acpi_srat.c revision 1.4 1 1.4 msaitoh /* $NetBSD: acpi_srat.c,v 1.4 2017/08/31 08:45:03 msaitoh Exp $ */
2 1.1 cegger
3 1.1 cegger /*
4 1.1 cegger * Copyright (c) 2009 The NetBSD Foundation, Inc.
5 1.1 cegger * All rights reserved.
6 1.1 cegger *
7 1.1 cegger * This code is derived from software contributed to The NetBSD Foundation
8 1.1 cegger * by Christoph Egger.
9 1.1 cegger *
10 1.1 cegger * Redistribution and use in source and binary forms, with or without
11 1.1 cegger * modification, are permitted provided that the following conditions
12 1.1 cegger * are met:
13 1.1 cegger * 1. Redistributions of source code must retain the above copyright
14 1.1 cegger * notice, this list of conditions and the following disclaimer.
15 1.1 cegger * 2. Redistributions in binary form must reproduce the above copyright
16 1.1 cegger * notice, this list of conditions and the following disclaimer in the
17 1.1 cegger * documentation and/or other materials provided with the distribution.
18 1.1 cegger *
19 1.1 cegger * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
20 1.1 cegger * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
21 1.1 cegger * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
22 1.1 cegger * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
23 1.1 cegger * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
24 1.1 cegger * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
25 1.1 cegger * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
26 1.1 cegger * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
27 1.1 cegger * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
28 1.1 cegger * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
29 1.1 cegger * POSSIBILITY OF SUCH DAMAGE.
30 1.1 cegger */
31 1.1 cegger
32 1.1 cegger #include <sys/cdefs.h>
33 1.4 msaitoh __KERNEL_RCSID(0, "$NetBSD: acpi_srat.c,v 1.4 2017/08/31 08:45:03 msaitoh Exp $");
34 1.1 cegger
35 1.1 cegger #include <sys/param.h>
36 1.3 jruoho #include <sys/kmem.h>
37 1.1 cegger #include <sys/systm.h>
38 1.1 cegger
39 1.1 cegger #include <dev/acpi/acpivar.h>
40 1.1 cegger #include <dev/acpi/acpi_srat.h>
41 1.1 cegger
42 1.1 cegger static ACPI_TABLE_SRAT *srat;
43 1.1 cegger
44 1.1 cegger struct acpisrat_node {
45 1.1 cegger acpisrat_nodeid_t nodeid;
46 1.1 cegger uint32_t ncpus; /* Number of cpus in this node */
47 1.1 cegger struct acpisrat_cpu **cpu; /* Array of cpus */
48 1.1 cegger uint32_t nmems; /* Number of memory ranges in this node */
49 1.1 cegger struct acpisrat_mem **mem; /* Array of memory ranges */
50 1.1 cegger };
51 1.1 cegger
52 1.1 cegger static uint32_t nnodes; /* Number of NUMA nodes */
53 1.1 cegger static struct acpisrat_node *node_array; /* Array of NUMA nodes */
54 1.1 cegger static uint32_t ncpus; /* Number of CPUs */
55 1.1 cegger static struct acpisrat_cpu *cpu_array; /* Array of cpus */
56 1.1 cegger static uint32_t nmems; /* Number of Memory ranges */
57 1.1 cegger static struct acpisrat_mem *mem_array;
58 1.1 cegger
59 1.1 cegger
60 1.1 cegger struct cpulist {
61 1.1 cegger struct acpisrat_cpu cpu;
62 1.1 cegger TAILQ_ENTRY(cpulist) entry;
63 1.1 cegger };
64 1.1 cegger
65 1.1 cegger static TAILQ_HEAD(, cpulist) cpulisthead;
66 1.1 cegger
67 1.1 cegger #define CPU_INIT TAILQ_INIT(&cpulisthead);
68 1.1 cegger #define CPU_FOREACH(cpu) TAILQ_FOREACH(cpu, &cpulisthead, entry)
69 1.1 cegger #define CPU_ADD(cpu) TAILQ_INSERT_TAIL(&cpulisthead, cpu, entry)
70 1.1 cegger #define CPU_REM(cpu) TAILQ_REMOVE(&cpulisthead, cpu, entry)
71 1.1 cegger #define CPU_FIRST TAILQ_FIRST(&cpulisthead)
72 1.1 cegger
73 1.1 cegger
74 1.1 cegger struct memlist {
75 1.1 cegger struct acpisrat_mem mem;
76 1.1 cegger TAILQ_ENTRY(memlist) entry;
77 1.1 cegger };
78 1.1 cegger
79 1.1 cegger static TAILQ_HEAD(, memlist) memlisthead;
80 1.1 cegger
81 1.1 cegger #define MEM_INIT TAILQ_INIT(&memlisthead)
82 1.1 cegger #define MEM_FOREACH(mem) TAILQ_FOREACH(mem, &memlisthead, entry)
83 1.1 cegger #define MEM_ADD(mem) TAILQ_INSERT_TAIL(&memlisthead, mem, entry)
84 1.1 cegger #define MEM_ADD_BEFORE(mem, b) TAILQ_INSERT_BEFORE(b, mem, entry)
85 1.1 cegger #define MEM_REM(mem) TAILQ_REMOVE(&memlisthead, mem, entry)
86 1.1 cegger #define MEM_FIRST TAILQ_FIRST(&memlisthead)
87 1.1 cegger
88 1.1 cegger
89 1.1 cegger static struct cpulist *
90 1.1 cegger cpu_alloc(void)
91 1.1 cegger {
92 1.1 cegger return kmem_zalloc(sizeof(struct cpulist), KM_NOSLEEP);
93 1.1 cegger }
94 1.1 cegger
95 1.1 cegger static void
96 1.1 cegger cpu_free(struct cpulist *c)
97 1.1 cegger {
98 1.1 cegger kmem_free(c, sizeof(struct cpulist));
99 1.1 cegger }
100 1.1 cegger
101 1.1 cegger #if 0
102 1.1 cegger static struct cpulist *
103 1.1 cegger cpu_get(acpisrat_nodeid_t nodeid)
104 1.1 cegger {
105 1.1 cegger struct cpulist *tmp;
106 1.1 cegger
107 1.1 cegger CPU_FOREACH(tmp) {
108 1.1 cegger if (tmp->cpu.nodeid == nodeid)
109 1.1 cegger return tmp;
110 1.1 cegger }
111 1.1 cegger
112 1.1 cegger return NULL;
113 1.1 cegger }
114 1.1 cegger #endif
115 1.1 cegger
116 1.1 cegger static struct memlist *
117 1.1 cegger mem_alloc(void)
118 1.1 cegger {
119 1.1 cegger return kmem_zalloc(sizeof(struct memlist), KM_NOSLEEP);
120 1.1 cegger }
121 1.1 cegger
122 1.1 cegger static void
123 1.1 cegger mem_free(struct memlist *m)
124 1.1 cegger {
125 1.1 cegger kmem_free(m, sizeof(struct memlist));
126 1.1 cegger }
127 1.1 cegger
128 1.1 cegger static struct memlist *
129 1.1 cegger mem_get(acpisrat_nodeid_t nodeid)
130 1.1 cegger {
131 1.1 cegger struct memlist *tmp;
132 1.1 cegger
133 1.1 cegger MEM_FOREACH(tmp) {
134 1.1 cegger if (tmp->mem.nodeid == nodeid)
135 1.1 cegger return tmp;
136 1.1 cegger }
137 1.1 cegger
138 1.1 cegger return NULL;
139 1.1 cegger }
140 1.1 cegger
141 1.1 cegger
142 1.1 cegger bool
143 1.1 cegger acpisrat_exist(void)
144 1.1 cegger {
145 1.1 cegger ACPI_TABLE_HEADER *table;
146 1.1 cegger ACPI_STATUS rv;
147 1.1 cegger
148 1.1 cegger rv = AcpiGetTable(ACPI_SIG_SRAT, 1, (ACPI_TABLE_HEADER **)&table);
149 1.1 cegger if (ACPI_FAILURE(rv))
150 1.1 cegger return false;
151 1.1 cegger
152 1.1 cegger /* Check if header is valid */
153 1.1 cegger if (table == NULL)
154 1.1 cegger return false;
155 1.1 cegger
156 1.1 cegger if (table->Length == 0xffffffff)
157 1.1 cegger return false;
158 1.1 cegger
159 1.1 cegger srat = (ACPI_TABLE_SRAT *)table;
160 1.1 cegger
161 1.1 cegger return true;
162 1.1 cegger }
163 1.1 cegger
164 1.1 cegger static int
165 1.1 cegger acpisrat_parse(void)
166 1.1 cegger {
167 1.1 cegger ACPI_SUBTABLE_HEADER *subtable;
168 1.1 cegger ACPI_SRAT_CPU_AFFINITY *srat_cpu;
169 1.1 cegger ACPI_SRAT_MEM_AFFINITY *srat_mem;
170 1.1 cegger ACPI_SRAT_X2APIC_CPU_AFFINITY *srat_x2apic;
171 1.1 cegger
172 1.1 cegger acpisrat_nodeid_t nodeid;
173 1.1 cegger struct cpulist *cpuentry = NULL;
174 1.1 cegger struct memlist *mementry;
175 1.1 cegger uint32_t srat_pos;
176 1.1 cegger bool ignore_cpu_affinity = false;
177 1.1 cegger
178 1.1 cegger KASSERT(srat != NULL);
179 1.1 cegger
180 1.1 cegger /* Content starts right after the header */
181 1.1 cegger srat_pos = sizeof(ACPI_TABLE_SRAT);
182 1.1 cegger
183 1.1 cegger while (srat_pos < srat->Header.Length) {
184 1.1 cegger subtable = (ACPI_SUBTABLE_HEADER *)((char *)srat + srat_pos);
185 1.1 cegger srat_pos += subtable->Length;
186 1.1 cegger
187 1.1 cegger switch (subtable->Type) {
188 1.1 cegger case ACPI_SRAT_TYPE_CPU_AFFINITY:
189 1.1 cegger if (ignore_cpu_affinity)
190 1.1 cegger continue;
191 1.1 cegger
192 1.1 cegger srat_cpu = (ACPI_SRAT_CPU_AFFINITY *)subtable;
193 1.4 msaitoh if ((srat_cpu->Flags & ACPI_SRAT_CPU_ENABLED) == 0)
194 1.4 msaitoh break;
195 1.1 cegger nodeid = (srat_cpu->ProximityDomainHi[2] << 24) |
196 1.1 cegger (srat_cpu->ProximityDomainHi[1] << 16) |
197 1.1 cegger (srat_cpu->ProximityDomainHi[0] << 8) |
198 1.1 cegger (srat_cpu->ProximityDomainLo);
199 1.1 cegger
200 1.1 cegger cpuentry = cpu_alloc();
201 1.1 cegger if (cpuentry == NULL)
202 1.1 cegger return ENOMEM;
203 1.1 cegger CPU_ADD(cpuentry);
204 1.1 cegger
205 1.1 cegger cpuentry->cpu.nodeid = nodeid;
206 1.1 cegger cpuentry->cpu.apicid = srat_cpu->ApicId;
207 1.1 cegger cpuentry->cpu.sapiceid = srat_cpu->LocalSapicEid;
208 1.1 cegger cpuentry->cpu.flags = srat_cpu->Flags;
209 1.1 cegger cpuentry->cpu.clockdomain = srat_cpu->ClockDomain;
210 1.1 cegger break;
211 1.1 cegger
212 1.1 cegger case ACPI_SRAT_TYPE_MEMORY_AFFINITY:
213 1.1 cegger srat_mem = (ACPI_SRAT_MEM_AFFINITY *)subtable;
214 1.1 cegger nodeid = srat_mem->ProximityDomain;
215 1.4 msaitoh if ((srat_mem->Flags & ACPI_SRAT_MEM_ENABLED) == 0)
216 1.4 msaitoh break;
217 1.1 cegger
218 1.1 cegger mementry = mem_alloc();
219 1.1 cegger if (mementry == NULL)
220 1.1 cegger return ENOMEM;
221 1.1 cegger MEM_ADD(mementry);
222 1.1 cegger
223 1.1 cegger mementry->mem.nodeid = nodeid;
224 1.1 cegger mementry->mem.baseaddress = srat_mem->BaseAddress;
225 1.1 cegger mementry->mem.length = srat_mem->Length;
226 1.1 cegger mementry->mem.flags = srat_mem->Flags;
227 1.1 cegger break;
228 1.1 cegger
229 1.1 cegger case ACPI_SRAT_TYPE_X2APIC_CPU_AFFINITY:
230 1.1 cegger srat_x2apic = (ACPI_SRAT_X2APIC_CPU_AFFINITY *)subtable;
231 1.4 msaitoh if ((srat_x2apic->Flags & ACPI_SRAT_CPU_ENABLED) == 0)
232 1.4 msaitoh break;
233 1.1 cegger nodeid = srat_x2apic->ProximityDomain;
234 1.1 cegger
235 1.1 cegger /* This table entry overrides
236 1.1 cegger * ACPI_SRAT_TYPE_CPU_AFFINITY.
237 1.1 cegger */
238 1.1 cegger if (!ignore_cpu_affinity) {
239 1.1 cegger struct cpulist *citer;
240 1.1 cegger while ((citer = CPU_FIRST) != NULL) {
241 1.1 cegger CPU_REM(citer);
242 1.1 cegger cpu_free(citer);
243 1.1 cegger }
244 1.1 cegger ignore_cpu_affinity = true;
245 1.1 cegger }
246 1.1 cegger
247 1.1 cegger cpuentry = cpu_alloc();
248 1.1 cegger if (cpuentry == NULL)
249 1.1 cegger return ENOMEM;
250 1.1 cegger CPU_ADD(cpuentry);
251 1.1 cegger
252 1.1 cegger cpuentry->cpu.nodeid = nodeid;
253 1.1 cegger cpuentry->cpu.apicid = srat_x2apic->ApicId;
254 1.1 cegger cpuentry->cpu.clockdomain = srat_x2apic->ClockDomain;
255 1.1 cegger cpuentry->cpu.flags = srat_x2apic->Flags;
256 1.1 cegger break;
257 1.1 cegger
258 1.1 cegger case ACPI_SRAT_TYPE_RESERVED:
259 1.1 cegger printf("ACPI SRAT subtable reserved, length: 0x%x\n",
260 1.1 cegger subtable->Length);
261 1.1 cegger break;
262 1.1 cegger }
263 1.1 cegger }
264 1.1 cegger
265 1.1 cegger return 0;
266 1.1 cegger }
267 1.1 cegger
268 1.1 cegger static int
269 1.1 cegger acpisrat_quirks(void)
270 1.1 cegger {
271 1.1 cegger struct cpulist *citer;
272 1.1 cegger struct memlist *mem, *miter;
273 1.1 cegger
274 1.1 cegger /* Some sanity checks. */
275 1.1 cegger
276 1.1 cegger /* Deal with holes in the memory nodes.
277 1.1 cegger * BIOS doesn't enlist memory nodes which
278 1.1 cegger * don't have any memory modules plugged in.
279 1.1 cegger * This behaviour has been observed on AMD machines.
280 1.1 cegger *
281 1.1 cegger * Do that by searching for CPUs in NUMA nodes
282 1.1 cegger * which don't exist in the memory and then insert
283 1.1 cegger * a zero memory range for the missing node.
284 1.1 cegger */
285 1.1 cegger CPU_FOREACH(citer) {
286 1.1 cegger mem = mem_get(citer->cpu.nodeid);
287 1.1 cegger if (mem != NULL)
288 1.1 cegger continue;
289 1.1 cegger mem = mem_alloc();
290 1.1 cegger if (mem == NULL)
291 1.1 cegger return ENOMEM;
292 1.1 cegger mem->mem.nodeid = citer->cpu.nodeid;
293 1.1 cegger /* all other fields are already zero filled */
294 1.1 cegger
295 1.1 cegger MEM_FOREACH(miter) {
296 1.1 cegger if (miter->mem.nodeid < citer->cpu.nodeid)
297 1.1 cegger continue;
298 1.1 cegger MEM_ADD_BEFORE(mem, miter);
299 1.1 cegger break;
300 1.1 cegger }
301 1.1 cegger }
302 1.1 cegger
303 1.1 cegger return 0;
304 1.1 cegger }
305 1.1 cegger
306 1.1 cegger int
307 1.1 cegger acpisrat_init(void)
308 1.1 cegger {
309 1.1 cegger if (!acpisrat_exist())
310 1.1 cegger return EEXIST;
311 1.1 cegger return acpisrat_refresh();
312 1.1 cegger }
313 1.1 cegger
314 1.1 cegger int
315 1.1 cegger acpisrat_refresh(void)
316 1.1 cegger {
317 1.1 cegger int rc, i, j, k;
318 1.1 cegger struct cpulist *citer;
319 1.1 cegger struct memlist *miter;
320 1.1 cegger uint32_t cnodes = 0, mnodes = 0;
321 1.1 cegger
322 1.1 cegger CPU_INIT;
323 1.1 cegger MEM_INIT;
324 1.1 cegger
325 1.1 cegger rc = acpisrat_parse();
326 1.1 cegger if (rc)
327 1.1 cegger return rc;
328 1.1 cegger
329 1.1 cegger rc = acpisrat_quirks();
330 1.1 cegger if (rc)
331 1.1 cegger return rc;
332 1.1 cegger
333 1.1 cegger /* cleanup resources */
334 1.1 cegger rc = acpisrat_exit();
335 1.1 cegger if (rc)
336 1.1 cegger return rc;
337 1.1 cegger
338 1.1 cegger nnodes = 0;
339 1.1 cegger ncpus = 0;
340 1.1 cegger CPU_FOREACH(citer) {
341 1.1 cegger cnodes = MAX(citer->cpu.nodeid, cnodes);
342 1.1 cegger ncpus++;
343 1.1 cegger }
344 1.1 cegger
345 1.1 cegger nmems = 0;
346 1.1 cegger MEM_FOREACH(miter) {
347 1.1 cegger mnodes = MAX(miter->mem.nodeid, mnodes);
348 1.1 cegger nmems++;
349 1.1 cegger }
350 1.1 cegger
351 1.1 cegger nnodes = MAX(cnodes, mnodes) + 1;
352 1.1 cegger
353 1.1 cegger node_array = kmem_zalloc(nnodes * sizeof(struct acpisrat_node),
354 1.1 cegger KM_NOSLEEP);
355 1.1 cegger if (node_array == NULL)
356 1.1 cegger return ENOMEM;
357 1.1 cegger
358 1.1 cegger cpu_array = kmem_zalloc(ncpus * sizeof(struct acpisrat_cpu),
359 1.1 cegger KM_NOSLEEP);
360 1.1 cegger if (cpu_array == NULL)
361 1.1 cegger return ENOMEM;
362 1.1 cegger
363 1.1 cegger mem_array = kmem_zalloc(nmems * sizeof(struct acpisrat_mem),
364 1.1 cegger KM_NOSLEEP);
365 1.1 cegger if (mem_array == NULL)
366 1.1 cegger return ENOMEM;
367 1.1 cegger
368 1.1 cegger i = 0;
369 1.1 cegger CPU_FOREACH(citer) {
370 1.1 cegger memcpy(&cpu_array[i], &citer->cpu, sizeof(struct acpisrat_cpu));
371 1.1 cegger i++;
372 1.1 cegger node_array[citer->cpu.nodeid].ncpus++;
373 1.1 cegger }
374 1.1 cegger
375 1.1 cegger i = 0;
376 1.1 cegger MEM_FOREACH(miter) {
377 1.1 cegger memcpy(&mem_array[i], &miter->mem, sizeof(struct acpisrat_mem));
378 1.1 cegger i++;
379 1.1 cegger node_array[miter->mem.nodeid].nmems++;
380 1.1 cegger }
381 1.1 cegger
382 1.1 cegger for (i = 0; i < nnodes; i++) {
383 1.1 cegger node_array[i].nodeid = i;
384 1.1 cegger
385 1.1 cegger node_array[i].cpu = kmem_zalloc(node_array[i].ncpus *
386 1.1 cegger sizeof(struct acpisrat_cpu *), KM_NOSLEEP);
387 1.1 cegger node_array[i].mem = kmem_zalloc(node_array[i].nmems *
388 1.1 cegger sizeof(struct acpisrat_mem *), KM_NOSLEEP);
389 1.1 cegger
390 1.1 cegger k = 0;
391 1.1 cegger for (j = 0; j < ncpus; j++) {
392 1.1 cegger if (cpu_array[j].nodeid != i)
393 1.1 cegger continue;
394 1.1 cegger node_array[i].cpu[k] = &cpu_array[j];
395 1.1 cegger k++;
396 1.1 cegger }
397 1.1 cegger
398 1.1 cegger k = 0;
399 1.1 cegger for (j = 0; j < nmems; j++) {
400 1.1 cegger if (mem_array[j].nodeid != i)
401 1.1 cegger continue;
402 1.1 cegger node_array[i].mem[k] = &mem_array[j];
403 1.1 cegger k++;
404 1.1 cegger }
405 1.1 cegger }
406 1.1 cegger
407 1.1 cegger while ((citer = CPU_FIRST) != NULL) {
408 1.1 cegger CPU_REM(citer);
409 1.1 cegger cpu_free(citer);
410 1.1 cegger }
411 1.1 cegger
412 1.1 cegger while ((miter = MEM_FIRST) != NULL) {
413 1.1 cegger MEM_REM(miter);
414 1.1 cegger mem_free(miter);
415 1.1 cegger }
416 1.1 cegger
417 1.1 cegger return 0;
418 1.1 cegger }
419 1.1 cegger
420 1.1 cegger
421 1.1 cegger int
422 1.1 cegger acpisrat_exit(void)
423 1.1 cegger {
424 1.1 cegger int i;
425 1.1 cegger
426 1.1 cegger if (node_array) {
427 1.1 cegger for (i = 0; i < nnodes; i++) {
428 1.1 cegger if (node_array[i].cpu)
429 1.1 cegger kmem_free(node_array[i].cpu,
430 1.1 cegger node_array[i].ncpus * sizeof(struct acpisrat_cpu *));
431 1.1 cegger if (node_array[i].mem)
432 1.1 cegger kmem_free(node_array[i].mem,
433 1.1 cegger node_array[i].nmems * sizeof(struct acpisrat_mem *));
434 1.1 cegger }
435 1.1 cegger kmem_free(node_array, nnodes * sizeof(struct acpisrat_node));
436 1.1 cegger }
437 1.1 cegger node_array = NULL;
438 1.1 cegger
439 1.1 cegger if (cpu_array)
440 1.1 cegger kmem_free(cpu_array, ncpus * sizeof(struct acpisrat_cpu));
441 1.1 cegger cpu_array = NULL;
442 1.1 cegger
443 1.1 cegger if (mem_array)
444 1.1 cegger kmem_free(mem_array, nmems * sizeof(struct acpisrat_mem));
445 1.1 cegger mem_array = NULL;
446 1.1 cegger
447 1.1 cegger nnodes = 0;
448 1.1 cegger ncpus = 0;
449 1.1 cegger nmems = 0;
450 1.1 cegger
451 1.1 cegger return 0;
452 1.1 cegger }
453 1.1 cegger
454 1.1 cegger
455 1.1 cegger void
456 1.1 cegger acpisrat_dump(void)
457 1.1 cegger {
458 1.1 cegger uint32_t i, j, nn, nc, nm;
459 1.1 cegger struct acpisrat_cpu c;
460 1.1 cegger struct acpisrat_mem m;
461 1.1 cegger
462 1.1 cegger nn = acpisrat_nodes();
463 1.1 cegger aprint_debug("SRAT: %u NUMA nodes\n", nn);
464 1.1 cegger for (i = 0; i < nn; i++) {
465 1.1 cegger nc = acpisrat_node_cpus(i);
466 1.1 cegger for (j = 0; j < nc; j++) {
467 1.1 cegger acpisrat_cpu(i, j, &c);
468 1.1 cegger aprint_debug("SRAT: node %u cpu %u "
469 1.1 cegger "(apic %u, sapic %u, flags %u, clockdomain %u)\n",
470 1.1 cegger c.nodeid, j, c.apicid, c.sapiceid, c.flags,
471 1.1 cegger c.clockdomain);
472 1.1 cegger }
473 1.1 cegger
474 1.1 cegger nm = acpisrat_node_memoryranges(i);
475 1.1 cegger for (j = 0; j < nm; j++) {
476 1.1 cegger acpisrat_mem(i, j, &m);
477 1.1 cegger aprint_debug("SRAT: node %u memory range %u (0x%"
478 1.1 cegger PRIx64" - 0x%"PRIx64" flags %u)\n",
479 1.1 cegger m.nodeid, j, m.baseaddress,
480 1.1 cegger m.baseaddress + m.length, m.flags);
481 1.1 cegger }
482 1.1 cegger }
483 1.1 cegger }
484 1.1 cegger
485 1.1 cegger uint32_t
486 1.1 cegger acpisrat_nodes(void)
487 1.1 cegger {
488 1.1 cegger return nnodes;
489 1.1 cegger }
490 1.1 cegger
491 1.1 cegger uint32_t
492 1.1 cegger acpisrat_node_cpus(acpisrat_nodeid_t nodeid)
493 1.1 cegger {
494 1.1 cegger return node_array[nodeid].ncpus;
495 1.1 cegger }
496 1.1 cegger
497 1.1 cegger uint32_t
498 1.1 cegger acpisrat_node_memoryranges(acpisrat_nodeid_t nodeid)
499 1.1 cegger {
500 1.1 cegger return node_array[nodeid].nmems;
501 1.1 cegger }
502 1.1 cegger
503 1.1 cegger void
504 1.1 cegger acpisrat_cpu(acpisrat_nodeid_t nodeid, uint32_t cpunum,
505 1.1 cegger struct acpisrat_cpu *c)
506 1.1 cegger {
507 1.1 cegger memcpy(c, node_array[nodeid].cpu[cpunum],
508 1.1 cegger sizeof(struct acpisrat_cpu));
509 1.1 cegger }
510 1.1 cegger
511 1.1 cegger void
512 1.1 cegger acpisrat_mem(acpisrat_nodeid_t nodeid, uint32_t memrange,
513 1.1 cegger struct acpisrat_mem *mem)
514 1.1 cegger {
515 1.1 cegger memcpy(mem, node_array[nodeid].mem[memrange],
516 1.1 cegger sizeof(struct acpisrat_mem));
517 1.1 cegger }
518