEMPTY | \
110 C_IN_TXFEMPTY | C_IN_TXLOWWM | C_IN_RXHIWM | C_IN_RXNNDT | \
111 C_IN_MDCD | C_IN_PR_ERROR | C_IN_FR_ERROR | C_IN_OVR_ERROR | \
112 C_IN_RXOFL | C_IN_IOCTLW | C_IN_RXBRK)
113
114 /*
115 * cztty_softc:
116 *
117 * Per-channel (TTY) state.
118 */
119 struct cztty_softc {
120 struct cz_softc *sc_parent;
121 struct tty *sc_tty;
122
123 struct callout sc_diag_ch;
124
125 int sc_channel; /* Also used to flag unattached chan */
126 #define CZTTY_CHANNEL_DEAD -1
127
128 bus_space_tag_t sc_chan_st; /* channel space tag */
129 bus_space_handle_t sc_chan_sh; /* channel space handle */
130 bus_space_handle_t sc_buf_sh; /* buffer space handle */
131
132 u_int sc_overflows,
133 sc_parity_errors,
134 sc_framing_errors,
135 sc_errors;
136
137 int sc_swflags;
138
139 u_int32_t sc_rs_control_dtr,
140 sc_chanctl_hw_flow,
141 sc_chanctl_comm_baud,
142 sc_chanctl_rs_control,
143 sc_chanctl_comm_data_l,
144 sc_chanctl_comm_parity;
145 };
146
147 /*
148 * cz_softc:
149 *
150 * Per-board state.
151 */
152 struct cz_softc {
153 struct device cz_dev; /* generic device info */
154 struct plx9060_config cz_plx; /* PLX 9060 config info */
155 bus_space_tag_t cz_win_st; /* window space tag */
156 bus_space_handle_t cz_win_sh; /* window space handle */
157 struct callout cz_callout; /* callout for polling-mode */
158
159 void *cz_ih; /* interrupt handle */
160
161 u_int32_t cz_mailbox0; /* our MAILBOX0 value */
162 int cz_nchannels; /* number of channels */
163 int cz_nopenchan; /* number of open channels */
164 struct cztty_softc *cz_ports; /* our array of ports */
165
166 bus_addr_t cz_fwctl; /* offset of firmware control */
167 };
168
169 static int cz_wait_pci_doorbell(struct cz_softc *, const char *);
170
171 static int cz_load_firmware(struct cz_softc *);
172
173 static int cz_intr(void *);
174 static void cz_poll(void *);
175 static int cztty_transmit(struct cztty_softc *, struct tty *);
176 static int cztty_receive(struct cztty_softc *, struct tty *);
177
178 static struct cztty_softc *cztty_getttysoftc(dev_t dev);
179 static int cztty_attached_ttys;
180 static int cz_timeout_ticks;
181
182 static void czttystart(struct tty *tp);
183 static int czttyparam(struct tty *tp, struct termios *t);
184 static void cztty_shutdown(struct cztty_softc *sc);
185 static void cztty_modem(struct cztty_softc *sc, int onoff);
186 static void cztty_break(struct cztty_softc *sc, int onoff);
187 static void tiocm_to_cztty(struct cztty_softc *sc, u_long how, int ttybits);
188 static int cztty_to_tiocm(struct cztty_softc *sc);
189 static void cztty_diag(void *arg);
190
191 extern struct cfdriver cz_cd;
192
193 /*
194 * Macros to read and write the PLX.
195 */
196 #define CZ_PLX_READ(cz, reg) \
197 bus_space_read_4((cz)->cz_plx.plx_st, (cz)->cz_plx.plx_sh, (reg))
198 #define CZ_PLX_WRITE(cz, reg, val) \
199 bus_space_write_4((cz)->cz_plx.plx_st, (cz)->cz_plx.plx_sh, \
200 (reg), (val))
201
202 /*
203 * Macros to read and write the FPGA. We must already be in the FPGA
204 * window for this.
205 */
206 #define CZ_FPGA_READ(cz, reg) \
207 bus_space_read_4((cz)->cz_win_st, (cz)->cz_win_sh, (reg))
208 #define CZ_FPGA_WRITE(cz, reg, val) \
209 bus_space_write_4((cz)->cz_win_st, (cz)->cz_win_sh, (reg), (val))
210
211 /*
212 * Macros to read and write the firmware control structures in board RAM.
213 */
214 #define CZ_FWCTL_READ(cz, off) \
215 bus_space_read_4((cz)->cz_win_st, (cz)->cz_win_sh, \
216 (cz)->cz_fwctl + (off))
217
218 #define CZ_FWCTL_WRITE(cz, off, val) \
219 bus_space_write_4((cz)->cz_win_st, (cz)->cz_win_sh, \
220 (cz)->cz_fwctl + (off), (val))
221
222 /*
223 * Convenience macros for cztty routines. PLX window MUST be to RAM.
224 */
225 #define CZTTY_CHAN_READ(sc, off) \
226 bus_space_read_4((sc)->sc_chan_st, (sc)->sc_chan_sh, (off))
227
228 #define CZTTY_CHAN_WRITE(sc, off, val) \
229 bus_space_write_4((sc)->sc_chan_st, (sc)->sc_chan_sh, \
230 (off), (val))
231
232 #define CZTTY_BUF_READ(sc, off) \
233 bus_space_read_4((sc)->sc_chan_st, (sc)->sc_buf_sh, (off))
234
235 #define CZTTY_BUF_WRITE(sc, off, val) \
236 bus_space_write_4((sc)->sc_chan_st, (sc)->sc_buf_sh, \
237 (off), (val))
238
239 /*
240 * Convenience macros.
241 */
242 #define CZ_WIN_RAM(cz) \
243 do { \
244 CZ_PLX_WRITE((cz), PLX_LAS0BA, LOCAL_ADDR0_RAM); \
245 delay(100); \
246 } while (0)
247
248 #define CZ_WIN_FPGA(cz) \
249 do { \
250 CZ_PLX_WRITE((cz), PLX_LAS0BA, LOCAL_ADDR0_FPGA); \
251 delay(100); \
252 } while (0)
253
254 /*****************************************************************************
255 * Cyclades-Z controller code starts here...
256 *****************************************************************************/
257
258 /*
259 * cz_match:
260 *
261 * Determine if the given PCI device is a Cyclades-Z board.
262 */
263 static int
264 cz_match(struct device *parent,
265 struct cfdata *match,
266 void *aux)
267 {
268 struct pci_attach_args *pa = aux;
269
270 if (PCI_VENDOR(pa->pa_id) == PCI_VENDOR_CYCLADES) {
271 switch (PCI_PRODUCT(pa->pa_id)) {
272 case PCI_PRODUCT_CYCLADES_CYCLOMZ_2:
273 return (1);
274 }
275 }
276
277 return (0);
278 }
279
280 /*
281 * cz_attach:
282 *
283 * A Cyclades-Z board was found; attach it.
284 */
285 static void
286 cz_attach(struct device *parent,
287 struct device *self,
288 void *aux)
289 {
290 extern const struct cdevsw cz_cdevsw; /* XXX */
291 struct cz_softc *cz = (void *) self;
292 struct pci_attach_args *pa = aux;
293 pci_intr_handle_t ih;
294 const char *intrstr = NULL;
295 struct cztty_softc *sc;
296 struct tty *tp;
297 int i;
298
299 aprint_naive(": Multi-port serial controller\n");
300 aprint_normal(": Cyclades-Z multiport serial\n");
301
302 cz->cz_plx.plx_pc = pa->pa_pc;
303 cz->cz_plx.plx_tag = pa->pa_tag;
304
305 if (pci_mapreg_map(pa, PLX_PCI_RUNTIME_MEMADDR,
306 PCI_MAPREG_TYPE_MEM|PCI_MAPREG_MEM_TYPE_32BIT, 0,
307 &cz->cz_plx.plx_st, &cz->cz_plx.plx_sh, NULL, NULL) != 0) {
308 aprint_error("%s: unable to map PLX registers\n",
309 cz->cz_dev.dv_xname);
310 return;
311 }
312 if (pci_mapreg_map(pa, PLX_PCI_LOCAL_ADDR0,
313 PCI_MAPREG_TYPE_MEM|PCI_MAPREG_MEM_TYPE_32BIT, 0,
314 &cz->cz_win_st, &cz->cz_win_sh, NULL, NULL) != 0) {
315 aprint_error("%s: unable to map device window\n",
316 cz->cz_dev.dv_xname);
317 return;
318 }
319
320 cz->cz_mailbox0 = CZ_PLX_READ(cz, PLX_MAILBOX0);
321 cz->cz_nopenchan = 0;
322
323 /*
324 * Make sure that the board is completely stopped.
325 */
326 CZ_WIN_FPGA(cz);
327 CZ_FPGA_WRITE(cz, FPGA_CPU_STOP, 0);
328
329 /*
330 * Load the board's firmware.
331 */
332 if (cz_load_firmware(cz) != 0)
333 return;
334
335 /*
336 * Now that we're ready to roll, map and establish the interrupt
337 * handler.
338 */
339 if (pci_intr_map(pa, &ih) != 0) {
340 /*
341 * The common case is for Cyclades-Z boards to run
342 * in polling mode, and thus not have an interrupt
343 * mapped for them. Don't bother reporting that
344 * the interrupt is not mappable, since this isn't
345 * really an error.
346 */
347 cz->cz_ih = NULL;
348 goto polling_mode;
349 } else {
350 intrstr = pci_intr_string(pa->pa_pc, ih);
351 cz->cz_ih = pci_intr_establish(pa->pa_pc, ih, IPL_TTY,
352 cz_intr, cz);
353 }
354 if (cz->cz_ih == NULL) {
355 aprint_error("%s: unable to establish interrupt",
356 cz->cz_dev.dv_xname);
357 if (intrstr != NULL)
358 aprint_normal(" at %s", intrstr);
359 aprint_normal("\n");
360 /* We will fall-back on polling mode. */
361 } else
362 aprint_normal("%s: interrupting at %s\n",
363 cz->cz_dev.dv_xname, intrstr);
364
365 polling_mode:
366 if (cz->cz_ih == NULL) {
367 callout_init(&cz->cz_callout);
368 if (cz_timeout_ticks == 0)
369 cz_timeout_ticks = max(1, hz * CZ_POLL_MS / 1000);
370 aprint_normal("%s: polling mode, %d ms interval (%d tick%s)\n",
371 cz->cz_dev.dv_xname, CZ_POLL_MS, cz_timeout_ticks,
372 cz_timeout_ticks == 1 ? "" : "s");
373 }
374
375 /*
376 * Allocate sufficient pointers for the children and
377 * attach them. Set all ports to a reasonable initial
378 * configuration while we're at it:
379 *
380 * disabled
381 * 8N1
382 * default baud rate
383 * hardware flow control.
384 */
385 CZ_WIN_RAM(cz);
386
387 if (cz->cz_nchannels == 0) {
388 /* No channels? No more work to do! */
389 return;
390 }
391
392 cz->cz_ports = malloc(sizeof(struct cztty_softc) * cz->cz_nchannels,
393 M_DEVBUF, M_WAITOK|M_ZERO);
394 cztty_attached_ttys += cz->cz_nchannels;
395
396 for (i = 0; i < cz->cz_nchannels; i++) {
397 sc = &cz->cz_ports[i];
398
399 sc->sc_channel = i;
400 sc->sc_chan_st = cz->cz_win_st;
401 sc->sc_parent = cz;
402
403 if (bus_space_subregion(cz->cz_win_st, cz->cz_win_sh,
404 cz->cz_fwctl + ZFIRM_CHNCTL_OFF(i, 0),
405 ZFIRM_CHNCTL_SIZE, &sc->sc_chan_sh)) {
406 aprint_error(
407 "%s: unable to subregion channel %d control\n",
408 cz->cz_dev.dv_xname, i);
409 sc->sc_channel = CZTTY_CHANNEL_DEAD;
410 continue;
411 }
412 if (bus_space_subregion(cz->cz_win_st, cz->cz_win_sh,
413 cz->cz_fwctl + ZFIRM_BUFCTL_OFF(i, 0),
414 ZFIRM_BUFCTL_SIZE, &sc->sc_buf_sh)) {
415 aprint_error(
416 "%s: unable to subregion channel %d buffer\n",
417 cz->cz_dev.dv_xname, i);
418 sc->sc_channel = CZTTY_CHANNEL_DEAD;
419 continue;
420 }
421
422 callout_init(&sc->sc_diag_ch);
423
424 tp = ttymalloc();
425 tp->t_dev = makedev(cdevsw_lookup_major(&cz_cdevsw),
426 (device_unit(&cz->cz_dev) * ZFIRM_MAX_CHANNELS) + i);
427 tp->t_oproc = czttystart;
428 tp->t_param = czttyparam;
429 tty_attach(tp);
430
431 sc->sc_tty = tp;
432
433 CZTTY_CHAN_WRITE(sc, CHNCTL_OP_MODE, C_CH_DISABLE);
434 CZTTY_CHAN_WRITE(sc, CHNCTL_INTR_ENABLE, CZ_INTERRUPTS);
435 CZTTY_CHAN_WRITE(sc, CHNCTL_SW_FLOW, 0);
436 CZTTY_CHAN_WRITE(sc, CHNCTL_FLOW_XON, 0x11);
437 CZTTY_CHAN_WRITE(sc, CHNCTL_FLOW_XOFF, 0x13);
438 CZTTY_CHAN_WRITE(sc, CHNCTL_COMM_BAUD, TTYDEF_SPEED);
439 CZTTY_CHAN_WRITE(sc, CHNCTL_COMM_PARITY, C_PR_NONE);
440 CZTTY_CHAN_WRITE(sc, CHNCTL_COMM_DATA_L, C_DL_CS8 | C_DL_1STOP);
441 CZTTY_CHAN_WRITE(sc, CHNCTL_COMM_FLAGS, 0);
442 CZTTY_CHAN_WRITE(sc, CHNCTL_HW_FLOW, C_RS_CTS | C_RS_RTS);
443 CZTTY_CHAN_WRITE(sc, CHNCTL_RS_CONTROL, 0);
444 }
445 }
446
447 CFATTACH_DECL(cz, sizeof(struct cz_softc),
448 cz_match, cz_attach, NULL, NULL);
449
450 #if 0
451 /*
452 * cz_reset_board:
453 *
454 * Reset the board via the PLX.
455 */
456 static void
457 cz_reset_board(struct cz_softc *cz)
458 {
459 u_int32_t reg;
460
461 reg = CZ_PLX_READ(cz, PLX_CONTROL);
462 CZ_PLX_WRITE(cz, PLX_CONTROL, reg | CONTROL_SWR);
463 delay(1000);
464
465 CZ_PLX_WRITE(cz, PLX_CONTROL, reg);
466 delay(1000);
467
468 /* Now reload the PLX from its EEPROM. */
469 reg = CZ_PLX_READ(cz, PLX_CONTROL);
470 CZ_PLX_WRITE(cz, PLX_CONTROL, reg | CONTROL_RELOADCFG);
471 delay(1000);
472 CZ_PLX_WRITE(cz, PLX_CONTROL, reg);
473 }
474 #endif
475
476 /*
477 * cz_load_firmware:
478 *
479 * Load the ZFIRM firmware into the board's RAM and start it
480 * running.
481 */
482 static int
483 cz_load_firmware(struct cz_softc *cz)
484 {
485 const struct zfirm_header *zfh;
486 const struct zfirm_config *zfc;
487 const struct zfirm_block *zfb, *zblocks;
488 const u_int8_t *cp;
489 const char *board;
490 u_int32_t fid;
491 int i, j, nconfigs, nblocks, nbytes;
492
493 zfh = (const struct zfirm_header *) cycladesz_firmware;
494
495 /* Find the config header. */
496 if (le32toh(zfh->zfh_configoff) & (sizeof(u_int32_t) - 1)) {
497 aprint_error("%s: bad ZFIRM config offset: 0x%x\n",
498 cz->cz_dev.dv_xname, le32toh(zfh->zfh_configoff));
499 return (EIO);
500 }
501 zfc = (const struct zfirm_config *)(cycladesz_firmware +
502 le32toh(zfh->zfh_configoff));
503 nconfigs = le32toh(zfh->zfh_nconfig);
504
505 /* Locate the correct configuration for our board. */
506 for (i = 0; i < nconfigs; i++, zfc++) {
507 if (le32toh(zfc->zfc_mailbox) == cz->cz_mailbox0 &&
508 le32toh(zfc->zfc_function) == ZFC_FUNCTION_NORMAL)
509 break;
510 }
511 if (i == nconfigs) {
512 aprint_error("%s: unable to locate config header\n",
513 cz->cz_dev.dv_xname);
514 return (EIO);
515 }
516
517 nblocks = le32toh(zfc->zfc_nblocks);
518 zblocks = (const struct zfirm_block *)(cycladesz_firmware +
519 le32toh(zfh->zfh_blockoff));
520
521 /*
522 * 8Zo ver. 1 doesn't have an FPGA. Load it on all others if
523 * necessary.
524 */
525 if (cz->cz_mailbox0 != MAILBOX0_8Zo_V1
526 #if 0
527 && ((CZ_PLX_READ(cz, PLX_CONTROL) & CONTROL_FPGA_LOADED) == 0)
528 #endif
529 ) {
530 #ifdef CZ_DEBUG
531 aprint_debug("%s: Loading FPGA...", cz->cz_dev.dv_xname);
532 #endif
533 CZ_WIN_FPGA(cz);
534 for (i = 0; i < nblocks; i++) {
535 /* zfb = zblocks + le32toh(zfc->zfc_blocklist[i]) ?? */
536 zfb = &zblocks[le32toh(zfc->zfc_blocklist[i])];
537 if (le32toh(zfb->zfb_type) == ZFB_TYPE_FPGA) {
538 nbytes = le32toh(zfb->zfb_size);
539 cp = &cycladesz_firmware[
540 le32toh(zfb->zfb_fileoff)];
541 for (j = 0; j < nbytes; j++, cp++) {
542 bus_space_write_1(cz->cz_win_st,
543 cz->cz_win_sh, 0, *cp);
544 /* FPGA needs 30-100us to settle. */
545 delay(10);
546 }
547 }
548 }
549 #ifdef CZ_DEBUG
550 aprint_debug("done\n");
551 #endif
552 }
553
554 /* Now load the firmware. */
555 CZ_WIN_RAM(cz);
556
557 for (i = 0; i < nblocks; i++) {
558 /* zfb = zblocks + le32toh(zfc->zfc_blocklist[i]) ?? */
559 zfb = &zblocks[le32toh(zfc->zfc_blocklist[i])];
560 if (le32toh(zfb->zfb_type) == ZFB_TYPE_FIRMWARE) {
561 const u_int32_t *lp;
562 u_int32_t ro = le32toh(zfb->zfb_ramoff);
563 nbytes = le32toh(zfb->zfb_size);
564 lp = (const u_int32_t *)
565 &cycladesz_firmware[le32toh(zfb->zfb_fileoff)];
566 for (j = 0; j < nbytes; j += 4, lp++) {
567 bus_space_write_4(cz->cz_win_st, cz->cz_win_sh,
568 ro + j, le32toh(*lp));
569 delay(10);
570 }
571 }
572 }
573
574 /* Now restart the MIPS. */
575 CZ_WIN_FPGA(cz);
576 CZ_FPGA_WRITE(cz, FPGA_CPU_START, 0);
577
578 /* Wait for the MIPS to start, then report the results. */
579 CZ_WIN_RAM(cz);
580
581 #ifdef CZ_DEBUG
582 aprint_debug("%s: waiting for MIPS to start", cz->cz_dev.dv_xname);
583 #endif
584 for (i = 0; i < 100; i++) {
585 fid = bus_space_read_4(cz->cz_win_st, cz->cz_win_sh,
586 ZFIRM_SIG_OFF);
587 if (fid == ZFIRM_SIG) {
588 /* MIPS has booted. */
589 break;
590 } else if (fid == ZFIRM_HLT) {
591 /*
592 * The MIPS has halted, usually due to a power
593 * shortage on the expansion module.
594 */
595 aprint_error("%s: MIPS halted; possible power supply "
596 "problem\n", cz->cz_dev.dv_xname);
597 return (EIO);
598 } else {
599 #ifdef CZ_DEBUG
600 if ((i % 8) == 0)
601 aprint_debug(".");
602 #endif
603 delay(250000);
604 }
605 }
606 #ifdef CZ_DEBUG
607 aprint_debug("\n");
608 #endif
609 if (i == 100) {
610 CZ_WIN_FPGA(cz);
611 aprint_error(
612 "%s: MIPS failed to start; wanted 0x%08x got 0x%08x\n",
613 cz->cz_dev.dv_xname, ZFIRM_SIG, fid);
614 aprint_error("%s: FPGA ID 0x%08x, FPGA version 0x%08x\n",
615 cz->cz_dev.dv_xname, CZ_FPGA_READ(cz, FPGA_ID),
616 CZ_FPGA_READ(cz, FPGA_VERSION));
617 return (EIO);
618 }
619
620 /*
621 * Locate the firmware control structures.
622 */
623 cz->cz_fwctl = bus_space_read_4(cz->cz_win_st, cz->cz_win_sh,
624 ZFIRM_CTRLADDR_OFF);
625 #ifdef CZ_DEBUG
626 aprint_debug("%s: FWCTL structure at offset 0x%08lx\n",
627 cz->cz_dev.dv_xname, cz->cz_fwctl);
628 #endif
629
630 CZ_FWCTL_WRITE(cz, BRDCTL_C_OS, C_OS_BSD);
631 CZ_FWCTL_WRITE(cz, BRDCTL_DRVERSION, CZ_DRIVER_VERSION);
632
633 cz->cz_nchannels = CZ_FWCTL_READ(cz, BRDCTL_NCHANNEL);
634
635 switch (cz->cz_mailbox0) {
636 case MAILBOX0_8Zo_V1:
637 board = "Cyclades-8Zo ver. 1";
638 break;
639
640 case MAILBOX0_8Zo_V2:
641 board = "Cyclades-8Zo ver. 2";
642 break;
643
644 case MAILBOX0_Ze_V1:
645 board = "Cyclades-Ze";
646 break;
647
648 default:
649 board = "unknown Cyclades Z-series";
650 break;
651 }
652
653 fid = CZ_FWCTL_READ(cz, BRDCTL_FWVERSION);
654 aprint_normal("%s: %s, ", cz->cz_dev.dv_xname, board);
655 if (cz->cz_nchannels == 0)
656 aprint_normal("no channels attached, ");
657 else
658 aprint_normal("%d channels (ttyCZ%04d..ttyCZ%04d), ",
659 cz->cz_nchannels, cztty_attached_ttys,
660 cztty_attached_ttys + (cz->cz_nchannels - 1));
661 aprint_normal("firmware %x.%x.%x\n",
662 (fid >> 8) & 0xf, (fid >> 4) & 0xf, fid & 0xf);
663
664 return (0);
665 }
666
667 /*
668 * cz_poll:
669 *
670 * This card doesn't do interrupts, so scan it for activity every CZ_POLL_MS
671 * ms.
672 */
673 static void
674 cz_poll(void *arg)
675 {
676 int s = spltty();
677 struct cz_softc *cz = arg;
678
679 cz_intr(cz);
680 callout_reset(&cz->cz_callout, cz_timeout_ticks, cz_poll, cz);
681
682 splx(s);
683 }
684
685 /*
686 * cz_intr:
687 *
688 * Interrupt service routine.
689 *
690 * We either are receiving an interrupt directly from the board, or we are
691 * in polling mode and it's time to poll.
692 */
693 static int
694 cz_intr(void *arg)
695 {
696 int rval = 0;
697 u_int command, channel, param;
698 struct cz_softc *cz = arg;
699 struct cztty_softc *sc;
700 struct tty *tp;
701
702 while ((command = (CZ_PLX_READ(cz, PLX_LOCAL_PCI_DOORBELL) & 0xff))) {
703 rval = 1;
704 channel = CZ_FWCTL_READ(cz, BRDCTL_FWCMD_CHANNEL);
705 param = CZ_FWCTL_READ(cz, BRDCTL_FWCMD_PARAM);
706
707 /* now clear this interrupt, posslibly enabling another */
708 CZ_PLX_WRITE(cz, PLX_LOCAL_PCI_DOORBELL, command);
709
710 if (cz->cz_ports == NULL) {
711 #ifdef CZ_DEBUG
712 printf("%s: interrupt on channel %d, but no channels\n",
713 cz->cz_dev.dv_xname, channel);
714 #endif
715 continue;
716 }
717
718 sc = &cz->cz_ports[channel];
719
720 if (sc->sc_channel == CZTTY_CHANNEL_DEAD)
721 break;
722
723 tp = sc->sc_tty;
724
725 switch (command) {
726 case C_CM_TXFEMPTY: /* transmit cases */
727 case C_CM_TXBEMPTY:
728 case C_CM_TXLOWWM:
729 case C_CM_INTBACK:
730 if (!ISSET(tp->t_state, TS_ISOPEN)) {
731 #ifdef CZ_DEBUG
732 printf("%s: tx intr on closed channel %d\n",
733 cz->cz_dev.dv_xname, channel);
734 #endif
735 break;
736 }
737
738 if (cztty_transmit(sc, tp)) {
739 /*
740 * Do wakeup stuff here.
741 */
742 ttwakeup(tp);
743 wakeup(tp);
744 }
745 break;
746
747 case C_CM_RXNNDT: /* receive cases */
748 case C_CM_RXHIWM:
749 case C_CM_INTBACK2: /* from restart ?? */
750 #if 0
751 case C_CM_ICHAR:
752 #endif
753 if (!ISSET(tp->t_state, TS_ISOPEN)) {
754 CZTTY_BUF_WRITE(sc, BUFCTL_RX_GET,
755 CZTTY_BUF_READ(sc, BUFCTL_RX_PUT));
756 break;
757 }
758
759 if (cztty_receive(sc, tp)) {
760 /*
761 * Do wakeup stuff here.
762 */
763 ttwakeup(tp);
764 wakeup(tp);
765 }
766 break;
767
768 case C_CM_MDCD:
769 if (!ISSET(tp->t_state, TS_ISOPEN))
770 break;
771
772 (void) (*tp->t_linesw->l_modem)(tp,
773 ISSET(C_RS_DCD, CZTTY_CHAN_READ(sc,
774 CHNCTL_RS_STATUS)));
775 break;
776
777 case C_CM_MDSR:
778 case C_CM_MRI:
779 case C_CM_MCTS:
780 case C_CM_MRTS:
781 break;
782
783 case C_CM_IOCTLW:
784 break;
785
786 case C_CM_PR_ERROR:
787 sc->sc_parity_errors++;
788 goto error_common;
789
790 case C_CM_FR_ERROR:
791 sc->sc_framing_errors++;
792 goto error_common;
793
794 case C_CM_OVR_ERROR:
795 sc->sc_overflows++;
796 error_common:
797 if (sc->sc_errors++ == 0)
798 callout_reset(&sc->sc_diag_ch, 60 * hz,
799 cztty_diag, sc);
800 break;
801
802 case C_CM_RXBRK:
803 if (!ISSET(tp->t_state, TS_ISOPEN))
804 break;
805
806 /*
807 * A break is a \000 character with TTY_FE error
808 * flags set. So TTY_FE by itself works.
809 */
810 (*tp->t_linesw->l_rint)(TTY_FE, tp);
811 ttwakeup(tp);
812 wakeup(tp);
813 break;
814
815 default:
816 #ifdef CZ_DEBUG
817 printf("%s: channel %d: Unknown interrupt 0x%x\n",
818 cz->cz_dev.dv_xname, sc->sc_channel, command);
819 #endif
820 break;
821 }
822 }
823
824 return (rval);
825 }
826
827 /*
828 * cz_wait_pci_doorbell:
829 *
830 * Wait for the pci doorbell to be clear - wait for pending
831 * activity to drain.
832 */
833 static int
834 cz_wait_pci_doorbell(struct cz_softc *cz, const char *wstring)
835 {
836 int error;
837
838 while (CZ_PLX_READ(cz, PLX_PCI_LOCAL_DOORBELL)) {
839 error = tsleep(cz, TTIPRI | PCATCH, wstring, max(1, hz/100));
840 if ((error != 0) && (error != EWOULDBLOCK))
841 return (error);
842 }
843 return (0);
844 }
845
846 /*****************************************************************************
847 * Cyclades-Z TTY code starts here...
848 *****************************************************************************/
849
850 #define CZTTYDIALOUT_MASK 0x80000
851
852 #define CZTTY_DIALOUT(dev) (minor((dev)) & CZTTYDIALOUT_MASK)
853 #define CZTTY_CZ(sc) ((sc)->sc_parent)
854
855 #define CZTTY_SOFTC(dev) cztty_getttysoftc(dev)
856
857 static struct cztty_softc *
858 cztty_getttysoftc(dev_t dev)
859 {
860 int i, j, k = 0, u = minor(dev) & ~CZTTYDIALOUT_MASK;
861 struct cz_softc *cz = NULL;
862
863 for (i = 0, j = 0; i < cz_cd.cd_ndevs; i++) {
864 k = j;
865 cz = device_lookup(&cz_cd, i);
866 if (cz == NULL)
867 continue;
868 if (cz->cz_ports == NULL)
869 continue;
870 j += cz->cz_nchannels;
871 if (j > u)
872 break;
873 }
874
875 if (i >= cz_cd.cd_ndevs)
876 return (NULL);
877 else
878 return (&cz->cz_ports[u - k]);
879 }
880
881 /*
882 * czttytty:
883 *
884 * Return a pointer to our tty.
885 */
886 static struct tty *
887 czttytty(dev_t dev)
888 {
889 struct cztty_softc *sc = CZTTY_SOFTC(dev);
890
891 #ifdef DIAGNOSTIC
892 if (sc == NULL)
893 panic("czttytty");
894 #endif
895
896 return (sc->sc_tty);
897 }
898
899 /*
900 * cztty_shutdown:
901 *
902 * Shut down a port.
903 */
904 static void
905 cztty_shutdown(struct cztty_softc *sc)
906 {
907 struct cz_softc *cz = CZTTY_CZ(sc);
908 struct tty *tp = sc->sc_tty;
909 int s;
910
911 s = spltty();
912
913 /* Clear any break condition set with TIOCSBRK. */
914 cztty_break(sc, 0);
915
916 /*
917 * Hang up if necessary. Wait a bit, so the other side has time to
918 * notice even if we immediately open the port again.
919 */
920 if (ISSET(tp->t_cflag, HUPCL)) {
921 cztty_modem(sc, 0);
922 (void) tsleep(tp, TTIPRI, ttclos, hz);
923 }
924
925 /* Disable the channel. */
926 cz_wait_pci_doorbell(cz, "czdis");
927 CZTTY_CHAN_WRITE(sc, CHNCTL_OP_MODE, C_CH_DISABLE);
928 CZ_FWCTL_WRITE(cz, BRDCTL_HCMD_CHANNEL, sc->sc_channel);
929 CZ_PLX_WRITE(cz, PLX_PCI_LOCAL_DOORBELL, C_CM_IOCTL);
930
931 if ((--cz->cz_nopenchan == 0) && (cz->cz_ih == NULL)) {
932 #ifdef CZ_DEBUG
933 printf("%s: Disabling polling\n", cz->cz_dev.dv_xname);
934 #endif
935 callout_stop(&cz->cz_callout);
936 }
937
938 splx(s);
939 }
940
941 /*
942 * czttyopen:
943 *
944 * Open a Cyclades-Z serial port.
945 */
946 static int
947 czttyopen(dev_t dev, int flags, int mode, struct lwp *l)
948 {
949 struct cztty_softc *sc = CZTTY_SOFTC(dev);
950 struct cz_softc *cz;
951 struct tty *tp;
952 int s, error;
953
954 if (sc == NULL)
955 return (ENXIO);
956
957 if (sc->sc_channel == CZTTY_CHANNEL_DEAD)
958 return (ENXIO);
959
960 cz = CZTTY_CZ(sc);
961 tp = sc->sc_tty;
962
963 if (ISSET(tp->t_state, TS_ISOPEN) &&
964 ISSET(tp->t_state, TS_XCLUDE) &&
965 kauth_authorize_generic(l->l_cred, KAUTH_GENERIC_ISSUSER,
966 &l->l_acflag) != 0)
967 return (EBUSY);
968
969 s = spltty();
970
971 /*
972 * Do the following iff this is a first open.
973 */
974 if (!ISSET(tp->t_state, TS_ISOPEN) && (tp->t_wopen == 0)) {
975 struct termios t;
976
977 tp->t_dev = dev;
978
979 /* If we're turning things on, enable interrupts */
980 if ((cz->cz_nopenchan++ == 0) && (cz->cz_ih == NULL)) {
981 #ifdef CZ_DEBUG
982 printf("%s: Enabling polling.\n",
983 cz->cz_dev.dv_xname);
984 #endif
985 callout_reset(&cz->cz_callout, cz_timeout_ticks,
986 cz_poll, cz);
987 }
988
989 /*
990 * Enable the channel. Don't actually ring the
991 * doorbell here; czttyparam() will do it for us.
992 */
993 cz_wait_pci_doorbell(cz, "czopen");
994
995 CZTTY_CHAN_WRITE(sc, CHNCTL_OP_MODE, C_CH_ENABLE);
996
997 /*
998 * Initialize the termios status to the defaults. Add in the
999 * sticky bits from TIOCSFLAGS.
1000 */
1001 t.c_ispeed = 0;
1002 t.c_ospeed = TTYDEF_SPEED;
1003 t.c_cflag = TTYDEF_CFLAG;
1004 if (ISSET(sc->sc_swflags, TIOCFLAG_CLOCAL))
1005 SET(t.c_cflag, CLOCAL);
1006 if (ISSET(sc->sc_swflags, TIOCFLAG_CRTSCTS))
1007 SET(t.c_cflag, CRTSCTS);
1008
1009 /*
1010 * Reset the input and output rings. Do this before
1011 * we call czttyparam(), as that function enables
1012 * the channel.
1013 */
1014 CZTTY_BUF_WRITE(sc, BUFCTL_RX_GET,
1015 CZTTY_BUF_READ(sc, BUFCTL_RX_PUT));
1016 CZTTY_BUF_WRITE(sc, BUFCTL_TX_PUT,
1017 CZTTY_BUF_READ(sc, BUFCTL_TX_GET));
1018
1019 /* Make sure czttyparam() will see changes. */
1020 tp->t_ospeed = 0;
1021 (void) czttyparam(tp, &t);
1022 tp->t_iflag = TTYDEF_IFLAG;
1023 tp->t_oflag = TTYDEF_OFLAG;
1024 tp->t_lflag = TTYDEF_LFLAG;
1025 ttychars(tp);
1026 ttsetwater(tp);
1027
1028 /*
1029 * Turn on DTR. We must always do this, even if carrier is not
1030 * present, because otherwise we'd have to use TIOCSDTR
1031 * immediately after setting CLOCAL, which applications do not
1032 * expect. We always assert DTR while the device is open
1033 * unless explicitly requested to deassert it.
1034 */
1035 cztty_modem(sc, 1);
1036 }
1037
1038 splx(s);
1039
1040 error = ttyopen(tp, CZTTY_DIALOUT(dev), ISSET(flags, O_NONBLOCK));
1041 if (error)
1042 goto bad;
1043
1044 error = (*tp->t_linesw->l_open)(dev, tp);
1045 if (error)
1046 goto bad;
1047
1048 return (0);
1049
1050 bad:
1051 if (!ISSET(tp->t_state, TS_ISOPEN) && tp->t_wopen == 0) {
1052 /*
1053 * We failed to open the device, and nobody else had it opened.
1054 * Clean up the state as appropriate.
1055 */
1056 cztty_shutdown(sc);
1057 }
1058
1059 return (error);
1060 }
1061
1062 /*
1063 * czttyclose:
1064 *
1065 * Close a Cyclades-Z serial port.
1066 */
1067 static int
1068 czttyclose(dev_t dev, int flags, int mode, struct lwp *l)
1069 {
1070 struct cztty_softc *sc = CZTTY_SOFTC(dev);
1071 struct tty *tp = sc->sc_tty;
1072
1073 /* XXX This is for cons.c. */
1074 if (!ISSET(tp->t_state, TS_ISOPEN))
1075 return (0);
1076
1077 (*tp->t_linesw->l_close)(tp, flags);
1078 ttyclose(tp);
1079
1080 if (!ISSET(tp->t_state, TS_ISOPEN) && tp->t_wopen == 0) {
1081 /*
1082 * Although we got a last close, the device may still be in
1083 * use; e.g. if this was the dialout node, and there are still
1084 * processes waiting for carrier on the non-dialout node.
1085 */
1086 cztty_shutdown(sc);
1087 }
1088
1089 return (0);
1090 }
1091
1092 /*
1093 * czttyread:
1094 *
1095 * Read from a Cyclades-Z serial port.
1096 */
1097 static int
1098 czttyread(dev_t dev, struct uio *uio, int flags)
1099 {
1100 struct cztty_softc *sc = CZTTY_SOFTC(dev);
1101 struct tty *tp = sc->sc_tty;
1102
1103 return ((*tp->t_linesw->l_read)(tp, uio, flags));
1104 }
1105
1106 /*
1107 * czttywrite:
1108 *
1109 * Write to a Cyclades-Z serial port.
1110 */
1111 static int
1112 czttywrite(dev_t dev, struct uio *uio, int flags)
1113 {
1114 struct cztty_softc *sc = CZTTY_SOFTC(dev);
1115 struct tty *tp = sc->sc_tty;
1116
1117 return ((*tp->t_linesw->l_write)(tp, uio, flags));
1118 }
1119
1120 /*
1121 * czttypoll:
1122 *
1123 * Poll a Cyclades-Z serial port.
1124 */
1125 static int
1126 czttypoll(dev_t dev, int events, struct lwp *l)
1127 {
1128 struct cztty_softc *sc = CZTTY_SOFTC(dev);
1129 struct tty *tp = sc->sc_tty;
1130
1131 return ((*tp->t_linesw->l_poll)(tp, events, l));
1132 }
1133
1134 /*
1135 * czttyioctl:
1136 *
1137 * Perform a control operation on a Cyclades-Z serial port.
1138 */
1139 static int
1140 czttyioctl(dev_t dev, u_long cmd, caddr_t data, int flag, struct lwp *l)
1141 {
1142 struct cztty_softc *sc = CZTTY_SOFTC(dev);
1143 struct tty *tp = sc->sc_tty;
1144 int s, error;
1145
1146 error = (*tp->t_linesw->l_ioctl)(tp, cmd, data, flag, l);
1147 if (error != EPASSTHROUGH)
1148 return (error);
1149
1150 error = ttioctl(tp, cmd, data, flag, l);
1151 if (error != EPASSTHROUGH)
1152 return (error);
1153
1154 error = 0;
1155
1156 s = spltty();
1157
1158 switch (cmd) {
1159 case TIOCSBRK:
1160 cztty_break(sc, 1);
1161 break;
1162
1163 case TIOCCBRK:
1164 cztty_break(sc, 0);
1165 break;
1166
1167 case TIOCGFLAGS:
1168 *(int *)data = sc->sc_swflags;
1169 break;
1170
1171 case TIOCSFLAGS:
1172 error = kauth_authorize_generic(l->l_cred,
1173 KAUTH_GENERIC_ISSUSER, &l->l_acflag);
1174 if (error)
1175 break;
1176 sc->sc_swflags = *(int *)data;
1177 break;
1178
1179 case TIOCSDTR:
1180 cztty_modem(sc, 1);
1181 break;
1182
1183 case TIOCCDTR:
1184 cztty_modem(sc, 0);
1185 break;
1186
1187 case TIOCMSET:
1188 case TIOCMBIS:
1189 case TIOCMBIC:
1190 tiocm_to_cztty(sc, cmd, *(int *)data);
1191 break;
1192
1193 case TIOCMGET:
1194 *(int *)data = cztty_to_tiocm(sc);
1195 break;
1196
1197 default:
1198 error = EPASSTHROUGH;
1199 break;
1200 }
1201
1202 splx(s);
1203
1204 return (error);
1205 }
1206
1207 /*
1208 * cztty_break:
1209 *
1210 * Set or clear BREAK on a port.
1211 */
1212 static void
1213 cztty_break(struct cztty_softc *sc, int onoff)
1214 {
1215 struct cz_softc *cz = CZTTY_CZ(sc);
1216
1217 cz_wait_pci_doorbell(cz, "czbreak");
1218
1219 CZ_FWCTL_WRITE(cz, BRDCTL_HCMD_CHANNEL, sc->sc_channel);
1220 CZ_PLX_WRITE(cz, PLX_PCI_LOCAL_DOORBELL,
1221 onoff ? C_CM_SET_BREAK : C_CM_CLR_BREAK);
1222 }
1223
1224 /*
1225 * cztty_modem:
1226 *
1227 * Set or clear DTR on a port.
1228 */
1229 static void
1230 cztty_modem(struct cztty_softc *sc, int onoff)
1231 {
1232 struct cz_softc *cz = CZTTY_CZ(sc);
1233
1234 if (sc->sc_rs_control_dtr == 0)
1235 return;
1236
1237 cz_wait_pci_doorbell(cz, "czmod");
1238
1239 if (onoff)
1240 sc->sc_chanctl_rs_control |= sc->sc_rs_control_dtr;
1241 else
1242 sc->sc_chanctl_rs_control &= ~sc->sc_rs_control_dtr;
1243 CZTTY_CHAN_WRITE(sc, CHNCTL_RS_CONTROL, sc->sc_chanctl_rs_control);
1244
1245 CZ_FWCTL_WRITE(cz, BRDCTL_HCMD_CHANNEL, sc->sc_channel);
1246 CZ_PLX_WRITE(cz, PLX_PCI_LOCAL_DOORBELL, C_CM_IOCTLM);
1247 }
1248
1249 /*
1250 * tiocm_to_cztty:
1251 *
1252 * Process TIOCM* ioctls.
1253 */
1254 static void
1255 tiocm_to_cztty(struct cztty_softc *sc, u_long how, int ttybits)
1256 {
1257 struct cz_softc *cz = CZTTY_CZ(sc);
1258 u_int32_t czttybits;
1259
1260 czttybits = 0;
1261 if (ISSET(ttybits, TIOCM_DTR))
1262 SET(czttybits, C_RS_DTR);
1263 if (ISSET(ttybits, TIOCM_RTS))
1264 SET(czttybits, C_RS_RTS);
1265
1266 cz_wait_pci_doorbell(cz, "cztiocm");
1267
1268 switch (how) {
1269 case TIOCMBIC:
1270 CLR(sc->sc_chanctl_rs_control, czttybits);
1271 break;
1272
1273 case TIOCMBIS:
1274 SET(sc->sc_chanctl_rs_control, czttybits);
1275 break;
1276
1277 case TIOCMSET:
1278 CLR(sc->sc_chanctl_rs_control, C_RS_DTR | C_RS_RTS);
1279 SET(sc->sc_chanctl_rs_control, czttybits);
1280 break;
1281 }
1282
1283 CZTTY_CHAN_WRITE(sc, CHNCTL_RS_CONTROL, sc->sc_chanctl_rs_control);
1284
1285 CZ_FWCTL_WRITE(cz, BRDCTL_HCMD_CHANNEL, sc->sc_channel);
1286 CZ_PLX_WRITE(cz, PLX_PCI_LOCAL_DOORBELL, C_CM_IOCTLM);
1287 }
1288
1289 /*
1290 * cztty_to_tiocm:
1291 *
1292 * Process the TIOCMGET ioctl.
1293 */
1294 static int
1295 cztty_to_tiocm(struct cztty_softc *sc)
1296 {
1297 struct cz_softc *cz = CZTTY_CZ(sc);
1298 u_int32_t rs_status, op_mode;
1299 int ttybits = 0;
1300
1301 cz_wait_pci_doorbell(cz, "cztty");
1302
1303 rs_status = CZTTY_CHAN_READ(sc, CHNCTL_RS_STATUS);
1304 op_mode = CZTTY_CHAN_READ(sc, CHNCTL_OP_MODE);
1305
1306 if (ISSET(rs_status, C_RS_RTS))
1307 SET(ttybits, TIOCM_RTS);
1308 if (ISSET(rs_status, C_RS_CTS))
1309 SET(ttybits, TIOCM_CTS);
1310 if (ISSET(rs_status, C_RS_DCD))
1311 SET(ttybits, TIOCM_CAR);
1312 if (ISSET(rs_status, C_RS_DTR))
1313 SET(ttybits, TIOCM_DTR);
1314 if (ISSET(rs_status, C_RS_RI))
1315 SET(ttybits, TIOCM_RNG);
1316 if (ISSET(rs_status, C_RS_DSR))
1317 SET(ttybits, TIOCM_DSR);
1318
1319 if (ISSET(op_mode, C_CH_ENABLE))
1320 SET(ttybits, TIOCM_LE);
1321
1322 return (ttybits);
1323 }
1324
1325 /*
1326 * czttyparam:
1327 *
1328 * Set Cyclades-Z serial port parameters from termios.
1329 *
1330 * XXX Should just copy the whole termios after making
1331 * XXX sure all the changes could be done.
1332 */
1333 static int
1334 czttyparam(struct tty *tp, struct termios *t)
1335 {
1336 struct cztty_softc *sc = CZTTY_SOFTC(tp->t_dev);
1337 struct cz_softc *cz = CZTTY_CZ(sc);
1338 u_int32_t rs_status;
1339 int ospeed, cflag;
1340
1341 ospeed = t->c_ospeed;
1342 cflag = t->c_cflag;
1343
1344 /* Check requested parameters. */
1345 if (ospeed < 0)
1346 return (EINVAL);
1347 if (t->c_ispeed && t->c_ispeed != ospeed)
1348 return (EINVAL);
1349
1350 if (ISSET(sc->sc_swflags, TIOCFLAG_SOFTCAR)) {
1351 SET(cflag, CLOCAL);
1352 CLR(cflag, HUPCL);
1353 }
1354
1355 /*
1356 * If there were no changes, don't do anything. This avoids dropping
1357 * input and improves performance when all we did was frob things like
1358 * VMIN and VTIME.
1359 */
1360 if (tp->t_ospeed == ospeed &&
1361 tp->t_cflag == cflag)
1362 return (0);
1363
1364 /* Data bits. */
1365 sc->sc_chanctl_comm_data_l = 0;
1366 switch (t->c_cflag & CSIZE) {
1367 case CS5:
1368 sc->sc_chanctl_comm_data_l |= C_DL_CS5;
1369 break;
1370
1371 case CS6:
1372 sc->sc_chanctl_comm_data_l |= C_DL_CS6;
1373 break;
1374
1375 case CS7:
1376 sc->sc_chanctl_comm_data_l |= C_DL_CS7;
1377 break;
1378
1379 case CS8:
1380 sc->sc_chanctl_comm_data_l |= C_DL_CS8;
1381 break;
1382 }
1383
1384 /* Stop bits. */
1385 if (t->c_cflag & CSTOPB) {
1386 if ((sc->sc_chanctl_comm_data_l & C_DL_CS) == C_DL_CS5)
1387 sc->sc_chanctl_comm_data_l |= C_DL_15STOP;
1388 else
1389 sc->sc_chanctl_comm_data_l |= C_DL_2STOP;
1390 } else
1391 sc->sc_chanctl_comm_data_l |= C_DL_1STOP;
1392
1393 /* Parity. */
1394 if (t->c_cflag & PARENB) {
1395 if (t->c_cflag & PARODD)
1396 sc->sc_chanctl_comm_parity = C_PR_ODD;
1397 else
1398 sc->sc_chanctl_comm_parity = C_PR_EVEN;
1399 } else
1400 sc->sc_chanctl_comm_parity = C_PR_NONE;
1401
1402 /*
1403 * Initialize flow control pins depending on the current flow control
1404 * mode.
1405 */
1406 if (ISSET(t->c_cflag, CRTSCTS)) {
1407 sc->sc_rs_control_dtr = C_RS_DTR;
1408 sc->sc_chanctl_hw_flow = C_RS_CTS | C_RS_RTS;
1409 } else if (ISSET(t->c_cflag, MDMBUF)) {
1410 sc->sc_rs_control_dtr = 0;
1411 sc->sc_chanctl_hw_flow = C_RS_DCD | C_RS_DTR;
1412 } else {
1413 /*
1414 * If no flow control, then always set RTS. This will make
1415 * the other side happy if it mistakenly thinks we're doing
1416 * RTS/CTS flow control.
1417 */
1418 sc->sc_rs_control_dtr = C_RS_DTR | C_RS_RTS;
1419 sc->sc_chanctl_hw_flow = 0;
1420 if (ISSET(sc->sc_chanctl_rs_control, C_RS_DTR))
1421 SET(sc->sc_chanctl_rs_control, C_RS_RTS);
1422 else
1423 CLR(sc->sc_chanctl_rs_control, C_RS_RTS);
1424 }
1425
1426 /* Baud rate. */
1427 sc->sc_chanctl_comm_baud = ospeed;
1428
1429 /* Copy to tty. */
1430 tp->t_ispeed = 0;
1431 tp->t_ospeed = t->c_ospeed;
1432 tp->t_cflag = t->c_cflag;
1433
1434 /*
1435 * Now load the channel control structure.
1436 */
1437
1438 cz_wait_pci_doorbell(cz, "czparam");
1439
1440 CZTTY_CHAN_WRITE(sc, CHNCTL_COMM_BAUD, sc->sc_chanctl_comm_baud);
1441 CZTTY_CHAN_WRITE(sc, CHNCTL_COMM_DATA_L, sc->sc_chanctl_comm_data_l);
1442 CZTTY_CHAN_WRITE(sc, CHNCTL_COMM_PARITY, sc->sc_chanctl_comm_parity);
1443 CZTTY_CHAN_WRITE(sc, CHNCTL_HW_FLOW, sc->sc_chanctl_hw_flow);
1444 CZTTY_CHAN_WRITE(sc, CHNCTL_RS_CONTROL, sc->sc_chanctl_rs_control);
1445
1446 CZ_FWCTL_WRITE(cz, BRDCTL_HCMD_CHANNEL, sc->sc_channel);
1447 CZ_PLX_WRITE(cz, PLX_PCI_LOCAL_DOORBELL, C_CM_IOCTLW);
1448
1449 cz_wait_pci_doorbell(cz, "czparam");
1450
1451 CZ_FWCTL_WRITE(cz, BRDCTL_HCMD_CHANNEL, sc->sc_channel);
1452 CZ_PLX_WRITE(cz, PLX_PCI_LOCAL_DOORBELL, C_CM_IOCTLM);
1453
1454 cz_wait_pci_doorbell(cz, "czparam");
1455
1456 /*
1457 * Update the tty layer's idea of the carrier bit, in case we changed
1458 * CLOCAL. We don't hang up here; we only do that by explicit
1459 * request.
1460 */
1461 rs_status = CZTTY_CHAN_READ(sc, CHNCTL_RS_STATUS);
1462 (void) (*tp->t_linesw->l_modem)(tp, ISSET(rs_status, C_RS_DCD));
1463
1464 return (0);
1465 }
1466
1467 /*
1468 * czttystart:
1469 *
1470 * Start or restart transmission.
1471 */
1472 static void
1473 czttystart(struct tty *tp)
1474 {
1475 struct cztty_softc *sc = CZTTY_SOFTC(tp->t_dev);
1476 int s;
1477
1478 s = spltty();
1479 if (ISSET(tp->t_state, TS_BUSY | TS_TIMEOUT | TS_TTSTOP))
1480 goto out;
1481
1482 if (tp->t_outq.c_cc <= tp->t_lowat) {
1483 if (ISSET(tp->t_state, TS_ASLEEP)) {
1484 CLR(tp->t_state, TS_ASLEEP);
1485 wakeup(&tp->t_outq);
1486 }
1487 selwakeup(&tp->t_wsel);
1488 if (tp->t_outq.c_cc == 0)
1489 goto out;
1490 }
1491
1492 cztty_transmit(sc, tp);
1493 out:
1494 splx(s);
1495 }
1496
1497 /*
1498 * czttystop:
1499 *
1500 * Stop output, e.g., for ^S or output flush.
1501 */
1502 static void
1503 czttystop(struct tty *tp, int flag)
1504 {
1505
1506 /*
1507 * XXX We don't do anything here, yet. Mostly, I don't know
1508 * XXX exactly how this should be implemented on this device.
1509 * XXX We've given a big chunk of data to the MIPS already,
1510 * XXX and I don't know how we request the MIPS to stop sending
1511 * XXX the data. So, punt for now. --thorpej
1512 */
1513 }
1514
1515 /*
1516 * cztty_diag:
1517 *
1518 * Issue a scheduled diagnostic message.
1519 */
1520 static void
1521 cztty_diag(void *arg)
1522 {
1523 struct cztty_softc *sc = arg;
1524 struct cz_softc *cz = CZTTY_CZ(sc);
1525 u_int overflows, parity_errors, framing_errors;
1526 int s;
1527
1528 s = spltty();
1529
1530 overflows = sc->sc_overflows;
1531 sc->sc_overflows = 0;
1532
1533 parity_errors = sc->sc_parity_errors;
1534 sc->sc_parity_errors = 0;
1535
1536 framing_errors = sc->sc_framing_errors;
1537 sc->sc_framing_errors = 0;
1538
1539 sc->sc_errors = 0;
1540
1541 splx(s);
1542
1543 log(LOG_WARNING,
1544 "%s: channel %d: %u overflow%s, %u parity, %u framing error%s\n",
1545 cz->cz_dev.dv_xname, sc->sc_channel,
1546 overflows, overflows == 1 ? "" : "s",
1547 parity_errors,
1548 framing_errors, framing_errors == 1 ? "" : "s");
1549 }
1550
1551 const struct cdevsw cz_cdevsw = {
1552 czttyopen, czttyclose, czttyread, czttywrite, czttyioctl,
1553 czttystop, czttytty, czttypoll, nommap, ttykqfilter, D_TTY
1554 };
1555
1556 /*
1557 * tx and rx ring buffer size macros:
1558 *
1559 * The transmitter and receiver both use ring buffers. For each one, there
1560 * is a get (consumer) and a put (producer) offset. The get value is the
1561 * next byte to be read from the ring, and the put is the next one to be
1562 * put into the ring. get == put means the ring is empty.
1563 *
1564 * For each ring, the firmware controls one of (get, put) and this driver
1565 * controls the other. For transmission, this driver updates put to point
1566 * past the valid data, and the firmware moves get as bytes are sent. Likewise
1567 * for receive, the driver controls put, and this driver controls get.
1568 */
1569 #define TX_MOVEABLE(g, p, s) (((g) > (p)) ? ((g) - (p) - 1) : ((s) - (p)))
1570 #define RX_MOVEABLE(g, p, s) (((g) > (p)) ? ((s) - (g)) : ((p) - (g)))
1571
1572 /*
1573 * cztty_transmit()
1574 *
1575 * Look at the tty for this port and start sending.
1576 */
1577 static int
1578 cztty_transmit(struct cztty_softc *sc, struct tty *tp)
1579 {
1580 struct cz_softc *cz = CZTTY_CZ(sc);
1581 u_int move, get, put, size, address;
1582 #ifdef HOSTRAMCODE
1583 int error, done = 0;
1584 #else
1585 int done = 0;
1586 #endif
1587
1588 size = CZTTY_BUF_READ(sc, BUFCTL_TX_BUFSIZE);
1589 get = CZTTY_BUF_READ(sc, BUFCTL_TX_GET);
1590 put = CZTTY_BUF_READ(sc, BUFCTL_TX_PUT);
1591 address = CZTTY_BUF_READ(sc, BUFCTL_TX_BUFADDR);
1592
1593 while ((tp->t_outq.c_cc > 0) && ((move = TX_MOVEABLE(get, put, size)))){
1594 #ifdef HOSTRAMCODE
1595 if (0) {
1596 move = min(tp->t_outq.c_cc, move);
1597 error = q_to_b(&tp->t_outq, 0, move);
1598 if (error != move) {
1599 printf("%s: channel %d: error moving to "
1600 "transmit buf\n", cz->cz_dev.dv_xname,
1601 sc->sc_channel);
1602 move = error;
1603 }
1604 } else {
1605 #endif
1606 move = min(ndqb(&tp->t_outq, 0), move);
1607 bus_space_write_region_1(cz->cz_win_st, cz->cz_win_sh,
1608 address + put, tp->t_outq.c_cf, move);
1609 ndflush(&tp->t_outq, move);
1610 #ifdef HOSTRAMCODE
1611 }
1612 #endif
1613
1614 put = ((put + move) % size);
1615 done = 1;
1616 }
1617 if (done) {
1618 CZTTY_BUF_WRITE(sc, BUFCTL_TX_PUT, put);
1619 }
1620 return (done);
1621 }
1622
1623 static int
1624 cztty_receive(struct cztty_softc *sc, struct tty *tp)
1625 {
1626 struct cz_softc *cz = CZTTY_CZ(sc);
1627 u_int get, put, size, address;
1628 int done = 0, ch;
1629
1630 size = CZTTY_BUF_READ(sc, BUFCTL_RX_BUFSIZE);
1631 get = CZTTY_BUF_READ(sc, BUFCTL_RX_GET);
1632 put = CZTTY_BUF_READ(sc, BUFCTL_RX_PUT);
1633 address = CZTTY_BUF_READ(sc, BUFCTL_RX_BUFADDR);
1634
1635 while ((get != put) && ((tp->t_canq.c_cc + tp->t_rawq.c_cc) < tp->t_hiwat)) {
1636 #ifdef HOSTRAMCODE
1637 if (hostram)
1638 ch = ((char *)fifoaddr)[get];
1639 } else {
1640 #endif
1641 ch = bus_space_read_1(cz->cz_win_st, cz->cz_win_sh,
1642 address + get);
1643 #ifdef HOSTRAMCODE
1644 }
1645 #endif
1646 (*tp->t_linesw->l_rint)(ch, tp);
1647 get = (get + 1) % size;
1648 done = 1;
1649 }
1650 if (done) {
1651 CZTTY_BUF_WRITE(sc, BUFCTL_RX_GET, get);
1652 }
1653 return (done);
1654 }
1655