spapr_drc: use RTAS return codes for methods called by RTAS
[qemu/ar7.git] / hw / ppc / spapr_rtas.c
blob34b12a3b99d3d863f63791ceba5dda3986680d01
1 /*
2 * QEMU PowerPC pSeries Logical Partition (aka sPAPR) hardware System Emulator
4 * Hypercall based emulated RTAS
6 * Copyright (c) 2010-2011 David Gibson, IBM Corporation.
8 * Permission is hereby granted, free of charge, to any person obtaining a copy
9 * of this software and associated documentation files (the "Software"), to deal
10 * in the Software without restriction, including without limitation the rights
11 * to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
12 * copies of the Software, and to permit persons to whom the Software is
13 * furnished to do so, subject to the following conditions:
15 * The above copyright notice and this permission notice shall be included in
16 * all copies or substantial portions of the Software.
18 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
19 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
20 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL
21 * THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
22 * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
23 * OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN
24 * THE SOFTWARE.
27 #include "cpu.h"
28 #include "sysemu/sysemu.h"
29 #include "sysemu/char.h"
30 #include "hw/qdev.h"
31 #include "sysemu/device_tree.h"
32 #include "sysemu/cpus.h"
34 #include "hw/ppc/spapr.h"
35 #include "hw/ppc/spapr_vio.h"
36 #include "qapi-event.h"
37 #include "hw/boards.h"
39 #include <libfdt.h>
40 #include "hw/ppc/spapr_drc.h"
42 /* #define DEBUG_SPAPR */
44 #ifdef DEBUG_SPAPR
45 #define DPRINTF(fmt, ...) \
46 do { fprintf(stderr, fmt, ## __VA_ARGS__); } while (0)
47 #else
48 #define DPRINTF(fmt, ...) \
49 do { } while (0)
50 #endif
52 static sPAPRConfigureConnectorState *spapr_ccs_find(sPAPRMachineState *spapr,
53 uint32_t drc_index)
55 sPAPRConfigureConnectorState *ccs = NULL;
57 QTAILQ_FOREACH(ccs, &spapr->ccs_list, next) {
58 if (ccs->drc_index == drc_index) {
59 break;
63 return ccs;
66 static void spapr_ccs_add(sPAPRMachineState *spapr,
67 sPAPRConfigureConnectorState *ccs)
69 g_assert(!spapr_ccs_find(spapr, ccs->drc_index));
70 QTAILQ_INSERT_HEAD(&spapr->ccs_list, ccs, next);
73 static void spapr_ccs_remove(sPAPRMachineState *spapr,
74 sPAPRConfigureConnectorState *ccs)
76 QTAILQ_REMOVE(&spapr->ccs_list, ccs, next);
77 g_free(ccs);
80 void spapr_ccs_reset_hook(void *opaque)
82 sPAPRMachineState *spapr = opaque;
83 sPAPRConfigureConnectorState *ccs, *ccs_tmp;
85 QTAILQ_FOREACH_SAFE(ccs, &spapr->ccs_list, next, ccs_tmp) {
86 spapr_ccs_remove(spapr, ccs);
90 static void rtas_display_character(PowerPCCPU *cpu, sPAPRMachineState *spapr,
91 uint32_t token, uint32_t nargs,
92 target_ulong args,
93 uint32_t nret, target_ulong rets)
95 uint8_t c = rtas_ld(args, 0);
96 VIOsPAPRDevice *sdev = vty_lookup(spapr, 0);
98 if (!sdev) {
99 rtas_st(rets, 0, RTAS_OUT_HW_ERROR);
100 } else {
101 vty_putchars(sdev, &c, sizeof(c));
102 rtas_st(rets, 0, RTAS_OUT_SUCCESS);
106 static void rtas_power_off(PowerPCCPU *cpu, sPAPRMachineState *spapr,
107 uint32_t token, uint32_t nargs, target_ulong args,
108 uint32_t nret, target_ulong rets)
110 if (nargs != 2 || nret != 1) {
111 rtas_st(rets, 0, RTAS_OUT_PARAM_ERROR);
112 return;
114 qemu_system_shutdown_request();
115 rtas_st(rets, 0, RTAS_OUT_SUCCESS);
118 static void rtas_system_reboot(PowerPCCPU *cpu, sPAPRMachineState *spapr,
119 uint32_t token, uint32_t nargs,
120 target_ulong args,
121 uint32_t nret, target_ulong rets)
123 if (nargs != 0 || nret != 1) {
124 rtas_st(rets, 0, RTAS_OUT_PARAM_ERROR);
125 return;
127 qemu_system_reset_request();
128 rtas_st(rets, 0, RTAS_OUT_SUCCESS);
131 static void rtas_query_cpu_stopped_state(PowerPCCPU *cpu_,
132 sPAPRMachineState *spapr,
133 uint32_t token, uint32_t nargs,
134 target_ulong args,
135 uint32_t nret, target_ulong rets)
137 target_ulong id;
138 PowerPCCPU *cpu;
140 if (nargs != 1 || nret != 2) {
141 rtas_st(rets, 0, RTAS_OUT_PARAM_ERROR);
142 return;
145 id = rtas_ld(args, 0);
146 cpu = ppc_get_vcpu_by_dt_id(id);
147 if (cpu != NULL) {
148 if (CPU(cpu)->halted) {
149 rtas_st(rets, 1, 0);
150 } else {
151 rtas_st(rets, 1, 2);
154 rtas_st(rets, 0, RTAS_OUT_SUCCESS);
155 return;
158 /* Didn't find a matching cpu */
159 rtas_st(rets, 0, RTAS_OUT_PARAM_ERROR);
162 static void rtas_start_cpu(PowerPCCPU *cpu_, sPAPRMachineState *spapr,
163 uint32_t token, uint32_t nargs,
164 target_ulong args,
165 uint32_t nret, target_ulong rets)
167 target_ulong id, start, r3;
168 PowerPCCPU *cpu;
170 if (nargs != 3 || nret != 1) {
171 rtas_st(rets, 0, RTAS_OUT_PARAM_ERROR);
172 return;
175 id = rtas_ld(args, 0);
176 start = rtas_ld(args, 1);
177 r3 = rtas_ld(args, 2);
179 cpu = ppc_get_vcpu_by_dt_id(id);
180 if (cpu != NULL) {
181 CPUState *cs = CPU(cpu);
182 CPUPPCState *env = &cpu->env;
184 if (!cs->halted) {
185 rtas_st(rets, 0, RTAS_OUT_HW_ERROR);
186 return;
189 /* This will make sure qemu state is up to date with kvm, and
190 * mark it dirty so our changes get flushed back before the
191 * new cpu enters */
192 kvm_cpu_synchronize_state(cs);
194 env->msr = (1ULL << MSR_SF) | (1ULL << MSR_ME);
195 env->nip = start;
196 env->gpr[3] = r3;
197 cs->halted = 0;
199 qemu_cpu_kick(cs);
201 rtas_st(rets, 0, RTAS_OUT_SUCCESS);
202 return;
205 /* Didn't find a matching cpu */
206 rtas_st(rets, 0, RTAS_OUT_PARAM_ERROR);
209 static void rtas_stop_self(PowerPCCPU *cpu, sPAPRMachineState *spapr,
210 uint32_t token, uint32_t nargs,
211 target_ulong args,
212 uint32_t nret, target_ulong rets)
214 CPUState *cs = CPU(cpu);
215 CPUPPCState *env = &cpu->env;
217 cs->halted = 1;
218 qemu_cpu_kick(cs);
220 * While stopping a CPU, the guest calls H_CPPR which
221 * effectively disables interrupts on XICS level.
222 * However decrementer interrupts in TCG can still
223 * wake the CPU up so here we disable interrupts in MSR
224 * as well.
225 * As rtas_start_cpu() resets the whole MSR anyway, there is
226 * no need to bother with specific bits, we just clear it.
228 env->msr = 0;
231 static void rtas_ibm_get_system_parameter(PowerPCCPU *cpu,
232 sPAPRMachineState *spapr,
233 uint32_t token, uint32_t nargs,
234 target_ulong args,
235 uint32_t nret, target_ulong rets)
237 target_ulong parameter = rtas_ld(args, 0);
238 target_ulong buffer = rtas_ld(args, 1);
239 target_ulong length = rtas_ld(args, 2);
240 target_ulong ret = RTAS_OUT_SUCCESS;
242 switch (parameter) {
243 case RTAS_SYSPARM_SPLPAR_CHARACTERISTICS: {
244 char *param_val = g_strdup_printf("MaxEntCap=%d,"
245 "DesMem=%llu,"
246 "DesProcs=%d,"
247 "MaxPlatProcs=%d",
248 max_cpus,
249 current_machine->ram_size / M_BYTE,
250 smp_cpus,
251 max_cpus);
252 rtas_st_buffer(buffer, length, (uint8_t *)param_val, strlen(param_val));
253 g_free(param_val);
254 break;
256 case RTAS_SYSPARM_DIAGNOSTICS_RUN_MODE: {
257 uint8_t param_val = DIAGNOSTICS_RUN_MODE_DISABLED;
259 rtas_st_buffer(buffer, length, &param_val, sizeof(param_val));
260 break;
262 case RTAS_SYSPARM_UUID:
263 rtas_st_buffer(buffer, length, qemu_uuid, (qemu_uuid_set ? 16 : 0));
264 break;
265 default:
266 ret = RTAS_OUT_NOT_SUPPORTED;
269 rtas_st(rets, 0, ret);
272 static void rtas_ibm_set_system_parameter(PowerPCCPU *cpu,
273 sPAPRMachineState *spapr,
274 uint32_t token, uint32_t nargs,
275 target_ulong args,
276 uint32_t nret, target_ulong rets)
278 target_ulong parameter = rtas_ld(args, 0);
279 target_ulong ret = RTAS_OUT_NOT_SUPPORTED;
281 switch (parameter) {
282 case RTAS_SYSPARM_SPLPAR_CHARACTERISTICS:
283 case RTAS_SYSPARM_DIAGNOSTICS_RUN_MODE:
284 case RTAS_SYSPARM_UUID:
285 ret = RTAS_OUT_NOT_AUTHORIZED;
286 break;
289 rtas_st(rets, 0, ret);
292 static void rtas_ibm_os_term(PowerPCCPU *cpu,
293 sPAPRMachineState *spapr,
294 uint32_t token, uint32_t nargs,
295 target_ulong args,
296 uint32_t nret, target_ulong rets)
298 target_ulong ret = 0;
300 qapi_event_send_guest_panicked(GUEST_PANIC_ACTION_PAUSE, &error_abort);
302 rtas_st(rets, 0, ret);
305 static void rtas_set_power_level(PowerPCCPU *cpu, sPAPRMachineState *spapr,
306 uint32_t token, uint32_t nargs,
307 target_ulong args, uint32_t nret,
308 target_ulong rets)
310 int32_t power_domain;
312 if (nargs != 2 || nret != 2) {
313 rtas_st(rets, 0, RTAS_OUT_PARAM_ERROR);
314 return;
317 /* we currently only use a single, "live insert" powerdomain for
318 * hotplugged/dlpar'd resources, so the power is always live/full (100)
320 power_domain = rtas_ld(args, 0);
321 if (power_domain != -1) {
322 rtas_st(rets, 0, RTAS_OUT_NOT_SUPPORTED);
323 return;
326 rtas_st(rets, 0, RTAS_OUT_SUCCESS);
327 rtas_st(rets, 1, 100);
330 static void rtas_get_power_level(PowerPCCPU *cpu, sPAPRMachineState *spapr,
331 uint32_t token, uint32_t nargs,
332 target_ulong args, uint32_t nret,
333 target_ulong rets)
335 int32_t power_domain;
337 if (nargs != 1 || nret != 2) {
338 rtas_st(rets, 0, RTAS_OUT_PARAM_ERROR);
339 return;
342 /* we currently only use a single, "live insert" powerdomain for
343 * hotplugged/dlpar'd resources, so the power is always live/full (100)
345 power_domain = rtas_ld(args, 0);
346 if (power_domain != -1) {
347 rtas_st(rets, 0, RTAS_OUT_NOT_SUPPORTED);
348 return;
351 rtas_st(rets, 0, RTAS_OUT_SUCCESS);
352 rtas_st(rets, 1, 100);
355 static bool sensor_type_is_dr(uint32_t sensor_type)
357 switch (sensor_type) {
358 case RTAS_SENSOR_TYPE_ISOLATION_STATE:
359 case RTAS_SENSOR_TYPE_DR:
360 case RTAS_SENSOR_TYPE_ALLOCATION_STATE:
361 return true;
364 return false;
367 static void rtas_set_indicator(PowerPCCPU *cpu, sPAPRMachineState *spapr,
368 uint32_t token, uint32_t nargs,
369 target_ulong args, uint32_t nret,
370 target_ulong rets)
372 uint32_t sensor_type;
373 uint32_t sensor_index;
374 uint32_t sensor_state;
375 uint32_t ret = RTAS_OUT_SUCCESS;
376 sPAPRDRConnector *drc;
377 sPAPRDRConnectorClass *drck;
379 if (nargs != 3 || nret != 1) {
380 ret = RTAS_OUT_PARAM_ERROR;
381 goto out;
384 sensor_type = rtas_ld(args, 0);
385 sensor_index = rtas_ld(args, 1);
386 sensor_state = rtas_ld(args, 2);
388 if (!sensor_type_is_dr(sensor_type)) {
389 goto out_unimplemented;
392 /* if this is a DR sensor we can assume sensor_index == drc_index */
393 drc = spapr_dr_connector_by_index(sensor_index);
394 if (!drc) {
395 DPRINTF("rtas_set_indicator: invalid sensor/DRC index: %xh\n",
396 sensor_index);
397 ret = RTAS_OUT_PARAM_ERROR;
398 goto out;
400 drck = SPAPR_DR_CONNECTOR_GET_CLASS(drc);
402 switch (sensor_type) {
403 case RTAS_SENSOR_TYPE_ISOLATION_STATE:
404 /* if the guest is configuring a device attached to this
405 * DRC, we should reset the configuration state at this
406 * point since it may no longer be reliable (guest released
407 * device and needs to start over, or unplug occurred so
408 * the FDT is no longer valid)
410 if (sensor_state == SPAPR_DR_ISOLATION_STATE_ISOLATED) {
411 sPAPRConfigureConnectorState *ccs = spapr_ccs_find(spapr,
412 sensor_index);
413 if (ccs) {
414 spapr_ccs_remove(spapr, ccs);
417 ret = drck->set_isolation_state(drc, sensor_state);
418 break;
419 case RTAS_SENSOR_TYPE_DR:
420 ret = drck->set_indicator_state(drc, sensor_state);
421 break;
422 case RTAS_SENSOR_TYPE_ALLOCATION_STATE:
423 ret = drck->set_allocation_state(drc, sensor_state);
424 break;
425 default:
426 goto out_unimplemented;
429 out:
430 rtas_st(rets, 0, ret);
431 return;
433 out_unimplemented:
434 /* currently only DR-related sensors are implemented */
435 DPRINTF("rtas_set_indicator: sensor/indicator not implemented: %d\n",
436 sensor_type);
437 rtas_st(rets, 0, RTAS_OUT_NOT_SUPPORTED);
440 static void rtas_get_sensor_state(PowerPCCPU *cpu, sPAPRMachineState *spapr,
441 uint32_t token, uint32_t nargs,
442 target_ulong args, uint32_t nret,
443 target_ulong rets)
445 uint32_t sensor_type;
446 uint32_t sensor_index;
447 uint32_t sensor_state = 0;
448 sPAPRDRConnector *drc;
449 sPAPRDRConnectorClass *drck;
450 uint32_t ret = RTAS_OUT_SUCCESS;
452 if (nargs != 2 || nret != 2) {
453 ret = RTAS_OUT_PARAM_ERROR;
454 goto out;
457 sensor_type = rtas_ld(args, 0);
458 sensor_index = rtas_ld(args, 1);
460 if (sensor_type != RTAS_SENSOR_TYPE_ENTITY_SENSE) {
461 /* currently only DR-related sensors are implemented */
462 DPRINTF("rtas_get_sensor_state: sensor/indicator not implemented: %d\n",
463 sensor_type);
464 ret = RTAS_OUT_NOT_SUPPORTED;
465 goto out;
468 drc = spapr_dr_connector_by_index(sensor_index);
469 if (!drc) {
470 DPRINTF("rtas_get_sensor_state: invalid sensor/DRC index: %xh\n",
471 sensor_index);
472 ret = RTAS_OUT_PARAM_ERROR;
473 goto out;
475 drck = SPAPR_DR_CONNECTOR_GET_CLASS(drc);
476 ret = drck->entity_sense(drc, &sensor_state);
478 out:
479 rtas_st(rets, 0, ret);
480 rtas_st(rets, 1, sensor_state);
483 /* configure-connector work area offsets, int32_t units for field
484 * indexes, bytes for field offset/len values.
486 * as documented by PAPR+ v2.7, 13.5.3.5
488 #define CC_IDX_NODE_NAME_OFFSET 2
489 #define CC_IDX_PROP_NAME_OFFSET 2
490 #define CC_IDX_PROP_LEN 3
491 #define CC_IDX_PROP_DATA_OFFSET 4
492 #define CC_VAL_DATA_OFFSET ((CC_IDX_PROP_DATA_OFFSET + 1) * 4)
493 #define CC_WA_LEN 4096
495 static void rtas_ibm_configure_connector(PowerPCCPU *cpu,
496 sPAPRMachineState *spapr,
497 uint32_t token, uint32_t nargs,
498 target_ulong args, uint32_t nret,
499 target_ulong rets)
501 uint64_t wa_addr;
502 uint64_t wa_offset;
503 uint32_t drc_index;
504 sPAPRDRConnector *drc;
505 sPAPRDRConnectorClass *drck;
506 sPAPRConfigureConnectorState *ccs;
507 sPAPRDRCCResponse resp = SPAPR_DR_CC_RESPONSE_CONTINUE;
508 int rc;
509 const void *fdt;
511 if (nargs != 2 || nret != 1) {
512 rtas_st(rets, 0, RTAS_OUT_PARAM_ERROR);
513 return;
516 wa_addr = ((uint64_t)rtas_ld(args, 1) << 32) | rtas_ld(args, 0);
518 drc_index = rtas_ld(wa_addr, 0);
519 drc = spapr_dr_connector_by_index(drc_index);
520 if (!drc) {
521 DPRINTF("rtas_ibm_configure_connector: invalid DRC index: %xh\n",
522 drc_index);
523 rc = RTAS_OUT_PARAM_ERROR;
524 goto out;
527 drck = SPAPR_DR_CONNECTOR_GET_CLASS(drc);
528 fdt = drck->get_fdt(drc, NULL);
529 if (!fdt) {
530 DPRINTF("rtas_ibm_configure_connector: Missing FDT for DRC index: %xh\n",
531 drc_index);
532 rc = SPAPR_DR_CC_RESPONSE_NOT_CONFIGURABLE;
533 goto out;
536 ccs = spapr_ccs_find(spapr, drc_index);
537 if (!ccs) {
538 ccs = g_new0(sPAPRConfigureConnectorState, 1);
539 (void)drck->get_fdt(drc, &ccs->fdt_offset);
540 ccs->drc_index = drc_index;
541 spapr_ccs_add(spapr, ccs);
544 do {
545 uint32_t tag;
546 const char *name;
547 const struct fdt_property *prop;
548 int fdt_offset_next, prop_len;
550 tag = fdt_next_tag(fdt, ccs->fdt_offset, &fdt_offset_next);
552 switch (tag) {
553 case FDT_BEGIN_NODE:
554 ccs->fdt_depth++;
555 name = fdt_get_name(fdt, ccs->fdt_offset, NULL);
557 /* provide the name of the next OF node */
558 wa_offset = CC_VAL_DATA_OFFSET;
559 rtas_st(wa_addr, CC_IDX_NODE_NAME_OFFSET, wa_offset);
560 rtas_st_buffer_direct(wa_addr + wa_offset, CC_WA_LEN - wa_offset,
561 (uint8_t *)name, strlen(name) + 1);
562 resp = SPAPR_DR_CC_RESPONSE_NEXT_CHILD;
563 break;
564 case FDT_END_NODE:
565 ccs->fdt_depth--;
566 if (ccs->fdt_depth == 0) {
567 /* done sending the device tree, don't need to track
568 * the state anymore
570 drck->set_configured(drc);
571 spapr_ccs_remove(spapr, ccs);
572 ccs = NULL;
573 resp = SPAPR_DR_CC_RESPONSE_SUCCESS;
574 } else {
575 resp = SPAPR_DR_CC_RESPONSE_PREV_PARENT;
577 break;
578 case FDT_PROP:
579 prop = fdt_get_property_by_offset(fdt, ccs->fdt_offset,
580 &prop_len);
581 name = fdt_string(fdt, fdt32_to_cpu(prop->nameoff));
583 /* provide the name of the next OF property */
584 wa_offset = CC_VAL_DATA_OFFSET;
585 rtas_st(wa_addr, CC_IDX_PROP_NAME_OFFSET, wa_offset);
586 rtas_st_buffer_direct(wa_addr + wa_offset, CC_WA_LEN - wa_offset,
587 (uint8_t *)name, strlen(name) + 1);
589 /* provide the length and value of the OF property. data gets
590 * placed immediately after NULL terminator of the OF property's
591 * name string
593 wa_offset += strlen(name) + 1,
594 rtas_st(wa_addr, CC_IDX_PROP_LEN, prop_len);
595 rtas_st(wa_addr, CC_IDX_PROP_DATA_OFFSET, wa_offset);
596 rtas_st_buffer_direct(wa_addr + wa_offset, CC_WA_LEN - wa_offset,
597 (uint8_t *)((struct fdt_property *)prop)->data,
598 prop_len);
599 resp = SPAPR_DR_CC_RESPONSE_NEXT_PROPERTY;
600 break;
601 case FDT_END:
602 resp = SPAPR_DR_CC_RESPONSE_ERROR;
603 default:
604 /* keep seeking for an actionable tag */
605 break;
607 if (ccs) {
608 ccs->fdt_offset = fdt_offset_next;
610 } while (resp == SPAPR_DR_CC_RESPONSE_CONTINUE);
612 rc = resp;
613 out:
614 rtas_st(rets, 0, rc);
617 static struct rtas_call {
618 const char *name;
619 spapr_rtas_fn fn;
620 } rtas_table[RTAS_TOKEN_MAX - RTAS_TOKEN_BASE];
622 target_ulong spapr_rtas_call(PowerPCCPU *cpu, sPAPRMachineState *spapr,
623 uint32_t token, uint32_t nargs, target_ulong args,
624 uint32_t nret, target_ulong rets)
626 if ((token >= RTAS_TOKEN_BASE) && (token < RTAS_TOKEN_MAX)) {
627 struct rtas_call *call = rtas_table + (token - RTAS_TOKEN_BASE);
629 if (call->fn) {
630 call->fn(cpu, spapr, token, nargs, args, nret, rets);
631 return H_SUCCESS;
635 /* HACK: Some Linux early debug code uses RTAS display-character,
636 * but assumes the token value is 0xa (which it is on some real
637 * machines) without looking it up in the device tree. This
638 * special case makes this work */
639 if (token == 0xa) {
640 rtas_display_character(cpu, spapr, 0xa, nargs, args, nret, rets);
641 return H_SUCCESS;
644 hcall_dprintf("Unknown RTAS token 0x%x\n", token);
645 rtas_st(rets, 0, RTAS_OUT_PARAM_ERROR);
646 return H_PARAMETER;
649 void spapr_rtas_register(int token, const char *name, spapr_rtas_fn fn)
651 if (!((token >= RTAS_TOKEN_BASE) && (token < RTAS_TOKEN_MAX))) {
652 fprintf(stderr, "RTAS invalid token 0x%x\n", token);
653 exit(1);
656 token -= RTAS_TOKEN_BASE;
657 if (rtas_table[token].name) {
658 fprintf(stderr, "RTAS call \"%s\" is registered already as 0x%x\n",
659 rtas_table[token].name, token);
660 exit(1);
663 rtas_table[token].name = name;
664 rtas_table[token].fn = fn;
667 int spapr_rtas_device_tree_setup(void *fdt, hwaddr rtas_addr,
668 hwaddr rtas_size)
670 int ret;
671 int i;
672 uint32_t lrdr_capacity[5];
673 MachineState *machine = MACHINE(qdev_get_machine());
675 ret = fdt_add_mem_rsv(fdt, rtas_addr, rtas_size);
676 if (ret < 0) {
677 fprintf(stderr, "Couldn't add RTAS reserve entry: %s\n",
678 fdt_strerror(ret));
679 return ret;
682 ret = qemu_fdt_setprop_cell(fdt, "/rtas", "linux,rtas-base",
683 rtas_addr);
684 if (ret < 0) {
685 fprintf(stderr, "Couldn't add linux,rtas-base property: %s\n",
686 fdt_strerror(ret));
687 return ret;
690 ret = qemu_fdt_setprop_cell(fdt, "/rtas", "linux,rtas-entry",
691 rtas_addr);
692 if (ret < 0) {
693 fprintf(stderr, "Couldn't add linux,rtas-entry property: %s\n",
694 fdt_strerror(ret));
695 return ret;
698 ret = qemu_fdt_setprop_cell(fdt, "/rtas", "rtas-size",
699 rtas_size);
700 if (ret < 0) {
701 fprintf(stderr, "Couldn't add rtas-size property: %s\n",
702 fdt_strerror(ret));
703 return ret;
706 for (i = 0; i < RTAS_TOKEN_MAX - RTAS_TOKEN_BASE; i++) {
707 struct rtas_call *call = &rtas_table[i];
709 if (!call->name) {
710 continue;
713 ret = qemu_fdt_setprop_cell(fdt, "/rtas", call->name,
714 i + RTAS_TOKEN_BASE);
715 if (ret < 0) {
716 fprintf(stderr, "Couldn't add rtas token for %s: %s\n",
717 call->name, fdt_strerror(ret));
718 return ret;
723 lrdr_capacity[0] = cpu_to_be32(((uint64_t)machine->maxram_size) >> 32);
724 lrdr_capacity[1] = cpu_to_be32(machine->maxram_size & 0xffffffff);
725 lrdr_capacity[2] = 0;
726 lrdr_capacity[3] = cpu_to_be32(SPAPR_MEMORY_BLOCK_SIZE);
727 lrdr_capacity[4] = cpu_to_be32(max_cpus/smp_threads);
728 ret = qemu_fdt_setprop(fdt, "/rtas", "ibm,lrdr-capacity", lrdr_capacity,
729 sizeof(lrdr_capacity));
730 if (ret < 0) {
731 fprintf(stderr, "Couldn't add ibm,lrdr-capacity rtas property\n");
732 return ret;
735 return 0;
738 static void core_rtas_register_types(void)
740 spapr_rtas_register(RTAS_DISPLAY_CHARACTER, "display-character",
741 rtas_display_character);
742 spapr_rtas_register(RTAS_POWER_OFF, "power-off", rtas_power_off);
743 spapr_rtas_register(RTAS_SYSTEM_REBOOT, "system-reboot",
744 rtas_system_reboot);
745 spapr_rtas_register(RTAS_QUERY_CPU_STOPPED_STATE, "query-cpu-stopped-state",
746 rtas_query_cpu_stopped_state);
747 spapr_rtas_register(RTAS_START_CPU, "start-cpu", rtas_start_cpu);
748 spapr_rtas_register(RTAS_STOP_SELF, "stop-self", rtas_stop_self);
749 spapr_rtas_register(RTAS_IBM_GET_SYSTEM_PARAMETER,
750 "ibm,get-system-parameter",
751 rtas_ibm_get_system_parameter);
752 spapr_rtas_register(RTAS_IBM_SET_SYSTEM_PARAMETER,
753 "ibm,set-system-parameter",
754 rtas_ibm_set_system_parameter);
755 spapr_rtas_register(RTAS_IBM_OS_TERM, "ibm,os-term",
756 rtas_ibm_os_term);
757 spapr_rtas_register(RTAS_SET_POWER_LEVEL, "set-power-level",
758 rtas_set_power_level);
759 spapr_rtas_register(RTAS_GET_POWER_LEVEL, "get-power-level",
760 rtas_get_power_level);
761 spapr_rtas_register(RTAS_SET_INDICATOR, "set-indicator",
762 rtas_set_indicator);
763 spapr_rtas_register(RTAS_GET_SENSOR_STATE, "get-sensor-state",
764 rtas_get_sensor_state);
765 spapr_rtas_register(RTAS_IBM_CONFIGURE_CONNECTOR, "ibm,configure-connector",
766 rtas_ibm_configure_connector);
769 type_init(core_rtas_register_types)