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Commit | Line | Data |
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9fdf0c29 DG |
1 | /* |
2 | * QEMU PowerPC pSeries Logical Partition (aka sPAPR) hardware System Emulator | |
3 | * | |
4 | * Copyright (c) 2004-2007 Fabrice Bellard | |
5 | * Copyright (c) 2007 Jocelyn Mayer | |
6 | * Copyright (c) 2010 David Gibson, IBM Corporation. | |
7 | * | |
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: | |
14 | * | |
15 | * The above copyright notice and this permission notice shall be included in | |
16 | * all copies or substantial portions of the Software. | |
17 | * | |
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. | |
25 | * | |
26 | */ | |
9c17d615 | 27 | #include "sysemu/sysemu.h" |
e35704ba | 28 | #include "sysemu/numa.h" |
83c9f4ca | 29 | #include "hw/hw.h" |
71461b0f | 30 | #include "hw/fw-path-provider.h" |
9fdf0c29 | 31 | #include "elf.h" |
1422e32d | 32 | #include "net/net.h" |
fa1d36df | 33 | #include "sysemu/block-backend.h" |
9c17d615 PB |
34 | #include "sysemu/cpus.h" |
35 | #include "sysemu/kvm.h" | |
e97c3636 | 36 | #include "kvm_ppc.h" |
4be21d56 | 37 | #include "mmu-hash64.h" |
3794d548 | 38 | #include "qom/cpu.h" |
9fdf0c29 DG |
39 | |
40 | #include "hw/boards.h" | |
0d09e41a | 41 | #include "hw/ppc/ppc.h" |
9fdf0c29 DG |
42 | #include "hw/loader.h" |
43 | ||
0d09e41a PB |
44 | #include "hw/ppc/spapr.h" |
45 | #include "hw/ppc/spapr_vio.h" | |
46 | #include "hw/pci-host/spapr.h" | |
47 | #include "hw/ppc/xics.h" | |
a2cb15b0 | 48 | #include "hw/pci/msi.h" |
9fdf0c29 | 49 | |
83c9f4ca | 50 | #include "hw/pci/pci.h" |
71461b0f AK |
51 | #include "hw/scsi/scsi.h" |
52 | #include "hw/virtio/virtio-scsi.h" | |
f61b4bed | 53 | |
022c62cb | 54 | #include "exec/address-spaces.h" |
35139a59 | 55 | #include "hw/usb.h" |
1de7afc9 | 56 | #include "qemu/config-file.h" |
135a129a | 57 | #include "qemu/error-report.h" |
2a6593cb | 58 | #include "trace.h" |
34316482 | 59 | #include "hw/nmi.h" |
890c2b77 | 60 | |
68a27b20 MT |
61 | #include "hw/compat.h" |
62 | ||
9fdf0c29 DG |
63 | #include <libfdt.h> |
64 | ||
4d8d5467 BH |
65 | /* SLOF memory layout: |
66 | * | |
67 | * SLOF raw image loaded at 0, copies its romfs right below the flat | |
68 | * device-tree, then position SLOF itself 31M below that | |
69 | * | |
70 | * So we set FW_OVERHEAD to 40MB which should account for all of that | |
71 | * and more | |
72 | * | |
73 | * We load our kernel at 4M, leaving space for SLOF initial image | |
74 | */ | |
3bf6eedd | 75 | #define FDT_MAX_SIZE 0x40000 |
39ac8455 | 76 | #define RTAS_MAX_SIZE 0x10000 |
b7d1f77a | 77 | #define RTAS_MAX_ADDR 0x80000000 /* RTAS must stay below that */ |
a9f8ad8f DG |
78 | #define FW_MAX_SIZE 0x400000 |
79 | #define FW_FILE_NAME "slof.bin" | |
4d8d5467 BH |
80 | #define FW_OVERHEAD 0x2800000 |
81 | #define KERNEL_LOAD_ADDR FW_MAX_SIZE | |
a9f8ad8f | 82 | |
4d8d5467 | 83 | #define MIN_RMA_SLOF 128UL |
9fdf0c29 DG |
84 | |
85 | #define TIMEBASE_FREQ 512000000ULL | |
86 | ||
9674a356 | 87 | #define MAX_CPUS 255 |
9fdf0c29 | 88 | |
0c103f8e DG |
89 | #define PHANDLE_XICP 0x00001111 |
90 | ||
7f763a5d DG |
91 | #define HTAB_SIZE(spapr) (1ULL << ((spapr)->htab_shift)) |
92 | ||
6ca1502e | 93 | typedef struct sPAPRMachineState sPAPRMachineState; |
748abce9 | 94 | |
29ee3247 | 95 | #define TYPE_SPAPR_MACHINE "spapr-machine" |
748abce9 | 96 | #define SPAPR_MACHINE(obj) \ |
6ca1502e | 97 | OBJECT_CHECK(sPAPRMachineState, (obj), TYPE_SPAPR_MACHINE) |
748abce9 EH |
98 | |
99 | /** | |
6ca1502e | 100 | * sPAPRMachineState: |
748abce9 | 101 | */ |
6ca1502e | 102 | struct sPAPRMachineState { |
748abce9 EH |
103 | /*< private >*/ |
104 | MachineState parent_obj; | |
23825581 EH |
105 | |
106 | /*< public >*/ | |
107 | char *kvm_type; | |
748abce9 EH |
108 | }; |
109 | ||
9fdf0c29 DG |
110 | sPAPREnvironment *spapr; |
111 | ||
c04d6cfa | 112 | static XICSState *try_create_xics(const char *type, int nr_servers, |
34f2af3d | 113 | int nr_irqs, Error **errp) |
c04d6cfa | 114 | { |
34f2af3d | 115 | Error *err = NULL; |
c04d6cfa AL |
116 | DeviceState *dev; |
117 | ||
118 | dev = qdev_create(NULL, type); | |
119 | qdev_prop_set_uint32(dev, "nr_servers", nr_servers); | |
120 | qdev_prop_set_uint32(dev, "nr_irqs", nr_irqs); | |
34f2af3d MA |
121 | object_property_set_bool(OBJECT(dev), true, "realized", &err); |
122 | if (err) { | |
123 | error_propagate(errp, err); | |
124 | object_unparent(OBJECT(dev)); | |
c04d6cfa AL |
125 | return NULL; |
126 | } | |
5a3d7b23 | 127 | return XICS_COMMON(dev); |
c04d6cfa AL |
128 | } |
129 | ||
446f16a6 MA |
130 | static XICSState *xics_system_init(MachineState *machine, |
131 | int nr_servers, int nr_irqs) | |
c04d6cfa AL |
132 | { |
133 | XICSState *icp = NULL; | |
134 | ||
11ad93f6 | 135 | if (kvm_enabled()) { |
34f2af3d MA |
136 | Error *err = NULL; |
137 | ||
446f16a6 | 138 | if (machine_kernel_irqchip_allowed(machine)) { |
34f2af3d | 139 | icp = try_create_xics(TYPE_KVM_XICS, nr_servers, nr_irqs, &err); |
11ad93f6 | 140 | } |
446f16a6 | 141 | if (machine_kernel_irqchip_required(machine) && !icp) { |
34f2af3d MA |
142 | error_report("kernel_irqchip requested but unavailable: %s", |
143 | error_get_pretty(err)); | |
11ad93f6 DG |
144 | } |
145 | } | |
146 | ||
147 | if (!icp) { | |
34f2af3d | 148 | icp = try_create_xics(TYPE_XICS, nr_servers, nr_irqs, &error_abort); |
c04d6cfa AL |
149 | } |
150 | ||
151 | return icp; | |
152 | } | |
153 | ||
833d4668 AK |
154 | static int spapr_fixup_cpu_smt_dt(void *fdt, int offset, PowerPCCPU *cpu, |
155 | int smt_threads) | |
156 | { | |
157 | int i, ret = 0; | |
158 | uint32_t servers_prop[smt_threads]; | |
159 | uint32_t gservers_prop[smt_threads * 2]; | |
160 | int index = ppc_get_vcpu_dt_id(cpu); | |
161 | ||
6d9412ea | 162 | if (cpu->cpu_version) { |
4bce526e | 163 | ret = fdt_setprop_cell(fdt, offset, "cpu-version", cpu->cpu_version); |
6d9412ea AK |
164 | if (ret < 0) { |
165 | return ret; | |
166 | } | |
167 | } | |
168 | ||
833d4668 AK |
169 | /* Build interrupt servers and gservers properties */ |
170 | for (i = 0; i < smt_threads; i++) { | |
171 | servers_prop[i] = cpu_to_be32(index + i); | |
172 | /* Hack, direct the group queues back to cpu 0 */ | |
173 | gservers_prop[i*2] = cpu_to_be32(index + i); | |
174 | gservers_prop[i*2 + 1] = 0; | |
175 | } | |
176 | ret = fdt_setprop(fdt, offset, "ibm,ppc-interrupt-server#s", | |
177 | servers_prop, sizeof(servers_prop)); | |
178 | if (ret < 0) { | |
179 | return ret; | |
180 | } | |
181 | ret = fdt_setprop(fdt, offset, "ibm,ppc-interrupt-gserver#s", | |
182 | gservers_prop, sizeof(gservers_prop)); | |
183 | ||
184 | return ret; | |
185 | } | |
186 | ||
7f763a5d | 187 | static int spapr_fixup_cpu_dt(void *fdt, sPAPREnvironment *spapr) |
6e806cc3 | 188 | { |
82677ed2 AK |
189 | int ret = 0, offset, cpus_offset; |
190 | CPUState *cs; | |
6e806cc3 BR |
191 | char cpu_model[32]; |
192 | int smt = kvmppc_smt_threads(); | |
7f763a5d | 193 | uint32_t pft_size_prop[] = {0, cpu_to_be32(spapr->htab_shift)}; |
6e806cc3 | 194 | |
82677ed2 AK |
195 | CPU_FOREACH(cs) { |
196 | PowerPCCPU *cpu = POWERPC_CPU(cs); | |
197 | DeviceClass *dc = DEVICE_GET_CLASS(cs); | |
198 | int index = ppc_get_vcpu_dt_id(cpu); | |
6e806cc3 BR |
199 | uint32_t associativity[] = {cpu_to_be32(0x5), |
200 | cpu_to_be32(0x0), | |
201 | cpu_to_be32(0x0), | |
202 | cpu_to_be32(0x0), | |
82677ed2 | 203 | cpu_to_be32(cs->numa_node), |
0f20ba62 | 204 | cpu_to_be32(index)}; |
6e806cc3 | 205 | |
0f20ba62 | 206 | if ((index % smt) != 0) { |
6e806cc3 BR |
207 | continue; |
208 | } | |
209 | ||
82677ed2 | 210 | snprintf(cpu_model, 32, "%s@%x", dc->fw_name, index); |
6e806cc3 | 211 | |
82677ed2 AK |
212 | cpus_offset = fdt_path_offset(fdt, "/cpus"); |
213 | if (cpus_offset < 0) { | |
214 | cpus_offset = fdt_add_subnode(fdt, fdt_path_offset(fdt, "/"), | |
215 | "cpus"); | |
216 | if (cpus_offset < 0) { | |
217 | return cpus_offset; | |
218 | } | |
219 | } | |
220 | offset = fdt_subnode_offset(fdt, cpus_offset, cpu_model); | |
6e806cc3 | 221 | if (offset < 0) { |
82677ed2 AK |
222 | offset = fdt_add_subnode(fdt, cpus_offset, cpu_model); |
223 | if (offset < 0) { | |
224 | return offset; | |
225 | } | |
6e806cc3 BR |
226 | } |
227 | ||
7f763a5d DG |
228 | if (nb_numa_nodes > 1) { |
229 | ret = fdt_setprop(fdt, offset, "ibm,associativity", associativity, | |
230 | sizeof(associativity)); | |
231 | if (ret < 0) { | |
232 | return ret; | |
233 | } | |
234 | } | |
235 | ||
236 | ret = fdt_setprop(fdt, offset, "ibm,pft-size", | |
237 | pft_size_prop, sizeof(pft_size_prop)); | |
6e806cc3 BR |
238 | if (ret < 0) { |
239 | return ret; | |
240 | } | |
833d4668 | 241 | |
82677ed2 | 242 | ret = spapr_fixup_cpu_smt_dt(fdt, offset, cpu, |
2a48d993 | 243 | ppc_get_compat_smt_threads(cpu)); |
833d4668 AK |
244 | if (ret < 0) { |
245 | return ret; | |
246 | } | |
6e806cc3 BR |
247 | } |
248 | return ret; | |
249 | } | |
250 | ||
5af9873d BH |
251 | |
252 | static size_t create_page_sizes_prop(CPUPPCState *env, uint32_t *prop, | |
253 | size_t maxsize) | |
254 | { | |
255 | size_t maxcells = maxsize / sizeof(uint32_t); | |
256 | int i, j, count; | |
257 | uint32_t *p = prop; | |
258 | ||
259 | for (i = 0; i < PPC_PAGE_SIZES_MAX_SZ; i++) { | |
260 | struct ppc_one_seg_page_size *sps = &env->sps.sps[i]; | |
261 | ||
262 | if (!sps->page_shift) { | |
263 | break; | |
264 | } | |
265 | for (count = 0; count < PPC_PAGE_SIZES_MAX_SZ; count++) { | |
266 | if (sps->enc[count].page_shift == 0) { | |
267 | break; | |
268 | } | |
269 | } | |
270 | if ((p - prop) >= (maxcells - 3 - count * 2)) { | |
271 | break; | |
272 | } | |
273 | *(p++) = cpu_to_be32(sps->page_shift); | |
274 | *(p++) = cpu_to_be32(sps->slb_enc); | |
275 | *(p++) = cpu_to_be32(count); | |
276 | for (j = 0; j < count; j++) { | |
277 | *(p++) = cpu_to_be32(sps->enc[j].page_shift); | |
278 | *(p++) = cpu_to_be32(sps->enc[j].pte_enc); | |
279 | } | |
280 | } | |
281 | ||
282 | return (p - prop) * sizeof(uint32_t); | |
283 | } | |
284 | ||
b082d65a AK |
285 | static hwaddr spapr_node0_size(void) |
286 | { | |
287 | if (nb_numa_nodes) { | |
288 | int i; | |
289 | for (i = 0; i < nb_numa_nodes; ++i) { | |
290 | if (numa_info[i].node_mem) { | |
291 | return MIN(pow2floor(numa_info[i].node_mem), ram_size); | |
292 | } | |
293 | } | |
294 | } | |
295 | return ram_size; | |
296 | } | |
297 | ||
7f763a5d DG |
298 | #define _FDT(exp) \ |
299 | do { \ | |
300 | int ret = (exp); \ | |
301 | if (ret < 0) { \ | |
302 | fprintf(stderr, "qemu: error creating device tree: %s: %s\n", \ | |
303 | #exp, fdt_strerror(ret)); \ | |
304 | exit(1); \ | |
305 | } \ | |
306 | } while (0) | |
307 | ||
a1d59c0f AK |
308 | static void add_str(GString *s, const gchar *s1) |
309 | { | |
310 | g_string_append_len(s, s1, strlen(s1) + 1); | |
311 | } | |
7f763a5d | 312 | |
3bbf37f2 | 313 | static void *spapr_create_fdt_skel(hwaddr initrd_base, |
a8170e5e AK |
314 | hwaddr initrd_size, |
315 | hwaddr kernel_size, | |
16457e7f | 316 | bool little_endian, |
74d042e5 DG |
317 | const char *kernel_cmdline, |
318 | uint32_t epow_irq) | |
9fdf0c29 DG |
319 | { |
320 | void *fdt; | |
182735ef | 321 | CPUState *cs; |
9fdf0c29 DG |
322 | uint32_t start_prop = cpu_to_be32(initrd_base); |
323 | uint32_t end_prop = cpu_to_be32(initrd_base + initrd_size); | |
a1d59c0f AK |
324 | GString *hypertas = g_string_sized_new(256); |
325 | GString *qemu_hypertas = g_string_sized_new(256); | |
7f763a5d | 326 | uint32_t refpoints[] = {cpu_to_be32(0x4), cpu_to_be32(0x4)}; |
b5cec4c5 | 327 | uint32_t interrupt_server_ranges_prop[] = {0, cpu_to_be32(smp_cpus)}; |
833d4668 | 328 | int smt = kvmppc_smt_threads(); |
6e806cc3 | 329 | unsigned char vec5[] = {0x0, 0x0, 0x0, 0x0, 0x0, 0x80}; |
10582ff8 AK |
330 | QemuOpts *opts = qemu_opts_find(qemu_find_opts("smp-opts"), NULL); |
331 | unsigned sockets = opts ? qemu_opt_get_number(opts, "sockets", 0) : 0; | |
332 | uint32_t cpus_per_socket = sockets ? (smp_cpus / sockets) : 1; | |
ef951443 | 333 | char *buf; |
9fdf0c29 | 334 | |
a1d59c0f AK |
335 | add_str(hypertas, "hcall-pft"); |
336 | add_str(hypertas, "hcall-term"); | |
337 | add_str(hypertas, "hcall-dabr"); | |
338 | add_str(hypertas, "hcall-interrupt"); | |
339 | add_str(hypertas, "hcall-tce"); | |
340 | add_str(hypertas, "hcall-vio"); | |
341 | add_str(hypertas, "hcall-splpar"); | |
342 | add_str(hypertas, "hcall-bulk"); | |
343 | add_str(hypertas, "hcall-set-mode"); | |
344 | add_str(qemu_hypertas, "hcall-memop1"); | |
345 | ||
7267c094 | 346 | fdt = g_malloc0(FDT_MAX_SIZE); |
9fdf0c29 DG |
347 | _FDT((fdt_create(fdt, FDT_MAX_SIZE))); |
348 | ||
4d8d5467 BH |
349 | if (kernel_size) { |
350 | _FDT((fdt_add_reservemap_entry(fdt, KERNEL_LOAD_ADDR, kernel_size))); | |
351 | } | |
352 | if (initrd_size) { | |
353 | _FDT((fdt_add_reservemap_entry(fdt, initrd_base, initrd_size))); | |
354 | } | |
9fdf0c29 DG |
355 | _FDT((fdt_finish_reservemap(fdt))); |
356 | ||
357 | /* Root node */ | |
358 | _FDT((fdt_begin_node(fdt, ""))); | |
359 | _FDT((fdt_property_string(fdt, "device_type", "chrp"))); | |
5d73dd66 | 360 | _FDT((fdt_property_string(fdt, "model", "IBM pSeries (emulated by qemu)"))); |
d63919c9 | 361 | _FDT((fdt_property_string(fdt, "compatible", "qemu,pseries"))); |
9fdf0c29 | 362 | |
ef951443 ND |
363 | /* |
364 | * Add info to guest to indentify which host is it being run on | |
365 | * and what is the uuid of the guest | |
366 | */ | |
367 | if (kvmppc_get_host_model(&buf)) { | |
368 | _FDT((fdt_property_string(fdt, "host-model", buf))); | |
369 | g_free(buf); | |
370 | } | |
371 | if (kvmppc_get_host_serial(&buf)) { | |
372 | _FDT((fdt_property_string(fdt, "host-serial", buf))); | |
373 | g_free(buf); | |
374 | } | |
375 | ||
376 | buf = g_strdup_printf(UUID_FMT, qemu_uuid[0], qemu_uuid[1], | |
377 | qemu_uuid[2], qemu_uuid[3], qemu_uuid[4], | |
378 | qemu_uuid[5], qemu_uuid[6], qemu_uuid[7], | |
379 | qemu_uuid[8], qemu_uuid[9], qemu_uuid[10], | |
380 | qemu_uuid[11], qemu_uuid[12], qemu_uuid[13], | |
381 | qemu_uuid[14], qemu_uuid[15]); | |
382 | ||
383 | _FDT((fdt_property_string(fdt, "vm,uuid", buf))); | |
384 | g_free(buf); | |
385 | ||
9fdf0c29 DG |
386 | _FDT((fdt_property_cell(fdt, "#address-cells", 0x2))); |
387 | _FDT((fdt_property_cell(fdt, "#size-cells", 0x2))); | |
388 | ||
389 | /* /chosen */ | |
390 | _FDT((fdt_begin_node(fdt, "chosen"))); | |
391 | ||
6e806cc3 BR |
392 | /* Set Form1_affinity */ |
393 | _FDT((fdt_property(fdt, "ibm,architecture-vec-5", vec5, sizeof(vec5)))); | |
394 | ||
9fdf0c29 DG |
395 | _FDT((fdt_property_string(fdt, "bootargs", kernel_cmdline))); |
396 | _FDT((fdt_property(fdt, "linux,initrd-start", | |
397 | &start_prop, sizeof(start_prop)))); | |
398 | _FDT((fdt_property(fdt, "linux,initrd-end", | |
399 | &end_prop, sizeof(end_prop)))); | |
4d8d5467 BH |
400 | if (kernel_size) { |
401 | uint64_t kprop[2] = { cpu_to_be64(KERNEL_LOAD_ADDR), | |
402 | cpu_to_be64(kernel_size) }; | |
9fdf0c29 | 403 | |
4d8d5467 | 404 | _FDT((fdt_property(fdt, "qemu,boot-kernel", &kprop, sizeof(kprop)))); |
16457e7f BH |
405 | if (little_endian) { |
406 | _FDT((fdt_property(fdt, "qemu,boot-kernel-le", NULL, 0))); | |
407 | } | |
4d8d5467 | 408 | } |
cc84c0f3 AS |
409 | if (boot_menu) { |
410 | _FDT((fdt_property_cell(fdt, "qemu,boot-menu", boot_menu))); | |
411 | } | |
f28359d8 LZ |
412 | _FDT((fdt_property_cell(fdt, "qemu,graphic-width", graphic_width))); |
413 | _FDT((fdt_property_cell(fdt, "qemu,graphic-height", graphic_height))); | |
414 | _FDT((fdt_property_cell(fdt, "qemu,graphic-depth", graphic_depth))); | |
3384f95c | 415 | |
9fdf0c29 DG |
416 | _FDT((fdt_end_node(fdt))); |
417 | ||
9fdf0c29 DG |
418 | /* cpus */ |
419 | _FDT((fdt_begin_node(fdt, "cpus"))); | |
420 | ||
421 | _FDT((fdt_property_cell(fdt, "#address-cells", 0x1))); | |
422 | _FDT((fdt_property_cell(fdt, "#size-cells", 0x0))); | |
423 | ||
bdc44640 | 424 | CPU_FOREACH(cs) { |
182735ef AF |
425 | PowerPCCPU *cpu = POWERPC_CPU(cs); |
426 | CPUPPCState *env = &cpu->env; | |
3bbf37f2 | 427 | DeviceClass *dc = DEVICE_GET_CLASS(cs); |
182735ef | 428 | PowerPCCPUClass *pcc = POWERPC_CPU_GET_CLASS(cs); |
0f20ba62 | 429 | int index = ppc_get_vcpu_dt_id(cpu); |
9fdf0c29 DG |
430 | char *nodename; |
431 | uint32_t segs[] = {cpu_to_be32(28), cpu_to_be32(40), | |
432 | 0xffffffff, 0xffffffff}; | |
0a8b2938 AG |
433 | uint32_t tbfreq = kvm_enabled() ? kvmppc_get_tbfreq() : TIMEBASE_FREQ; |
434 | uint32_t cpufreq = kvm_enabled() ? kvmppc_get_clockfreq() : 1000000000; | |
5af9873d BH |
435 | uint32_t page_sizes_prop[64]; |
436 | size_t page_sizes_prop_size; | |
9fdf0c29 | 437 | |
e97c3636 DG |
438 | if ((index % smt) != 0) { |
439 | continue; | |
440 | } | |
441 | ||
3bbf37f2 | 442 | nodename = g_strdup_printf("%s@%x", dc->fw_name, index); |
9fdf0c29 DG |
443 | |
444 | _FDT((fdt_begin_node(fdt, nodename))); | |
445 | ||
4ecf8aa5 | 446 | g_free(nodename); |
9fdf0c29 | 447 | |
c7a5c0c9 | 448 | _FDT((fdt_property_cell(fdt, "reg", index))); |
9fdf0c29 DG |
449 | _FDT((fdt_property_string(fdt, "device_type", "cpu"))); |
450 | ||
451 | _FDT((fdt_property_cell(fdt, "cpu-version", env->spr[SPR_PVR]))); | |
0cbad81f | 452 | _FDT((fdt_property_cell(fdt, "d-cache-block-size", |
9fdf0c29 | 453 | env->dcache_line_size))); |
0cbad81f DG |
454 | _FDT((fdt_property_cell(fdt, "d-cache-line-size", |
455 | env->dcache_line_size))); | |
456 | _FDT((fdt_property_cell(fdt, "i-cache-block-size", | |
457 | env->icache_line_size))); | |
458 | _FDT((fdt_property_cell(fdt, "i-cache-line-size", | |
9fdf0c29 | 459 | env->icache_line_size))); |
0cbad81f DG |
460 | |
461 | if (pcc->l1_dcache_size) { | |
462 | _FDT((fdt_property_cell(fdt, "d-cache-size", pcc->l1_dcache_size))); | |
463 | } else { | |
464 | fprintf(stderr, "Warning: Unknown L1 dcache size for cpu\n"); | |
465 | } | |
466 | if (pcc->l1_icache_size) { | |
467 | _FDT((fdt_property_cell(fdt, "i-cache-size", pcc->l1_icache_size))); | |
468 | } else { | |
469 | fprintf(stderr, "Warning: Unknown L1 icache size for cpu\n"); | |
470 | } | |
471 | ||
0a8b2938 AG |
472 | _FDT((fdt_property_cell(fdt, "timebase-frequency", tbfreq))); |
473 | _FDT((fdt_property_cell(fdt, "clock-frequency", cpufreq))); | |
9fdf0c29 DG |
474 | _FDT((fdt_property_cell(fdt, "ibm,slb-size", env->slb_nr))); |
475 | _FDT((fdt_property_string(fdt, "status", "okay"))); | |
476 | _FDT((fdt_property(fdt, "64-bit", NULL, 0))); | |
e97c3636 | 477 | |
dcb861cb AK |
478 | if (env->spr_cb[SPR_PURR].oea_read) { |
479 | _FDT((fdt_property(fdt, "ibm,purr", NULL, 0))); | |
480 | } | |
481 | ||
c7a5c0c9 | 482 | if (env->mmu_model & POWERPC_MMU_1TSEG) { |
9fdf0c29 DG |
483 | _FDT((fdt_property(fdt, "ibm,processor-segment-sizes", |
484 | segs, sizeof(segs)))); | |
485 | } | |
486 | ||
6659394f DG |
487 | /* Advertise VMX/VSX (vector extensions) if available |
488 | * 0 / no property == no vector extensions | |
489 | * 1 == VMX / Altivec available | |
490 | * 2 == VSX available */ | |
a7342588 DG |
491 | if (env->insns_flags & PPC_ALTIVEC) { |
492 | uint32_t vmx = (env->insns_flags2 & PPC2_VSX) ? 2 : 1; | |
493 | ||
6659394f DG |
494 | _FDT((fdt_property_cell(fdt, "ibm,vmx", vmx))); |
495 | } | |
496 | ||
497 | /* Advertise DFP (Decimal Floating Point) if available | |
498 | * 0 / no property == no DFP | |
499 | * 1 == DFP available */ | |
a7342588 DG |
500 | if (env->insns_flags2 & PPC2_DFP) { |
501 | _FDT((fdt_property_cell(fdt, "ibm,dfp", 1))); | |
6659394f DG |
502 | } |
503 | ||
5af9873d BH |
504 | page_sizes_prop_size = create_page_sizes_prop(env, page_sizes_prop, |
505 | sizeof(page_sizes_prop)); | |
506 | if (page_sizes_prop_size) { | |
507 | _FDT((fdt_property(fdt, "ibm,segment-page-sizes", | |
508 | page_sizes_prop, page_sizes_prop_size))); | |
509 | } | |
510 | ||
10582ff8 AK |
511 | _FDT((fdt_property_cell(fdt, "ibm,chip-id", |
512 | cs->cpu_index / cpus_per_socket))); | |
513 | ||
9fdf0c29 DG |
514 | _FDT((fdt_end_node(fdt))); |
515 | } | |
516 | ||
9fdf0c29 DG |
517 | _FDT((fdt_end_node(fdt))); |
518 | ||
f43e3525 DG |
519 | /* RTAS */ |
520 | _FDT((fdt_begin_node(fdt, "rtas"))); | |
521 | ||
da95324e AK |
522 | if (!kvm_enabled() || kvmppc_spapr_use_multitce()) { |
523 | add_str(hypertas, "hcall-multi-tce"); | |
524 | } | |
a1d59c0f AK |
525 | _FDT((fdt_property(fdt, "ibm,hypertas-functions", hypertas->str, |
526 | hypertas->len))); | |
527 | g_string_free(hypertas, TRUE); | |
528 | _FDT((fdt_property(fdt, "qemu,hypertas-functions", qemu_hypertas->str, | |
529 | qemu_hypertas->len))); | |
530 | g_string_free(qemu_hypertas, TRUE); | |
f43e3525 | 531 | |
6e806cc3 BR |
532 | _FDT((fdt_property(fdt, "ibm,associativity-reference-points", |
533 | refpoints, sizeof(refpoints)))); | |
534 | ||
74d042e5 | 535 | _FDT((fdt_property_cell(fdt, "rtas-error-log-max", RTAS_ERROR_LOG_MAX))); |
79853e18 TD |
536 | _FDT((fdt_property_cell(fdt, "rtas-event-scan-rate", |
537 | RTAS_EVENT_SCAN_RATE))); | |
74d042e5 | 538 | |
2e14072f | 539 | /* |
9d632f5f | 540 | * According to PAPR, rtas ibm,os-term does not guarantee a return |
2e14072f ND |
541 | * back to the guest cpu. |
542 | * | |
543 | * While an additional ibm,extended-os-term property indicates that | |
544 | * rtas call return will always occur. Set this property. | |
545 | */ | |
546 | _FDT((fdt_property(fdt, "ibm,extended-os-term", NULL, 0))); | |
547 | ||
f43e3525 DG |
548 | _FDT((fdt_end_node(fdt))); |
549 | ||
b5cec4c5 | 550 | /* interrupt controller */ |
9dfef5aa | 551 | _FDT((fdt_begin_node(fdt, "interrupt-controller"))); |
b5cec4c5 DG |
552 | |
553 | _FDT((fdt_property_string(fdt, "device_type", | |
554 | "PowerPC-External-Interrupt-Presentation"))); | |
555 | _FDT((fdt_property_string(fdt, "compatible", "IBM,ppc-xicp"))); | |
b5cec4c5 DG |
556 | _FDT((fdt_property(fdt, "interrupt-controller", NULL, 0))); |
557 | _FDT((fdt_property(fdt, "ibm,interrupt-server-ranges", | |
558 | interrupt_server_ranges_prop, | |
559 | sizeof(interrupt_server_ranges_prop)))); | |
0c103f8e DG |
560 | _FDT((fdt_property_cell(fdt, "#interrupt-cells", 2))); |
561 | _FDT((fdt_property_cell(fdt, "linux,phandle", PHANDLE_XICP))); | |
562 | _FDT((fdt_property_cell(fdt, "phandle", PHANDLE_XICP))); | |
b5cec4c5 DG |
563 | |
564 | _FDT((fdt_end_node(fdt))); | |
565 | ||
4040ab72 DG |
566 | /* vdevice */ |
567 | _FDT((fdt_begin_node(fdt, "vdevice"))); | |
568 | ||
569 | _FDT((fdt_property_string(fdt, "device_type", "vdevice"))); | |
570 | _FDT((fdt_property_string(fdt, "compatible", "IBM,vdevice"))); | |
571 | _FDT((fdt_property_cell(fdt, "#address-cells", 0x1))); | |
572 | _FDT((fdt_property_cell(fdt, "#size-cells", 0x0))); | |
b5cec4c5 DG |
573 | _FDT((fdt_property_cell(fdt, "#interrupt-cells", 0x2))); |
574 | _FDT((fdt_property(fdt, "interrupt-controller", NULL, 0))); | |
4040ab72 DG |
575 | |
576 | _FDT((fdt_end_node(fdt))); | |
577 | ||
74d042e5 DG |
578 | /* event-sources */ |
579 | spapr_events_fdt_skel(fdt, epow_irq); | |
580 | ||
f7d69146 AG |
581 | /* /hypervisor node */ |
582 | if (kvm_enabled()) { | |
583 | uint8_t hypercall[16]; | |
584 | ||
585 | /* indicate KVM hypercall interface */ | |
586 | _FDT((fdt_begin_node(fdt, "hypervisor"))); | |
587 | _FDT((fdt_property_string(fdt, "compatible", "linux,kvm"))); | |
588 | if (kvmppc_has_cap_fixup_hcalls()) { | |
589 | /* | |
590 | * Older KVM versions with older guest kernels were broken with the | |
591 | * magic page, don't allow the guest to map it. | |
592 | */ | |
593 | kvmppc_get_hypercall(first_cpu->env_ptr, hypercall, | |
594 | sizeof(hypercall)); | |
595 | _FDT((fdt_property(fdt, "hcall-instructions", hypercall, | |
596 | sizeof(hypercall)))); | |
597 | } | |
598 | _FDT((fdt_end_node(fdt))); | |
599 | } | |
600 | ||
9fdf0c29 DG |
601 | _FDT((fdt_end_node(fdt))); /* close root node */ |
602 | _FDT((fdt_finish(fdt))); | |
603 | ||
a3467baa DG |
604 | return fdt; |
605 | } | |
606 | ||
2a6593cb AK |
607 | int spapr_h_cas_compose_response(target_ulong addr, target_ulong size) |
608 | { | |
609 | void *fdt, *fdt_skel; | |
610 | sPAPRDeviceTreeUpdateHeader hdr = { .version_id = 1 }; | |
611 | ||
612 | size -= sizeof(hdr); | |
613 | ||
614 | /* Create sceleton */ | |
615 | fdt_skel = g_malloc0(size); | |
616 | _FDT((fdt_create(fdt_skel, size))); | |
617 | _FDT((fdt_begin_node(fdt_skel, ""))); | |
618 | _FDT((fdt_end_node(fdt_skel))); | |
619 | _FDT((fdt_finish(fdt_skel))); | |
620 | fdt = g_malloc0(size); | |
621 | _FDT((fdt_open_into(fdt_skel, fdt, size))); | |
622 | g_free(fdt_skel); | |
623 | ||
3794d548 AK |
624 | /* Fix skeleton up */ |
625 | _FDT((spapr_fixup_cpu_dt(fdt, spapr))); | |
2a6593cb AK |
626 | |
627 | /* Pack resulting tree */ | |
628 | _FDT((fdt_pack(fdt))); | |
629 | ||
630 | if (fdt_totalsize(fdt) + sizeof(hdr) > size) { | |
631 | trace_spapr_cas_failed(size); | |
632 | return -1; | |
633 | } | |
634 | ||
635 | cpu_physical_memory_write(addr, &hdr, sizeof(hdr)); | |
636 | cpu_physical_memory_write(addr + sizeof(hdr), fdt, fdt_totalsize(fdt)); | |
637 | trace_spapr_cas_continue(fdt_totalsize(fdt) + sizeof(hdr)); | |
638 | g_free(fdt); | |
639 | ||
640 | return 0; | |
641 | } | |
642 | ||
26a8c353 AK |
643 | static void spapr_populate_memory_node(void *fdt, int nodeid, hwaddr start, |
644 | hwaddr size) | |
645 | { | |
646 | uint32_t associativity[] = { | |
647 | cpu_to_be32(0x4), /* length */ | |
648 | cpu_to_be32(0x0), cpu_to_be32(0x0), | |
c3b4f589 | 649 | cpu_to_be32(0x0), cpu_to_be32(nodeid) |
26a8c353 AK |
650 | }; |
651 | char mem_name[32]; | |
652 | uint64_t mem_reg_property[2]; | |
653 | int off; | |
654 | ||
655 | mem_reg_property[0] = cpu_to_be64(start); | |
656 | mem_reg_property[1] = cpu_to_be64(size); | |
657 | ||
658 | sprintf(mem_name, "memory@" TARGET_FMT_lx, start); | |
659 | off = fdt_add_subnode(fdt, 0, mem_name); | |
660 | _FDT(off); | |
661 | _FDT((fdt_setprop_string(fdt, off, "device_type", "memory"))); | |
662 | _FDT((fdt_setprop(fdt, off, "reg", mem_reg_property, | |
663 | sizeof(mem_reg_property)))); | |
664 | _FDT((fdt_setprop(fdt, off, "ibm,associativity", associativity, | |
665 | sizeof(associativity)))); | |
666 | } | |
667 | ||
7f763a5d DG |
668 | static int spapr_populate_memory(sPAPREnvironment *spapr, void *fdt) |
669 | { | |
7db8a127 AK |
670 | hwaddr mem_start, node_size; |
671 | int i, nb_nodes = nb_numa_nodes; | |
672 | NodeInfo *nodes = numa_info; | |
673 | NodeInfo ramnode; | |
674 | ||
675 | /* No NUMA nodes, assume there is just one node with whole RAM */ | |
676 | if (!nb_numa_nodes) { | |
677 | nb_nodes = 1; | |
678 | ramnode.node_mem = ram_size; | |
679 | nodes = &ramnode; | |
5fe269b1 | 680 | } |
7f763a5d | 681 | |
7db8a127 AK |
682 | for (i = 0, mem_start = 0; i < nb_nodes; ++i) { |
683 | if (!nodes[i].node_mem) { | |
684 | continue; | |
685 | } | |
5fe269b1 PM |
686 | if (mem_start >= ram_size) { |
687 | node_size = 0; | |
688 | } else { | |
7db8a127 | 689 | node_size = nodes[i].node_mem; |
5fe269b1 PM |
690 | if (node_size > ram_size - mem_start) { |
691 | node_size = ram_size - mem_start; | |
692 | } | |
693 | } | |
7db8a127 AK |
694 | if (!mem_start) { |
695 | /* ppc_spapr_init() checks for rma_size <= node0_size already */ | |
696 | spapr_populate_memory_node(fdt, i, 0, spapr->rma_size); | |
697 | mem_start += spapr->rma_size; | |
698 | node_size -= spapr->rma_size; | |
699 | } | |
6010818c AK |
700 | for ( ; node_size; ) { |
701 | hwaddr sizetmp = pow2floor(node_size); | |
702 | ||
703 | /* mem_start != 0 here */ | |
704 | if (ctzl(mem_start) < ctzl(sizetmp)) { | |
705 | sizetmp = 1ULL << ctzl(mem_start); | |
706 | } | |
707 | ||
708 | spapr_populate_memory_node(fdt, i, mem_start, sizetmp); | |
709 | node_size -= sizetmp; | |
710 | mem_start += sizetmp; | |
711 | } | |
7f763a5d DG |
712 | } |
713 | ||
714 | return 0; | |
715 | } | |
716 | ||
a3467baa | 717 | static void spapr_finalize_fdt(sPAPREnvironment *spapr, |
a8170e5e AK |
718 | hwaddr fdt_addr, |
719 | hwaddr rtas_addr, | |
720 | hwaddr rtas_size) | |
a3467baa | 721 | { |
5b2128d2 AG |
722 | MachineState *machine = MACHINE(qdev_get_machine()); |
723 | const char *boot_device = machine->boot_order; | |
71461b0f AK |
724 | int ret, i; |
725 | size_t cb = 0; | |
726 | char *bootlist; | |
a3467baa | 727 | void *fdt; |
3384f95c | 728 | sPAPRPHBState *phb; |
a3467baa | 729 | |
7267c094 | 730 | fdt = g_malloc(FDT_MAX_SIZE); |
a3467baa DG |
731 | |
732 | /* open out the base tree into a temp buffer for the final tweaks */ | |
733 | _FDT((fdt_open_into(spapr->fdt_skel, fdt, FDT_MAX_SIZE))); | |
4040ab72 | 734 | |
7f763a5d DG |
735 | ret = spapr_populate_memory(spapr, fdt); |
736 | if (ret < 0) { | |
737 | fprintf(stderr, "couldn't setup memory nodes in fdt\n"); | |
738 | exit(1); | |
739 | } | |
740 | ||
4040ab72 DG |
741 | ret = spapr_populate_vdevice(spapr->vio_bus, fdt); |
742 | if (ret < 0) { | |
743 | fprintf(stderr, "couldn't setup vio devices in fdt\n"); | |
744 | exit(1); | |
745 | } | |
746 | ||
3384f95c | 747 | QLIST_FOREACH(phb, &spapr->phbs, list) { |
e0fdbd7c | 748 | ret = spapr_populate_pci_dt(phb, PHANDLE_XICP, fdt); |
3384f95c DG |
749 | } |
750 | ||
751 | if (ret < 0) { | |
752 | fprintf(stderr, "couldn't setup PCI devices in fdt\n"); | |
753 | exit(1); | |
754 | } | |
755 | ||
39ac8455 DG |
756 | /* RTAS */ |
757 | ret = spapr_rtas_device_tree_setup(fdt, rtas_addr, rtas_size); | |
758 | if (ret < 0) { | |
759 | fprintf(stderr, "Couldn't set up RTAS device tree properties\n"); | |
760 | } | |
761 | ||
6e806cc3 | 762 | /* Advertise NUMA via ibm,associativity */ |
7f763a5d DG |
763 | ret = spapr_fixup_cpu_dt(fdt, spapr); |
764 | if (ret < 0) { | |
765 | fprintf(stderr, "Couldn't finalize CPU device tree properties\n"); | |
6e806cc3 BR |
766 | } |
767 | ||
71461b0f AK |
768 | bootlist = get_boot_devices_list(&cb, true); |
769 | if (cb && bootlist) { | |
770 | int offset = fdt_path_offset(fdt, "/chosen"); | |
771 | if (offset < 0) { | |
772 | exit(1); | |
773 | } | |
774 | for (i = 0; i < cb; i++) { | |
775 | if (bootlist[i] == '\n') { | |
776 | bootlist[i] = ' '; | |
777 | } | |
778 | ||
779 | } | |
780 | ret = fdt_setprop_string(fdt, offset, "qemu,boot-list", bootlist); | |
781 | } | |
782 | ||
5b2128d2 AG |
783 | if (boot_device && strlen(boot_device)) { |
784 | int offset = fdt_path_offset(fdt, "/chosen"); | |
785 | ||
786 | if (offset < 0) { | |
787 | exit(1); | |
788 | } | |
789 | fdt_setprop_string(fdt, offset, "qemu,boot-device", boot_device); | |
790 | } | |
791 | ||
3fc5acde | 792 | if (!spapr->has_graphics) { |
f28359d8 LZ |
793 | spapr_populate_chosen_stdout(fdt, spapr->vio_bus); |
794 | } | |
68f3a94c | 795 | |
4040ab72 DG |
796 | _FDT((fdt_pack(fdt))); |
797 | ||
4d8d5467 | 798 | if (fdt_totalsize(fdt) > FDT_MAX_SIZE) { |
730fce59 TH |
799 | error_report("FDT too big ! 0x%x bytes (max is 0x%x)", |
800 | fdt_totalsize(fdt), FDT_MAX_SIZE); | |
4d8d5467 BH |
801 | exit(1); |
802 | } | |
803 | ||
a3467baa | 804 | cpu_physical_memory_write(fdt_addr, fdt, fdt_totalsize(fdt)); |
9fdf0c29 | 805 | |
a21a7a70 | 806 | g_free(bootlist); |
7267c094 | 807 | g_free(fdt); |
9fdf0c29 DG |
808 | } |
809 | ||
810 | static uint64_t translate_kernel_address(void *opaque, uint64_t addr) | |
811 | { | |
812 | return (addr & 0x0fffffff) + KERNEL_LOAD_ADDR; | |
813 | } | |
814 | ||
1b14670a | 815 | static void emulate_spapr_hypercall(PowerPCCPU *cpu) |
9fdf0c29 | 816 | { |
1b14670a AF |
817 | CPUPPCState *env = &cpu->env; |
818 | ||
efcb9383 DG |
819 | if (msr_pr) { |
820 | hcall_dprintf("Hypercall made with MSR[PR]=1\n"); | |
821 | env->gpr[3] = H_PRIVILEGE; | |
822 | } else { | |
aa100fa4 | 823 | env->gpr[3] = spapr_hypercall(cpu, env->gpr[3], &env->gpr[4]); |
efcb9383 | 824 | } |
9fdf0c29 DG |
825 | } |
826 | ||
e6b8fd24 SMJ |
827 | #define HPTE(_table, _i) (void *)(((uint64_t *)(_table)) + ((_i) * 2)) |
828 | #define HPTE_VALID(_hpte) (tswap64(*((uint64_t *)(_hpte))) & HPTE64_V_VALID) | |
829 | #define HPTE_DIRTY(_hpte) (tswap64(*((uint64_t *)(_hpte))) & HPTE64_V_HPTE_DIRTY) | |
830 | #define CLEAN_HPTE(_hpte) ((*(uint64_t *)(_hpte)) &= tswap64(~HPTE64_V_HPTE_DIRTY)) | |
831 | #define DIRTY_HPTE(_hpte) ((*(uint64_t *)(_hpte)) |= tswap64(HPTE64_V_HPTE_DIRTY)) | |
832 | ||
7f763a5d DG |
833 | static void spapr_reset_htab(sPAPREnvironment *spapr) |
834 | { | |
835 | long shift; | |
e6b8fd24 | 836 | int index; |
7f763a5d DG |
837 | |
838 | /* allocate hash page table. For now we always make this 16mb, | |
839 | * later we should probably make it scale to the size of guest | |
840 | * RAM */ | |
841 | ||
842 | shift = kvmppc_reset_htab(spapr->htab_shift); | |
843 | ||
844 | if (shift > 0) { | |
845 | /* Kernel handles htab, we don't need to allocate one */ | |
846 | spapr->htab_shift = shift; | |
7c43bca0 | 847 | kvmppc_kern_htab = true; |
01a57972 SMJ |
848 | |
849 | /* Tell readers to update their file descriptor */ | |
850 | if (spapr->htab_fd >= 0) { | |
851 | spapr->htab_fd_stale = true; | |
852 | } | |
7f763a5d DG |
853 | } else { |
854 | if (!spapr->htab) { | |
855 | /* Allocate an htab if we don't yet have one */ | |
856 | spapr->htab = qemu_memalign(HTAB_SIZE(spapr), HTAB_SIZE(spapr)); | |
857 | } | |
858 | ||
859 | /* And clear it */ | |
860 | memset(spapr->htab, 0, HTAB_SIZE(spapr)); | |
e6b8fd24 SMJ |
861 | |
862 | for (index = 0; index < HTAB_SIZE(spapr) / HASH_PTE_SIZE_64; index++) { | |
863 | DIRTY_HPTE(HPTE(spapr->htab, index)); | |
864 | } | |
7f763a5d DG |
865 | } |
866 | ||
867 | /* Update the RMA size if necessary */ | |
868 | if (spapr->vrma_adjust) { | |
b082d65a AK |
869 | spapr->rma_size = kvmppc_rma_size(spapr_node0_size(), |
870 | spapr->htab_shift); | |
7f763a5d | 871 | } |
9fdf0c29 DG |
872 | } |
873 | ||
9e3f9733 AG |
874 | static int find_unknown_sysbus_device(SysBusDevice *sbdev, void *opaque) |
875 | { | |
876 | bool matched = false; | |
877 | ||
878 | if (object_dynamic_cast(OBJECT(sbdev), TYPE_SPAPR_PCI_HOST_BRIDGE)) { | |
879 | matched = true; | |
880 | } | |
881 | ||
882 | if (!matched) { | |
883 | error_report("Device %s is not supported by this machine yet.", | |
884 | qdev_fw_name(DEVICE(sbdev))); | |
885 | exit(1); | |
886 | } | |
887 | ||
888 | return 0; | |
889 | } | |
890 | ||
01a57972 SMJ |
891 | /* |
892 | * A guest reset will cause spapr->htab_fd to become stale if being used. | |
893 | * Reopen the file descriptor to make sure the whole HTAB is properly read. | |
894 | */ | |
895 | static int spapr_check_htab_fd(sPAPREnvironment *spapr) | |
896 | { | |
897 | int rc = 0; | |
898 | ||
899 | if (spapr->htab_fd_stale) { | |
900 | close(spapr->htab_fd); | |
901 | spapr->htab_fd = kvmppc_get_htab_fd(false); | |
902 | if (spapr->htab_fd < 0) { | |
903 | error_report("Unable to open fd for reading hash table from KVM: " | |
730fce59 | 904 | "%s", strerror(errno)); |
01a57972 SMJ |
905 | rc = -1; |
906 | } | |
907 | spapr->htab_fd_stale = false; | |
908 | } | |
909 | ||
910 | return rc; | |
911 | } | |
912 | ||
c8787ad4 | 913 | static void ppc_spapr_reset(void) |
a3467baa | 914 | { |
182735ef | 915 | PowerPCCPU *first_ppc_cpu; |
b7d1f77a | 916 | uint32_t rtas_limit; |
259186a7 | 917 | |
9e3f9733 AG |
918 | /* Check for unknown sysbus devices */ |
919 | foreach_dynamic_sysbus_device(find_unknown_sysbus_device, NULL); | |
920 | ||
7f763a5d DG |
921 | /* Reset the hash table & recalc the RMA */ |
922 | spapr_reset_htab(spapr); | |
a3467baa | 923 | |
c8787ad4 | 924 | qemu_devices_reset(); |
a3467baa | 925 | |
b7d1f77a BH |
926 | /* |
927 | * We place the device tree and RTAS just below either the top of the RMA, | |
928 | * or just below 2GB, whichever is lowere, so that it can be | |
929 | * processed with 32-bit real mode code if necessary | |
930 | */ | |
931 | rtas_limit = MIN(spapr->rma_size, RTAS_MAX_ADDR); | |
932 | spapr->rtas_addr = rtas_limit - RTAS_MAX_SIZE; | |
933 | spapr->fdt_addr = spapr->rtas_addr - FDT_MAX_SIZE; | |
934 | ||
a3467baa DG |
935 | /* Load the fdt */ |
936 | spapr_finalize_fdt(spapr, spapr->fdt_addr, spapr->rtas_addr, | |
937 | spapr->rtas_size); | |
938 | ||
b7d1f77a BH |
939 | /* Copy RTAS over */ |
940 | cpu_physical_memory_write(spapr->rtas_addr, spapr->rtas_blob, | |
941 | spapr->rtas_size); | |
942 | ||
a3467baa | 943 | /* Set up the entry state */ |
182735ef AF |
944 | first_ppc_cpu = POWERPC_CPU(first_cpu); |
945 | first_ppc_cpu->env.gpr[3] = spapr->fdt_addr; | |
946 | first_ppc_cpu->env.gpr[5] = 0; | |
947 | first_cpu->halted = 0; | |
948 | first_ppc_cpu->env.nip = spapr->entry_point; | |
a3467baa DG |
949 | |
950 | } | |
951 | ||
1bba0dc9 AF |
952 | static void spapr_cpu_reset(void *opaque) |
953 | { | |
5b2038e0 | 954 | PowerPCCPU *cpu = opaque; |
259186a7 | 955 | CPUState *cs = CPU(cpu); |
048706d9 | 956 | CPUPPCState *env = &cpu->env; |
1bba0dc9 | 957 | |
259186a7 | 958 | cpu_reset(cs); |
048706d9 DG |
959 | |
960 | /* All CPUs start halted. CPU0 is unhalted from the machine level | |
961 | * reset code and the rest are explicitly started up by the guest | |
962 | * using an RTAS call */ | |
259186a7 | 963 | cs->halted = 1; |
048706d9 DG |
964 | |
965 | env->spr[SPR_HIOR] = 0; | |
7f763a5d | 966 | |
4be21d56 | 967 | env->external_htab = (uint8_t *)spapr->htab; |
5736245c AK |
968 | if (kvm_enabled() && !env->external_htab) { |
969 | /* | |
970 | * HV KVM, set external_htab to 1 so our ppc_hash64_load_hpte* | |
971 | * functions do the right thing. | |
972 | */ | |
973 | env->external_htab = (void *)1; | |
974 | } | |
7f763a5d | 975 | env->htab_base = -1; |
f3c75d42 AK |
976 | /* |
977 | * htab_mask is the mask used to normalize hash value to PTEG index. | |
978 | * htab_shift is log2 of hash table size. | |
979 | * We have 8 hpte per group, and each hpte is 16 bytes. | |
980 | * ie have 128 bytes per hpte entry. | |
981 | */ | |
982 | env->htab_mask = (1ULL << ((spapr)->htab_shift - 7)) - 1; | |
ec4936e1 | 983 | env->spr[SPR_SDR1] = (target_ulong)(uintptr_t)spapr->htab | |
7f763a5d | 984 | (spapr->htab_shift - 18); |
1bba0dc9 AF |
985 | } |
986 | ||
639e8102 DG |
987 | static void spapr_create_nvram(sPAPREnvironment *spapr) |
988 | { | |
2ff3de68 | 989 | DeviceState *dev = qdev_create(&spapr->vio_bus->bus, "spapr-nvram"); |
3978b863 | 990 | DriveInfo *dinfo = drive_get(IF_PFLASH, 0, 0); |
639e8102 | 991 | |
3978b863 | 992 | if (dinfo) { |
4be74634 | 993 | qdev_prop_set_drive_nofail(dev, "drive", blk_by_legacy_dinfo(dinfo)); |
639e8102 DG |
994 | } |
995 | ||
996 | qdev_init_nofail(dev); | |
997 | ||
998 | spapr->nvram = (struct sPAPRNVRAM *)dev; | |
999 | } | |
1000 | ||
28df36a1 DG |
1001 | static void spapr_rtc_create(sPAPREnvironment *spapr) |
1002 | { | |
1003 | DeviceState *dev = qdev_create(NULL, TYPE_SPAPR_RTC); | |
1004 | ||
1005 | qdev_init_nofail(dev); | |
1006 | spapr->rtc = dev; | |
74e5ae28 DG |
1007 | |
1008 | object_property_add_alias(qdev_get_machine(), "rtc-time", | |
1009 | OBJECT(spapr->rtc), "date", NULL); | |
28df36a1 DG |
1010 | } |
1011 | ||
8c57b867 | 1012 | /* Returns whether we want to use VGA or not */ |
f28359d8 LZ |
1013 | static int spapr_vga_init(PCIBus *pci_bus) |
1014 | { | |
8c57b867 | 1015 | switch (vga_interface_type) { |
8c57b867 | 1016 | case VGA_NONE: |
7effdaa3 MW |
1017 | return false; |
1018 | case VGA_DEVICE: | |
1019 | return true; | |
1ddcae82 AJ |
1020 | case VGA_STD: |
1021 | return pci_vga_init(pci_bus) != NULL; | |
8c57b867 | 1022 | default: |
f28359d8 LZ |
1023 | fprintf(stderr, "This vga model is not supported," |
1024 | "currently it only supports -vga std\n"); | |
8c57b867 | 1025 | exit(0); |
f28359d8 | 1026 | } |
f28359d8 LZ |
1027 | } |
1028 | ||
880ae7de DG |
1029 | static int spapr_post_load(void *opaque, int version_id) |
1030 | { | |
1031 | sPAPREnvironment *spapr = (sPAPREnvironment *)opaque; | |
1032 | int err = 0; | |
1033 | ||
631b22ea | 1034 | /* In earlier versions, there was no separate qdev for the PAPR |
880ae7de DG |
1035 | * RTC, so the RTC offset was stored directly in sPAPREnvironment. |
1036 | * So when migrating from those versions, poke the incoming offset | |
1037 | * value into the RTC device */ | |
1038 | if (version_id < 3) { | |
1039 | err = spapr_rtc_import_offset(spapr->rtc, spapr->rtc_offset); | |
1040 | } | |
1041 | ||
1042 | return err; | |
1043 | } | |
1044 | ||
1045 | static bool version_before_3(void *opaque, int version_id) | |
1046 | { | |
1047 | return version_id < 3; | |
1048 | } | |
1049 | ||
4be21d56 DG |
1050 | static const VMStateDescription vmstate_spapr = { |
1051 | .name = "spapr", | |
880ae7de | 1052 | .version_id = 3, |
4be21d56 | 1053 | .minimum_version_id = 1, |
880ae7de | 1054 | .post_load = spapr_post_load, |
3aff6c2f | 1055 | .fields = (VMStateField[]) { |
880ae7de DG |
1056 | /* used to be @next_irq */ |
1057 | VMSTATE_UNUSED_BUFFER(version_before_3, 0, 4), | |
4be21d56 DG |
1058 | |
1059 | /* RTC offset */ | |
880ae7de DG |
1060 | VMSTATE_UINT64_TEST(rtc_offset, sPAPREnvironment, version_before_3), |
1061 | ||
98a8b524 | 1062 | VMSTATE_PPC_TIMEBASE_V(tb, sPAPREnvironment, 2), |
4be21d56 DG |
1063 | VMSTATE_END_OF_LIST() |
1064 | }, | |
1065 | }; | |
1066 | ||
4be21d56 DG |
1067 | static int htab_save_setup(QEMUFile *f, void *opaque) |
1068 | { | |
1069 | sPAPREnvironment *spapr = opaque; | |
1070 | ||
4be21d56 DG |
1071 | /* "Iteration" header */ |
1072 | qemu_put_be32(f, spapr->htab_shift); | |
1073 | ||
e68cb8b4 AK |
1074 | if (spapr->htab) { |
1075 | spapr->htab_save_index = 0; | |
1076 | spapr->htab_first_pass = true; | |
1077 | } else { | |
1078 | assert(kvm_enabled()); | |
1079 | ||
1080 | spapr->htab_fd = kvmppc_get_htab_fd(false); | |
01a57972 | 1081 | spapr->htab_fd_stale = false; |
e68cb8b4 AK |
1082 | if (spapr->htab_fd < 0) { |
1083 | fprintf(stderr, "Unable to open fd for reading hash table from KVM: %s\n", | |
1084 | strerror(errno)); | |
1085 | return -1; | |
1086 | } | |
1087 | } | |
1088 | ||
1089 | ||
4be21d56 DG |
1090 | return 0; |
1091 | } | |
1092 | ||
4be21d56 DG |
1093 | static void htab_save_first_pass(QEMUFile *f, sPAPREnvironment *spapr, |
1094 | int64_t max_ns) | |
1095 | { | |
1096 | int htabslots = HTAB_SIZE(spapr) / HASH_PTE_SIZE_64; | |
1097 | int index = spapr->htab_save_index; | |
bc72ad67 | 1098 | int64_t starttime = qemu_clock_get_ns(QEMU_CLOCK_REALTIME); |
4be21d56 DG |
1099 | |
1100 | assert(spapr->htab_first_pass); | |
1101 | ||
1102 | do { | |
1103 | int chunkstart; | |
1104 | ||
1105 | /* Consume invalid HPTEs */ | |
1106 | while ((index < htabslots) | |
1107 | && !HPTE_VALID(HPTE(spapr->htab, index))) { | |
1108 | index++; | |
1109 | CLEAN_HPTE(HPTE(spapr->htab, index)); | |
1110 | } | |
1111 | ||
1112 | /* Consume valid HPTEs */ | |
1113 | chunkstart = index; | |
338c25b6 | 1114 | while ((index < htabslots) && (index - chunkstart < USHRT_MAX) |
4be21d56 DG |
1115 | && HPTE_VALID(HPTE(spapr->htab, index))) { |
1116 | index++; | |
1117 | CLEAN_HPTE(HPTE(spapr->htab, index)); | |
1118 | } | |
1119 | ||
1120 | if (index > chunkstart) { | |
1121 | int n_valid = index - chunkstart; | |
1122 | ||
1123 | qemu_put_be32(f, chunkstart); | |
1124 | qemu_put_be16(f, n_valid); | |
1125 | qemu_put_be16(f, 0); | |
1126 | qemu_put_buffer(f, HPTE(spapr->htab, chunkstart), | |
1127 | HASH_PTE_SIZE_64 * n_valid); | |
1128 | ||
bc72ad67 | 1129 | if ((qemu_clock_get_ns(QEMU_CLOCK_REALTIME) - starttime) > max_ns) { |
4be21d56 DG |
1130 | break; |
1131 | } | |
1132 | } | |
1133 | } while ((index < htabslots) && !qemu_file_rate_limit(f)); | |
1134 | ||
1135 | if (index >= htabslots) { | |
1136 | assert(index == htabslots); | |
1137 | index = 0; | |
1138 | spapr->htab_first_pass = false; | |
1139 | } | |
1140 | spapr->htab_save_index = index; | |
1141 | } | |
1142 | ||
e68cb8b4 AK |
1143 | static int htab_save_later_pass(QEMUFile *f, sPAPREnvironment *spapr, |
1144 | int64_t max_ns) | |
4be21d56 DG |
1145 | { |
1146 | bool final = max_ns < 0; | |
1147 | int htabslots = HTAB_SIZE(spapr) / HASH_PTE_SIZE_64; | |
1148 | int examined = 0, sent = 0; | |
1149 | int index = spapr->htab_save_index; | |
bc72ad67 | 1150 | int64_t starttime = qemu_clock_get_ns(QEMU_CLOCK_REALTIME); |
4be21d56 DG |
1151 | |
1152 | assert(!spapr->htab_first_pass); | |
1153 | ||
1154 | do { | |
1155 | int chunkstart, invalidstart; | |
1156 | ||
1157 | /* Consume non-dirty HPTEs */ | |
1158 | while ((index < htabslots) | |
1159 | && !HPTE_DIRTY(HPTE(spapr->htab, index))) { | |
1160 | index++; | |
1161 | examined++; | |
1162 | } | |
1163 | ||
1164 | chunkstart = index; | |
1165 | /* Consume valid dirty HPTEs */ | |
338c25b6 | 1166 | while ((index < htabslots) && (index - chunkstart < USHRT_MAX) |
4be21d56 DG |
1167 | && HPTE_DIRTY(HPTE(spapr->htab, index)) |
1168 | && HPTE_VALID(HPTE(spapr->htab, index))) { | |
1169 | CLEAN_HPTE(HPTE(spapr->htab, index)); | |
1170 | index++; | |
1171 | examined++; | |
1172 | } | |
1173 | ||
1174 | invalidstart = index; | |
1175 | /* Consume invalid dirty HPTEs */ | |
338c25b6 | 1176 | while ((index < htabslots) && (index - invalidstart < USHRT_MAX) |
4be21d56 DG |
1177 | && HPTE_DIRTY(HPTE(spapr->htab, index)) |
1178 | && !HPTE_VALID(HPTE(spapr->htab, index))) { | |
1179 | CLEAN_HPTE(HPTE(spapr->htab, index)); | |
1180 | index++; | |
1181 | examined++; | |
1182 | } | |
1183 | ||
1184 | if (index > chunkstart) { | |
1185 | int n_valid = invalidstart - chunkstart; | |
1186 | int n_invalid = index - invalidstart; | |
1187 | ||
1188 | qemu_put_be32(f, chunkstart); | |
1189 | qemu_put_be16(f, n_valid); | |
1190 | qemu_put_be16(f, n_invalid); | |
1191 | qemu_put_buffer(f, HPTE(spapr->htab, chunkstart), | |
1192 | HASH_PTE_SIZE_64 * n_valid); | |
1193 | sent += index - chunkstart; | |
1194 | ||
bc72ad67 | 1195 | if (!final && (qemu_clock_get_ns(QEMU_CLOCK_REALTIME) - starttime) > max_ns) { |
4be21d56 DG |
1196 | break; |
1197 | } | |
1198 | } | |
1199 | ||
1200 | if (examined >= htabslots) { | |
1201 | break; | |
1202 | } | |
1203 | ||
1204 | if (index >= htabslots) { | |
1205 | assert(index == htabslots); | |
1206 | index = 0; | |
1207 | } | |
1208 | } while ((examined < htabslots) && (!qemu_file_rate_limit(f) || final)); | |
1209 | ||
1210 | if (index >= htabslots) { | |
1211 | assert(index == htabslots); | |
1212 | index = 0; | |
1213 | } | |
1214 | ||
1215 | spapr->htab_save_index = index; | |
1216 | ||
e68cb8b4 | 1217 | return (examined >= htabslots) && (sent == 0) ? 1 : 0; |
4be21d56 DG |
1218 | } |
1219 | ||
e68cb8b4 AK |
1220 | #define MAX_ITERATION_NS 5000000 /* 5 ms */ |
1221 | #define MAX_KVM_BUF_SIZE 2048 | |
1222 | ||
4be21d56 DG |
1223 | static int htab_save_iterate(QEMUFile *f, void *opaque) |
1224 | { | |
1225 | sPAPREnvironment *spapr = opaque; | |
e68cb8b4 | 1226 | int rc = 0; |
4be21d56 DG |
1227 | |
1228 | /* Iteration header */ | |
1229 | qemu_put_be32(f, 0); | |
1230 | ||
e68cb8b4 AK |
1231 | if (!spapr->htab) { |
1232 | assert(kvm_enabled()); | |
1233 | ||
01a57972 SMJ |
1234 | rc = spapr_check_htab_fd(spapr); |
1235 | if (rc < 0) { | |
1236 | return rc; | |
1237 | } | |
1238 | ||
e68cb8b4 AK |
1239 | rc = kvmppc_save_htab(f, spapr->htab_fd, |
1240 | MAX_KVM_BUF_SIZE, MAX_ITERATION_NS); | |
1241 | if (rc < 0) { | |
1242 | return rc; | |
1243 | } | |
1244 | } else if (spapr->htab_first_pass) { | |
4be21d56 DG |
1245 | htab_save_first_pass(f, spapr, MAX_ITERATION_NS); |
1246 | } else { | |
e68cb8b4 | 1247 | rc = htab_save_later_pass(f, spapr, MAX_ITERATION_NS); |
4be21d56 DG |
1248 | } |
1249 | ||
1250 | /* End marker */ | |
1251 | qemu_put_be32(f, 0); | |
1252 | qemu_put_be16(f, 0); | |
1253 | qemu_put_be16(f, 0); | |
1254 | ||
e68cb8b4 | 1255 | return rc; |
4be21d56 DG |
1256 | } |
1257 | ||
1258 | static int htab_save_complete(QEMUFile *f, void *opaque) | |
1259 | { | |
1260 | sPAPREnvironment *spapr = opaque; | |
1261 | ||
1262 | /* Iteration header */ | |
1263 | qemu_put_be32(f, 0); | |
1264 | ||
e68cb8b4 AK |
1265 | if (!spapr->htab) { |
1266 | int rc; | |
1267 | ||
1268 | assert(kvm_enabled()); | |
1269 | ||
01a57972 SMJ |
1270 | rc = spapr_check_htab_fd(spapr); |
1271 | if (rc < 0) { | |
1272 | return rc; | |
1273 | } | |
1274 | ||
e68cb8b4 AK |
1275 | rc = kvmppc_save_htab(f, spapr->htab_fd, MAX_KVM_BUF_SIZE, -1); |
1276 | if (rc < 0) { | |
1277 | return rc; | |
1278 | } | |
1279 | close(spapr->htab_fd); | |
1280 | spapr->htab_fd = -1; | |
1281 | } else { | |
1282 | htab_save_later_pass(f, spapr, -1); | |
1283 | } | |
4be21d56 DG |
1284 | |
1285 | /* End marker */ | |
1286 | qemu_put_be32(f, 0); | |
1287 | qemu_put_be16(f, 0); | |
1288 | qemu_put_be16(f, 0); | |
1289 | ||
1290 | return 0; | |
1291 | } | |
1292 | ||
1293 | static int htab_load(QEMUFile *f, void *opaque, int version_id) | |
1294 | { | |
1295 | sPAPREnvironment *spapr = opaque; | |
1296 | uint32_t section_hdr; | |
e68cb8b4 | 1297 | int fd = -1; |
4be21d56 DG |
1298 | |
1299 | if (version_id < 1 || version_id > 1) { | |
1300 | fprintf(stderr, "htab_load() bad version\n"); | |
1301 | return -EINVAL; | |
1302 | } | |
1303 | ||
1304 | section_hdr = qemu_get_be32(f); | |
1305 | ||
1306 | if (section_hdr) { | |
1307 | /* First section, just the hash shift */ | |
1308 | if (spapr->htab_shift != section_hdr) { | |
1309 | return -EINVAL; | |
1310 | } | |
1311 | return 0; | |
1312 | } | |
1313 | ||
e68cb8b4 AK |
1314 | if (!spapr->htab) { |
1315 | assert(kvm_enabled()); | |
1316 | ||
1317 | fd = kvmppc_get_htab_fd(true); | |
1318 | if (fd < 0) { | |
1319 | fprintf(stderr, "Unable to open fd to restore KVM hash table: %s\n", | |
1320 | strerror(errno)); | |
1321 | } | |
1322 | } | |
1323 | ||
4be21d56 DG |
1324 | while (true) { |
1325 | uint32_t index; | |
1326 | uint16_t n_valid, n_invalid; | |
1327 | ||
1328 | index = qemu_get_be32(f); | |
1329 | n_valid = qemu_get_be16(f); | |
1330 | n_invalid = qemu_get_be16(f); | |
1331 | ||
1332 | if ((index == 0) && (n_valid == 0) && (n_invalid == 0)) { | |
1333 | /* End of Stream */ | |
1334 | break; | |
1335 | } | |
1336 | ||
e68cb8b4 | 1337 | if ((index + n_valid + n_invalid) > |
4be21d56 DG |
1338 | (HTAB_SIZE(spapr) / HASH_PTE_SIZE_64)) { |
1339 | /* Bad index in stream */ | |
1340 | fprintf(stderr, "htab_load() bad index %d (%hd+%hd entries) " | |
e68cb8b4 AK |
1341 | "in htab stream (htab_shift=%d)\n", index, n_valid, n_invalid, |
1342 | spapr->htab_shift); | |
4be21d56 DG |
1343 | return -EINVAL; |
1344 | } | |
1345 | ||
e68cb8b4 AK |
1346 | if (spapr->htab) { |
1347 | if (n_valid) { | |
1348 | qemu_get_buffer(f, HPTE(spapr->htab, index), | |
1349 | HASH_PTE_SIZE_64 * n_valid); | |
1350 | } | |
1351 | if (n_invalid) { | |
1352 | memset(HPTE(spapr->htab, index + n_valid), 0, | |
1353 | HASH_PTE_SIZE_64 * n_invalid); | |
1354 | } | |
1355 | } else { | |
1356 | int rc; | |
1357 | ||
1358 | assert(fd >= 0); | |
1359 | ||
1360 | rc = kvmppc_load_htab_chunk(f, fd, index, n_valid, n_invalid); | |
1361 | if (rc < 0) { | |
1362 | return rc; | |
1363 | } | |
4be21d56 DG |
1364 | } |
1365 | } | |
1366 | ||
e68cb8b4 AK |
1367 | if (!spapr->htab) { |
1368 | assert(fd >= 0); | |
1369 | close(fd); | |
1370 | } | |
1371 | ||
4be21d56 DG |
1372 | return 0; |
1373 | } | |
1374 | ||
1375 | static SaveVMHandlers savevm_htab_handlers = { | |
1376 | .save_live_setup = htab_save_setup, | |
1377 | .save_live_iterate = htab_save_iterate, | |
1378 | .save_live_complete = htab_save_complete, | |
1379 | .load_state = htab_load, | |
1380 | }; | |
1381 | ||
5b2128d2 AG |
1382 | static void spapr_boot_set(void *opaque, const char *boot_device, |
1383 | Error **errp) | |
1384 | { | |
1385 | MachineState *machine = MACHINE(qdev_get_machine()); | |
1386 | machine->boot_order = g_strdup(boot_device); | |
1387 | } | |
1388 | ||
9fdf0c29 | 1389 | /* pSeries LPAR / sPAPR hardware init */ |
3ef96221 | 1390 | static void ppc_spapr_init(MachineState *machine) |
9fdf0c29 | 1391 | { |
3ef96221 MA |
1392 | ram_addr_t ram_size = machine->ram_size; |
1393 | const char *cpu_model = machine->cpu_model; | |
1394 | const char *kernel_filename = machine->kernel_filename; | |
1395 | const char *kernel_cmdline = machine->kernel_cmdline; | |
1396 | const char *initrd_filename = machine->initrd_filename; | |
05769733 | 1397 | PowerPCCPU *cpu; |
e2684c0b | 1398 | CPUPPCState *env; |
8c9f64df | 1399 | PCIHostState *phb; |
9fdf0c29 | 1400 | int i; |
890c2b77 AK |
1401 | MemoryRegion *sysmem = get_system_memory(); |
1402 | MemoryRegion *ram = g_new(MemoryRegion, 1); | |
658fa66b AK |
1403 | MemoryRegion *rma_region; |
1404 | void *rma = NULL; | |
a8170e5e | 1405 | hwaddr rma_alloc_size; |
b082d65a | 1406 | hwaddr node0_size = spapr_node0_size(); |
4d8d5467 BH |
1407 | uint32_t initrd_base = 0; |
1408 | long kernel_size = 0, initrd_size = 0; | |
b7d1f77a | 1409 | long load_limit, fw_size; |
16457e7f | 1410 | bool kernel_le = false; |
39ac8455 | 1411 | char *filename; |
9fdf0c29 | 1412 | |
0ee2c058 AK |
1413 | msi_supported = true; |
1414 | ||
d43b45e2 DG |
1415 | spapr = g_malloc0(sizeof(*spapr)); |
1416 | QLIST_INIT(&spapr->phbs); | |
1417 | ||
9fdf0c29 DG |
1418 | cpu_ppc_hypercall = emulate_spapr_hypercall; |
1419 | ||
354ac20a | 1420 | /* Allocate RMA if necessary */ |
658fa66b | 1421 | rma_alloc_size = kvmppc_alloc_rma(&rma); |
354ac20a DG |
1422 | |
1423 | if (rma_alloc_size == -1) { | |
730fce59 | 1424 | error_report("Unable to create RMA"); |
354ac20a DG |
1425 | exit(1); |
1426 | } | |
7f763a5d | 1427 | |
c4177479 | 1428 | if (rma_alloc_size && (rma_alloc_size < node0_size)) { |
7f763a5d | 1429 | spapr->rma_size = rma_alloc_size; |
354ac20a | 1430 | } else { |
c4177479 | 1431 | spapr->rma_size = node0_size; |
7f763a5d DG |
1432 | |
1433 | /* With KVM, we don't actually know whether KVM supports an | |
1434 | * unbounded RMA (PR KVM) or is limited by the hash table size | |
1435 | * (HV KVM using VRMA), so we always assume the latter | |
1436 | * | |
1437 | * In that case, we also limit the initial allocations for RTAS | |
1438 | * etc... to 256M since we have no way to know what the VRMA size | |
1439 | * is going to be as it depends on the size of the hash table | |
1440 | * isn't determined yet. | |
1441 | */ | |
1442 | if (kvm_enabled()) { | |
1443 | spapr->vrma_adjust = 1; | |
1444 | spapr->rma_size = MIN(spapr->rma_size, 0x10000000); | |
1445 | } | |
354ac20a DG |
1446 | } |
1447 | ||
c4177479 AK |
1448 | if (spapr->rma_size > node0_size) { |
1449 | fprintf(stderr, "Error: Numa node 0 has to span the RMA (%#08"HWADDR_PRIx")\n", | |
1450 | spapr->rma_size); | |
1451 | exit(1); | |
1452 | } | |
1453 | ||
b7d1f77a BH |
1454 | /* Setup a load limit for the ramdisk leaving room for SLOF and FDT */ |
1455 | load_limit = MIN(spapr->rma_size, RTAS_MAX_ADDR) - FW_OVERHEAD; | |
9fdf0c29 | 1456 | |
382be75d DG |
1457 | /* We aim for a hash table of size 1/128 the size of RAM. The |
1458 | * normal rule of thumb is 1/64 the size of RAM, but that's much | |
1459 | * more than needed for the Linux guests we support. */ | |
1460 | spapr->htab_shift = 18; /* Minimum architected size */ | |
1461 | while (spapr->htab_shift <= 46) { | |
1462 | if ((1ULL << (spapr->htab_shift + 7)) >= ram_size) { | |
1463 | break; | |
1464 | } | |
1465 | spapr->htab_shift++; | |
1466 | } | |
7f763a5d | 1467 | |
7b565160 | 1468 | /* Set up Interrupt Controller before we create the VCPUs */ |
446f16a6 MA |
1469 | spapr->icp = xics_system_init(machine, |
1470 | smp_cpus * kvmppc_smt_threads() / smp_threads, | |
7b565160 | 1471 | XICS_IRQS); |
7b565160 | 1472 | |
9fdf0c29 DG |
1473 | /* init CPUs */ |
1474 | if (cpu_model == NULL) { | |
6b7a2cf6 | 1475 | cpu_model = kvm_enabled() ? "host" : "POWER7"; |
9fdf0c29 DG |
1476 | } |
1477 | for (i = 0; i < smp_cpus; i++) { | |
05769733 AF |
1478 | cpu = cpu_ppc_init(cpu_model); |
1479 | if (cpu == NULL) { | |
9fdf0c29 DG |
1480 | fprintf(stderr, "Unable to find PowerPC CPU definition\n"); |
1481 | exit(1); | |
1482 | } | |
05769733 AF |
1483 | env = &cpu->env; |
1484 | ||
9fdf0c29 DG |
1485 | /* Set time-base frequency to 512 MHz */ |
1486 | cpu_ppc_tb_init(env, TIMEBASE_FREQ); | |
9fdf0c29 | 1487 | |
2cf3eb6d FC |
1488 | /* PAPR always has exception vectors in RAM not ROM. To ensure this, |
1489 | * MSR[IP] should never be set. | |
1490 | */ | |
1491 | env->msr_mask &= ~(1 << 6); | |
048706d9 DG |
1492 | |
1493 | /* Tell KVM that we're in PAPR mode */ | |
1494 | if (kvm_enabled()) { | |
1bc22652 | 1495 | kvmppc_set_papr(cpu); |
048706d9 DG |
1496 | } |
1497 | ||
6d9412ea AK |
1498 | if (cpu->max_compat) { |
1499 | if (ppc_set_compat(cpu, cpu->max_compat) < 0) { | |
1500 | exit(1); | |
1501 | } | |
1502 | } | |
1503 | ||
24408a7d AK |
1504 | xics_cpu_setup(spapr->icp, cpu); |
1505 | ||
048706d9 | 1506 | qemu_register_reset(spapr_cpu_reset, cpu); |
9fdf0c29 DG |
1507 | } |
1508 | ||
1509 | /* allocate RAM */ | |
f73a2575 | 1510 | spapr->ram_limit = ram_size; |
f92f5da1 AK |
1511 | memory_region_allocate_system_memory(ram, NULL, "ppc_spapr.ram", |
1512 | spapr->ram_limit); | |
1513 | memory_region_add_subregion(sysmem, 0, ram); | |
9fdf0c29 | 1514 | |
658fa66b AK |
1515 | if (rma_alloc_size && rma) { |
1516 | rma_region = g_new(MemoryRegion, 1); | |
1517 | memory_region_init_ram_ptr(rma_region, NULL, "ppc_spapr.rma", | |
1518 | rma_alloc_size, rma); | |
1519 | vmstate_register_ram_global(rma_region); | |
1520 | memory_region_add_subregion(sysmem, 0, rma_region); | |
1521 | } | |
1522 | ||
39ac8455 | 1523 | filename = qemu_find_file(QEMU_FILE_TYPE_BIOS, "spapr-rtas.bin"); |
4c56440d | 1524 | if (!filename) { |
730fce59 | 1525 | error_report("Could not find LPAR rtas '%s'", "spapr-rtas.bin"); |
4c56440d SW |
1526 | exit(1); |
1527 | } | |
b7d1f77a BH |
1528 | spapr->rtas_size = get_image_size(filename); |
1529 | spapr->rtas_blob = g_malloc(spapr->rtas_size); | |
1530 | if (load_image_size(filename, spapr->rtas_blob, spapr->rtas_size) < 0) { | |
730fce59 | 1531 | error_report("Could not load LPAR rtas '%s'", filename); |
39ac8455 DG |
1532 | exit(1); |
1533 | } | |
4d8d5467 | 1534 | if (spapr->rtas_size > RTAS_MAX_SIZE) { |
730fce59 TH |
1535 | error_report("RTAS too big ! 0x%zx bytes (max is 0x%x)", |
1536 | (size_t)spapr->rtas_size, RTAS_MAX_SIZE); | |
4d8d5467 BH |
1537 | exit(1); |
1538 | } | |
7267c094 | 1539 | g_free(filename); |
39ac8455 | 1540 | |
74d042e5 DG |
1541 | /* Set up EPOW events infrastructure */ |
1542 | spapr_events_init(spapr); | |
1543 | ||
12f42174 | 1544 | /* Set up the RTC RTAS interfaces */ |
28df36a1 | 1545 | spapr_rtc_create(spapr); |
12f42174 | 1546 | |
b5cec4c5 | 1547 | /* Set up VIO bus */ |
4040ab72 DG |
1548 | spapr->vio_bus = spapr_vio_bus_init(); |
1549 | ||
277f9acf | 1550 | for (i = 0; i < MAX_SERIAL_PORTS; i++) { |
4040ab72 | 1551 | if (serial_hds[i]) { |
d601fac4 | 1552 | spapr_vty_create(spapr->vio_bus, serial_hds[i]); |
4040ab72 DG |
1553 | } |
1554 | } | |
9fdf0c29 | 1555 | |
639e8102 DG |
1556 | /* We always have at least the nvram device on VIO */ |
1557 | spapr_create_nvram(spapr); | |
1558 | ||
3384f95c | 1559 | /* Set up PCI */ |
fa28f71b AK |
1560 | spapr_pci_rtas_init(); |
1561 | ||
89dfd6e1 | 1562 | phb = spapr_create_phb(spapr, 0); |
3384f95c | 1563 | |
277f9acf | 1564 | for (i = 0; i < nb_nics; i++) { |
8d90ad90 DG |
1565 | NICInfo *nd = &nd_table[i]; |
1566 | ||
1567 | if (!nd->model) { | |
7267c094 | 1568 | nd->model = g_strdup("ibmveth"); |
8d90ad90 DG |
1569 | } |
1570 | ||
1571 | if (strcmp(nd->model, "ibmveth") == 0) { | |
d601fac4 | 1572 | spapr_vlan_create(spapr->vio_bus, nd); |
8d90ad90 | 1573 | } else { |
29b358f9 | 1574 | pci_nic_init_nofail(&nd_table[i], phb->bus, nd->model, NULL); |
8d90ad90 DG |
1575 | } |
1576 | } | |
1577 | ||
6e270446 | 1578 | for (i = 0; i <= drive_get_max_bus(IF_SCSI); i++) { |
d601fac4 | 1579 | spapr_vscsi_create(spapr->vio_bus); |
6e270446 BH |
1580 | } |
1581 | ||
f28359d8 | 1582 | /* Graphics */ |
8c9f64df | 1583 | if (spapr_vga_init(phb->bus)) { |
3fc5acde | 1584 | spapr->has_graphics = true; |
c6e76503 | 1585 | machine->usb |= defaults_enabled() && !machine->usb_disabled; |
f28359d8 LZ |
1586 | } |
1587 | ||
4ee9ced9 | 1588 | if (machine->usb) { |
8c9f64df | 1589 | pci_create_simple(phb->bus, -1, "pci-ohci"); |
c86580b8 | 1590 | |
35139a59 | 1591 | if (spapr->has_graphics) { |
c86580b8 MA |
1592 | USBBus *usb_bus = usb_bus_find(-1); |
1593 | ||
1594 | usb_create_simple(usb_bus, "usb-kbd"); | |
1595 | usb_create_simple(usb_bus, "usb-mouse"); | |
35139a59 DG |
1596 | } |
1597 | } | |
1598 | ||
7f763a5d | 1599 | if (spapr->rma_size < (MIN_RMA_SLOF << 20)) { |
4d8d5467 BH |
1600 | fprintf(stderr, "qemu: pSeries SLOF firmware requires >= " |
1601 | "%ldM guest RMA (Real Mode Area memory)\n", MIN_RMA_SLOF); | |
1602 | exit(1); | |
1603 | } | |
1604 | ||
9fdf0c29 DG |
1605 | if (kernel_filename) { |
1606 | uint64_t lowaddr = 0; | |
1607 | ||
9fdf0c29 DG |
1608 | kernel_size = load_elf(kernel_filename, translate_kernel_address, NULL, |
1609 | NULL, &lowaddr, NULL, 1, ELF_MACHINE, 0); | |
3b66da82 | 1610 | if (kernel_size == ELF_LOAD_WRONG_ENDIAN) { |
16457e7f BH |
1611 | kernel_size = load_elf(kernel_filename, |
1612 | translate_kernel_address, NULL, | |
1613 | NULL, &lowaddr, NULL, 0, ELF_MACHINE, 0); | |
1614 | kernel_le = kernel_size > 0; | |
1615 | } | |
9fdf0c29 | 1616 | if (kernel_size < 0) { |
3b66da82 AK |
1617 | fprintf(stderr, "qemu: error loading %s: %s\n", |
1618 | kernel_filename, load_elf_strerror(kernel_size)); | |
9fdf0c29 DG |
1619 | exit(1); |
1620 | } | |
1621 | ||
1622 | /* load initrd */ | |
1623 | if (initrd_filename) { | |
4d8d5467 BH |
1624 | /* Try to locate the initrd in the gap between the kernel |
1625 | * and the firmware. Add a bit of space just in case | |
1626 | */ | |
1627 | initrd_base = (KERNEL_LOAD_ADDR + kernel_size + 0x1ffff) & ~0xffff; | |
9fdf0c29 | 1628 | initrd_size = load_image_targphys(initrd_filename, initrd_base, |
4d8d5467 | 1629 | load_limit - initrd_base); |
9fdf0c29 DG |
1630 | if (initrd_size < 0) { |
1631 | fprintf(stderr, "qemu: could not load initial ram disk '%s'\n", | |
1632 | initrd_filename); | |
1633 | exit(1); | |
1634 | } | |
1635 | } else { | |
1636 | initrd_base = 0; | |
1637 | initrd_size = 0; | |
1638 | } | |
4d8d5467 | 1639 | } |
a3467baa | 1640 | |
8e7ea787 AF |
1641 | if (bios_name == NULL) { |
1642 | bios_name = FW_FILE_NAME; | |
1643 | } | |
1644 | filename = qemu_find_file(QEMU_FILE_TYPE_BIOS, bios_name); | |
4c56440d | 1645 | if (!filename) { |
68fea5a0 | 1646 | error_report("Could not find LPAR firmware '%s'", bios_name); |
4c56440d SW |
1647 | exit(1); |
1648 | } | |
4d8d5467 | 1649 | fw_size = load_image_targphys(filename, 0, FW_MAX_SIZE); |
68fea5a0 TH |
1650 | if (fw_size <= 0) { |
1651 | error_report("Could not load LPAR firmware '%s'", filename); | |
4d8d5467 BH |
1652 | exit(1); |
1653 | } | |
1654 | g_free(filename); | |
4d8d5467 BH |
1655 | |
1656 | spapr->entry_point = 0x100; | |
1657 | ||
4be21d56 DG |
1658 | vmstate_register(NULL, 0, &vmstate_spapr, spapr); |
1659 | register_savevm_live(NULL, "spapr/htab", -1, 1, | |
1660 | &savevm_htab_handlers, spapr); | |
1661 | ||
9fdf0c29 | 1662 | /* Prepare the device tree */ |
3bbf37f2 | 1663 | spapr->fdt_skel = spapr_create_fdt_skel(initrd_base, initrd_size, |
16457e7f | 1664 | kernel_size, kernel_le, |
31fe14d1 NF |
1665 | kernel_cmdline, |
1666 | spapr->check_exception_irq); | |
a3467baa | 1667 | assert(spapr->fdt_skel != NULL); |
5b2128d2 | 1668 | |
46503c2b MR |
1669 | /* used by RTAS */ |
1670 | QTAILQ_INIT(&spapr->ccs_list); | |
1671 | qemu_register_reset(spapr_ccs_reset_hook, spapr); | |
1672 | ||
5b2128d2 | 1673 | qemu_register_boot_set(spapr_boot_set, spapr); |
9fdf0c29 DG |
1674 | } |
1675 | ||
135a129a AK |
1676 | static int spapr_kvm_type(const char *vm_type) |
1677 | { | |
1678 | if (!vm_type) { | |
1679 | return 0; | |
1680 | } | |
1681 | ||
1682 | if (!strcmp(vm_type, "HV")) { | |
1683 | return 1; | |
1684 | } | |
1685 | ||
1686 | if (!strcmp(vm_type, "PR")) { | |
1687 | return 2; | |
1688 | } | |
1689 | ||
1690 | error_report("Unknown kvm-type specified '%s'", vm_type); | |
1691 | exit(1); | |
1692 | } | |
1693 | ||
71461b0f | 1694 | /* |
627b84f4 | 1695 | * Implementation of an interface to adjust firmware path |
71461b0f AK |
1696 | * for the bootindex property handling. |
1697 | */ | |
1698 | static char *spapr_get_fw_dev_path(FWPathProvider *p, BusState *bus, | |
1699 | DeviceState *dev) | |
1700 | { | |
1701 | #define CAST(type, obj, name) \ | |
1702 | ((type *)object_dynamic_cast(OBJECT(obj), (name))) | |
1703 | SCSIDevice *d = CAST(SCSIDevice, dev, TYPE_SCSI_DEVICE); | |
1704 | sPAPRPHBState *phb = CAST(sPAPRPHBState, dev, TYPE_SPAPR_PCI_HOST_BRIDGE); | |
1705 | ||
1706 | if (d) { | |
1707 | void *spapr = CAST(void, bus->parent, "spapr-vscsi"); | |
1708 | VirtIOSCSI *virtio = CAST(VirtIOSCSI, bus->parent, TYPE_VIRTIO_SCSI); | |
1709 | USBDevice *usb = CAST(USBDevice, bus->parent, TYPE_USB_DEVICE); | |
1710 | ||
1711 | if (spapr) { | |
1712 | /* | |
1713 | * Replace "channel@0/disk@0,0" with "disk@8000000000000000": | |
1714 | * We use SRP luns of the form 8000 | (bus << 8) | (id << 5) | lun | |
1715 | * in the top 16 bits of the 64-bit LUN | |
1716 | */ | |
1717 | unsigned id = 0x8000 | (d->id << 8) | d->lun; | |
1718 | return g_strdup_printf("%s@%"PRIX64, qdev_fw_name(dev), | |
1719 | (uint64_t)id << 48); | |
1720 | } else if (virtio) { | |
1721 | /* | |
1722 | * We use SRP luns of the form 01000000 | (target << 8) | lun | |
1723 | * in the top 32 bits of the 64-bit LUN | |
1724 | * Note: the quote above is from SLOF and it is wrong, | |
1725 | * the actual binding is: | |
1726 | * swap 0100 or 10 << or 20 << ( target lun-id -- srplun ) | |
1727 | */ | |
1728 | unsigned id = 0x1000000 | (d->id << 16) | d->lun; | |
1729 | return g_strdup_printf("%s@%"PRIX64, qdev_fw_name(dev), | |
1730 | (uint64_t)id << 32); | |
1731 | } else if (usb) { | |
1732 | /* | |
1733 | * We use SRP luns of the form 01000000 | (usb-port << 16) | lun | |
1734 | * in the top 32 bits of the 64-bit LUN | |
1735 | */ | |
1736 | unsigned usb_port = atoi(usb->port->path); | |
1737 | unsigned id = 0x1000000 | (usb_port << 16) | d->lun; | |
1738 | return g_strdup_printf("%s@%"PRIX64, qdev_fw_name(dev), | |
1739 | (uint64_t)id << 32); | |
1740 | } | |
1741 | } | |
1742 | ||
1743 | if (phb) { | |
1744 | /* Replace "pci" with "pci@800000020000000" */ | |
1745 | return g_strdup_printf("pci@%"PRIX64, phb->buid); | |
1746 | } | |
1747 | ||
1748 | return NULL; | |
1749 | } | |
1750 | ||
23825581 EH |
1751 | static char *spapr_get_kvm_type(Object *obj, Error **errp) |
1752 | { | |
6ca1502e | 1753 | sPAPRMachineState *sm = SPAPR_MACHINE(obj); |
23825581 EH |
1754 | |
1755 | return g_strdup(sm->kvm_type); | |
1756 | } | |
1757 | ||
1758 | static void spapr_set_kvm_type(Object *obj, const char *value, Error **errp) | |
1759 | { | |
6ca1502e | 1760 | sPAPRMachineState *sm = SPAPR_MACHINE(obj); |
23825581 EH |
1761 | |
1762 | g_free(sm->kvm_type); | |
1763 | sm->kvm_type = g_strdup(value); | |
1764 | } | |
1765 | ||
1766 | static void spapr_machine_initfn(Object *obj) | |
1767 | { | |
1768 | object_property_add_str(obj, "kvm-type", | |
1769 | spapr_get_kvm_type, spapr_set_kvm_type, NULL); | |
49d2e648 MA |
1770 | object_property_set_description(obj, "kvm-type", |
1771 | "Specifies the KVM virtualization mode (HV, PR)", | |
1772 | NULL); | |
23825581 EH |
1773 | } |
1774 | ||
34316482 AK |
1775 | static void ppc_cpu_do_nmi_on_cpu(void *arg) |
1776 | { | |
1777 | CPUState *cs = arg; | |
1778 | ||
1779 | cpu_synchronize_state(cs); | |
1780 | ppc_cpu_do_system_reset(cs); | |
1781 | } | |
1782 | ||
1783 | static void spapr_nmi(NMIState *n, int cpu_index, Error **errp) | |
1784 | { | |
1785 | CPUState *cs; | |
1786 | ||
1787 | CPU_FOREACH(cs) { | |
1788 | async_run_on_cpu(cs, ppc_cpu_do_nmi_on_cpu, cs); | |
1789 | } | |
1790 | } | |
1791 | ||
29ee3247 AK |
1792 | static void spapr_machine_class_init(ObjectClass *oc, void *data) |
1793 | { | |
1794 | MachineClass *mc = MACHINE_CLASS(oc); | |
71461b0f | 1795 | FWPathProviderClass *fwc = FW_PATH_PROVIDER_CLASS(oc); |
34316482 | 1796 | NMIClass *nc = NMI_CLASS(oc); |
958db90c | 1797 | |
958db90c MA |
1798 | mc->init = ppc_spapr_init; |
1799 | mc->reset = ppc_spapr_reset; | |
1800 | mc->block_default_type = IF_SCSI; | |
1801 | mc->max_cpus = MAX_CPUS; | |
1802 | mc->no_parallel = 1; | |
5b2128d2 | 1803 | mc->default_boot_order = ""; |
a34944fe | 1804 | mc->default_ram_size = 512 * M_BYTE; |
958db90c | 1805 | mc->kvm_type = spapr_kvm_type; |
9e3f9733 | 1806 | mc->has_dynamic_sysbus = true; |
00b4fbe2 | 1807 | |
71461b0f | 1808 | fwc->get_dev_path = spapr_get_fw_dev_path; |
34316482 | 1809 | nc->nmi_monitor_handler = spapr_nmi; |
29ee3247 AK |
1810 | } |
1811 | ||
1812 | static const TypeInfo spapr_machine_info = { | |
1813 | .name = TYPE_SPAPR_MACHINE, | |
1814 | .parent = TYPE_MACHINE, | |
4aee7362 | 1815 | .abstract = true, |
6ca1502e | 1816 | .instance_size = sizeof(sPAPRMachineState), |
23825581 | 1817 | .instance_init = spapr_machine_initfn, |
29ee3247 | 1818 | .class_init = spapr_machine_class_init, |
71461b0f AK |
1819 | .interfaces = (InterfaceInfo[]) { |
1820 | { TYPE_FW_PATH_PROVIDER }, | |
34316482 | 1821 | { TYPE_NMI }, |
71461b0f AK |
1822 | { } |
1823 | }, | |
29ee3247 AK |
1824 | }; |
1825 | ||
38ff32c6 | 1826 | #define SPAPR_COMPAT_2_3 \ |
7619c7b0 MR |
1827 | HW_COMPAT_2_3 \ |
1828 | {\ | |
1829 | .driver = "spapr-pci-host-bridge",\ | |
1830 | .property = "dynamic-reconfiguration",\ | |
1831 | .value = "off",\ | |
1832 | }, | |
38ff32c6 | 1833 | |
b194df47 | 1834 | #define SPAPR_COMPAT_2_2 \ |
38ff32c6 | 1835 | SPAPR_COMPAT_2_3 \ |
4dfd8eaa | 1836 | HW_COMPAT_2_2 \ |
b194df47 AK |
1837 | {\ |
1838 | .driver = TYPE_SPAPR_PCI_HOST_BRIDGE,\ | |
1839 | .property = "mem_win_size",\ | |
1840 | .value = "0x20000000",\ | |
dd754baf | 1841 | }, |
b194df47 AK |
1842 | |
1843 | #define SPAPR_COMPAT_2_1 \ | |
4dfd8eaa EH |
1844 | SPAPR_COMPAT_2_2 \ |
1845 | HW_COMPAT_2_1 | |
b194df47 | 1846 | |
d25228e7 JW |
1847 | static void spapr_compat_2_3(Object *obj) |
1848 | { | |
1849 | } | |
1850 | ||
b0e966d0 JW |
1851 | static void spapr_compat_2_2(Object *obj) |
1852 | { | |
d25228e7 | 1853 | spapr_compat_2_3(obj); |
b0e966d0 JW |
1854 | } |
1855 | ||
1856 | static void spapr_compat_2_1(Object *obj) | |
1857 | { | |
1858 | spapr_compat_2_2(obj); | |
1859 | } | |
1860 | ||
d25228e7 JW |
1861 | static void spapr_machine_2_3_instance_init(Object *obj) |
1862 | { | |
1863 | spapr_compat_2_3(obj); | |
1864 | spapr_machine_initfn(obj); | |
1865 | } | |
1866 | ||
b0e966d0 JW |
1867 | static void spapr_machine_2_2_instance_init(Object *obj) |
1868 | { | |
1869 | spapr_compat_2_2(obj); | |
1870 | spapr_machine_initfn(obj); | |
1871 | } | |
1872 | ||
1873 | static void spapr_machine_2_1_instance_init(Object *obj) | |
1874 | { | |
1875 | spapr_compat_2_1(obj); | |
1876 | spapr_machine_initfn(obj); | |
1877 | } | |
1878 | ||
6026db45 AK |
1879 | static void spapr_machine_2_1_class_init(ObjectClass *oc, void *data) |
1880 | { | |
1881 | MachineClass *mc = MACHINE_CLASS(oc); | |
68a27b20 | 1882 | static GlobalProperty compat_props[] = { |
dd754baf | 1883 | SPAPR_COMPAT_2_1 |
68a27b20 MT |
1884 | { /* end of list */ } |
1885 | }; | |
6026db45 AK |
1886 | |
1887 | mc->name = "pseries-2.1"; | |
1888 | mc->desc = "pSeries Logical Partition (PAPR compliant) v2.1"; | |
68a27b20 | 1889 | mc->compat_props = compat_props; |
6026db45 AK |
1890 | } |
1891 | ||
1892 | static const TypeInfo spapr_machine_2_1_info = { | |
1893 | .name = TYPE_SPAPR_MACHINE "2.1", | |
1894 | .parent = TYPE_SPAPR_MACHINE, | |
1895 | .class_init = spapr_machine_2_1_class_init, | |
b0e966d0 | 1896 | .instance_init = spapr_machine_2_1_instance_init, |
6026db45 AK |
1897 | }; |
1898 | ||
4aee7362 DG |
1899 | static void spapr_machine_2_2_class_init(ObjectClass *oc, void *data) |
1900 | { | |
b194df47 | 1901 | static GlobalProperty compat_props[] = { |
dd754baf | 1902 | SPAPR_COMPAT_2_2 |
b194df47 AK |
1903 | { /* end of list */ } |
1904 | }; | |
4aee7362 DG |
1905 | MachineClass *mc = MACHINE_CLASS(oc); |
1906 | ||
1907 | mc->name = "pseries-2.2"; | |
1908 | mc->desc = "pSeries Logical Partition (PAPR compliant) v2.2"; | |
b194df47 | 1909 | mc->compat_props = compat_props; |
4aee7362 DG |
1910 | } |
1911 | ||
1912 | static const TypeInfo spapr_machine_2_2_info = { | |
1913 | .name = TYPE_SPAPR_MACHINE "2.2", | |
1914 | .parent = TYPE_SPAPR_MACHINE, | |
1915 | .class_init = spapr_machine_2_2_class_init, | |
b0e966d0 | 1916 | .instance_init = spapr_machine_2_2_instance_init, |
4aee7362 DG |
1917 | }; |
1918 | ||
3dab0244 AK |
1919 | static void spapr_machine_2_3_class_init(ObjectClass *oc, void *data) |
1920 | { | |
a1a45612 | 1921 | static GlobalProperty compat_props[] = { |
7619c7b0 | 1922 | SPAPR_COMPAT_2_3 |
a1a45612 DG |
1923 | { /* end of list */ } |
1924 | }; | |
3dab0244 AK |
1925 | MachineClass *mc = MACHINE_CLASS(oc); |
1926 | ||
1927 | mc->name = "pseries-2.3"; | |
1928 | mc->desc = "pSeries Logical Partition (PAPR compliant) v2.3"; | |
a1a45612 | 1929 | mc->compat_props = compat_props; |
3dab0244 AK |
1930 | } |
1931 | ||
1932 | static const TypeInfo spapr_machine_2_3_info = { | |
1933 | .name = TYPE_SPAPR_MACHINE "2.3", | |
1934 | .parent = TYPE_SPAPR_MACHINE, | |
1935 | .class_init = spapr_machine_2_3_class_init, | |
d25228e7 JW |
1936 | .instance_init = spapr_machine_2_3_instance_init, |
1937 | }; | |
1938 | ||
1939 | static void spapr_machine_2_4_class_init(ObjectClass *oc, void *data) | |
1940 | { | |
1941 | MachineClass *mc = MACHINE_CLASS(oc); | |
1942 | ||
1943 | mc->name = "pseries-2.4"; | |
1944 | mc->desc = "pSeries Logical Partition (PAPR compliant) v2.4"; | |
1945 | mc->alias = "pseries"; | |
1946 | mc->is_default = 1; | |
1947 | } | |
1948 | ||
1949 | static const TypeInfo spapr_machine_2_4_info = { | |
1950 | .name = TYPE_SPAPR_MACHINE "2.4", | |
1951 | .parent = TYPE_SPAPR_MACHINE, | |
1952 | .class_init = spapr_machine_2_4_class_init, | |
3dab0244 AK |
1953 | }; |
1954 | ||
29ee3247 | 1955 | static void spapr_machine_register_types(void) |
9fdf0c29 | 1956 | { |
29ee3247 | 1957 | type_register_static(&spapr_machine_info); |
6026db45 | 1958 | type_register_static(&spapr_machine_2_1_info); |
4aee7362 | 1959 | type_register_static(&spapr_machine_2_2_info); |
3dab0244 | 1960 | type_register_static(&spapr_machine_2_3_info); |
d25228e7 | 1961 | type_register_static(&spapr_machine_2_4_info); |
9fdf0c29 DG |
1962 | } |
1963 | ||
29ee3247 | 1964 | type_init(spapr_machine_register_types) |