blob: 92df43552f1570b6102e17d0a475475f68ba0995 [file] [log] [blame]
Linus Torvalds1da177e2005-04-16 15:20:36 -07001/*
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 : rioboot.c
24** SID : 1.3
25** Last Modified : 11/6/98 10:33:36
26** Retrieved : 11/6/98 10:33:48
27**
28** ident @(#)rioboot.c 1.3
29**
30** -----------------------------------------------------------------------------
31*/
32
33#ifdef SCCS_LABELS
34static char *_rioboot_c_sccs_ = "@(#)rioboot.c 1.3";
35#endif
36
37#include <linux/module.h>
38#include <linux/slab.h>
39#include <linux/errno.h>
40#include <linux/interrupt.h>
41#include <asm/io.h>
42#include <asm/system.h>
43#include <asm/string.h>
44#include <asm/semaphore.h>
45
46
47#include <linux/termios.h>
48#include <linux/serial.h>
49
50#include <linux/generic_serial.h>
51
52
53
54#include "linux_compat.h"
55#include "rio_linux.h"
56#include "typdef.h"
57#include "pkt.h"
58#include "daemon.h"
59#include "rio.h"
60#include "riospace.h"
61#include "top.h"
62#include "cmdpkt.h"
63#include "map.h"
64#include "riotypes.h"
65#include "rup.h"
66#include "port.h"
67#include "riodrvr.h"
68#include "rioinfo.h"
69#include "func.h"
70#include "errors.h"
71#include "pci.h"
72
73#include "parmmap.h"
74#include "unixrup.h"
75#include "board.h"
76#include "host.h"
77#include "error.h"
78#include "phb.h"
79#include "link.h"
80#include "cmdblk.h"
81#include "route.h"
82
83static int RIOBootComplete( struct rio_info *p, struct Host *HostP, uint Rup, struct PktCmd *PktCmdP );
84
85static uchar
86RIOAtVec2Ctrl[] =
87{
88 /* 0 */ INTERRUPT_DISABLE,
89 /* 1 */ INTERRUPT_DISABLE,
90 /* 2 */ INTERRUPT_DISABLE,
91 /* 3 */ INTERRUPT_DISABLE,
92 /* 4 */ INTERRUPT_DISABLE,
93 /* 5 */ INTERRUPT_DISABLE,
94 /* 6 */ INTERRUPT_DISABLE,
95 /* 7 */ INTERRUPT_DISABLE,
96 /* 8 */ INTERRUPT_DISABLE,
97 /* 9 */ IRQ_9|INTERRUPT_ENABLE,
98 /* 10 */ INTERRUPT_DISABLE,
99 /* 11 */ IRQ_11|INTERRUPT_ENABLE,
100 /* 12 */ IRQ_12|INTERRUPT_ENABLE,
101 /* 13 */ INTERRUPT_DISABLE,
102 /* 14 */ INTERRUPT_DISABLE,
103 /* 15 */ IRQ_15|INTERRUPT_ENABLE
104};
105
106/*
107** Load in the RTA boot code.
108*/
109int
110RIOBootCodeRTA(p, rbp)
111struct rio_info * p;
112struct DownLoad * rbp;
113{
114 int offset;
115
116 func_enter ();
117
118 /* Linux doesn't allow you to disable interrupts during a
119 "copyin". (Crash when a pagefault occurs). */
120 /* disable(oldspl); */
121
122 rio_dprintk (RIO_DEBUG_BOOT, "Data at user address 0x%x\n",(int)rbp->DataP);
123
124 /*
125 ** Check that we have set asside enough memory for this
126 */
127 if ( rbp->Count > SIXTY_FOUR_K ) {
128 rio_dprintk (RIO_DEBUG_BOOT, "RTA Boot Code Too Large!\n");
129 p->RIOError.Error = HOST_FILE_TOO_LARGE;
130 /* restore(oldspl); */
131 func_exit ();
132 return -ENOMEM;
133 }
134
135 if ( p->RIOBooting ) {
136 rio_dprintk (RIO_DEBUG_BOOT, "RTA Boot Code : BUSY BUSY BUSY!\n");
137 p->RIOError.Error = BOOT_IN_PROGRESS;
138 /* restore(oldspl); */
139 func_exit ();
140 return -EBUSY;
141 }
142
143 /*
144 ** The data we load in must end on a (RTA_BOOT_DATA_SIZE) byte boundary,
145 ** so calculate how far we have to move the data up the buffer
146 ** to achieve this.
147 */
148 offset = (RTA_BOOT_DATA_SIZE - (rbp->Count % RTA_BOOT_DATA_SIZE)) %
149 RTA_BOOT_DATA_SIZE;
150
151 /*
152 ** Be clean, and clear the 'unused' portion of the boot buffer,
153 ** because it will (eventually) be part of the Rta run time environment
154 ** and so should be zeroed.
155 */
156 bzero( (caddr_t)p->RIOBootPackets, offset );
157
158 /*
159 ** Copy the data from user space.
160 */
161
162 if ( copyin((int)rbp->DataP,((caddr_t)(p->RIOBootPackets))+offset,
163 rbp->Count) ==COPYFAIL ) {
164 rio_dprintk (RIO_DEBUG_BOOT, "Bad data copy from user space\n");
165 p->RIOError.Error = COPYIN_FAILED;
166 /* restore(oldspl); */
167 func_exit ();
168 return -EFAULT;
169 }
170
171 /*
172 ** Make sure that our copy of the size includes that offset we discussed
173 ** earlier.
174 */
175 p->RIONumBootPkts = (rbp->Count+offset)/RTA_BOOT_DATA_SIZE;
176 p->RIOBootCount = rbp->Count;
177
178 /* restore(oldspl); */
179 func_exit();
180 return 0;
181}
182
183void rio_start_card_running (struct Host * HostP)
184{
185 func_enter ();
186
187 switch ( HostP->Type ) {
188 case RIO_AT:
189 rio_dprintk (RIO_DEBUG_BOOT, "Start ISA card running\n");
190 WBYTE(HostP->Control,
191 BOOT_FROM_RAM | EXTERNAL_BUS_ON
192 | HostP->Mode
193 | RIOAtVec2Ctrl[HostP->Ivec & 0xF] );
194 break;
195
196#ifdef FUTURE_RELEASE
197 case RIO_MCA:
198 /*
199 ** MCA handles IRQ vectors differently, so we don't write
200 ** them to this register.
201 */
202 rio_dprintk (RIO_DEBUG_BOOT, "Start MCA card running\n");
203 WBYTE(HostP->Control, McaTpBootFromRam | McaTpBusEnable | HostP->Mode);
204 break;
205
206 case RIO_EISA:
207 /*
208 ** EISA is totally different and expects OUTBZs to turn it on.
209 */
210 rio_dprintk (RIO_DEBUG_BOOT, "Start EISA card running\n");
211 OUTBZ( HostP->Slot, EISA_CONTROL_PORT, HostP->Mode | RIOEisaVec2Ctrl[HostP->Ivec] | EISA_TP_RUN | EISA_TP_BUS_ENABLE | EISA_TP_BOOT_FROM_RAM );
212 break;
213#endif
214
215 case RIO_PCI:
216 /*
217 ** PCI is much the same as MCA. Everything is once again memory
218 ** mapped, so we are writing to memory registers instead of io
219 ** ports.
220 */
221 rio_dprintk (RIO_DEBUG_BOOT, "Start PCI card running\n");
222 WBYTE(HostP->Control, PCITpBootFromRam | PCITpBusEnable | HostP->Mode);
223 break;
224 default:
225 rio_dprintk (RIO_DEBUG_BOOT, "Unknown host type %d\n", HostP->Type);
226 break;
227 }
228/*
229 printk (KERN_INFO "Done with starting the card\n");
230 func_exit ();
231*/
232 return;
233}
234
235/*
236** Load in the host boot code - load it directly onto all halted hosts
237** of the correct type.
238**
239** Put your rubber pants on before messing with this code - even the magic
240** numbers have trouble understanding what they are doing here.
241*/
242int
243RIOBootCodeHOST(p, rbp)
244struct rio_info * p;
245register struct DownLoad *rbp;
246{
247 register struct Host *HostP;
248 register caddr_t Cad;
249 register PARM_MAP *ParmMapP;
250 register int RupN;
251 int PortN;
252 uint host;
253 caddr_t StartP;
254 BYTE *DestP;
255 int wait_count;
256 ushort OldParmMap;
257 ushort offset; /* It is very important that this is a ushort */
258 /* uint byte; */
259 caddr_t DownCode = NULL;
260 unsigned long flags;
261
262 HostP = NULL; /* Assure the compiler we've initialized it */
263 for ( host=0; host<p->RIONumHosts; host++ ) {
264 rio_dprintk (RIO_DEBUG_BOOT, "Attempt to boot host %d\n",host);
265 HostP = &p->RIOHosts[host];
266
267 rio_dprintk (RIO_DEBUG_BOOT, "Host Type = 0x%x, Mode = 0x%x, IVec = 0x%x\n",
268 HostP->Type, HostP->Mode, HostP->Ivec);
269
270
271 if ( (HostP->Flags & RUN_STATE) != RC_WAITING ) {
272 rio_dprintk (RIO_DEBUG_BOOT, "%s %d already running\n","Host",host);
273 continue;
274 }
275
276 /*
277 ** Grab a 32 bit pointer to the card.
278 */
279 Cad = HostP->Caddr;
280
281 /*
282 ** We are going to (try) and load in rbp->Count bytes.
283 ** The last byte will reside at p->RIOConf.HostLoadBase-1;
284 ** Therefore, we need to start copying at address
285 ** (caddr+p->RIOConf.HostLoadBase-rbp->Count)
286 */
287 StartP = (caddr_t)&Cad[p->RIOConf.HostLoadBase-rbp->Count];
288
289 rio_dprintk (RIO_DEBUG_BOOT, "kernel virtual address for host is 0x%x\n", (int)Cad );
290 rio_dprintk (RIO_DEBUG_BOOT, "kernel virtual address for download is 0x%x\n", (int)StartP);
291 rio_dprintk (RIO_DEBUG_BOOT, "host loadbase is 0x%x\n",p->RIOConf.HostLoadBase);
292 rio_dprintk (RIO_DEBUG_BOOT, "size of download is 0x%x\n", rbp->Count);
293
294 if ( p->RIOConf.HostLoadBase < rbp->Count ) {
295 rio_dprintk (RIO_DEBUG_BOOT, "Bin too large\n");
296 p->RIOError.Error = HOST_FILE_TOO_LARGE;
297 func_exit ();
298 return -EFBIG;
299 }
300 /*
301 ** Ensure that the host really is stopped.
302 ** Disable it's external bus & twang its reset line.
303 */
304 RIOHostReset( HostP->Type, (struct DpRam *)HostP->CardP, HostP->Slot );
305
306 /*
307 ** Copy the data directly from user space to the SRAM.
308 ** This ain't going to be none too clever if the download
309 ** code is bigger than this segment.
310 */
311 rio_dprintk (RIO_DEBUG_BOOT, "Copy in code\n");
312
313 /*
314 ** PCI hostcard can't cope with 32 bit accesses and so need to copy
315 ** data to a local buffer, and then dripfeed the card.
316 */
317 if ( HostP->Type == RIO_PCI ) {
318 /* int offset; */
319
320 DownCode = sysbrk(rbp->Count);
321 if ( !DownCode ) {
322 rio_dprintk (RIO_DEBUG_BOOT, "No system memory available\n");
323 p->RIOError.Error = NOT_ENOUGH_CORE_FOR_PCI_COPY;
324 func_exit ();
325 return -ENOMEM;
326 }
327 bzero(DownCode, rbp->Count);
328
329 if ( copyin((int)rbp->DataP,DownCode,rbp->Count)==COPYFAIL ) {
330 rio_dprintk (RIO_DEBUG_BOOT, "Bad copyin of host data\n");
331 sysfree( DownCode, rbp->Count );
332 p->RIOError.Error = COPYIN_FAILED;
333 func_exit ();
334 return -EFAULT;
335 }
336
337 HostP->Copy( DownCode, StartP, rbp->Count );
338
339 sysfree( DownCode, rbp->Count );
340 }
341 else if ( copyin((int)rbp->DataP,StartP,rbp->Count)==COPYFAIL ) {
342 rio_dprintk (RIO_DEBUG_BOOT, "Bad copyin of host data\n");
343 p->RIOError.Error = COPYIN_FAILED;
344 func_exit ();
345 return -EFAULT;
346 }
347
348 rio_dprintk (RIO_DEBUG_BOOT, "Copy completed\n");
349
350 /*
351 ** S T O P !
352 **
353 ** Upto this point the code has been fairly rational, and possibly
354 ** even straight forward. What follows is a pile of crud that will
355 ** magically turn into six bytes of transputer assembler. Normally
356 ** you would expect an array or something, but, being me, I have
357 ** chosen [been told] to use a technique whereby the startup code
358 ** will be correct if we change the loadbase for the code. Which
359 ** brings us onto another issue - the loadbase is the *end* of the
360 ** code, not the start.
361 **
362 ** If I were you I wouldn't start from here.
363 */
364
365 /*
366 ** We now need to insert a short boot section into
367 ** the memory at the end of Sram2. This is normally (de)composed
368 ** of the last eight bytes of the download code. The
369 ** download has been assembled/compiled to expect to be
370 ** loaded from 0x7FFF downwards. We have loaded it
371 ** at some other address. The startup code goes into the small
372 ** ram window at Sram2, in the last 8 bytes, which are really
373 ** at addresses 0x7FF8-0x7FFF.
374 **
375 ** If the loadbase is, say, 0x7C00, then we need to branch to
376 ** address 0x7BFE to run the host.bin startup code. We assemble
377 ** this jump manually.
378 **
379 ** The two byte sequence 60 08 is loaded into memory at address
380 ** 0x7FFE,F. This is a local branch to location 0x7FF8 (60 is nfix 0,
381 ** which adds '0' to the .O register, complements .O, and then shifts
382 ** it left by 4 bit positions, 08 is a jump .O+8 instruction. This will
383 ** add 8 to .O (which was 0xFFF0), and will branch RELATIVE to the new
384 ** location. Now, the branch starts from the value of .PC (or .IP or
385 ** whatever the bloody register is called on this chip), and the .PC
386 ** will be pointing to the location AFTER the branch, in this case
387 ** .PC == 0x8000, so the branch will be to 0x8000+0xFFF8 = 0x7FF8.
388 **
389 ** A long branch is coded at 0x7FF8. This consists of loading a four
390 ** byte offset into .O using nfix (as above) and pfix operators. The
391 ** pfix operates in exactly the same way as the nfix operator, but
392 ** without the complement operation. The offset, of course, must be
393 ** relative to the address of the byte AFTER the branch instruction,
394 ** which will be (urm) 0x7FFC, so, our final destination of the branch
395 ** (loadbase-2), has to be reached from here. Imagine that the loadbase
396 ** is 0x7C00 (which it is), then we will need to branch to 0x7BFE (which
397 ** is the first byte of the initial two byte short local branch of the
398 ** download code).
399 **
400 ** To code a jump from 0x7FFC (which is where the branch will start
401 ** from) to 0x7BFE, we will need to branch 0xFC02 bytes (0x7FFC+0xFC02)=
402 ** 0x7BFE.
403 ** This will be coded as four bytes:
404 ** 60 2C 20 02
405 ** being nfix .O+0
406 ** pfix .O+C
407 ** pfix .O+0
408 ** jump .O+2
409 **
410 ** The nfix operator is used, so that the startup code will be
411 ** compatible with the whole Tp family. (lies, damn lies, it'll never
412 ** work in a month of Sundays).
413 **
414 ** The nfix nyble is the 1s complement of the nyble value you
415 ** want to load - in this case we wanted 'F' so we nfix loaded '0'.
416 */
417
418
419 /*
420 ** Dest points to the top 8 bytes of Sram2. The Tp jumps
421 ** to 0x7FFE at reset time, and starts executing. This is
422 ** a short branch to 0x7FF8, where a long branch is coded.
423 */
424
425 DestP = (BYTE *)&Cad[0x7FF8]; /* <<<---- READ THE ABOVE COMMENTS */
426
427#define NFIX(N) (0x60 | (N)) /* .O = (~(.O + N))<<4 */
428#define PFIX(N) (0x20 | (N)) /* .O = (.O + N)<<4 */
429#define JUMP(N) (0x00 | (N)) /* .PC = .PC + .O */
430
431 /*
432 ** 0x7FFC is the address of the location following the last byte of
433 ** the four byte jump instruction.
434 ** READ THE ABOVE COMMENTS
435 **
436 ** offset is (TO-FROM) % MEMSIZE, but with compound buggering about.
437 ** Memsize is 64K for this range of Tp, so offset is a short (unsigned,
438 ** cos I don't understand 2's complement).
439 */
440 offset = (p->RIOConf.HostLoadBase-2)-0x7FFC;
441 WBYTE( DestP[0] , NFIX(((ushort)(~offset) >> (ushort)12) & 0xF) );
442 WBYTE( DestP[1] , PFIX(( offset >> 8) & 0xF) );
443 WBYTE( DestP[2] , PFIX(( offset >> 4) & 0xF) );
444 WBYTE( DestP[3] , JUMP( offset & 0xF) );
445
446 WBYTE( DestP[6] , NFIX(0) );
447 WBYTE( DestP[7] , JUMP(8) );
448
449 rio_dprintk (RIO_DEBUG_BOOT, "host loadbase is 0x%x\n",p->RIOConf.HostLoadBase);
450 rio_dprintk (RIO_DEBUG_BOOT, "startup offset is 0x%x\n",offset);
451
452 /*
453 ** Flag what is going on
454 */
455 HostP->Flags &= ~RUN_STATE;
456 HostP->Flags |= RC_STARTUP;
457
458 /*
459 ** Grab a copy of the current ParmMap pointer, so we
460 ** can tell when it has changed.
461 */
462 OldParmMap = RWORD(HostP->__ParmMapR);
463
464 rio_dprintk (RIO_DEBUG_BOOT, "Original parmmap is 0x%x\n",OldParmMap);
465
466 /*
467 ** And start it running (I hope).
468 ** As there is nothing dodgy or obscure about the
469 ** above code, this is guaranteed to work every time.
470 */
471 rio_dprintk (RIO_DEBUG_BOOT, "Host Type = 0x%x, Mode = 0x%x, IVec = 0x%x\n",
472 HostP->Type, HostP->Mode, HostP->Ivec);
473
474 rio_start_card_running(HostP);
475
476 rio_dprintk (RIO_DEBUG_BOOT, "Set control port\n");
477
478 /*
479 ** Now, wait for upto five seconds for the Tp to setup the parmmap
480 ** pointer:
481 */
482 for ( wait_count=0; (wait_count<p->RIOConf.StartupTime)&&
483 (RWORD(HostP->__ParmMapR)==OldParmMap); wait_count++ ) {
484 rio_dprintk (RIO_DEBUG_BOOT, "Checkout %d, 0x%x\n",wait_count,RWORD(HostP->__ParmMapR));
485 delay(HostP, HUNDRED_MS);
486
487 }
488
489 /*
490 ** If the parmmap pointer is unchanged, then the host code
491 ** has crashed & burned in a really spectacular way
492 */
493 if ( RWORD(HostP->__ParmMapR) == OldParmMap ) {
494 rio_dprintk (RIO_DEBUG_BOOT, "parmmap 0x%x\n", RWORD(HostP->__ParmMapR));
495 rio_dprintk (RIO_DEBUG_BOOT, "RIO Mesg Run Fail\n");
496
497#define HOST_DISABLE \
498 HostP->Flags &= ~RUN_STATE; \
499 HostP->Flags |= RC_STUFFED; \
500 RIOHostReset( HostP->Type, (struct DpRam *)HostP->CardP, HostP->Slot );\
501 continue
502
503 HOST_DISABLE;
504 }
505
506 rio_dprintk (RIO_DEBUG_BOOT, "Running 0x%x\n", RWORD(HostP->__ParmMapR));
507
508 /*
509 ** Well, the board thought it was OK, and setup its parmmap
510 ** pointer. For the time being, we will pretend that this
511 ** board is running, and check out what the error flag says.
512 */
513
514 /*
515 ** Grab a 32 bit pointer to the parmmap structure
516 */
517 ParmMapP = (PARM_MAP *)RIO_PTR(Cad,RWORD(HostP->__ParmMapR));
518 rio_dprintk (RIO_DEBUG_BOOT, "ParmMapP : %x\n", (int)ParmMapP);
519 ParmMapP = (PARM_MAP *)((unsigned long)Cad +
520 (unsigned long)((RWORD((HostP->__ParmMapR))) & 0xFFFF));
521 rio_dprintk (RIO_DEBUG_BOOT, "ParmMapP : %x\n", (int)ParmMapP);
522
523 /*
524 ** The links entry should be 0xFFFF; we set it up
525 ** with a mask to say how many PHBs to use, and
526 ** which links to use.
527 */
528 if ( (RWORD(ParmMapP->links) & 0xFFFF) != 0xFFFF ) {
529 rio_dprintk (RIO_DEBUG_BOOT, "RIO Mesg Run Fail %s\n", HostP->Name);
530 rio_dprintk (RIO_DEBUG_BOOT, "Links = 0x%x\n",RWORD(ParmMapP->links));
531 HOST_DISABLE;
532 }
533
534 WWORD(ParmMapP->links , RIO_LINK_ENABLE);
535
536 /*
537 ** now wait for the card to set all the parmmap->XXX stuff
538 ** this is a wait of upto two seconds....
539 */
540 rio_dprintk (RIO_DEBUG_BOOT, "Looking for init_done - %d ticks\n",p->RIOConf.StartupTime);
541 HostP->timeout_id = 0;
542 for ( wait_count=0; (wait_count<p->RIOConf.StartupTime) &&
543 !RWORD(ParmMapP->init_done); wait_count++ ) {
544 rio_dprintk (RIO_DEBUG_BOOT, "Waiting for init_done\n");
545 delay(HostP, HUNDRED_MS);
546 }
547 rio_dprintk (RIO_DEBUG_BOOT, "OK! init_done!\n");
548
549 if (RWORD(ParmMapP->error) != E_NO_ERROR ||
550 !RWORD(ParmMapP->init_done) ) {
551 rio_dprintk (RIO_DEBUG_BOOT, "RIO Mesg Run Fail %s\n", HostP->Name);
552 rio_dprintk (RIO_DEBUG_BOOT, "Timedout waiting for init_done\n");
553 HOST_DISABLE;
554 }
555
556 rio_dprintk (RIO_DEBUG_BOOT, "Got init_done\n");
557
558 /*
559 ** It runs! It runs!
560 */
561 rio_dprintk (RIO_DEBUG_BOOT, "Host ID %x Running\n",HostP->UniqueNum);
562
563 /*
564 ** set the time period between interrupts.
565 */
566 WWORD(ParmMapP->timer, (short)p->RIOConf.Timer );
567
568 /*
569 ** Translate all the 16 bit pointers in the __ParmMapR into
570 ** 32 bit pointers for the driver.
571 */
572 HostP->ParmMapP = ParmMapP;
573 HostP->PhbP = (PHB*)RIO_PTR(Cad,RWORD(ParmMapP->phb_ptr));
574 HostP->RupP = (RUP*)RIO_PTR(Cad,RWORD(ParmMapP->rups));
575 HostP->PhbNumP = (ushort*)RIO_PTR(Cad,RWORD(ParmMapP->phb_num_ptr));
576 HostP->LinkStrP = (LPB*)RIO_PTR(Cad,RWORD(ParmMapP->link_str_ptr));
577
578 /*
579 ** point the UnixRups at the real Rups
580 */
581 for ( RupN = 0; RupN<MAX_RUP; RupN++ ) {
582 HostP->UnixRups[RupN].RupP = &HostP->RupP[RupN];
583 HostP->UnixRups[RupN].Id = RupN+1;
584 HostP->UnixRups[RupN].BaseSysPort = NO_PORT;
585 spin_lock_init(&HostP->UnixRups[RupN].RupLock);
586 }
587
588 for ( RupN = 0; RupN<LINKS_PER_UNIT; RupN++ ) {
589 HostP->UnixRups[RupN+MAX_RUP].RupP = &HostP->LinkStrP[RupN].rup;
590 HostP->UnixRups[RupN+MAX_RUP].Id = 0;
591 HostP->UnixRups[RupN+MAX_RUP].BaseSysPort = NO_PORT;
592 spin_lock_init(&HostP->UnixRups[RupN+MAX_RUP].RupLock);
593 }
594
595 /*
596 ** point the PortP->Phbs at the real Phbs
597 */
598 for ( PortN=p->RIOFirstPortsMapped;
599 PortN<p->RIOLastPortsMapped+PORTS_PER_RTA; PortN++ ) {
600 if ( p->RIOPortp[PortN]->HostP == HostP ) {
601 struct Port *PortP = p->RIOPortp[PortN];
602 struct PHB *PhbP;
603 /* int oldspl; */
604
605 if ( !PortP->Mapped )
606 continue;
607
608 PhbP = &HostP->PhbP[PortP->HostPort];
609 rio_spin_lock_irqsave(&PortP->portSem, flags);
610
611 PortP->PhbP = PhbP;
612
613 PortP->TxAdd = (WORD *)RIO_PTR(Cad,RWORD(PhbP->tx_add));
614 PortP->TxStart = (WORD *)RIO_PTR(Cad,RWORD(PhbP->tx_start));
615 PortP->TxEnd = (WORD *)RIO_PTR(Cad,RWORD(PhbP->tx_end));
616 PortP->RxRemove = (WORD *)RIO_PTR(Cad,RWORD(PhbP->rx_remove));
617 PortP->RxStart = (WORD *)RIO_PTR(Cad,RWORD(PhbP->rx_start));
618 PortP->RxEnd = (WORD *)RIO_PTR(Cad,RWORD(PhbP->rx_end));
619
620 rio_spin_unlock_irqrestore(&PortP->portSem, flags);
621 /*
622 ** point the UnixRup at the base SysPort
623 */
624 if ( !(PortN % PORTS_PER_RTA) )
625 HostP->UnixRups[PortP->RupNum].BaseSysPort = PortN;
626 }
627 }
628
629 rio_dprintk (RIO_DEBUG_BOOT, "Set the card running... \n");
630 /*
631 ** last thing - show the world that everything is in place
632 */
633 HostP->Flags &= ~RUN_STATE;
634 HostP->Flags |= RC_RUNNING;
635 }
636 /*
637 ** MPX always uses a poller. This is actually patched into the system
638 ** configuration and called directly from each clock tick.
639 **
640 */
641 p->RIOPolling = 1;
642
643 p->RIOSystemUp++;
644
645 rio_dprintk (RIO_DEBUG_BOOT, "Done everything %x\n", HostP->Ivec);
646 func_exit ();
647 return 0;
648}
649
650
651
652/*
653** Boot an RTA. If we have successfully processed this boot, then
654** return 1. If we havent, then return 0.
655*/
656int
657RIOBootRup( p, Rup, HostP, PacketP)
658struct rio_info * p;
659uint Rup;
660struct Host *HostP;
661struct PKT *PacketP;
662{
663 struct PktCmd *PktCmdP = (struct PktCmd *)PacketP->data;
664 struct PktCmd_M *PktReplyP;
665 struct CmdBlk *CmdBlkP;
666 uint sequence;
667
Linus Torvalds1da177e2005-04-16 15:20:36 -0700668 /*
669 ** If we haven't been told what to boot, we can't boot it.
670 */
671 if ( p->RIONumBootPkts == 0 ) {
672 rio_dprintk (RIO_DEBUG_BOOT, "No RTA code to download yet\n");
673 return 0;
674 }
675
676 /* rio_dprint(RIO_DEBUG_BOOT, NULL,DBG_BOOT,"Incoming command packet\n"); */
677 /* ShowPacket( DBG_BOOT, PacketP ); */
678
679 /*
680 ** Special case of boot completed - if we get one of these then we
681 ** don't need a command block. For all other cases we do, so handle
682 ** this first and then get a command block, then handle every other
683 ** case, relinquishing the command block if disaster strikes!
684 */
685 if ( (RBYTE(PacketP->len) & PKT_CMD_BIT) &&
686 (RBYTE(PktCmdP->Command)==BOOT_COMPLETED) )
687 return RIOBootComplete(p, HostP, Rup, PktCmdP );
688
689 /*
690 ** try to unhook a command block from the command free list.
691 */
692 if ( !(CmdBlkP = RIOGetCmdBlk()) ) {
693 rio_dprintk (RIO_DEBUG_BOOT, "No command blocks to boot RTA! come back later.\n");
694 return 0;
695 }
696
697 /*
698 ** Fill in the default info on the command block
699 */
700 CmdBlkP->Packet.dest_unit = Rup < (ushort)MAX_RUP ? Rup : 0;
701 CmdBlkP->Packet.dest_port = BOOT_RUP;
702 CmdBlkP->Packet.src_unit = 0;
703 CmdBlkP->Packet.src_port = BOOT_RUP;
704
705 CmdBlkP->PreFuncP = CmdBlkP->PostFuncP = NULL;
706 PktReplyP = (struct PktCmd_M *)CmdBlkP->Packet.data;
707
708 /*
709 ** process COMMANDS on the boot rup!
710 */
711 if ( RBYTE(PacketP->len) & PKT_CMD_BIT ) {
712 /*
713 ** We only expect one type of command - a BOOT_REQUEST!
714 */
715 if ( RBYTE(PktCmdP->Command) != BOOT_REQUEST ) {
716 rio_dprintk (RIO_DEBUG_BOOT, "Unexpected command %d on BOOT RUP %d of host %d\n",
717 PktCmdP->Command,Rup,HostP-p->RIOHosts);
718 ShowPacket( DBG_BOOT, PacketP );
719 RIOFreeCmdBlk( CmdBlkP );
720 return 1;
721 }
722
723 /*
724 ** Build a Boot Sequence command block
725 **
726 ** 02.03.1999 ARG - ESIL 0820 fix
727 ** We no longer need to use "Boot Mode", we'll always allow
728 ** boot requests - the boot will not complete if the device
729 ** appears in the bindings table.
730 ** So, this conditional is not required ...
731 **
732 if (p->RIOBootMode == RC_BOOT_NONE)
733 **
734 ** If the system is in slave mode, and a boot request is
735 ** received, set command to BOOT_ABORT so that the boot
736 ** will not complete.
737 **
738 PktReplyP->Command = BOOT_ABORT;
739 else
740 **
741 ** We'll just (always) set the command field in packet reply
742 ** to allow an attempted boot sequence :
743 */
744 PktReplyP->Command = BOOT_SEQUENCE;
745
746 PktReplyP->BootSequence.NumPackets = p->RIONumBootPkts;
747 PktReplyP->BootSequence.LoadBase = p->RIOConf.RtaLoadBase;
748 PktReplyP->BootSequence.CodeSize = p->RIOBootCount;
749
750 CmdBlkP->Packet.len = BOOT_SEQUENCE_LEN | PKT_CMD_BIT;
751
752 bcopy("BOOT",(void *)&CmdBlkP->Packet.data[BOOT_SEQUENCE_LEN],4);
753
754 rio_dprintk (RIO_DEBUG_BOOT, "Boot RTA on Host %d Rup %d - %d (0x%x) packets to 0x%x\n",
755 HostP-p->RIOHosts, Rup, p->RIONumBootPkts, p->RIONumBootPkts,
756 p->RIOConf.RtaLoadBase);
757
758 /*
759 ** If this host is in slave mode, send the RTA an invalid boot
760 ** sequence command block to force it to kill the boot. We wait
761 ** for half a second before sending this packet to prevent the RTA
762 ** attempting to boot too often. The master host should then grab
763 ** the RTA and make it its own.
764 */
765 p->RIOBooting++;
766 RIOQueueCmdBlk( HostP, Rup, CmdBlkP );
767 return 1;
768 }
769
770 /*
771 ** It is a request for boot data.
772 */
773 sequence = RWORD(PktCmdP->Sequence);
774
775 rio_dprintk (RIO_DEBUG_BOOT, "Boot block %d on Host %d Rup%d\n",sequence,HostP-p->RIOHosts,Rup);
776
777 if ( sequence >= p->RIONumBootPkts ) {
778 rio_dprintk (RIO_DEBUG_BOOT, "Got a request for packet %d, max is %d\n", sequence,
779 p->RIONumBootPkts);
780 ShowPacket( DBG_BOOT, PacketP );
781 }
782
783 PktReplyP->Sequence = sequence;
784
785 bcopy( p->RIOBootPackets[ p->RIONumBootPkts - sequence - 1 ],
786 PktReplyP->BootData, RTA_BOOT_DATA_SIZE );
787
788 CmdBlkP->Packet.len = PKT_MAX_DATA_LEN;
789 ShowPacket( DBG_BOOT, &CmdBlkP->Packet );
790 RIOQueueCmdBlk( HostP, Rup, CmdBlkP );
791 return 1;
792}
793
794/*
795** This function is called when an RTA been booted.
796** If booted by a host, HostP->HostUniqueNum is the booting host.
797** If booted by an RTA, HostP->Mapping[Rup].RtaUniqueNum is the booting RTA.
798** RtaUniq is the booted RTA.
799*/
800static int RIOBootComplete( struct rio_info *p, struct Host *HostP, uint Rup, struct PktCmd *PktCmdP )
801{
802 struct Map *MapP = NULL;
803 struct Map *MapP2 = NULL;
804 int Flag;
805 int found;
806 int host, rta;
807 int EmptySlot = -1;
808 int entry, entry2;
809 char *MyType, *MyName;
810 uint MyLink;
811 ushort RtaType;
812 uint RtaUniq = (RBYTE(PktCmdP->UniqNum[0])) +
813 (RBYTE(PktCmdP->UniqNum[1]) << 8) +
814 (RBYTE(PktCmdP->UniqNum[2]) << 16) +
815 (RBYTE(PktCmdP->UniqNum[3]) << 24);
816
817 /* Was RIOBooting-- . That's bad. If an RTA sends two of them, the
818 driver will never think that the RTA has booted... -- REW */
819 p->RIOBooting = 0;
820
821 rio_dprintk (RIO_DEBUG_BOOT, "RTA Boot completed - BootInProgress now %d\n", p->RIOBooting);
822
823 /*
824 ** Determine type of unit (16/8 port RTA).
825 */
826 RtaType = GetUnitType(RtaUniq);
827 if ( Rup >= (ushort)MAX_RUP ) {
828 rio_dprintk (RIO_DEBUG_BOOT, "RIO: Host %s has booted an RTA(%d) on link %c\n",
829 HostP->Name, 8 * RtaType, RBYTE(PktCmdP->LinkNum)+'A');
830 } else {
831 rio_dprintk (RIO_DEBUG_BOOT, "RIO: RTA %s has booted an RTA(%d) on link %c\n",
832 HostP->Mapping[Rup].Name, 8 * RtaType,
833 RBYTE(PktCmdP->LinkNum)+'A');
834 }
835
836 rio_dprintk (RIO_DEBUG_BOOT, "UniqNum is 0x%x\n",RtaUniq);
837
838 if ( ( RtaUniq == 0x00000000 ) || ( RtaUniq == 0xffffffff ) )
839 {
840 rio_dprintk (RIO_DEBUG_BOOT, "Illegal RTA Uniq Number\n");
841 return TRUE;
842 }
843
844 /*
845 ** If this RTA has just booted an RTA which doesn't belong to this
846 ** system, or the system is in slave mode, do not attempt to create
847 ** a new table entry for it.
848 */
849 if (!RIOBootOk(p, HostP, RtaUniq))
850 {
851 MyLink = RBYTE(PktCmdP->LinkNum);
852 if (Rup < (ushort) MAX_RUP)
853 {
854 /*
855 ** RtaUniq was clone booted (by this RTA). Instruct this RTA
856 ** to hold off further attempts to boot on this link for 30
857 ** seconds.
858 */
859 if (RIOSuspendBootRta(HostP, HostP->Mapping[Rup].ID, MyLink))
860 {
861 rio_dprintk (RIO_DEBUG_BOOT, "RTA failed to suspend booting on link %c\n",
862 'A' + MyLink);
863 }
864 }
865 else
866 {
867 /*
868 ** RtaUniq was booted by this host. Set the booting link
869 ** to hold off for 30 seconds to give another unit a
870 ** chance to boot it.
871 */
872 WWORD(HostP->LinkStrP[MyLink].WaitNoBoot, 30);
873 }
874 rio_dprintk (RIO_DEBUG_BOOT, "RTA %x not owned - suspend booting down link %c on unit %x\n",
875 RtaUniq, 'A' + MyLink, HostP->Mapping[Rup].RtaUniqueNum);
876 return TRUE;
877 }
878
879 /*
880 ** Check for a SLOT_IN_USE entry for this RTA attached to the
881 ** current host card in the driver table.
882 **
883 ** If it exists, make a note that we have booted it. Other parts of
884 ** the driver are interested in this information at a later date,
885 ** in particular when the booting RTA asks for an ID for this unit,
886 ** we must have set the BOOTED flag, and the NEWBOOT flag is used
887 ** to force an open on any ports that where previously open on this
888 ** unit.
889 */
890 for ( entry=0; entry<MAX_RUP; entry++ )
891 {
892 uint sysport;
893
894 if ((HostP->Mapping[entry].Flags & SLOT_IN_USE) &&
895 (HostP->Mapping[entry].RtaUniqueNum==RtaUniq))
896 {
897 HostP->Mapping[entry].Flags |= RTA_BOOTED|RTA_NEWBOOT;
Olaf Hering44456d32005-07-27 11:45:17 -0700898#ifdef NEED_TO_FIX
Linus Torvalds1da177e2005-04-16 15:20:36 -0700899 RIO_SV_BROADCAST(HostP->svFlags[entry]);
900#endif
901 if ( (sysport=HostP->Mapping[entry].SysPort) != NO_PORT )
902 {
903 if ( sysport < p->RIOFirstPortsBooted )
904 p->RIOFirstPortsBooted = sysport;
905 if ( sysport > p->RIOLastPortsBooted )
906 p->RIOLastPortsBooted = sysport;
907 /*
908 ** For a 16 port RTA, check the second bank of 8 ports
909 */
910 if (RtaType == TYPE_RTA16)
911 {
912 entry2 = HostP->Mapping[entry].ID2 - 1;
913 HostP->Mapping[entry2].Flags |= RTA_BOOTED|RTA_NEWBOOT;
Olaf Hering44456d32005-07-27 11:45:17 -0700914#ifdef NEED_TO_FIX
Linus Torvalds1da177e2005-04-16 15:20:36 -0700915 RIO_SV_BROADCAST(HostP->svFlags[entry2]);
916#endif
917 sysport = HostP->Mapping[entry2].SysPort;
918 if ( sysport < p->RIOFirstPortsBooted )
919 p->RIOFirstPortsBooted = sysport;
920 if ( sysport > p->RIOLastPortsBooted )
921 p->RIOLastPortsBooted = sysport;
922 }
923 }
924 if (RtaType == TYPE_RTA16) {
925 rio_dprintk (RIO_DEBUG_BOOT, "RTA will be given IDs %d+%d\n",
926 entry+1, entry2+1);
927 } else {
928 rio_dprintk (RIO_DEBUG_BOOT, "RTA will be given ID %d\n",entry+1);
929 }
930 return TRUE;
931 }
932 }
933
934 rio_dprintk (RIO_DEBUG_BOOT, "RTA not configured for this host\n");
935
936 if ( Rup >= (ushort)MAX_RUP )
937 {
938 /*
939 ** It was a host that did the booting
940 */
941 MyType = "Host";
942 MyName = HostP->Name;
943 }
944 else
945 {
946 /*
947 ** It was an RTA that did the booting
948 */
949 MyType = "RTA";
950 MyName = HostP->Mapping[Rup].Name;
951 }
Linus Torvalds1da177e2005-04-16 15:20:36 -0700952 MyLink = RBYTE(PktCmdP->LinkNum);
953
954 /*
955 ** There is no SLOT_IN_USE entry for this RTA attached to the current
956 ** host card in the driver table.
957 **
958 ** Check for a SLOT_TENTATIVE entry for this RTA attached to the
959 ** current host card in the driver table.
960 **
961 ** If we find one, then we re-use that slot.
962 */
963 for ( entry=0; entry<MAX_RUP; entry++ )
964 {
965 if ( (HostP->Mapping[entry].Flags & SLOT_TENTATIVE) &&
966 (HostP->Mapping[entry].RtaUniqueNum == RtaUniq) )
967 {
968 if (RtaType == TYPE_RTA16)
969 {
970 entry2 = HostP->Mapping[entry].ID2 - 1;
971 if ( (HostP->Mapping[entry2].Flags & SLOT_TENTATIVE) &&
972 (HostP->Mapping[entry2].RtaUniqueNum == RtaUniq) )
973 rio_dprintk (RIO_DEBUG_BOOT, "Found previous tentative slots (%d+%d)\n",
974 entry, entry2);
975 else
976 continue;
977 }
978 else
979 rio_dprintk (RIO_DEBUG_BOOT, "Found previous tentative slot (%d)\n",entry);
980 if (! p->RIONoMessage)
981 cprintf("RTA connected to %s '%s' (%c) not configured.\n",MyType,MyName,MyLink+'A');
982 return TRUE;
983 }
984 }
985
986 /*
987 ** There is no SLOT_IN_USE or SLOT_TENTATIVE entry for this RTA
988 ** attached to the current host card in the driver table.
989 **
990 ** Check if there is a SLOT_IN_USE or SLOT_TENTATIVE entry on another
991 ** host for this RTA in the driver table.
992 **
993 ** For a SLOT_IN_USE entry on another host, we need to delete the RTA
994 ** entry from the other host and add it to this host (using some of
995 ** the functions from table.c which do this).
996 ** For a SLOT_TENTATIVE entry on another host, we must cope with the
997 ** following scenario:
998 **
999 ** + Plug 8 port RTA into host A. (This creates SLOT_TENTATIVE entry
1000 ** in table)
1001 ** + Unplug RTA and plug into host B. (We now have 2 SLOT_TENTATIVE
1002 ** entries)
1003 ** + Configure RTA on host B. (This slot now becomes SLOT_IN_USE)
1004 ** + Unplug RTA and plug back into host A.
1005 ** + Configure RTA on host A. We now have the same RTA configured
1006 ** with different ports on two different hosts.
1007 */
1008 rio_dprintk (RIO_DEBUG_BOOT, "Have we seen RTA %x before?\n", RtaUniq );
1009 found = 0;
1010 Flag = 0; /* Convince the compiler this variable is initialized */
1011 for ( host = 0; !found && (host < p->RIONumHosts); host++ )
1012 {
1013 for ( rta=0; rta<MAX_RUP; rta++ )
1014 {
1015 if ((p->RIOHosts[host].Mapping[rta].Flags &
1016 (SLOT_IN_USE | SLOT_TENTATIVE)) &&
1017 (p->RIOHosts[host].Mapping[rta].RtaUniqueNum==RtaUniq))
1018 {
1019 Flag = p->RIOHosts[host].Mapping[rta].Flags;
1020 MapP = &p->RIOHosts[host].Mapping[rta];
1021 if (RtaType == TYPE_RTA16)
1022 {
1023 MapP2 = &p->RIOHosts[host].Mapping[MapP->ID2 - 1];
1024 rio_dprintk (RIO_DEBUG_BOOT, "This RTA is units %d+%d from host %s\n",
1025 rta+1, MapP->ID2, p->RIOHosts[host].Name);
1026 }
1027 else
1028 rio_dprintk (RIO_DEBUG_BOOT, "This RTA is unit %d from host %s\n",
1029 rta+1, p->RIOHosts[host].Name);
1030 found = 1;
1031 break;
1032 }
1033 }
1034 }
1035
1036 /*
1037 ** There is no SLOT_IN_USE or SLOT_TENTATIVE entry for this RTA
1038 ** attached to the current host card in the driver table.
1039 **
1040 ** If we have not found a SLOT_IN_USE or SLOT_TENTATIVE entry on
1041 ** another host for this RTA in the driver table...
1042 **
1043 ** Check for a SLOT_IN_USE entry for this RTA in the config table.
1044 */
1045 if ( !MapP )
1046 {
1047 rio_dprintk (RIO_DEBUG_BOOT, "Look for RTA %x in RIOSavedTable\n",RtaUniq);
1048 for ( rta=0; rta < TOTAL_MAP_ENTRIES; rta++ )
1049 {
1050 rio_dprintk (RIO_DEBUG_BOOT, "Check table entry %d (%x)",
1051 rta,
1052 p->RIOSavedTable[rta].RtaUniqueNum);
1053
1054 if ( (p->RIOSavedTable[rta].Flags & SLOT_IN_USE) &&
1055 (p->RIOSavedTable[rta].RtaUniqueNum == RtaUniq) )
1056 {
1057 MapP = &p->RIOSavedTable[rta];
1058 Flag = p->RIOSavedTable[rta].Flags;
1059 if (RtaType == TYPE_RTA16)
1060 {
1061 for (entry2 = rta + 1; entry2 < TOTAL_MAP_ENTRIES;
1062 entry2++)
1063 {
1064 if (p->RIOSavedTable[entry2].RtaUniqueNum == RtaUniq)
1065 break;
1066 }
1067 MapP2 = &p->RIOSavedTable[entry2];
1068 rio_dprintk (RIO_DEBUG_BOOT, "This RTA is from table entries %d+%d\n",
1069 rta, entry2);
1070 }
1071 else
1072 rio_dprintk (RIO_DEBUG_BOOT, "This RTA is from table entry %d\n", rta);
1073 break;
1074 }
1075 }
1076 }
1077
1078 /*
1079 ** There is no SLOT_IN_USE or SLOT_TENTATIVE entry for this RTA
1080 ** attached to the current host card in the driver table.
1081 **
1082 ** We may have found a SLOT_IN_USE entry on another host for this
1083 ** RTA in the config table, or a SLOT_IN_USE or SLOT_TENTATIVE entry
1084 ** on another host for this RTA in the driver table.
1085 **
1086 ** Check the driver table for room to fit this newly discovered RTA.
1087 ** RIOFindFreeID() first looks for free slots and if it does not
1088 ** find any free slots it will then attempt to oust any
1089 ** tentative entry in the table.
1090 */
1091 EmptySlot = 1;
1092 if (RtaType == TYPE_RTA16)
1093 {
1094 if (RIOFindFreeID(p, HostP, &entry, &entry2) == 0)
1095 {
1096 RIODefaultName(p, HostP, entry);
1097 FillSlot(entry, entry2, RtaUniq, HostP);
1098 EmptySlot = 0;
1099 }
1100 }
1101 else
1102 {
1103 if (RIOFindFreeID(p, HostP, &entry, NULL) == 0)
1104 {
1105 RIODefaultName(p, HostP, entry);
1106 FillSlot(entry, 0, RtaUniq, HostP);
1107 EmptySlot = 0;
1108 }
1109 }
1110
1111 /*
1112 ** There is no SLOT_IN_USE or SLOT_TENTATIVE entry for this RTA
1113 ** attached to the current host card in the driver table.
1114 **
1115 ** If we found a SLOT_IN_USE entry on another host for this
1116 ** RTA in the config or driver table, and there are enough free
1117 ** slots in the driver table, then we need to move it over and
1118 ** delete it from the other host.
1119 ** If we found a SLOT_TENTATIVE entry on another host for this
1120 ** RTA in the driver table, just delete the other host entry.
1121 */
1122 if (EmptySlot == 0)
1123 {
1124 if ( MapP )
1125 {
1126 if (Flag & SLOT_IN_USE)
1127 {
1128 rio_dprintk (RIO_DEBUG_BOOT,
1129 "This RTA configured on another host - move entry to current host (1)\n");
1130 HostP->Mapping[entry].SysPort = MapP->SysPort;
1131 CCOPY( MapP->Name, HostP->Mapping[entry].Name, MAX_NAME_LEN );
1132 HostP->Mapping[entry].Flags =
1133 SLOT_IN_USE | RTA_BOOTED | RTA_NEWBOOT;
Olaf Hering44456d32005-07-27 11:45:17 -07001134#ifdef NEED_TO_FIX
Linus Torvalds1da177e2005-04-16 15:20:36 -07001135 RIO_SV_BROADCAST(HostP->svFlags[entry]);
1136#endif
1137 RIOReMapPorts( p, HostP, &HostP->Mapping[entry] );
1138 if ( HostP->Mapping[entry].SysPort < p->RIOFirstPortsBooted )
1139 p->RIOFirstPortsBooted = HostP->Mapping[entry].SysPort;
1140 if ( HostP->Mapping[entry].SysPort > p->RIOLastPortsBooted )
1141 p->RIOLastPortsBooted = HostP->Mapping[entry].SysPort;
1142 rio_dprintk (RIO_DEBUG_BOOT, "SysPort %d, Name %s\n",(int)MapP->SysPort,MapP->Name);
1143 }
1144 else
1145 {
1146 rio_dprintk (RIO_DEBUG_BOOT,
1147 "This RTA has a tentative entry on another host - delete that entry (1)\n");
1148 HostP->Mapping[entry].Flags =
1149 SLOT_TENTATIVE | RTA_BOOTED | RTA_NEWBOOT;
Olaf Hering44456d32005-07-27 11:45:17 -07001150#ifdef NEED_TO_FIX
Linus Torvalds1da177e2005-04-16 15:20:36 -07001151 RIO_SV_BROADCAST(HostP->svFlags[entry]);
1152#endif
1153 }
1154 if (RtaType == TYPE_RTA16)
1155 {
1156 if (Flag & SLOT_IN_USE)
1157 {
1158 HostP->Mapping[entry2].Flags = SLOT_IN_USE |
1159 RTA_BOOTED | RTA_NEWBOOT | RTA16_SECOND_SLOT;
Olaf Hering44456d32005-07-27 11:45:17 -07001160#ifdef NEED_TO_FIX
Linus Torvalds1da177e2005-04-16 15:20:36 -07001161 RIO_SV_BROADCAST(HostP->svFlags[entry2]);
1162#endif
1163 HostP->Mapping[entry2].SysPort = MapP2->SysPort;
1164 /*
1165 ** Map second block of ttys for 16 port RTA
1166 */
1167 RIOReMapPorts( p, HostP, &HostP->Mapping[entry2] );
1168 if (HostP->Mapping[entry2].SysPort < p->RIOFirstPortsBooted)
1169 p->RIOFirstPortsBooted = HostP->Mapping[entry2].SysPort;
1170 if (HostP->Mapping[entry2].SysPort > p->RIOLastPortsBooted)
1171 p->RIOLastPortsBooted = HostP->Mapping[entry2].SysPort;
1172 rio_dprintk (RIO_DEBUG_BOOT, "SysPort %d, Name %s\n",
1173 (int)HostP->Mapping[entry2].SysPort,
1174 HostP->Mapping[entry].Name);
1175 }
1176 else
1177 HostP->Mapping[entry2].Flags = SLOT_TENTATIVE |
1178 RTA_BOOTED | RTA_NEWBOOT | RTA16_SECOND_SLOT;
Olaf Hering44456d32005-07-27 11:45:17 -07001179#ifdef NEED_TO_FIX
Linus Torvalds1da177e2005-04-16 15:20:36 -07001180 RIO_SV_BROADCAST(HostP->svFlags[entry2]);
1181#endif
1182 bzero( (caddr_t)MapP2, sizeof(struct Map) );
1183 }
1184 bzero( (caddr_t)MapP, sizeof(struct Map) );
1185 if (! p->RIONoMessage)
1186 cprintf("An orphaned RTA has been adopted by %s '%s' (%c).\n",MyType,MyName,MyLink+'A');
1187 }
1188 else if (! p->RIONoMessage)
1189 cprintf("RTA connected to %s '%s' (%c) not configured.\n",MyType,MyName,MyLink+'A');
1190 RIOSetChange(p);
1191 return TRUE;
1192 }
1193
1194 /*
1195 ** There is no room in the driver table to make an entry for the
1196 ** booted RTA. Keep a note of its Uniq Num in the overflow table,
1197 ** so we can ignore it's ID requests.
1198 */
1199 if (! p->RIONoMessage)
1200 cprintf("The RTA connected to %s '%s' (%c) cannot be configured. You cannot configure more than 128 ports to one host card.\n",MyType,MyName,MyLink+'A');
1201 for ( entry=0; entry<HostP->NumExtraBooted; entry++ )
1202 {
1203 if ( HostP->ExtraUnits[entry] == RtaUniq )
1204 {
1205 /*
1206 ** already got it!
1207 */
1208 return TRUE;
1209 }
1210 }
1211 /*
1212 ** If there is room, add the unit to the list of extras
1213 */
1214 if ( HostP->NumExtraBooted < MAX_EXTRA_UNITS )
1215 HostP->ExtraUnits[HostP->NumExtraBooted++] = RtaUniq;
1216 return TRUE;
1217}
1218
1219
1220/*
1221** If the RTA or its host appears in the RIOBindTab[] structure then
1222** we mustn't boot the RTA and should return FALSE.
1223** This operation is slightly different from the other drivers for RIO
1224** in that this is designed to work with the new utilities
1225** not config.rio and is FAR SIMPLER.
1226** We no longer support the RIOBootMode variable. It is all done from the
1227** "boot/noboot" field in the rio.cf file.
1228*/
1229int
1230RIOBootOk(p, HostP, RtaUniq)
1231struct rio_info * p;
1232struct Host * HostP;
1233ulong RtaUniq;
1234{
1235 int Entry;
1236 uint HostUniq = HostP->UniqueNum;
1237
1238 /*
1239 ** Search bindings table for RTA or its parent.
1240 ** If it exists, return 0, else 1.
1241 */
1242 for (Entry = 0;
1243 ( Entry < MAX_RTA_BINDINGS ) && ( p->RIOBindTab[Entry] != 0 );
1244 Entry++)
1245 {
1246 if ( (p->RIOBindTab[Entry] == HostUniq) ||
1247 (p->RIOBindTab[Entry] == RtaUniq) )
1248 return 0;
1249 }
1250 return 1;
1251}
1252
1253/*
1254** Make an empty slot tentative. If this is a 16 port RTA, make both
1255** slots tentative, and the second one RTA_SECOND_SLOT as well.
1256*/
1257
1258void
1259FillSlot(entry, entry2, RtaUniq, HostP)
1260int entry;
1261int entry2;
1262uint RtaUniq;
1263struct Host *HostP;
1264{
1265 int link;
1266
1267 rio_dprintk (RIO_DEBUG_BOOT, "FillSlot(%d, %d, 0x%x...)\n", entry, entry2, RtaUniq);
1268
1269 HostP->Mapping[entry].Flags = (RTA_BOOTED | RTA_NEWBOOT | SLOT_TENTATIVE);
1270 HostP->Mapping[entry].SysPort = NO_PORT;
1271 HostP->Mapping[entry].RtaUniqueNum = RtaUniq;
1272 HostP->Mapping[entry].HostUniqueNum = HostP->UniqueNum;
1273 HostP->Mapping[entry].ID = entry + 1;
1274 HostP->Mapping[entry].ID2 = 0;
1275 if (entry2) {
1276 HostP->Mapping[entry2].Flags = (RTA_BOOTED | RTA_NEWBOOT |
1277 SLOT_TENTATIVE | RTA16_SECOND_SLOT);
1278 HostP->Mapping[entry2].SysPort = NO_PORT;
1279 HostP->Mapping[entry2].RtaUniqueNum = RtaUniq;
1280 HostP->Mapping[entry2].HostUniqueNum = HostP->UniqueNum;
1281 HostP->Mapping[entry2].Name[0] = '\0';
1282 HostP->Mapping[entry2].ID = entry2 + 1;
1283 HostP->Mapping[entry2].ID2 = entry + 1;
1284 HostP->Mapping[entry].ID2 = entry2 + 1;
1285 }
1286 /*
1287 ** Must set these up, so that utilities show
1288 ** topology of 16 port RTAs correctly
1289 */
1290 for ( link=0; link<LINKS_PER_UNIT; link++ ) {
1291 HostP->Mapping[entry].Topology[link].Unit = ROUTE_DISCONNECT;
1292 HostP->Mapping[entry].Topology[link].Link = NO_LINK;
1293 if (entry2) {
1294 HostP->Mapping[entry2].Topology[link].Unit = ROUTE_DISCONNECT;
1295 HostP->Mapping[entry2].Topology[link].Link = NO_LINK;
1296 }
1297 }
1298}
1299