cpu_subr.c revision 1.70 1 /* $NetBSD: cpu_subr.c,v 1.70 2011/06/29 06:00:17 matt Exp $ */
2
3 /*-
4 * Copyright (c) 2001 Matt Thomas.
5 * Copyright (c) 2001 Tsubai Masanari.
6 * Copyright (c) 1998, 1999, 2001 Internet Research Institute, Inc.
7 * All rights reserved.
8 *
9 * Redistribution and use in source and binary forms, with or without
10 * modification, are permitted provided that the following conditions
11 * are met:
12 * 1. Redistributions of source code must retain the above copyright
13 * notice, this list of conditions and the following disclaimer.
14 * 2. Redistributions in binary form must reproduce the above copyright
15 * notice, this list of conditions and the following disclaimer in the
16 * documentation and/or other materials provided with the distribution.
17 * 3. All advertising materials mentioning features or use of this software
18 * must display the following acknowledgement:
19 * This product includes software developed by
20 * Internet Research Institute, Inc.
21 * 4. The name of the author may not be used to endorse or promote products
22 * derived from this software without specific prior written permission.
23 *
24 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
25 * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
26 * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
27 * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
28 * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
29 * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
30 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
31 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
32 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
33 * OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
34 */
35
36 #include <sys/cdefs.h>
37 __KERNEL_RCSID(0, "$NetBSD: cpu_subr.c,v 1.70 2011/06/29 06:00:17 matt Exp $");
38
39 #include "opt_ppcparam.h"
40 #include "opt_multiprocessor.h"
41 #include "opt_altivec.h"
42 #include "sysmon_envsys.h"
43
44 #include <sys/param.h>
45 #include <sys/systm.h>
46 #include <sys/device.h>
47 #include <sys/types.h>
48 #include <sys/lwp.h>
49 #include <sys/malloc.h>
50 #include <sys/xcall.h>
51
52 #include <uvm/uvm.h>
53
54 #include <powerpc/pcb.h>
55 #include <powerpc/psl.h>
56 #include <powerpc/spr.h>
57 #include <powerpc/oea/hid.h>
58 #include <powerpc/oea/hid_601.h>
59 #include <powerpc/oea/spr.h>
60 #include <powerpc/oea/cpufeat.h>
61
62 #include <dev/sysmon/sysmonvar.h>
63
64 static void cpu_enable_l2cr(register_t);
65 static void cpu_enable_l3cr(register_t);
66 static void cpu_config_l2cr(int);
67 static void cpu_config_l3cr(int);
68 static void cpu_probe_speed(struct cpu_info *);
69 static void cpu_idlespin(void);
70 static void cpu_set_dfs_xcall(void *, void *);
71 #if NSYSMON_ENVSYS > 0
72 static void cpu_tau_setup(struct cpu_info *);
73 static void cpu_tau_refresh(struct sysmon_envsys *, envsys_data_t *);
74 #endif
75
76 int cpu;
77 int ncpus;
78
79 struct fmttab {
80 register_t fmt_mask;
81 register_t fmt_value;
82 const char *fmt_string;
83 };
84
85 /*
86 * This should be one per CPU but since we only support it on 750 variants it
87 * doesn't realy matter since none of them supports SMP
88 */
89 envsys_data_t sensor;
90
91 static const struct fmttab cpu_7450_l2cr_formats[] = {
92 { L2CR_L2E, 0, " disabled" },
93 { L2CR_L2DO|L2CR_L2IO, L2CR_L2DO, " data-only" },
94 { L2CR_L2DO|L2CR_L2IO, L2CR_L2IO, " instruction-only" },
95 { L2CR_L2DO|L2CR_L2IO, L2CR_L2DO|L2CR_L2IO, " locked" },
96 { L2CR_L2E, ~0, " 256KB L2 cache" },
97 { L2CR_L2PE, 0, " no parity" },
98 { L2CR_L2PE, ~0, " parity enabled" },
99 { 0, 0, NULL }
100 };
101
102 static const struct fmttab cpu_7448_l2cr_formats[] = {
103 { L2CR_L2E, 0, " disabled" },
104 { L2CR_L2DO|L2CR_L2IO, L2CR_L2DO, " data-only" },
105 { L2CR_L2DO|L2CR_L2IO, L2CR_L2IO, " instruction-only" },
106 { L2CR_L2DO|L2CR_L2IO, L2CR_L2DO|L2CR_L2IO, " locked" },
107 { L2CR_L2E, ~0, " 1MB L2 cache" },
108 { L2CR_L2PE, 0, " no parity" },
109 { L2CR_L2PE, ~0, " parity enabled" },
110 { 0, 0, NULL }
111 };
112
113 static const struct fmttab cpu_7457_l2cr_formats[] = {
114 { L2CR_L2E, 0, " disabled" },
115 { L2CR_L2DO|L2CR_L2IO, L2CR_L2DO, " data-only" },
116 { L2CR_L2DO|L2CR_L2IO, L2CR_L2IO, " instruction-only" },
117 { L2CR_L2DO|L2CR_L2IO, L2CR_L2DO|L2CR_L2IO, " locked" },
118 { L2CR_L2E, ~0, " 512KB L2 cache" },
119 { L2CR_L2PE, 0, " no parity" },
120 { L2CR_L2PE, ~0, " parity enabled" },
121 { 0, 0, NULL }
122 };
123
124 static const struct fmttab cpu_7450_l3cr_formats[] = {
125 { L3CR_L3DO|L3CR_L3IO, L3CR_L3DO, " data-only" },
126 { L3CR_L3DO|L3CR_L3IO, L3CR_L3IO, " instruction-only" },
127 { L3CR_L3DO|L3CR_L3IO, L3CR_L3DO|L3CR_L3IO, " locked" },
128 { L3CR_L3SIZ, L3SIZ_2M, " 2MB" },
129 { L3CR_L3SIZ, L3SIZ_1M, " 1MB" },
130 { L3CR_L3PE|L3CR_L3APE, L3CR_L3PE|L3CR_L3APE, " parity" },
131 { L3CR_L3PE|L3CR_L3APE, L3CR_L3PE, " data-parity" },
132 { L3CR_L3PE|L3CR_L3APE, L3CR_L3APE, " address-parity" },
133 { L3CR_L3PE|L3CR_L3APE, 0, " no-parity" },
134 { L3CR_L3SIZ, ~0, " L3 cache" },
135 { L3CR_L3RT, L3RT_MSUG2_DDR, " (DDR SRAM)" },
136 { L3CR_L3RT, L3RT_PIPELINE_LATE, " (LW SRAM)" },
137 { L3CR_L3RT, L3RT_PB2_SRAM, " (PB2 SRAM)" },
138 { L3CR_L3CLK, ~0, " at" },
139 { L3CR_L3CLK, L3CLK_20, " 2:1" },
140 { L3CR_L3CLK, L3CLK_25, " 2.5:1" },
141 { L3CR_L3CLK, L3CLK_30, " 3:1" },
142 { L3CR_L3CLK, L3CLK_35, " 3.5:1" },
143 { L3CR_L3CLK, L3CLK_40, " 4:1" },
144 { L3CR_L3CLK, L3CLK_50, " 5:1" },
145 { L3CR_L3CLK, L3CLK_60, " 6:1" },
146 { L3CR_L3CLK, ~0, " ratio" },
147 { 0, 0, NULL },
148 };
149
150 static const struct fmttab cpu_ibm750_l2cr_formats[] = {
151 { L2CR_L2E, 0, " disabled" },
152 { L2CR_L2DO|L2CR_L2IO, L2CR_L2DO, " data-only" },
153 { L2CR_L2DO|L2CR_L2IO, L2CR_L2IO, " instruction-only" },
154 { L2CR_L2DO|L2CR_L2IO, L2CR_L2DO|L2CR_L2IO, " locked" },
155 { 0, ~0, " 512KB" },
156 { L2CR_L2WT, L2CR_L2WT, " WT" },
157 { L2CR_L2WT, 0, " WB" },
158 { L2CR_L2PE, L2CR_L2PE, " with ECC" },
159 { 0, ~0, " L2 cache" },
160 { 0, 0, NULL }
161 };
162
163 static const struct fmttab cpu_l2cr_formats[] = {
164 { L2CR_L2E, 0, " disabled" },
165 { L2CR_L2DO|L2CR_L2IO, L2CR_L2DO, " data-only" },
166 { L2CR_L2DO|L2CR_L2IO, L2CR_L2IO, " instruction-only" },
167 { L2CR_L2DO|L2CR_L2IO, L2CR_L2DO|L2CR_L2IO, " locked" },
168 { L2CR_L2PE, L2CR_L2PE, " parity" },
169 { L2CR_L2PE, 0, " no-parity" },
170 { L2CR_L2SIZ, L2SIZ_2M, " 2MB" },
171 { L2CR_L2SIZ, L2SIZ_1M, " 1MB" },
172 { L2CR_L2SIZ, L2SIZ_512K, " 512KB" },
173 { L2CR_L2SIZ, L2SIZ_256K, " 256KB" },
174 { L2CR_L2WT, L2CR_L2WT, " WT" },
175 { L2CR_L2WT, 0, " WB" },
176 { L2CR_L2E, ~0, " L2 cache" },
177 { L2CR_L2RAM, L2RAM_FLOWTHRU_BURST, " (FB SRAM)" },
178 { L2CR_L2RAM, L2RAM_PIPELINE_LATE, " (LW SRAM)" },
179 { L2CR_L2RAM, L2RAM_PIPELINE_BURST, " (PB SRAM)" },
180 { L2CR_L2CLK, ~0, " at" },
181 { L2CR_L2CLK, L2CLK_10, " 1:1" },
182 { L2CR_L2CLK, L2CLK_15, " 1.5:1" },
183 { L2CR_L2CLK, L2CLK_20, " 2:1" },
184 { L2CR_L2CLK, L2CLK_25, " 2.5:1" },
185 { L2CR_L2CLK, L2CLK_30, " 3:1" },
186 { L2CR_L2CLK, L2CLK_35, " 3.5:1" },
187 { L2CR_L2CLK, L2CLK_40, " 4:1" },
188 { L2CR_L2CLK, ~0, " ratio" },
189 { 0, 0, NULL }
190 };
191
192 static void cpu_fmttab_print(const struct fmttab *, register_t);
193
194 struct cputab {
195 const char name[8];
196 uint16_t version;
197 uint16_t revfmt;
198 };
199 #define REVFMT_MAJMIN 1 /* %u.%u */
200 #define REVFMT_HEX 2 /* 0x%04x */
201 #define REVFMT_DEC 3 /* %u */
202 static const struct cputab models[] = {
203 { "601", MPC601, REVFMT_DEC },
204 { "602", MPC602, REVFMT_DEC },
205 { "603", MPC603, REVFMT_MAJMIN },
206 { "603e", MPC603e, REVFMT_MAJMIN },
207 { "603ev", MPC603ev, REVFMT_MAJMIN },
208 { "G2", MPCG2, REVFMT_MAJMIN },
209 { "604", MPC604, REVFMT_MAJMIN },
210 { "604e", MPC604e, REVFMT_MAJMIN },
211 { "604ev", MPC604ev, REVFMT_MAJMIN },
212 { "620", MPC620, REVFMT_HEX },
213 { "750", MPC750, REVFMT_MAJMIN },
214 { "750FX", IBM750FX, REVFMT_MAJMIN },
215 { "750GX", IBM750GX, REVFMT_MAJMIN },
216 { "7400", MPC7400, REVFMT_MAJMIN },
217 { "7410", MPC7410, REVFMT_MAJMIN },
218 { "7450", MPC7450, REVFMT_MAJMIN },
219 { "7455", MPC7455, REVFMT_MAJMIN },
220 { "7457", MPC7457, REVFMT_MAJMIN },
221 { "7447A", MPC7447A, REVFMT_MAJMIN },
222 { "7448", MPC7448, REVFMT_MAJMIN },
223 { "8240", MPC8240, REVFMT_MAJMIN },
224 { "8245", MPC8245, REVFMT_MAJMIN },
225 { "970", IBM970, REVFMT_MAJMIN },
226 { "970FX", IBM970FX, REVFMT_MAJMIN },
227 { "970MP", IBM970MP, REVFMT_MAJMIN },
228 { "POWER3II", IBMPOWER3II, REVFMT_MAJMIN },
229 { "", 0, REVFMT_HEX }
230 };
231
232 #ifdef MULTIPROCESSOR
233 struct cpu_info cpu_info[CPU_MAXNUM] = {
234 [0] = {
235 .ci_curlwp = &lwp0,
236 },
237 };
238 volatile struct cpu_hatch_data *cpu_hatch_data;
239 volatile int cpu_hatch_stack;
240 extern int ticks_per_intr;
241 #include <powerpc/oea/bat.h>
242 #include <powerpc/pic/picvar.h>
243 #include <powerpc/pic/ipivar.h>
244 extern struct bat battable[];
245 #else
246 struct cpu_info cpu_info[1] = {
247 [0] = {
248 .ci_curlwp = &lwp0,
249 },
250 };
251 #endif /*MULTIPROCESSOR*/
252
253 int cpu_altivec;
254 register_t cpu_psluserset;
255 register_t cpu_pslusermod;
256 register_t cpu_pslusermask = 0xffff;
257 char cpu_model[80];
258
259 /* This is to be called from locore.S, and nowhere else. */
260
261 void
262 cpu_model_init(void)
263 {
264 u_int pvr, vers;
265
266 pvr = mfpvr();
267 vers = pvr >> 16;
268
269 oeacpufeat = 0;
270
271 if ((vers >= IBMRS64II && vers <= IBM970GX) || vers == MPC620 ||
272 vers == IBMCELL || vers == IBMPOWER6P5)
273 oeacpufeat |= OEACPU_64 | OEACPU_64_BRIDGE | OEACPU_NOBAT;
274
275 else if (vers == MPC601)
276 oeacpufeat |= OEACPU_601;
277
278 else if (MPC745X_P(vers) && vers != MPC7450)
279 oeacpufeat |= OEACPU_XBSEN | OEACPU_HIGHBAT | OEACPU_HIGHSPRG;
280
281 else if (vers == IBM750FX || vers == IBM750GX)
282 oeacpufeat |= OEACPU_HIGHBAT;
283 }
284
285 void
286 cpu_fmttab_print(const struct fmttab *fmt, register_t data)
287 {
288 for (; fmt->fmt_mask != 0 || fmt->fmt_value != 0; fmt++) {
289 if ((~fmt->fmt_mask & fmt->fmt_value) != 0 ||
290 (data & fmt->fmt_mask) == fmt->fmt_value)
291 aprint_normal("%s", fmt->fmt_string);
292 }
293 }
294
295 void
296 cpu_idlespin(void)
297 {
298 register_t msr;
299
300 if (powersave <= 0)
301 return;
302
303 __asm volatile(
304 "sync;"
305 "mfmsr %0;"
306 "oris %0,%0,%1@h;" /* enter power saving mode */
307 "mtmsr %0;"
308 "isync;"
309 : "=r"(msr)
310 : "J"(PSL_POW));
311 }
312
313 void
314 cpu_probe_cache(void)
315 {
316 u_int assoc, pvr, vers;
317
318 pvr = mfpvr();
319 vers = pvr >> 16;
320
321
322 /* Presently common across almost all implementations. */
323 curcpu()->ci_ci.dcache_line_size = 32;
324 curcpu()->ci_ci.icache_line_size = 32;
325
326
327 switch (vers) {
328 #define K *1024
329 case IBM750FX:
330 case IBM750GX:
331 case MPC601:
332 case MPC750:
333 case MPC7400:
334 case MPC7447A:
335 case MPC7448:
336 case MPC7450:
337 case MPC7455:
338 case MPC7457:
339 curcpu()->ci_ci.dcache_size = 32 K;
340 curcpu()->ci_ci.icache_size = 32 K;
341 assoc = 8;
342 break;
343 case MPC603:
344 curcpu()->ci_ci.dcache_size = 8 K;
345 curcpu()->ci_ci.icache_size = 8 K;
346 assoc = 2;
347 break;
348 case MPC603e:
349 case MPC603ev:
350 case MPC604:
351 case MPC8240:
352 case MPC8245:
353 case MPCG2:
354 curcpu()->ci_ci.dcache_size = 16 K;
355 curcpu()->ci_ci.icache_size = 16 K;
356 assoc = 4;
357 break;
358 case MPC604e:
359 case MPC604ev:
360 curcpu()->ci_ci.dcache_size = 32 K;
361 curcpu()->ci_ci.icache_size = 32 K;
362 assoc = 4;
363 break;
364 case IBMPOWER3II:
365 curcpu()->ci_ci.dcache_size = 64 K;
366 curcpu()->ci_ci.icache_size = 32 K;
367 curcpu()->ci_ci.dcache_line_size = 128;
368 curcpu()->ci_ci.icache_line_size = 128;
369 assoc = 128; /* not a typo */
370 break;
371 case IBM970:
372 case IBM970FX:
373 case IBM970MP:
374 curcpu()->ci_ci.dcache_size = 32 K;
375 curcpu()->ci_ci.icache_size = 64 K;
376 curcpu()->ci_ci.dcache_line_size = 128;
377 curcpu()->ci_ci.icache_line_size = 128;
378 assoc = 2;
379 break;
380
381 default:
382 curcpu()->ci_ci.dcache_size = PAGE_SIZE;
383 curcpu()->ci_ci.icache_size = PAGE_SIZE;
384 assoc = 1;
385 #undef K
386 }
387
388 /*
389 * Possibly recolor.
390 */
391 uvm_page_recolor(atop(curcpu()->ci_ci.dcache_size / assoc));
392 }
393
394 struct cpu_info *
395 cpu_attach_common(device_t self, int id)
396 {
397 struct cpu_info *ci;
398 u_int pvr, vers;
399
400 ci = &cpu_info[id];
401 #ifndef MULTIPROCESSOR
402 /*
403 * If this isn't the primary CPU, print an error message
404 * and just bail out.
405 */
406 if (id != 0) {
407 aprint_normal(": ID %d\n", id);
408 aprint_normal_dev(self,
409 "processor off-line; "
410 "multiprocessor support not present in kernel\n");
411 return (NULL);
412 }
413 #endif
414
415 ci->ci_cpuid = id;
416 ci->ci_idepth = -1;
417 ci->ci_dev = self;
418 ci->ci_idlespin = cpu_idlespin;
419
420 pvr = mfpvr();
421 vers = (pvr >> 16) & 0xffff;
422
423 switch (id) {
424 case 0:
425 /* load my cpu_number to PIR */
426 switch (vers) {
427 case MPC601:
428 case MPC604:
429 case MPC604e:
430 case MPC604ev:
431 case MPC7400:
432 case MPC7410:
433 case MPC7447A:
434 case MPC7448:
435 case MPC7450:
436 case MPC7455:
437 case MPC7457:
438 mtspr(SPR_PIR, id);
439 }
440 cpu_setup(self, ci);
441 break;
442 default:
443 if (id >= CPU_MAXNUM) {
444 aprint_normal(": more than %d cpus?\n", CPU_MAXNUM);
445 panic("cpuattach");
446 }
447 #ifndef MULTIPROCESSOR
448 aprint_normal(" not configured\n");
449 return NULL;
450 #else
451 mi_cpu_attach(ci);
452 break;
453 #endif
454 }
455 return (ci);
456 }
457
458 void
459 cpu_setup(device_t self, struct cpu_info *ci)
460 {
461 u_int hid0, hid0_save, pvr, vers;
462 const char * const xname = device_xname(self);
463 const char *bitmask;
464 char hidbuf[128];
465 char model[80];
466
467 pvr = mfpvr();
468 vers = (pvr >> 16) & 0xffff;
469
470 cpu_identify(model, sizeof(model));
471 aprint_normal(": %s, ID %d%s\n", model, cpu_number(),
472 cpu_number() == 0 ? " (primary)" : "");
473
474 /* set the cpu number */
475 ci->ci_cpuid = cpu_number();
476 hid0_save = hid0 = mfspr(SPR_HID0);
477
478 cpu_probe_cache();
479
480 /*
481 * Configure power-saving mode.
482 */
483 switch (vers) {
484 case MPC604:
485 case MPC604e:
486 case MPC604ev:
487 /*
488 * Do not have HID0 support settings, but can support
489 * MSR[POW] off
490 */
491 powersave = 1;
492 break;
493
494 case MPC603:
495 case MPC603e:
496 case MPC603ev:
497 case MPC7400:
498 case MPC7410:
499 case MPC8240:
500 case MPC8245:
501 case MPCG2:
502 /* Select DOZE mode. */
503 hid0 &= ~(HID0_DOZE | HID0_NAP | HID0_SLEEP);
504 hid0 |= HID0_DOZE | HID0_DPM;
505 powersave = 1;
506 break;
507
508 case MPC750:
509 case IBM750FX:
510 case IBM750GX:
511 /* Select NAP mode. */
512 hid0 &= ~(HID0_DOZE | HID0_NAP | HID0_SLEEP);
513 hid0 |= HID0_NAP | HID0_DPM;
514 powersave = 1;
515 break;
516
517 case MPC7447A:
518 case MPC7448:
519 case MPC7457:
520 case MPC7455:
521 case MPC7450:
522 /* Enable the 7450 branch caches */
523 hid0 |= HID0_SGE | HID0_BTIC;
524 hid0 |= HID0_LRSTK | HID0_FOLD | HID0_BHT;
525 /* Enable more and larger BAT registers */
526 if (oeacpufeat & OEACPU_XBSEN)
527 hid0 |= HID0_XBSEN;
528 if (oeacpufeat & OEACPU_HIGHBAT)
529 hid0 |= HID0_HIGH_BAT_EN;
530 /* Disable BTIC on 7450 Rev 2.0 or earlier */
531 if (vers == MPC7450 && (pvr & 0xFFFF) <= 0x0200)
532 hid0 &= ~HID0_BTIC;
533 /* Select NAP mode. */
534 hid0 &= ~HID0_SLEEP;
535 hid0 |= HID0_NAP | HID0_DPM;
536 powersave = 1;
537 break;
538
539 case IBM970:
540 case IBM970FX:
541 case IBM970MP:
542 case IBMPOWER3II:
543 default:
544 /* No power-saving mode is available. */ ;
545 }
546
547 #ifdef NAPMODE
548 switch (vers) {
549 case IBM750FX:
550 case IBM750GX:
551 case MPC750:
552 case MPC7400:
553 /* Select NAP mode. */
554 hid0 &= ~(HID0_DOZE | HID0_NAP | HID0_SLEEP);
555 hid0 |= HID0_NAP;
556 break;
557 }
558 #endif
559
560 switch (vers) {
561 case IBM750FX:
562 case IBM750GX:
563 case MPC750:
564 hid0 &= ~HID0_DBP; /* XXX correct? */
565 hid0 |= HID0_EMCP | HID0_BTIC | HID0_SGE | HID0_BHT;
566 break;
567
568 case MPC7400:
569 case MPC7410:
570 hid0 &= ~HID0_SPD;
571 hid0 |= HID0_EMCP | HID0_BTIC | HID0_SGE | HID0_BHT;
572 hid0 |= HID0_EIEC;
573 break;
574 }
575
576 if (hid0 != hid0_save) {
577 mtspr(SPR_HID0, hid0);
578 __asm volatile("sync;isync");
579 }
580
581
582 switch (vers) {
583 case MPC601:
584 bitmask = HID0_601_BITMASK;
585 break;
586 case MPC7450:
587 case MPC7455:
588 case MPC7457:
589 bitmask = HID0_7450_BITMASK;
590 break;
591 case IBM970:
592 case IBM970FX:
593 case IBM970MP:
594 bitmask = 0;
595 break;
596 default:
597 bitmask = HID0_BITMASK;
598 break;
599 }
600 snprintb(hidbuf, sizeof hidbuf, bitmask, hid0);
601 aprint_normal_dev(self, "HID0 %s, powersave: %d\n", hidbuf, powersave);
602
603 ci->ci_khz = 0;
604
605 /*
606 * Display speed and cache configuration.
607 */
608 switch (vers) {
609 case MPC604:
610 case MPC604e:
611 case MPC604ev:
612 case MPC750:
613 case IBM750FX:
614 case IBM750GX:
615 case MPC7400:
616 case MPC7410:
617 case MPC7447A:
618 case MPC7448:
619 case MPC7450:
620 case MPC7455:
621 case MPC7457:
622 aprint_normal_dev(self, "");
623 cpu_probe_speed(ci);
624 aprint_normal("%u.%02u MHz",
625 ci->ci_khz / 1000, (ci->ci_khz / 10) % 100);
626 switch (vers) {
627 case MPC7450: /* 7441 does not have L3! */
628 case MPC7455: /* 7445 does not have L3! */
629 case MPC7457: /* 7447 does not have L3! */
630 cpu_config_l3cr(vers);
631 break;
632 case IBM750FX:
633 case IBM750GX:
634 case MPC750:
635 case MPC7400:
636 case MPC7410:
637 case MPC7447A:
638 case MPC7448:
639 cpu_config_l2cr(pvr);
640 break;
641 default:
642 break;
643 }
644 aprint_normal("\n");
645 break;
646 }
647
648 #if NSYSMON_ENVSYS > 0
649 /*
650 * Attach MPC750 temperature sensor to the envsys subsystem.
651 * XXX the 74xx series also has this sensor, but it is not
652 * XXX supported by Motorola and may return values that are off by
653 * XXX 35-55 degrees C.
654 */
655 if (vers == MPC750 || vers == IBM750FX || vers == IBM750GX)
656 cpu_tau_setup(ci);
657 #endif
658
659 evcnt_attach_dynamic(&ci->ci_ev_clock, EVCNT_TYPE_INTR,
660 NULL, xname, "clock");
661 evcnt_attach_dynamic(&ci->ci_ev_traps, EVCNT_TYPE_TRAP,
662 NULL, xname, "traps");
663 evcnt_attach_dynamic(&ci->ci_ev_kdsi, EVCNT_TYPE_TRAP,
664 &ci->ci_ev_traps, xname, "kernel DSI traps");
665 evcnt_attach_dynamic(&ci->ci_ev_udsi, EVCNT_TYPE_TRAP,
666 &ci->ci_ev_traps, xname, "user DSI traps");
667 evcnt_attach_dynamic(&ci->ci_ev_udsi_fatal, EVCNT_TYPE_TRAP,
668 &ci->ci_ev_udsi, xname, "user DSI failures");
669 evcnt_attach_dynamic(&ci->ci_ev_kisi, EVCNT_TYPE_TRAP,
670 &ci->ci_ev_traps, xname, "kernel ISI traps");
671 evcnt_attach_dynamic(&ci->ci_ev_isi, EVCNT_TYPE_TRAP,
672 &ci->ci_ev_traps, xname, "user ISI traps");
673 evcnt_attach_dynamic(&ci->ci_ev_isi_fatal, EVCNT_TYPE_TRAP,
674 &ci->ci_ev_isi, xname, "user ISI failures");
675 evcnt_attach_dynamic(&ci->ci_ev_scalls, EVCNT_TYPE_TRAP,
676 &ci->ci_ev_traps, xname, "system call traps");
677 evcnt_attach_dynamic(&ci->ci_ev_pgm, EVCNT_TYPE_TRAP,
678 &ci->ci_ev_traps, xname, "PGM traps");
679 evcnt_attach_dynamic(&ci->ci_ev_fpu, EVCNT_TYPE_TRAP,
680 &ci->ci_ev_traps, xname, "FPU unavailable traps");
681 evcnt_attach_dynamic(&ci->ci_ev_fpusw, EVCNT_TYPE_TRAP,
682 &ci->ci_ev_fpu, xname, "FPU context switches");
683 evcnt_attach_dynamic(&ci->ci_ev_ali, EVCNT_TYPE_TRAP,
684 &ci->ci_ev_traps, xname, "user alignment traps");
685 evcnt_attach_dynamic(&ci->ci_ev_ali_fatal, EVCNT_TYPE_TRAP,
686 &ci->ci_ev_ali, xname, "user alignment traps");
687 evcnt_attach_dynamic(&ci->ci_ev_umchk, EVCNT_TYPE_TRAP,
688 &ci->ci_ev_umchk, xname, "user MCHK failures");
689 evcnt_attach_dynamic(&ci->ci_ev_vec, EVCNT_TYPE_TRAP,
690 &ci->ci_ev_traps, xname, "AltiVec unavailable");
691 #ifdef ALTIVEC
692 if (cpu_altivec) {
693 evcnt_attach_dynamic(&ci->ci_ev_vecsw, EVCNT_TYPE_TRAP,
694 &ci->ci_ev_vec, xname, "AltiVec context switches");
695 }
696 #endif
697 evcnt_attach_dynamic(&ci->ci_ev_ipi, EVCNT_TYPE_INTR,
698 NULL, xname, "IPIs");
699 }
700
701 /*
702 * According to a document labeled "PVR Register Settings":
703 ** For integrated microprocessors the PVR register inside the device
704 ** will identify the version of the microprocessor core. You must also
705 ** read the Device ID, PCI register 02, to identify the part and the
706 ** Revision ID, PCI register 08, to identify the revision of the
707 ** integrated microprocessor.
708 * This apparently applies to 8240/8245/8241, PVR 00810101 and 80811014
709 */
710
711 void
712 cpu_identify(char *str, size_t len)
713 {
714 u_int pvr, major, minor;
715 uint16_t vers, rev, revfmt;
716 const struct cputab *cp;
717 const char *name;
718 size_t n;
719
720 pvr = mfpvr();
721 vers = pvr >> 16;
722 rev = pvr;
723
724 switch (vers) {
725 case MPC7410:
726 minor = (pvr >> 0) & 0xff;
727 major = minor <= 4 ? 1 : 2;
728 break;
729 case MPCG2: /*XXX see note above */
730 major = (pvr >> 4) & 0xf;
731 minor = (pvr >> 0) & 0xf;
732 break;
733 default:
734 major = (pvr >> 8) & 0xf;
735 minor = (pvr >> 0) & 0xf;
736 }
737
738 for (cp = models; cp->name[0] != '\0'; cp++) {
739 if (cp->version == vers)
740 break;
741 }
742
743 if (str == NULL) {
744 str = cpu_model;
745 len = sizeof(cpu_model);
746 cpu = vers;
747 }
748
749 revfmt = cp->revfmt;
750 name = cp->name;
751 if (rev == MPC750 && pvr == 15) {
752 name = "755";
753 revfmt = REVFMT_HEX;
754 }
755
756 if (cp->name[0] != '\0') {
757 n = snprintf(str, len, "%s (Revision ", cp->name);
758 } else {
759 n = snprintf(str, len, "Version %#x (Revision ", vers);
760 }
761 if (len > n) {
762 switch (revfmt) {
763 case REVFMT_MAJMIN:
764 snprintf(str + n, len - n, "%u.%u)", major, minor);
765 break;
766 case REVFMT_HEX:
767 snprintf(str + n, len - n, "0x%04x)", rev);
768 break;
769 case REVFMT_DEC:
770 snprintf(str + n, len - n, "%u)", rev);
771 break;
772 }
773 }
774 }
775
776 #ifdef L2CR_CONFIG
777 u_int l2cr_config = L2CR_CONFIG;
778 #else
779 u_int l2cr_config = 0;
780 #endif
781
782 #ifdef L3CR_CONFIG
783 u_int l3cr_config = L3CR_CONFIG;
784 #else
785 u_int l3cr_config = 0;
786 #endif
787
788 void
789 cpu_enable_l2cr(register_t l2cr)
790 {
791 register_t msr, x;
792 uint16_t vers;
793
794 vers = mfpvr() >> 16;
795
796 /* Disable interrupts and set the cache config bits. */
797 msr = mfmsr();
798 mtmsr(msr & ~PSL_EE);
799 #ifdef ALTIVEC
800 if (cpu_altivec)
801 __asm volatile("dssall");
802 #endif
803 __asm volatile("sync");
804 mtspr(SPR_L2CR, l2cr & ~L2CR_L2E);
805 __asm volatile("sync");
806
807 /* Wait for L2 clock to be stable (640 L2 clocks). */
808 delay(100);
809
810 /* Invalidate all L2 contents. */
811 if (MPC745X_P(vers)) {
812 mtspr(SPR_L2CR, l2cr | L2CR_L2I);
813 do {
814 x = mfspr(SPR_L2CR);
815 } while (x & L2CR_L2I);
816 } else {
817 mtspr(SPR_L2CR, l2cr | L2CR_L2I);
818 do {
819 x = mfspr(SPR_L2CR);
820 } while (x & L2CR_L2IP);
821 }
822 /* Enable L2 cache. */
823 l2cr |= L2CR_L2E;
824 mtspr(SPR_L2CR, l2cr);
825 mtmsr(msr);
826 }
827
828 void
829 cpu_enable_l3cr(register_t l3cr)
830 {
831 register_t x;
832
833 /* By The Book (numbered steps from section 3.7.1.3 of MPC7450UM) */
834
835 /*
836 * 1: Set all L3CR bits for final config except L3E, L3I, L3PE, and
837 * L3CLKEN. (also mask off reserved bits in case they were included
838 * in L3CR_CONFIG)
839 */
840 l3cr &= ~(L3CR_L3E|L3CR_L3I|L3CR_L3PE|L3CR_L3CLKEN|L3CR_RESERVED);
841 mtspr(SPR_L3CR, l3cr);
842
843 /* 2: Set L3CR[5] (otherwise reserved bit) to 1 */
844 l3cr |= 0x04000000;
845 mtspr(SPR_L3CR, l3cr);
846
847 /* 3: Set L3CLKEN to 1*/
848 l3cr |= L3CR_L3CLKEN;
849 mtspr(SPR_L3CR, l3cr);
850
851 /* 4/5: Perform a global cache invalidate (ref section 3.7.3.6) */
852 __asm volatile("dssall;sync");
853 /* L3 cache is already disabled, no need to clear L3E */
854 mtspr(SPR_L3CR, l3cr|L3CR_L3I);
855 do {
856 x = mfspr(SPR_L3CR);
857 } while (x & L3CR_L3I);
858
859 /* 6: Clear L3CLKEN to 0 */
860 l3cr &= ~L3CR_L3CLKEN;
861 mtspr(SPR_L3CR, l3cr);
862
863 /* 7: Perform a 'sync' and wait at least 100 CPU cycles */
864 __asm volatile("sync");
865 delay(100);
866
867 /* 8: Set L3E and L3CLKEN */
868 l3cr |= (L3CR_L3E|L3CR_L3CLKEN);
869 mtspr(SPR_L3CR, l3cr);
870
871 /* 9: Perform a 'sync' and wait at least 100 CPU cycles */
872 __asm volatile("sync");
873 delay(100);
874 }
875
876 void
877 cpu_config_l2cr(int pvr)
878 {
879 register_t l2cr;
880 u_int vers = (pvr >> 16) & 0xffff;
881
882 l2cr = mfspr(SPR_L2CR);
883
884 /*
885 * For MP systems, the firmware may only configure the L2 cache
886 * on the first CPU. In this case, assume that the other CPUs
887 * should use the same value for L2CR.
888 */
889 if ((l2cr & L2CR_L2E) != 0 && l2cr_config == 0) {
890 l2cr_config = l2cr;
891 }
892
893 /*
894 * Configure L2 cache if not enabled.
895 */
896 if ((l2cr & L2CR_L2E) == 0 && l2cr_config != 0) {
897 cpu_enable_l2cr(l2cr_config);
898 l2cr = mfspr(SPR_L2CR);
899 }
900
901 if ((l2cr & L2CR_L2E) == 0) {
902 aprint_normal(" L2 cache present but not enabled ");
903 return;
904 }
905 aprint_normal(",");
906
907 switch (vers) {
908 case IBM750FX:
909 case IBM750GX:
910 cpu_fmttab_print(cpu_ibm750_l2cr_formats, l2cr);
911 break;
912 case MPC750:
913 if ((pvr & 0xffffff00) == 0x00082200 /* IBM750CX */ ||
914 (pvr & 0xffffef00) == 0x00082300 /* IBM750CXe */)
915 cpu_fmttab_print(cpu_ibm750_l2cr_formats, l2cr);
916 else
917 cpu_fmttab_print(cpu_l2cr_formats, l2cr);
918 break;
919 case MPC7447A:
920 case MPC7457:
921 cpu_fmttab_print(cpu_7457_l2cr_formats, l2cr);
922 return;
923 case MPC7448:
924 cpu_fmttab_print(cpu_7448_l2cr_formats, l2cr);
925 return;
926 case MPC7450:
927 case MPC7455:
928 cpu_fmttab_print(cpu_7450_l2cr_formats, l2cr);
929 break;
930 default:
931 cpu_fmttab_print(cpu_l2cr_formats, l2cr);
932 break;
933 }
934 }
935
936 void
937 cpu_config_l3cr(int vers)
938 {
939 register_t l2cr;
940 register_t l3cr;
941
942 l2cr = mfspr(SPR_L2CR);
943
944 /*
945 * For MP systems, the firmware may only configure the L2 cache
946 * on the first CPU. In this case, assume that the other CPUs
947 * should use the same value for L2CR.
948 */
949 if ((l2cr & L2CR_L2E) != 0 && l2cr_config == 0) {
950 l2cr_config = l2cr;
951 }
952
953 /*
954 * Configure L2 cache if not enabled.
955 */
956 if ((l2cr & L2CR_L2E) == 0 && l2cr_config != 0) {
957 cpu_enable_l2cr(l2cr_config);
958 l2cr = mfspr(SPR_L2CR);
959 }
960
961 aprint_normal(",");
962 switch (vers) {
963 case MPC7447A:
964 case MPC7457:
965 cpu_fmttab_print(cpu_7457_l2cr_formats, l2cr);
966 return;
967 case MPC7448:
968 cpu_fmttab_print(cpu_7448_l2cr_formats, l2cr);
969 return;
970 default:
971 cpu_fmttab_print(cpu_7450_l2cr_formats, l2cr);
972 break;
973 }
974
975 l3cr = mfspr(SPR_L3CR);
976
977 /*
978 * For MP systems, the firmware may only configure the L3 cache
979 * on the first CPU. In this case, assume that the other CPUs
980 * should use the same value for L3CR.
981 */
982 if ((l3cr & L3CR_L3E) != 0 && l3cr_config == 0) {
983 l3cr_config = l3cr;
984 }
985
986 /*
987 * Configure L3 cache if not enabled.
988 */
989 if ((l3cr & L3CR_L3E) == 0 && l3cr_config != 0) {
990 cpu_enable_l3cr(l3cr_config);
991 l3cr = mfspr(SPR_L3CR);
992 }
993
994 if (l3cr & L3CR_L3E) {
995 aprint_normal(",");
996 cpu_fmttab_print(cpu_7450_l3cr_formats, l3cr);
997 }
998 }
999
1000 void
1001 cpu_probe_speed(struct cpu_info *ci)
1002 {
1003 uint64_t cps;
1004
1005 mtspr(SPR_MMCR0, MMCR0_FC);
1006 mtspr(SPR_PMC1, 0);
1007 mtspr(SPR_MMCR0, MMCR0_PMC1SEL(PMCN_CYCLES));
1008 delay(100000);
1009 cps = (mfspr(SPR_PMC1) * 10) + 4999;
1010
1011 mtspr(SPR_MMCR0, MMCR0_FC);
1012
1013 ci->ci_khz = (cps * cpu_get_dfs()) / 1000;
1014 }
1015
1016 /*
1017 * Read the Dynamic Frequency Switching state and return a divisor for
1018 * the maximum frequency.
1019 */
1020 int
1021 cpu_get_dfs(void)
1022 {
1023 u_int pvr, vers;
1024
1025 pvr = mfpvr();
1026 vers = pvr >> 16;
1027
1028 switch (vers) {
1029 case MPC7448:
1030 if (mfspr(SPR_HID1) & HID1_DFS4)
1031 return 4;
1032 case MPC7447A:
1033 if (mfspr(SPR_HID1) & HID1_DFS2)
1034 return 2;
1035 }
1036 return 1;
1037 }
1038
1039 /*
1040 * Set the Dynamic Frequency Switching divisor the same for all cpus.
1041 */
1042 void
1043 cpu_set_dfs(int div)
1044 {
1045 uint64_t where;
1046 u_int dfs_mask, pvr, vers;
1047
1048 pvr = mfpvr();
1049 vers = pvr >> 16;
1050 dfs_mask = 0;
1051
1052 switch (vers) {
1053 case MPC7448:
1054 dfs_mask |= HID1_DFS4;
1055 case MPC7447A:
1056 dfs_mask |= HID1_DFS2;
1057 break;
1058 default:
1059 printf("cpu_set_dfs: DFS not supported\n");
1060 return;
1061
1062 }
1063
1064 where = xc_broadcast(0, (xcfunc_t)cpu_set_dfs_xcall, &div, &dfs_mask);
1065 xc_wait(where);
1066 }
1067
1068 static void
1069 cpu_set_dfs_xcall(void *arg1, void *arg2)
1070 {
1071 u_int dfs_mask, hid1, old_hid1;
1072 int *divisor, s;
1073
1074 divisor = arg1;
1075 dfs_mask = *(u_int *)arg2;
1076
1077 s = splhigh();
1078 hid1 = old_hid1 = mfspr(SPR_HID1);
1079
1080 switch (*divisor) {
1081 case 1:
1082 hid1 &= ~dfs_mask;
1083 break;
1084 case 2:
1085 hid1 &= ~(dfs_mask & HID1_DFS4);
1086 hid1 |= dfs_mask & HID1_DFS2;
1087 break;
1088 case 4:
1089 hid1 &= ~(dfs_mask & HID1_DFS2);
1090 hid1 |= dfs_mask & HID1_DFS4;
1091 break;
1092 }
1093
1094 if (hid1 != old_hid1) {
1095 __asm volatile("sync");
1096 mtspr(SPR_HID1, hid1);
1097 __asm volatile("sync;isync");
1098 }
1099
1100 splx(s);
1101 }
1102
1103 #if NSYSMON_ENVSYS > 0
1104 void
1105 cpu_tau_setup(struct cpu_info *ci)
1106 {
1107 struct sysmon_envsys *sme;
1108 int error, therm_delay;
1109
1110 mtspr(SPR_THRM1, SPR_THRM_VALID);
1111 mtspr(SPR_THRM2, 0);
1112
1113 /*
1114 * we need to figure out how much 20+us in units of CPU clock cycles
1115 * are
1116 */
1117
1118 therm_delay = ci->ci_khz / 40; /* 25us just to be safe */
1119
1120 mtspr(SPR_THRM3, SPR_THRM_TIMER(therm_delay) | SPR_THRM_ENABLE);
1121
1122 sme = sysmon_envsys_create();
1123
1124 sensor.units = ENVSYS_STEMP;
1125 sensor.state = ENVSYS_SINVALID;
1126 (void)strlcpy(sensor.desc, "CPU Temp", sizeof(sensor.desc));
1127 if (sysmon_envsys_sensor_attach(sme, &sensor)) {
1128 sysmon_envsys_destroy(sme);
1129 return;
1130 }
1131
1132 sme->sme_name = device_xname(ci->ci_dev);
1133 sme->sme_cookie = ci;
1134 sme->sme_refresh = cpu_tau_refresh;
1135
1136 if ((error = sysmon_envsys_register(sme)) != 0) {
1137 aprint_error_dev(ci->ci_dev,
1138 " unable to register with sysmon (%d)\n", error);
1139 sysmon_envsys_destroy(sme);
1140 }
1141 }
1142
1143
1144 /* Find the temperature of the CPU. */
1145 void
1146 cpu_tau_refresh(struct sysmon_envsys *sme, envsys_data_t *edata)
1147 {
1148 int i, threshold, count;
1149
1150 threshold = 64; /* Half of the 7-bit sensor range */
1151
1152 /* Successive-approximation code adapted from Motorola
1153 * application note AN1800/D, "Programming the Thermal Assist
1154 * Unit in the MPC750 Microprocessor".
1155 */
1156 for (i = 5; i >= 0 ; i--) {
1157 mtspr(SPR_THRM1,
1158 SPR_THRM_THRESHOLD(threshold) | SPR_THRM_VALID);
1159 count = 0;
1160 while ((count < 100000) &&
1161 ((mfspr(SPR_THRM1) & SPR_THRM_TIV) == 0)) {
1162 count++;
1163 delay(1);
1164 }
1165 if (mfspr(SPR_THRM1) & SPR_THRM_TIN) {
1166 /* The interrupt bit was set, meaning the
1167 * temperature was above the threshold
1168 */
1169 threshold += 1 << i;
1170 } else {
1171 /* Temperature was below the threshold */
1172 threshold -= 1 << i;
1173 }
1174
1175 }
1176 threshold += 2;
1177
1178 /* Convert the temperature in degrees C to microkelvin */
1179 edata->value_cur = (threshold * 1000000) + 273150000;
1180 edata->state = ENVSYS_SVALID;
1181 }
1182 #endif /* NSYSMON_ENVSYS > 0 */
1183
1184 #ifdef MULTIPROCESSOR
1185 extern volatile u_int cpu_spinstart_ack;
1186
1187 int
1188 cpu_spinup(device_t self, struct cpu_info *ci)
1189 {
1190 volatile struct cpu_hatch_data hatch_data, *h = &hatch_data;
1191 struct pglist mlist;
1192 int i, error, pvr, vers;
1193 char *hp;
1194
1195 pvr = mfpvr();
1196 vers = pvr >> 16;
1197 KASSERT(ci != curcpu());
1198
1199 /* Now allocate a hatch stack */
1200 error = uvm_pglistalloc(0x1000, 0x10000, 0x10000000, 16, 0,
1201 &mlist, 1, 1);
1202 if (error) {
1203 aprint_error(": unable to allocate hatch stack\n");
1204 return -1;
1205 }
1206
1207 hp = (void *)VM_PAGE_TO_PHYS(TAILQ_FIRST(&mlist));
1208 memset(hp, 0, 0x1000);
1209
1210 /* Initialize secondary cpu's initial lwp to its idlelwp. */
1211 ci->ci_curlwp = ci->ci_data.cpu_idlelwp;
1212 ci->ci_curpcb = lwp_getpcb(ci->ci_curlwp);
1213 ci->ci_curpm = ci->ci_curpcb->pcb_pm;
1214
1215 cpu_hatch_data = h;
1216 h->hatch_running = 0;
1217 h->hatch_self = self;
1218 h->hatch_ci = ci;
1219 h->hatch_pir = ci->ci_cpuid;
1220
1221 cpu_hatch_stack = (uint32_t)hp;
1222 ci->ci_lasttb = cpu_info[0].ci_lasttb;
1223
1224 /* copy special registers */
1225
1226 h->hatch_hid0 = mfspr(SPR_HID0);
1227
1228 __asm volatile ("mfsdr1 %0" : "=r"(h->hatch_sdr1));
1229 for (i = 0; i < 16; i++) {
1230 __asm ("mfsrin %0,%1" : "=r"(h->hatch_sr[i]) :
1231 "r"(i << ADDR_SR_SHFT));
1232 }
1233 if (oeacpufeat & OEACPU_64)
1234 h->hatch_asr = mfspr(SPR_ASR);
1235 else
1236 h->hatch_asr = 0;
1237
1238 /* copy the bat regs */
1239 __asm volatile ("mfibatu %0,0" : "=r"(h->hatch_batu[0]));
1240 __asm volatile ("mfibatl %0,0" : "=r"(h->hatch_batl[0]));
1241 __asm volatile ("mfibatu %0,1" : "=r"(h->hatch_batu[1]));
1242 __asm volatile ("mfibatl %0,1" : "=r"(h->hatch_batl[1]));
1243 __asm volatile ("mfibatu %0,2" : "=r"(h->hatch_batu[2]));
1244 __asm volatile ("mfibatl %0,2" : "=r"(h->hatch_batl[2]));
1245 __asm volatile ("mfibatu %0,3" : "=r"(h->hatch_batu[3]));
1246 __asm volatile ("mfibatl %0,3" : "=r"(h->hatch_batl[3]));
1247 __asm volatile ("sync; isync");
1248
1249 if (md_setup_trampoline(h, ci) == -1)
1250 return -1;
1251 md_presync_timebase(h);
1252 md_start_timebase(h);
1253
1254 /* wait for secondary printf */
1255
1256 delay(200000);
1257
1258 if (h->hatch_running < 1) {
1259 aprint_error("%d:CPU %d didn't start %d\n", cpu_spinstart_ack,
1260 ci->ci_cpuid, cpu_spinstart_ack);
1261 Debugger();
1262 return -1;
1263 }
1264
1265 /* Register IPI Interrupt */
1266 if (ipiops.ppc_establish_ipi)
1267 ipiops.ppc_establish_ipi(IST_LEVEL, IPL_HIGH, NULL);
1268
1269 return 0;
1270 }
1271
1272 static volatile int start_secondary_cpu;
1273 extern void tlbia(void);
1274
1275 register_t
1276 cpu_hatch(void)
1277 {
1278 volatile struct cpu_hatch_data *h = cpu_hatch_data;
1279 struct cpu_info * const ci = h->hatch_ci;
1280 struct pcb *pcb;
1281 u_int msr;
1282 int i;
1283
1284 /* Initialize timebase. */
1285 __asm ("mttbl %0; mttbu %0; mttbl %0" :: "r"(0));
1286
1287 /*
1288 * Set PIR (Processor Identification Register). i.e. whoami
1289 * Note that PIR is read-only on some CPU versions, so we write to it
1290 * only if it has a different value than we need.
1291 */
1292
1293 msr = mfspr(SPR_PIR);
1294 if (msr != h->hatch_pir)
1295 mtspr(SPR_PIR, h->hatch_pir);
1296
1297 __asm volatile ("mtsprg0 %0" :: "r"(ci));
1298 curlwp = ci->ci_curlwp;
1299 cpu_spinstart_ack = 0;
1300
1301 /* Initialize MMU. */
1302 __asm ("mtibatu 0,%0" :: "r"(h->hatch_batu[0]));
1303 __asm ("mtibatl 0,%0" :: "r"(h->hatch_batl[0]));
1304 __asm ("mtibatu 1,%0" :: "r"(h->hatch_batu[1]));
1305 __asm ("mtibatl 1,%0" :: "r"(h->hatch_batl[1]));
1306 __asm ("mtibatu 2,%0" :: "r"(h->hatch_batu[2]));
1307 __asm ("mtibatl 2,%0" :: "r"(h->hatch_batl[2]));
1308 __asm ("mtibatu 3,%0" :: "r"(h->hatch_batu[3]));
1309 __asm ("mtibatl 3,%0" :: "r"(h->hatch_batl[3]));
1310
1311 mtspr(SPR_HID0, h->hatch_hid0);
1312
1313 __asm ("mtibatl 0,%0; mtibatu 0,%1; mtdbatl 0,%0; mtdbatu 0,%1;"
1314 :: "r"(battable[0].batl), "r"(battable[0].batu));
1315
1316 __asm volatile ("sync");
1317 for (i = 0; i < 16; i++)
1318 __asm ("mtsrin %0,%1" :: "r"(h->hatch_sr[i]), "r"(i << ADDR_SR_SHFT));
1319 __asm volatile ("sync; isync");
1320
1321 if (oeacpufeat & OEACPU_64)
1322 mtspr(SPR_ASR, h->hatch_asr);
1323
1324 cpu_spinstart_ack = 1;
1325 __asm ("ptesync");
1326 __asm ("mtsdr1 %0" :: "r"(h->hatch_sdr1));
1327 __asm volatile ("sync; isync");
1328
1329 cpu_spinstart_ack = 5;
1330 for (i = 0; i < 16; i++)
1331 __asm ("mfsrin %0,%1" : "=r"(h->hatch_sr[i]) :
1332 "r"(i << ADDR_SR_SHFT));
1333
1334 /* Enable I/D address translations. */
1335 msr = mfmsr();
1336 msr |= PSL_IR|PSL_DR|PSL_ME|PSL_RI;
1337 mtmsr(msr);
1338 __asm volatile ("sync; isync");
1339 cpu_spinstart_ack = 2;
1340
1341 md_sync_timebase(h);
1342
1343 cpu_setup(h->hatch_self, ci);
1344
1345 h->hatch_running = 1;
1346 __asm volatile ("sync; isync");
1347
1348 while (start_secondary_cpu == 0)
1349 ;
1350
1351 __asm volatile ("sync; isync");
1352
1353 aprint_normal("cpu%d started\n", curcpu()->ci_index);
1354 __asm volatile ("mtdec %0" :: "r"(ticks_per_intr));
1355
1356 md_setup_interrupts();
1357
1358 ci->ci_ipending = 0;
1359 ci->ci_cpl = 0;
1360
1361 mtmsr(mfmsr() | PSL_EE);
1362 pcb = lwp_getpcb(ci->ci_data.cpu_idlelwp);
1363 return pcb->pcb_sp;
1364 }
1365
1366 void
1367 cpu_boot_secondary_processors(void)
1368 {
1369 start_secondary_cpu = 1;
1370 __asm volatile ("sync");
1371 }
1372
1373 #endif /*MULTIPROCESSOR*/
1374