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1 /*
2 * QEMU Sun4u/Sun4v System Emulator
3 *
4 * Copyright (c) 2005 Fabrice Bellard
5 *
6 * Permission is hereby granted, free of charge, to any person obtaining a copy
7 * of this software and associated documentation files (the "Software"), to deal
8 * in the Software without restriction, including without limitation the rights
9 * to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
10 * copies of the Software, and to permit persons to whom the Software is
11 * furnished to do so, subject to the following conditions:
12 *
13 * The above copyright notice and this permission notice shall be included in
14 * all copies or substantial portions of the Software.
15 *
16 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
17 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
18 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL
19 * THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
20 * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
21 * OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN
22 * THE SOFTWARE.
23 */
24 #include "hw.h"
25 #include "pci.h"
26 #include "apb_pci.h"
27 #include "pc.h"
28 #include "nvram.h"
29 #include "fdc.h"
30 #include "net.h"
31 #include "qemu-timer.h"
32 #include "sysemu.h"
33 #include "boards.h"
34 #include "firmware_abi.h"
35 #include "fw_cfg.h"
36 #include "sysbus.h"
37 #include "ide.h"
38 #include "loader.h"
39 #include "elf.h"
40 #include "blockdev.h"
41
42 //#define DEBUG_IRQ
43 //#define DEBUG_EBUS
44 //#define DEBUG_TIMER
45
46 #ifdef DEBUG_IRQ
47 #define CPUIRQ_DPRINTF(fmt, ...) \
48 do { printf("CPUIRQ: " fmt , ## __VA_ARGS__); } while (0)
49 #else
50 #define CPUIRQ_DPRINTF(fmt, ...)
51 #endif
52
53 #ifdef DEBUG_EBUS
54 #define EBUS_DPRINTF(fmt, ...) \
55 do { printf("EBUS: " fmt , ## __VA_ARGS__); } while (0)
56 #else
57 #define EBUS_DPRINTF(fmt, ...)
58 #endif
59
60 #ifdef DEBUG_TIMER
61 #define TIMER_DPRINTF(fmt, ...) \
62 do { printf("TIMER: " fmt , ## __VA_ARGS__); } while (0)
63 #else
64 #define TIMER_DPRINTF(fmt, ...)
65 #endif
66
67 #define KERNEL_LOAD_ADDR 0x00404000
68 #define CMDLINE_ADDR 0x003ff000
69 #define INITRD_LOAD_ADDR 0x00300000
70 #define PROM_SIZE_MAX (4 * 1024 * 1024)
71 #define PROM_VADDR 0x000ffd00000ULL
72 #define APB_SPECIAL_BASE 0x1fe00000000ULL
73 #define APB_MEM_BASE 0x1ff00000000ULL
74 #define APB_PCI_IO_BASE (APB_SPECIAL_BASE + 0x02000000ULL)
75 #define PROM_FILENAME "openbios-sparc64"
76 #define NVRAM_SIZE 0x2000
77 #define MAX_IDE_BUS 2
78 #define BIOS_CFG_IOPORT 0x510
79 #define FW_CFG_SPARC64_WIDTH (FW_CFG_ARCH_LOCAL + 0x00)
80 #define FW_CFG_SPARC64_HEIGHT (FW_CFG_ARCH_LOCAL + 0x01)
81 #define FW_CFG_SPARC64_DEPTH (FW_CFG_ARCH_LOCAL + 0x02)
82
83 #define MAX_PILS 16
84
85 #define TICK_MAX 0x7fffffffffffffffULL
86
87 struct hwdef {
88 const char * const default_cpu_model;
89 uint16_t machine_id;
90 uint64_t prom_addr;
91 uint64_t console_serial_base;
92 };
93
94 typedef struct EbusState {
95 PCIDevice pci_dev;
96 MemoryRegion bar0;
97 MemoryRegion bar1;
98 } EbusState;
99
100 int DMA_get_channel_mode (int nchan)
101 {
102 return 0;
103 }
104 int DMA_read_memory (int nchan, void *buf, int pos, int size)
105 {
106 return 0;
107 }
108 int DMA_write_memory (int nchan, void *buf, int pos, int size)
109 {
110 return 0;
111 }
112 void DMA_hold_DREQ (int nchan) {}
113 void DMA_release_DREQ (int nchan) {}
114 void DMA_schedule(int nchan) {}
115
116 void DMA_init(int high_page_enable, qemu_irq *cpu_request_exit)
117 {
118 }
119
120 void DMA_register_channel (int nchan,
121 DMA_transfer_handler transfer_handler,
122 void *opaque)
123 {
124 }
125
126 static int fw_cfg_boot_set(void *opaque, const char *boot_device)
127 {
128 fw_cfg_add_i16(opaque, FW_CFG_BOOT_DEVICE, boot_device[0]);
129 return 0;
130 }
131
132 static int sun4u_NVRAM_set_params(M48t59State *nvram, uint16_t NVRAM_size,
133 const char *arch, ram_addr_t RAM_size,
134 const char *boot_devices,
135 uint32_t kernel_image, uint32_t kernel_size,
136 const char *cmdline,
137 uint32_t initrd_image, uint32_t initrd_size,
138 uint32_t NVRAM_image,
139 int width, int height, int depth,
140 const uint8_t *macaddr)
141 {
142 unsigned int i;
143 uint32_t start, end;
144 uint8_t image[0x1ff0];
145 struct OpenBIOS_nvpart_v1 *part_header;
146
147 memset(image, '\0', sizeof(image));
148
149 start = 0;
150
151 // OpenBIOS nvram variables
152 // Variable partition
153 part_header = (struct OpenBIOS_nvpart_v1 *)&image[start];
154 part_header->signature = OPENBIOS_PART_SYSTEM;
155 pstrcpy(part_header->name, sizeof(part_header->name), "system");
156
157 end = start + sizeof(struct OpenBIOS_nvpart_v1);
158 for (i = 0; i < nb_prom_envs; i++)
159 end = OpenBIOS_set_var(image, end, prom_envs[i]);
160
161 // End marker
162 image[end++] = '\0';
163
164 end = start + ((end - start + 15) & ~15);
165 OpenBIOS_finish_partition(part_header, end - start);
166
167 // free partition
168 start = end;
169 part_header = (struct OpenBIOS_nvpart_v1 *)&image[start];
170 part_header->signature = OPENBIOS_PART_FREE;
171 pstrcpy(part_header->name, sizeof(part_header->name), "free");
172
173 end = 0x1fd0;
174 OpenBIOS_finish_partition(part_header, end - start);
175
176 Sun_init_header((struct Sun_nvram *)&image[0x1fd8], macaddr, 0x80);
177
178 for (i = 0; i < sizeof(image); i++)
179 m48t59_write(nvram, i, image[i]);
180
181 return 0;
182 }
183 static unsigned long sun4u_load_kernel(const char *kernel_filename,
184 const char *initrd_filename,
185 ram_addr_t RAM_size, long *initrd_size)
186 {
187 int linux_boot;
188 unsigned int i;
189 long kernel_size;
190 uint8_t *ptr;
191
192 linux_boot = (kernel_filename != NULL);
193
194 kernel_size = 0;
195 if (linux_boot) {
196 int bswap_needed;
197
198 #ifdef BSWAP_NEEDED
199 bswap_needed = 1;
200 #else
201 bswap_needed = 0;
202 #endif
203 kernel_size = load_elf(kernel_filename, NULL, NULL, NULL,
204 NULL, NULL, 1, ELF_MACHINE, 0);
205 if (kernel_size < 0)
206 kernel_size = load_aout(kernel_filename, KERNEL_LOAD_ADDR,
207 RAM_size - KERNEL_LOAD_ADDR, bswap_needed,
208 TARGET_PAGE_SIZE);
209 if (kernel_size < 0)
210 kernel_size = load_image_targphys(kernel_filename,
211 KERNEL_LOAD_ADDR,
212 RAM_size - KERNEL_LOAD_ADDR);
213 if (kernel_size < 0) {
214 fprintf(stderr, "qemu: could not load kernel '%s'\n",
215 kernel_filename);
216 exit(1);
217 }
218
219 /* load initrd */
220 *initrd_size = 0;
221 if (initrd_filename) {
222 *initrd_size = load_image_targphys(initrd_filename,
223 INITRD_LOAD_ADDR,
224 RAM_size - INITRD_LOAD_ADDR);
225 if (*initrd_size < 0) {
226 fprintf(stderr, "qemu: could not load initial ram disk '%s'\n",
227 initrd_filename);
228 exit(1);
229 }
230 }
231 if (*initrd_size > 0) {
232 for (i = 0; i < 64 * TARGET_PAGE_SIZE; i += TARGET_PAGE_SIZE) {
233 ptr = rom_ptr(KERNEL_LOAD_ADDR + i);
234 if (ldl_p(ptr + 8) == 0x48647253) { /* HdrS */
235 stl_p(ptr + 24, INITRD_LOAD_ADDR + KERNEL_LOAD_ADDR - 0x4000);
236 stl_p(ptr + 28, *initrd_size);
237 break;
238 }
239 }
240 }
241 }
242 return kernel_size;
243 }
244
245 void pic_info(Monitor *mon)
246 {
247 }
248
249 void irq_info(Monitor *mon)
250 {
251 }
252
253 void cpu_check_irqs(CPUState *env)
254 {
255 uint32_t pil = env->pil_in |
256 (env->softint & ~(SOFTINT_TIMER | SOFTINT_STIMER));
257
258 /* check if TM or SM in SOFTINT are set
259 setting these also causes interrupt 14 */
260 if (env->softint & (SOFTINT_TIMER | SOFTINT_STIMER)) {
261 pil |= 1 << 14;
262 }
263
264 if (!pil) {
265 if (env->interrupt_request & CPU_INTERRUPT_HARD) {
266 CPUIRQ_DPRINTF("Reset CPU IRQ (current interrupt %x)\n",
267 env->interrupt_index);
268 env->interrupt_index = 0;
269 cpu_reset_interrupt(env, CPU_INTERRUPT_HARD);
270 }
271 return;
272 }
273
274 if (cpu_interrupts_enabled(env)) {
275
276 unsigned int i;
277
278 for (i = 15; i > env->psrpil; i--) {
279 if (pil & (1 << i)) {
280 int old_interrupt = env->interrupt_index;
281 int new_interrupt = TT_EXTINT | i;
282
283 if (env->tl > 0 && cpu_tsptr(env)->tt > new_interrupt) {
284 CPUIRQ_DPRINTF("Not setting CPU IRQ: TL=%d "
285 "current %x >= pending %x\n",
286 env->tl, cpu_tsptr(env)->tt, new_interrupt);
287 } else if (old_interrupt != new_interrupt) {
288 env->interrupt_index = new_interrupt;
289 CPUIRQ_DPRINTF("Set CPU IRQ %d old=%x new=%x\n", i,
290 old_interrupt, new_interrupt);
291 cpu_interrupt(env, CPU_INTERRUPT_HARD);
292 }
293 break;
294 }
295 }
296 } else {
297 CPUIRQ_DPRINTF("Interrupts disabled, pil=%08x pil_in=%08x softint=%08x "
298 "current interrupt %x\n",
299 pil, env->pil_in, env->softint, env->interrupt_index);
300 }
301 }
302
303 static void cpu_kick_irq(CPUState *env)
304 {
305 env->halted = 0;
306 cpu_check_irqs(env);
307 qemu_cpu_kick(env);
308 }
309
310 static void cpu_set_irq(void *opaque, int irq, int level)
311 {
312 CPUState *env = opaque;
313
314 if (level) {
315 CPUIRQ_DPRINTF("Raise CPU IRQ %d\n", irq);
316 env->pil_in |= 1 << irq;
317 cpu_kick_irq(env);
318 } else {
319 CPUIRQ_DPRINTF("Lower CPU IRQ %d\n", irq);
320 env->pil_in &= ~(1 << irq);
321 cpu_check_irqs(env);
322 }
323 }
324
325 typedef struct ResetData {
326 CPUState *env;
327 uint64_t prom_addr;
328 } ResetData;
329
330 void cpu_put_timer(QEMUFile *f, CPUTimer *s)
331 {
332 qemu_put_be32s(f, &s->frequency);
333 qemu_put_be32s(f, &s->disabled);
334 qemu_put_be64s(f, &s->disabled_mask);
335 qemu_put_sbe64s(f, &s->clock_offset);
336
337 qemu_put_timer(f, s->qtimer);
338 }
339
340 void cpu_get_timer(QEMUFile *f, CPUTimer *s)
341 {
342 qemu_get_be32s(f, &s->frequency);
343 qemu_get_be32s(f, &s->disabled);
344 qemu_get_be64s(f, &s->disabled_mask);
345 qemu_get_sbe64s(f, &s->clock_offset);
346
347 qemu_get_timer(f, s->qtimer);
348 }
349
350 static CPUTimer* cpu_timer_create(const char* name, CPUState *env,
351 QEMUBHFunc *cb, uint32_t frequency,
352 uint64_t disabled_mask)
353 {
354 CPUTimer *timer = g_malloc0(sizeof (CPUTimer));
355
356 timer->name = name;
357 timer->frequency = frequency;
358 timer->disabled_mask = disabled_mask;
359
360 timer->disabled = 1;
361 timer->clock_offset = qemu_get_clock_ns(vm_clock);
362
363 timer->qtimer = qemu_new_timer_ns(vm_clock, cb, env);
364
365 return timer;
366 }
367
368 static void cpu_timer_reset(CPUTimer *timer)
369 {
370 timer->disabled = 1;
371 timer->clock_offset = qemu_get_clock_ns(vm_clock);
372
373 qemu_del_timer(timer->qtimer);
374 }
375
376 static void main_cpu_reset(void *opaque)
377 {
378 ResetData *s = (ResetData *)opaque;
379 CPUState *env = s->env;
380 static unsigned int nr_resets;
381
382 cpu_reset(env);
383
384 cpu_timer_reset(env->tick);
385 cpu_timer_reset(env->stick);
386 cpu_timer_reset(env->hstick);
387
388 env->gregs[1] = 0; // Memory start
389 env->gregs[2] = ram_size; // Memory size
390 env->gregs[3] = 0; // Machine description XXX
391 if (nr_resets++ == 0) {
392 /* Power on reset */
393 env->pc = s->prom_addr + 0x20ULL;
394 } else {
395 env->pc = s->prom_addr + 0x40ULL;
396 }
397 env->npc = env->pc + 4;
398 }
399
400 static void tick_irq(void *opaque)
401 {
402 CPUState *env = opaque;
403
404 CPUTimer* timer = env->tick;
405
406 if (timer->disabled) {
407 CPUIRQ_DPRINTF("tick_irq: softint disabled\n");
408 return;
409 } else {
410 CPUIRQ_DPRINTF("tick: fire\n");
411 }
412
413 env->softint |= SOFTINT_TIMER;
414 cpu_kick_irq(env);
415 }
416
417 static void stick_irq(void *opaque)
418 {
419 CPUState *env = opaque;
420
421 CPUTimer* timer = env->stick;
422
423 if (timer->disabled) {
424 CPUIRQ_DPRINTF("stick_irq: softint disabled\n");
425 return;
426 } else {
427 CPUIRQ_DPRINTF("stick: fire\n");
428 }
429
430 env->softint |= SOFTINT_STIMER;
431 cpu_kick_irq(env);
432 }
433
434 static void hstick_irq(void *opaque)
435 {
436 CPUState *env = opaque;
437
438 CPUTimer* timer = env->hstick;
439
440 if (timer->disabled) {
441 CPUIRQ_DPRINTF("hstick_irq: softint disabled\n");
442 return;
443 } else {
444 CPUIRQ_DPRINTF("hstick: fire\n");
445 }
446
447 env->softint |= SOFTINT_STIMER;
448 cpu_kick_irq(env);
449 }
450
451 static int64_t cpu_to_timer_ticks(int64_t cpu_ticks, uint32_t frequency)
452 {
453 return muldiv64(cpu_ticks, get_ticks_per_sec(), frequency);
454 }
455
456 static uint64_t timer_to_cpu_ticks(int64_t timer_ticks, uint32_t frequency)
457 {
458 return muldiv64(timer_ticks, frequency, get_ticks_per_sec());
459 }
460
461 void cpu_tick_set_count(CPUTimer *timer, uint64_t count)
462 {
463 uint64_t real_count = count & ~timer->disabled_mask;
464 uint64_t disabled_bit = count & timer->disabled_mask;
465
466 int64_t vm_clock_offset = qemu_get_clock_ns(vm_clock) -
467 cpu_to_timer_ticks(real_count, timer->frequency);
468
469 TIMER_DPRINTF("%s set_count count=0x%016lx (%s) p=%p\n",
470 timer->name, real_count,
471 timer->disabled?"disabled":"enabled", timer);
472
473 timer->disabled = disabled_bit ? 1 : 0;
474 timer->clock_offset = vm_clock_offset;
475 }
476
477 uint64_t cpu_tick_get_count(CPUTimer *timer)
478 {
479 uint64_t real_count = timer_to_cpu_ticks(
480 qemu_get_clock_ns(vm_clock) - timer->clock_offset,
481 timer->frequency);
482
483 TIMER_DPRINTF("%s get_count count=0x%016lx (%s) p=%p\n",
484 timer->name, real_count,
485 timer->disabled?"disabled":"enabled", timer);
486
487 if (timer->disabled)
488 real_count |= timer->disabled_mask;
489
490 return real_count;
491 }
492
493 void cpu_tick_set_limit(CPUTimer *timer, uint64_t limit)
494 {
495 int64_t now = qemu_get_clock_ns(vm_clock);
496
497 uint64_t real_limit = limit & ~timer->disabled_mask;
498 timer->disabled = (limit & timer->disabled_mask) ? 1 : 0;
499
500 int64_t expires = cpu_to_timer_ticks(real_limit, timer->frequency) +
501 timer->clock_offset;
502
503 if (expires < now) {
504 expires = now + 1;
505 }
506
507 TIMER_DPRINTF("%s set_limit limit=0x%016lx (%s) p=%p "
508 "called with limit=0x%016lx at 0x%016lx (delta=0x%016lx)\n",
509 timer->name, real_limit,
510 timer->disabled?"disabled":"enabled",
511 timer, limit,
512 timer_to_cpu_ticks(now - timer->clock_offset,
513 timer->frequency),
514 timer_to_cpu_ticks(expires - now, timer->frequency));
515
516 if (!real_limit) {
517 TIMER_DPRINTF("%s set_limit limit=ZERO - not starting timer\n",
518 timer->name);
519 qemu_del_timer(timer->qtimer);
520 } else if (timer->disabled) {
521 qemu_del_timer(timer->qtimer);
522 } else {
523 qemu_mod_timer(timer->qtimer, expires);
524 }
525 }
526
527 static void dummy_isa_irq_handler(void *opaque, int n, int level)
528 {
529 }
530
531 /* EBUS (Eight bit bus) bridge */
532 static void
533 pci_ebus_init(PCIBus *bus, int devfn)
534 {
535 qemu_irq *isa_irq;
536
537 pci_create_simple(bus, devfn, "ebus");
538 isa_irq = qemu_allocate_irqs(dummy_isa_irq_handler, NULL, 16);
539 isa_bus_irqs(isa_irq);
540 }
541
542 static int
543 pci_ebus_init1(PCIDevice *pci_dev)
544 {
545 EbusState *s = DO_UPCAST(EbusState, pci_dev, pci_dev);
546
547 isa_bus_new(&pci_dev->qdev);
548
549 pci_dev->config[0x04] = 0x06; // command = bus master, pci mem
550 pci_dev->config[0x05] = 0x00;
551 pci_dev->config[0x06] = 0xa0; // status = fast back-to-back, 66MHz, no error
552 pci_dev->config[0x07] = 0x03; // status = medium devsel
553 pci_dev->config[0x09] = 0x00; // programming i/f
554 pci_dev->config[0x0D] = 0x0a; // latency_timer
555
556 isa_mmio_setup(&s->bar0, 0x1000000);
557 pci_register_bar(pci_dev, 0, PCI_BASE_ADDRESS_SPACE_MEMORY, &s->bar0);
558 isa_mmio_setup(&s->bar1, 0x800000);
559 pci_register_bar(pci_dev, 1, PCI_BASE_ADDRESS_SPACE_MEMORY, &s->bar1);
560 return 0;
561 }
562
563 static PCIDeviceInfo ebus_info = {
564 .qdev.name = "ebus",
565 .qdev.size = sizeof(EbusState),
566 .init = pci_ebus_init1,
567 .vendor_id = PCI_VENDOR_ID_SUN,
568 .device_id = PCI_DEVICE_ID_SUN_EBUS,
569 .revision = 0x01,
570 .class_id = PCI_CLASS_BRIDGE_OTHER,
571 };
572
573 static void pci_ebus_register(void)
574 {
575 pci_qdev_register(&ebus_info);
576 }
577
578 device_init(pci_ebus_register);
579
580 static uint64_t translate_prom_address(void *opaque, uint64_t addr)
581 {
582 target_phys_addr_t *base_addr = (target_phys_addr_t *)opaque;
583 return addr + *base_addr - PROM_VADDR;
584 }
585
586 /* Boot PROM (OpenBIOS) */
587 static void prom_init(target_phys_addr_t addr, const char *bios_name)
588 {
589 DeviceState *dev;
590 SysBusDevice *s;
591 char *filename;
592 int ret;
593
594 dev = qdev_create(NULL, "openprom");
595 qdev_init_nofail(dev);
596 s = sysbus_from_qdev(dev);
597
598 sysbus_mmio_map(s, 0, addr);
599
600 /* load boot prom */
601 if (bios_name == NULL) {
602 bios_name = PROM_FILENAME;
603 }
604 filename = qemu_find_file(QEMU_FILE_TYPE_BIOS, bios_name);
605 if (filename) {
606 ret = load_elf(filename, translate_prom_address, &addr,
607 NULL, NULL, NULL, 1, ELF_MACHINE, 0);
608 if (ret < 0 || ret > PROM_SIZE_MAX) {
609 ret = load_image_targphys(filename, addr, PROM_SIZE_MAX);
610 }
611 g_free(filename);
612 } else {
613 ret = -1;
614 }
615 if (ret < 0 || ret > PROM_SIZE_MAX) {
616 fprintf(stderr, "qemu: could not load prom '%s'\n", bios_name);
617 exit(1);
618 }
619 }
620
621 static int prom_init1(SysBusDevice *dev)
622 {
623 ram_addr_t prom_offset;
624
625 prom_offset = qemu_ram_alloc(NULL, "sun4u.prom", PROM_SIZE_MAX);
626 sysbus_init_mmio(dev, PROM_SIZE_MAX, prom_offset | IO_MEM_ROM);
627 return 0;
628 }
629
630 static SysBusDeviceInfo prom_info = {
631 .init = prom_init1,
632 .qdev.name = "openprom",
633 .qdev.size = sizeof(SysBusDevice),
634 .qdev.props = (Property[]) {
635 {/* end of property list */}
636 }
637 };
638
639 static void prom_register_devices(void)
640 {
641 sysbus_register_withprop(&prom_info);
642 }
643
644 device_init(prom_register_devices);
645
646
647 typedef struct RamDevice
648 {
649 SysBusDevice busdev;
650 uint64_t size;
651 } RamDevice;
652
653 /* System RAM */
654 static int ram_init1(SysBusDevice *dev)
655 {
656 ram_addr_t RAM_size, ram_offset;
657 RamDevice *d = FROM_SYSBUS(RamDevice, dev);
658
659 RAM_size = d->size;
660
661 ram_offset = qemu_ram_alloc(NULL, "sun4u.ram", RAM_size);
662 sysbus_init_mmio(dev, RAM_size, ram_offset);
663 return 0;
664 }
665
666 static void ram_init(target_phys_addr_t addr, ram_addr_t RAM_size)
667 {
668 DeviceState *dev;
669 SysBusDevice *s;
670 RamDevice *d;
671
672 /* allocate RAM */
673 dev = qdev_create(NULL, "memory");
674 s = sysbus_from_qdev(dev);
675
676 d = FROM_SYSBUS(RamDevice, s);
677 d->size = RAM_size;
678 qdev_init_nofail(dev);
679
680 sysbus_mmio_map(s, 0, addr);
681 }
682
683 static SysBusDeviceInfo ram_info = {
684 .init = ram_init1,
685 .qdev.name = "memory",
686 .qdev.size = sizeof(RamDevice),
687 .qdev.props = (Property[]) {
688 DEFINE_PROP_UINT64("size", RamDevice, size, 0),
689 DEFINE_PROP_END_OF_LIST(),
690 }
691 };
692
693 static void ram_register_devices(void)
694 {
695 sysbus_register_withprop(&ram_info);
696 }
697
698 device_init(ram_register_devices);
699
700 static CPUState *cpu_devinit(const char *cpu_model, const struct hwdef *hwdef)
701 {
702 CPUState *env;
703 ResetData *reset_info;
704
705 uint32_t tick_frequency = 100*1000000;
706 uint32_t stick_frequency = 100*1000000;
707 uint32_t hstick_frequency = 100*1000000;
708
709 if (!cpu_model)
710 cpu_model = hwdef->default_cpu_model;
711 env = cpu_init(cpu_model);
712 if (!env) {
713 fprintf(stderr, "Unable to find Sparc CPU definition\n");
714 exit(1);
715 }
716
717 env->tick = cpu_timer_create("tick", env, tick_irq,
718 tick_frequency, TICK_NPT_MASK);
719
720 env->stick = cpu_timer_create("stick", env, stick_irq,
721 stick_frequency, TICK_INT_DIS);
722
723 env->hstick = cpu_timer_create("hstick", env, hstick_irq,
724 hstick_frequency, TICK_INT_DIS);
725
726 reset_info = g_malloc0(sizeof(ResetData));
727 reset_info->env = env;
728 reset_info->prom_addr = hwdef->prom_addr;
729 qemu_register_reset(main_cpu_reset, reset_info);
730
731 return env;
732 }
733
734 static void sun4uv_init(ram_addr_t RAM_size,
735 const char *boot_devices,
736 const char *kernel_filename, const char *kernel_cmdline,
737 const char *initrd_filename, const char *cpu_model,
738 const struct hwdef *hwdef)
739 {
740 CPUState *env;
741 M48t59State *nvram;
742 unsigned int i;
743 long initrd_size, kernel_size;
744 PCIBus *pci_bus, *pci_bus2, *pci_bus3;
745 qemu_irq *irq;
746 DriveInfo *hd[MAX_IDE_BUS * MAX_IDE_DEVS];
747 DriveInfo *fd[MAX_FD];
748 void *fw_cfg;
749
750 /* init CPUs */
751 env = cpu_devinit(cpu_model, hwdef);
752
753 /* set up devices */
754 ram_init(0, RAM_size);
755
756 prom_init(hwdef->prom_addr, bios_name);
757
758
759 irq = qemu_allocate_irqs(cpu_set_irq, env, MAX_PILS);
760 pci_bus = pci_apb_init(APB_SPECIAL_BASE, APB_MEM_BASE, irq, &pci_bus2,
761 &pci_bus3);
762 isa_mem_base = APB_PCI_IO_BASE;
763 pci_vga_init(pci_bus);
764
765 // XXX Should be pci_bus3
766 pci_ebus_init(pci_bus, -1);
767
768 i = 0;
769 if (hwdef->console_serial_base) {
770 serial_mm_init(hwdef->console_serial_base, 0, NULL, 115200,
771 serial_hds[i], 1, 1);
772 i++;
773 }
774 for(; i < MAX_SERIAL_PORTS; i++) {
775 if (serial_hds[i]) {
776 serial_isa_init(i, serial_hds[i]);
777 }
778 }
779
780 for(i = 0; i < MAX_PARALLEL_PORTS; i++) {
781 if (parallel_hds[i]) {
782 parallel_init(i, parallel_hds[i]);
783 }
784 }
785
786 for(i = 0; i < nb_nics; i++)
787 pci_nic_init_nofail(&nd_table[i], "ne2k_pci", NULL);
788
789 ide_drive_get(hd, MAX_IDE_BUS);
790
791 pci_cmd646_ide_init(pci_bus, hd, 1);
792
793 isa_create_simple("i8042");
794 for(i = 0; i < MAX_FD; i++) {
795 fd[i] = drive_get(IF_FLOPPY, 0, i);
796 }
797 fdctrl_init_isa(fd);
798 nvram = m48t59_init_isa(0x0074, NVRAM_SIZE, 59);
799
800 initrd_size = 0;
801 kernel_size = sun4u_load_kernel(kernel_filename, initrd_filename,
802 ram_size, &initrd_size);
803
804 sun4u_NVRAM_set_params(nvram, NVRAM_SIZE, "Sun4u", RAM_size, boot_devices,
805 KERNEL_LOAD_ADDR, kernel_size,
806 kernel_cmdline,
807 INITRD_LOAD_ADDR, initrd_size,
808 /* XXX: need an option to load a NVRAM image */
809 0,
810 graphic_width, graphic_height, graphic_depth,
811 (uint8_t *)&nd_table[0].macaddr);
812
813 fw_cfg = fw_cfg_init(BIOS_CFG_IOPORT, BIOS_CFG_IOPORT + 1, 0, 0);
814 fw_cfg_add_i32(fw_cfg, FW_CFG_ID, 1);
815 fw_cfg_add_i64(fw_cfg, FW_CFG_RAM_SIZE, (uint64_t)ram_size);
816 fw_cfg_add_i16(fw_cfg, FW_CFG_MACHINE_ID, hwdef->machine_id);
817 fw_cfg_add_i32(fw_cfg, FW_CFG_KERNEL_ADDR, KERNEL_LOAD_ADDR);
818 fw_cfg_add_i32(fw_cfg, FW_CFG_KERNEL_SIZE, kernel_size);
819 if (kernel_cmdline) {
820 fw_cfg_add_i32(fw_cfg, FW_CFG_CMDLINE_SIZE,
821 strlen(kernel_cmdline) + 1);
822 fw_cfg_add_bytes(fw_cfg, FW_CFG_CMDLINE_DATA,
823 (uint8_t*)strdup(kernel_cmdline),
824 strlen(kernel_cmdline) + 1);
825 } else {
826 fw_cfg_add_i32(fw_cfg, FW_CFG_CMDLINE_SIZE, 0);
827 }
828 fw_cfg_add_i32(fw_cfg, FW_CFG_INITRD_ADDR, INITRD_LOAD_ADDR);
829 fw_cfg_add_i32(fw_cfg, FW_CFG_INITRD_SIZE, initrd_size);
830 fw_cfg_add_i16(fw_cfg, FW_CFG_BOOT_DEVICE, boot_devices[0]);
831
832 fw_cfg_add_i16(fw_cfg, FW_CFG_SPARC64_WIDTH, graphic_width);
833 fw_cfg_add_i16(fw_cfg, FW_CFG_SPARC64_HEIGHT, graphic_height);
834 fw_cfg_add_i16(fw_cfg, FW_CFG_SPARC64_DEPTH, graphic_depth);
835
836 qemu_register_boot_set(fw_cfg_boot_set, fw_cfg);
837 }
838
839 enum {
840 sun4u_id = 0,
841 sun4v_id = 64,
842 niagara_id,
843 };
844
845 static const struct hwdef hwdefs[] = {
846 /* Sun4u generic PC-like machine */
847 {
848 .default_cpu_model = "TI UltraSparc IIi",
849 .machine_id = sun4u_id,
850 .prom_addr = 0x1fff0000000ULL,
851 .console_serial_base = 0,
852 },
853 /* Sun4v generic PC-like machine */
854 {
855 .default_cpu_model = "Sun UltraSparc T1",
856 .machine_id = sun4v_id,
857 .prom_addr = 0x1fff0000000ULL,
858 .console_serial_base = 0,
859 },
860 /* Sun4v generic Niagara machine */
861 {
862 .default_cpu_model = "Sun UltraSparc T1",
863 .machine_id = niagara_id,
864 .prom_addr = 0xfff0000000ULL,
865 .console_serial_base = 0xfff0c2c000ULL,
866 },
867 };
868
869 /* Sun4u hardware initialisation */
870 static void sun4u_init(ram_addr_t RAM_size,
871 const char *boot_devices,
872 const char *kernel_filename, const char *kernel_cmdline,
873 const char *initrd_filename, const char *cpu_model)
874 {
875 sun4uv_init(RAM_size, boot_devices, kernel_filename,
876 kernel_cmdline, initrd_filename, cpu_model, &hwdefs[0]);
877 }
878
879 /* Sun4v hardware initialisation */
880 static void sun4v_init(ram_addr_t RAM_size,
881 const char *boot_devices,
882 const char *kernel_filename, const char *kernel_cmdline,
883 const char *initrd_filename, const char *cpu_model)
884 {
885 sun4uv_init(RAM_size, boot_devices, kernel_filename,
886 kernel_cmdline, initrd_filename, cpu_model, &hwdefs[1]);
887 }
888
889 /* Niagara hardware initialisation */
890 static void niagara_init(ram_addr_t RAM_size,
891 const char *boot_devices,
892 const char *kernel_filename, const char *kernel_cmdline,
893 const char *initrd_filename, const char *cpu_model)
894 {
895 sun4uv_init(RAM_size, boot_devices, kernel_filename,
896 kernel_cmdline, initrd_filename, cpu_model, &hwdefs[2]);
897 }
898
899 static QEMUMachine sun4u_machine = {
900 .name = "sun4u",
901 .desc = "Sun4u platform",
902 .init = sun4u_init,
903 .max_cpus = 1, // XXX for now
904 .is_default = 1,
905 };
906
907 static QEMUMachine sun4v_machine = {
908 .name = "sun4v",
909 .desc = "Sun4v platform",
910 .init = sun4v_init,
911 .max_cpus = 1, // XXX for now
912 };
913
914 static QEMUMachine niagara_machine = {
915 .name = "Niagara",
916 .desc = "Sun4v platform, Niagara",
917 .init = niagara_init,
918 .max_cpus = 1, // XXX for now
919 };
920
921 static void sun4u_machine_init(void)
922 {
923 qemu_register_machine(&sun4u_machine);
924 qemu_register_machine(&sun4v_machine);
925 qemu_register_machine(&niagara_machine);
926 }
927
928 machine_init(sun4u_machine_init);