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CommitLineData
5856de80
TS
1/*
2 * QEMU Malta board support
3 *
4 * Copyright (c) 2006 Aurelien Jarno
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
c684822a 25#include "qemu/osdep.h"
be01029e 26#include "qemu/units.h"
4771d756
PB
27#include "qemu-common.h"
28#include "cpu.h"
fff123b8 29#include "hw/southbridge/piix.h"
7313b1f2 30#include "hw/isa/superio.h"
0d09e41a 31#include "hw/char/serial.h"
1422e32d 32#include "net/net.h"
83c9f4ca 33#include "hw/boards.h"
93198b6c 34#include "hw/i2c/smbus_eeprom.h"
0d09e41a
PB
35#include "hw/block/flash.h"
36#include "hw/mips/mips.h"
37#include "hw/mips/cpudevs.h"
83c9f4ca 38#include "hw/pci/pci.h"
9c17d615
PB
39#include "sysemu/sysemu.h"
40#include "sysemu/arch_init.h"
1de7afc9 41#include "qemu/log.h"
0d09e41a 42#include "hw/mips/bios.h"
83c9f4ca 43#include "hw/ide.h"
64552b6b 44#include "hw/irq.h"
83c9f4ca 45#include "hw/loader.h"
ca20cf32 46#include "elf.h"
022c62cb 47#include "exec/address-spaces.h"
83c9f4ca 48#include "hw/sysbus.h" /* SysBusDevice */
02bccc77 49#include "qemu/host-utils.h"
2c57bd9b 50#include "sysemu/qtest.h"
71e8a915 51#include "sysemu/reset.h"
54d31236 52#include "sysemu/runstate.h"
e688df6b 53#include "qapi/error.h"
2e985fe0 54#include "qemu/error-report.h"
cc413a39 55#include "hw/empty_slot.h"
b0311811 56#include "sysemu/kvm.h"
f1672e6f 57#include "hw/semihosting/semihost.h"
bff384a4 58#include "hw/mips/cps.h"
5856de80 59
94818443
AM
60#define ENVP_ADDR 0x80002000l
61#define ENVP_NB_ENTRIES 16
62#define ENVP_ENTRY_SIZE 256
5856de80 63
03a1a8e1 64/* Hardware addresses */
94818443
AM
65#define FLASH_ADDRESS 0x1e000000ULL
66#define FPGA_ADDRESS 0x1f000000ULL
67#define RESET_ADDRESS 0x1fc00000ULL
03a1a8e1 68
94818443 69#define FLASH_SIZE 0x400000
03a1a8e1 70
94818443 71#define MAX_IDE_BUS 2
e4bcb14c 72
5856de80 73typedef struct {
ea85df72
AK
74 MemoryRegion iomem;
75 MemoryRegion iomem_lo; /* 0 - 0x900 */
76 MemoryRegion iomem_hi; /* 0xa00 - 0x100000 */
5856de80
TS
77 uint32_t leds;
78 uint32_t brk;
79 uint32_t gpout;
130751ee 80 uint32_t i2cin;
5856de80
TS
81 uint32_t i2coe;
82 uint32_t i2cout;
83 uint32_t i2csel;
32a6ebec 84 CharBackend display;
5856de80 85 char display_text[9];
a4bc3afc 86 SerialState *uart;
9850b05d 87 bool display_inited;
5856de80
TS
88} MaltaFPGAState;
89
cba5cb67
AF
90#define TYPE_MIPS_MALTA "mips-malta"
91#define MIPS_MALTA(obj) OBJECT_CHECK(MaltaState, (obj), TYPE_MIPS_MALTA)
92
e9b40fd3 93typedef struct {
cba5cb67
AF
94 SysBusDevice parent_obj;
95
2d5fac80 96 MIPSCPSState cps;
078778c5 97 qemu_irq i8259[ISA_NUM_IRQS];
e9b40fd3
SW
98} MaltaState;
99
7df526e3 100static struct _loaderparams {
71c199c8 101 int ram_size, ram_low_size;
7df526e3
TS
102 const char *kernel_filename;
103 const char *kernel_cmdline;
104 const char *initrd_filename;
105} loaderparams;
106
5856de80
TS
107/* Malta FPGA */
108static void malta_fpga_update_display(void *opaque)
109{
110 char leds_text[9];
111 int i;
112 MaltaFPGAState *s = opaque;
113
07cf0ba0 114 for (i = 7 ; i >= 0 ; i--) {
94818443 115 if (s->leds & (1 << i)) {
07cf0ba0 116 leds_text[i] = '#';
94818443 117 } else {
07cf0ba0 118 leds_text[i] = ' ';
94818443 119 }
87ee1669 120 }
07cf0ba0
TS
121 leds_text[8] = '\0';
122
5345fdb4 123 qemu_chr_fe_printf(&s->display, "\e[H\n\n|\e[32m%-8.8s\e[00m|\r\n",
32a6ebec 124 leds_text);
5345fdb4 125 qemu_chr_fe_printf(&s->display, "\n\n\n\n|\e[31m%-8.8s\e[00m|",
32a6ebec 126 s->display_text);
5856de80
TS
127}
128
130751ee
TS
129/*
130 * EEPROM 24C01 / 24C02 emulation.
131 *
132 * Emulation for serial EEPROMs:
133 * 24C01 - 1024 bit (128 x 8)
134 * 24C02 - 2048 bit (256 x 8)
135 *
136 * Typical device names include Microchip 24C02SC or SGS Thomson ST24C02.
137 */
138
130751ee 139#if defined(DEBUG)
001faf32 140# define logout(fmt, ...) fprintf(stderr, "MALTA\t%-24s" fmt, __func__, ## __VA_ARGS__)
130751ee 141#else
001faf32 142# define logout(fmt, ...) ((void)0)
130751ee
TS
143#endif
144
c227f099 145struct _eeprom24c0x_t {
130751ee
TS
146 uint8_t tick;
147 uint8_t address;
148 uint8_t command;
149 uint8_t ack;
150 uint8_t scl;
151 uint8_t sda;
152 uint8_t data;
94818443 153 /* uint16_t size; */
130751ee
TS
154 uint8_t contents[256];
155};
156
c227f099 157typedef struct _eeprom24c0x_t eeprom24c0x_t;
130751ee 158
35c64807 159static eeprom24c0x_t spd_eeprom = {
284b08f1 160 .contents = {
94818443
AM
161 /* 00000000: */
162 0x80, 0x08, 0xFF, 0x0D, 0x0A, 0xFF, 0x40, 0x00,
163 /* 00000008: */
164 0x01, 0x75, 0x54, 0x00, 0x82, 0x08, 0x00, 0x01,
165 /* 00000010: */
166 0x8F, 0x04, 0x02, 0x01, 0x01, 0x00, 0x00, 0x00,
167 /* 00000018: */
168 0x00, 0x00, 0x00, 0x14, 0x0F, 0x14, 0x2D, 0xFF,
169 /* 00000020: */
170 0x15, 0x08, 0x15, 0x08, 0x00, 0x00, 0x00, 0x00,
171 /* 00000028: */
172 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
173 /* 00000030: */
174 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
175 /* 00000038: */
176 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x12, 0xD0,
177 /* 00000040: */
178 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
179 /* 00000048: */
180 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
181 /* 00000050: */
182 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
183 /* 00000058: */
184 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
185 /* 00000060: */
186 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
187 /* 00000068: */
188 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
189 /* 00000070: */
190 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
191 /* 00000078: */
192 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x64, 0xF4,
130751ee
TS
193 },
194};
195
35c64807 196static void generate_eeprom_spd(uint8_t *eeprom, ram_addr_t ram_size)
02bccc77
PB
197{
198 enum { SDR = 0x4, DDR2 = 0x8 } type;
35c64807 199 uint8_t *spd = spd_eeprom.contents;
02bccc77
PB
200 uint8_t nbanks = 0;
201 uint16_t density = 0;
202 int i;
203
204 /* work in terms of MB */
be01029e 205 ram_size /= MiB;
02bccc77
PB
206
207 while ((ram_size >= 4) && (nbanks <= 2)) {
208 int sz_log2 = MIN(31 - clz32(ram_size), 14);
209 nbanks++;
210 density |= 1 << (sz_log2 - 2);
211 ram_size -= 1 << sz_log2;
212 }
213
214 /* split to 2 banks if possible */
215 if ((nbanks == 1) && (density > 1)) {
216 nbanks++;
217 density >>= 1;
218 }
219
220 if (density & 0xff00) {
221 density = (density & 0xe0) | ((density >> 8) & 0x1f);
222 type = DDR2;
223 } else if (!(density & 0x1f)) {
224 type = DDR2;
225 } else {
226 type = SDR;
227 }
228
229 if (ram_size) {
b62e39b4
AF
230 warn_report("SPD cannot represent final " RAM_ADDR_FMT "MB"
231 " of SDRAM", ram_size);
02bccc77
PB
232 }
233
234 /* fill in SPD memory information */
235 spd[2] = type;
236 spd[5] = nbanks;
237 spd[31] = density;
238
239 /* checksum */
240 spd[63] = 0;
241 for (i = 0; i < 63; i++) {
242 spd[63] += spd[i];
243 }
35c64807
PB
244
245 /* copy for SMBUS */
246 memcpy(eeprom, spd, sizeof(spd_eeprom.contents));
247}
248
249static void generate_eeprom_serial(uint8_t *eeprom)
250{
251 int i, pos = 0;
252 uint8_t mac[6] = { 0x00 };
253 uint8_t sn[5] = { 0x01, 0x23, 0x45, 0x67, 0x89 };
254
255 /* version */
256 eeprom[pos++] = 0x01;
257
258 /* count */
259 eeprom[pos++] = 0x02;
260
261 /* MAC address */
262 eeprom[pos++] = 0x01; /* MAC */
263 eeprom[pos++] = 0x06; /* length */
264 memcpy(&eeprom[pos], mac, sizeof(mac));
265 pos += sizeof(mac);
266
267 /* serial number */
268 eeprom[pos++] = 0x02; /* serial */
269 eeprom[pos++] = 0x05; /* length */
270 memcpy(&eeprom[pos], sn, sizeof(sn));
271 pos += sizeof(sn);
272
273 /* checksum */
274 eeprom[pos] = 0;
275 for (i = 0; i < pos; i++) {
276 eeprom[pos] += eeprom[i];
277 }
02bccc77
PB
278}
279
35c64807 280static uint8_t eeprom24c0x_read(eeprom24c0x_t *eeprom)
130751ee
TS
281{
282 logout("%u: scl = %u, sda = %u, data = 0x%02x\n",
35c64807
PB
283 eeprom->tick, eeprom->scl, eeprom->sda, eeprom->data);
284 return eeprom->sda;
130751ee
TS
285}
286
35c64807 287static void eeprom24c0x_write(eeprom24c0x_t *eeprom, int scl, int sda)
130751ee 288{
35c64807 289 if (eeprom->scl && scl && (eeprom->sda != sda)) {
130751ee 290 logout("%u: scl = %u->%u, sda = %u->%u i2c %s\n",
35c64807
PB
291 eeprom->tick, eeprom->scl, scl, eeprom->sda, sda,
292 sda ? "stop" : "start");
130751ee 293 if (!sda) {
35c64807
PB
294 eeprom->tick = 1;
295 eeprom->command = 0;
130751ee 296 }
35c64807 297 } else if (eeprom->tick == 0 && !eeprom->ack) {
130751ee
TS
298 /* Waiting for start. */
299 logout("%u: scl = %u->%u, sda = %u->%u wait for i2c start\n",
35c64807
PB
300 eeprom->tick, eeprom->scl, scl, eeprom->sda, sda);
301 } else if (!eeprom->scl && scl) {
130751ee 302 logout("%u: scl = %u->%u, sda = %u->%u trigger bit\n",
35c64807
PB
303 eeprom->tick, eeprom->scl, scl, eeprom->sda, sda);
304 if (eeprom->ack) {
130751ee
TS
305 logout("\ti2c ack bit = 0\n");
306 sda = 0;
35c64807
PB
307 eeprom->ack = 0;
308 } else if (eeprom->sda == sda) {
130751ee
TS
309 uint8_t bit = (sda != 0);
310 logout("\ti2c bit = %d\n", bit);
35c64807
PB
311 if (eeprom->tick < 9) {
312 eeprom->command <<= 1;
313 eeprom->command += bit;
314 eeprom->tick++;
315 if (eeprom->tick == 9) {
316 logout("\tcommand 0x%04x, %s\n", eeprom->command,
317 bit ? "read" : "write");
318 eeprom->ack = 1;
130751ee 319 }
35c64807
PB
320 } else if (eeprom->tick < 17) {
321 if (eeprom->command & 1) {
322 sda = ((eeprom->data & 0x80) != 0);
130751ee 323 }
35c64807
PB
324 eeprom->address <<= 1;
325 eeprom->address += bit;
326 eeprom->tick++;
327 eeprom->data <<= 1;
328 if (eeprom->tick == 17) {
329 eeprom->data = eeprom->contents[eeprom->address];
330 logout("\taddress 0x%04x, data 0x%02x\n",
331 eeprom->address, eeprom->data);
332 eeprom->ack = 1;
333 eeprom->tick = 0;
130751ee 334 }
35c64807 335 } else if (eeprom->tick >= 17) {
130751ee
TS
336 sda = 0;
337 }
338 } else {
339 logout("\tsda changed with raising scl\n");
340 }
341 } else {
35c64807
PB
342 logout("%u: scl = %u->%u, sda = %u->%u\n", eeprom->tick, eeprom->scl,
343 scl, eeprom->sda, sda);
130751ee 344 }
35c64807
PB
345 eeprom->scl = scl;
346 eeprom->sda = sda;
130751ee
TS
347}
348
a8170e5e 349static uint64_t malta_fpga_read(void *opaque, hwaddr addr,
ea85df72 350 unsigned size)
5856de80
TS
351{
352 MaltaFPGAState *s = opaque;
353 uint32_t val = 0;
354 uint32_t saddr;
355
356 saddr = (addr & 0xfffff);
357
358 switch (saddr) {
359
360 /* SWITCH Register */
361 case 0x00200:
94818443
AM
362 /* ori a3, a3, low(ram_low_size) */
363 val = 0x00000000;
593c0d10 364 break;
5856de80
TS
365
366 /* STATUS Register */
367 case 0x00208:
368#ifdef TARGET_WORDS_BIGENDIAN
369 val = 0x00000012;
370#else
371 val = 0x00000010;
372#endif
373 break;
374
375 /* JMPRS Register */
376 case 0x00210:
377 val = 0x00;
378 break;
379
380 /* LEDBAR Register */
381 case 0x00408:
382 val = s->leds;
383 break;
384
385 /* BRKRES Register */
386 case 0x00508:
387 val = s->brk;
388 break;
389
b6dc7ebb 390 /* UART Registers are handled directly by the serial device */
a4bc3afc 391
5856de80
TS
392 /* GPOUT Register */
393 case 0x00a00:
394 val = s->gpout;
395 break;
396
397 /* XXX: implement a real I2C controller */
398
399 /* GPINP Register */
400 case 0x00a08:
401 /* IN = OUT until a real I2C control is implemented */
94818443 402 if (s->i2csel) {
5856de80 403 val = s->i2cout;
94818443 404 } else {
5856de80 405 val = 0x00;
94818443 406 }
5856de80
TS
407 break;
408
409 /* I2CINP Register */
410 case 0x00b00:
35c64807 411 val = ((s->i2cin & ~1) | eeprom24c0x_read(&spd_eeprom));
5856de80
TS
412 break;
413
414 /* I2COE Register */
415 case 0x00b08:
416 val = s->i2coe;
417 break;
418
419 /* I2COUT Register */
420 case 0x00b10:
421 val = s->i2cout;
422 break;
423
424 /* I2CSEL Register */
425 case 0x00b18:
130751ee 426 val = s->i2csel;
5856de80
TS
427 break;
428
429 default:
430#if 0
94818443
AM
431 printf("malta_fpga_read: Bad register offset 0x" TARGET_FMT_lx "\n",
432 addr);
5856de80
TS
433#endif
434 break;
435 }
436 return val;
437}
438
a8170e5e 439static void malta_fpga_write(void *opaque, hwaddr addr,
ea85df72 440 uint64_t val, unsigned size)
5856de80
TS
441{
442 MaltaFPGAState *s = opaque;
443 uint32_t saddr;
444
445 saddr = (addr & 0xfffff);
446
447 switch (saddr) {
448
449 /* SWITCH Register */
450 case 0x00200:
451 break;
452
453 /* JMPRS Register */
454 case 0x00210:
455 break;
456
457 /* LEDBAR Register */
5856de80
TS
458 case 0x00408:
459 s->leds = val & 0xff;
1d7a1197 460 malta_fpga_update_display(s);
5856de80
TS
461 break;
462
463 /* ASCIIWORD Register */
464 case 0x00410:
ea85df72 465 snprintf(s->display_text, 9, "%08X", (uint32_t)val);
5856de80
TS
466 malta_fpga_update_display(s);
467 break;
468
469 /* ASCIIPOS0 to ASCIIPOS7 Registers */
470 case 0x00418:
471 case 0x00420:
472 case 0x00428:
473 case 0x00430:
474 case 0x00438:
475 case 0x00440:
476 case 0x00448:
477 case 0x00450:
478 s->display_text[(saddr - 0x00418) >> 3] = (char) val;
479 malta_fpga_update_display(s);
480 break;
481
482 /* SOFTRES Register */
483 case 0x00500:
94818443 484 if (val == 0x42) {
cf83f140 485 qemu_system_reset_request(SHUTDOWN_CAUSE_GUEST_RESET);
94818443 486 }
5856de80
TS
487 break;
488
489 /* BRKRES Register */
490 case 0x00508:
491 s->brk = val & 0xff;
492 break;
493
b6dc7ebb 494 /* UART Registers are handled directly by the serial device */
a4bc3afc 495
5856de80
TS
496 /* GPOUT Register */
497 case 0x00a00:
498 s->gpout = val & 0xff;
499 break;
500
501 /* I2COE Register */
502 case 0x00b08:
503 s->i2coe = val & 0x03;
504 break;
505
506 /* I2COUT Register */
507 case 0x00b10:
35c64807 508 eeprom24c0x_write(&spd_eeprom, val & 0x02, val & 0x01);
130751ee 509 s->i2cout = val;
5856de80
TS
510 break;
511
512 /* I2CSEL Register */
513 case 0x00b18:
130751ee 514 s->i2csel = val & 0x01;
5856de80
TS
515 break;
516
517 default:
518#if 0
94818443
AM
519 printf("malta_fpga_write: Bad register offset 0x" TARGET_FMT_lx "\n",
520 addr);
5856de80
TS
521#endif
522 break;
523 }
524}
525
ea85df72
AK
526static const MemoryRegionOps malta_fpga_ops = {
527 .read = malta_fpga_read,
528 .write = malta_fpga_write,
529 .endianness = DEVICE_NATIVE_ENDIAN,
5856de80
TS
530};
531
9596ebb7 532static void malta_fpga_reset(void *opaque)
5856de80
TS
533{
534 MaltaFPGAState *s = opaque;
535
536 s->leds = 0x00;
537 s->brk = 0x0a;
538 s->gpout = 0x00;
130751ee 539 s->i2cin = 0x3;
5856de80
TS
540 s->i2coe = 0x0;
541 s->i2cout = 0x3;
542 s->i2csel = 0x1;
543
544 s->display_text[8] = '\0';
545 snprintf(s->display_text, 9, " ");
ceecf1d1
AJ
546}
547
9850b05d 548static void malta_fgpa_display_event(void *opaque, int event)
ceecf1d1 549{
9850b05d
MAL
550 MaltaFPGAState *s = opaque;
551
552 if (event == CHR_EVENT_OPENED && !s->display_inited) {
5345fdb4
MAL
553 qemu_chr_fe_printf(&s->display, "\e[HMalta LEDBAR\r\n");
554 qemu_chr_fe_printf(&s->display, "+--------+\r\n");
555 qemu_chr_fe_printf(&s->display, "+ +\r\n");
556 qemu_chr_fe_printf(&s->display, "+--------+\r\n");
557 qemu_chr_fe_printf(&s->display, "\n");
558 qemu_chr_fe_printf(&s->display, "Malta ASCII\r\n");
559 qemu_chr_fe_printf(&s->display, "+--------+\r\n");
560 qemu_chr_fe_printf(&s->display, "+ +\r\n");
561 qemu_chr_fe_printf(&s->display, "+--------+\r\n");
9850b05d
MAL
562 s->display_inited = true;
563 }
5856de80
TS
564}
565
ea85df72 566static MaltaFPGAState *malta_fpga_init(MemoryRegion *address_space,
0ec7b3e7 567 hwaddr base, qemu_irq uart_irq, Chardev *uart_chr)
5856de80
TS
568{
569 MaltaFPGAState *s;
0ec7b3e7 570 Chardev *chr;
5856de80 571
7267c094 572 s = (MaltaFPGAState *)g_malloc0(sizeof(MaltaFPGAState));
5856de80 573
2c9b15ca 574 memory_region_init_io(&s->iomem, NULL, &malta_fpga_ops, s,
ea85df72 575 "malta-fpga", 0x100000);
2c9b15ca 576 memory_region_init_alias(&s->iomem_lo, NULL, "malta-fpga",
ea85df72 577 &s->iomem, 0, 0x900);
2c9b15ca 578 memory_region_init_alias(&s->iomem_hi, NULL, "malta-fpga",
94818443 579 &s->iomem, 0xa00, 0x10000 - 0xa00);
a4bc3afc 580
ea85df72
AK
581 memory_region_add_subregion(address_space, base, &s->iomem_lo);
582 memory_region_add_subregion(address_space, base + 0xa00, &s->iomem_hi);
5856de80 583
4ad6f6cb 584 chr = qemu_chr_new("fpga", "vc:320x200", NULL);
5345fdb4
MAL
585 qemu_chr_fe_init(&s->display, chr, NULL);
586 qemu_chr_fe_set_handlers(&s->display, NULL, NULL,
81517ba3 587 malta_fgpa_display_event, NULL, s, NULL, true);
ceecf1d1 588
39186d8a
RH
589 s->uart = serial_mm_init(address_space, base + 0x900, 3, uart_irq,
590 230400, uart_chr, DEVICE_NATIVE_ENDIAN);
a4bc3afc 591
5856de80 592 malta_fpga_reset(s);
a08d4367 593 qemu_register_reset(malta_fpga_reset, s);
5856de80
TS
594
595 return s;
596}
597
5856de80 598/* Network support */
29b358f9 599static void network_init(PCIBus *pci_bus)
5856de80
TS
600{
601 int i;
5856de80 602
94818443 603 for (i = 0; i < nb_nics; i++) {
cb457d76 604 NICInfo *nd = &nd_table[i];
5607c388 605 const char *default_devaddr = NULL;
cb457d76
AL
606
607 if (i == 0 && (!nd->model || strcmp(nd->model, "pcnet") == 0))
5856de80 608 /* The malta board has a PCNet card using PCI SLOT 11 */
5607c388 609 default_devaddr = "0b";
cb457d76 610
29b358f9 611 pci_nic_init_nofail(nd, pci_bus, "pcnet", default_devaddr);
5856de80
TS
612 }
613}
614
ce3940cc
MF
615static void write_bootloader_nanomips(uint8_t *base, int64_t run_addr,
616 int64_t kernel_entry)
617{
618 uint16_t *p;
619
620 /* Small bootloader */
621 p = (uint16_t *)base;
622
623#define NM_HI1(VAL) (((VAL) >> 16) & 0x1f)
624#define NM_HI2(VAL) \
28861af8 625 (((VAL) & 0xf000) | (((VAL) >> 19) & 0xffc) | (((VAL) >> 31) & 0x1))
ce3940cc
MF
626#define NM_LO(VAL) ((VAL) & 0xfff)
627
28861af8
PB
628 stw_p(p++, 0x2800); stw_p(p++, 0x001c);
629 /* bc to_here */
630 stw_p(p++, 0x8000); stw_p(p++, 0xc000);
631 /* nop */
632 stw_p(p++, 0x8000); stw_p(p++, 0xc000);
633 /* nop */
634 stw_p(p++, 0x8000); stw_p(p++, 0xc000);
635 /* nop */
636 stw_p(p++, 0x8000); stw_p(p++, 0xc000);
637 /* nop */
638 stw_p(p++, 0x8000); stw_p(p++, 0xc000);
639 /* nop */
640 stw_p(p++, 0x8000); stw_p(p++, 0xc000);
641 /* nop */
642 stw_p(p++, 0x8000); stw_p(p++, 0xc000);
643 /* nop */
ce3940cc
MF
644
645 /* to_here: */
bf4667d0
SM
646 if (semihosting_get_argc()) {
647 /* Preserve a0 content as arguments have been passed */
648 stw_p(p++, 0x8000); stw_p(p++, 0xc000);
649 /* nop */
650 } else {
651 stw_p(p++, 0x0080); stw_p(p++, 0x0002);
28861af8 652 /* li a0,2 */
bf4667d0 653 }
28861af8 654
ce3940cc 655 stw_p(p++, 0xe3a0 | NM_HI1(ENVP_ADDR - 64));
28861af8 656
ce3940cc 657 stw_p(p++, NM_HI2(ENVP_ADDR - 64));
28861af8
PB
658 /* lui sp,%hi(ENVP_ADDR - 64) */
659
ce3940cc
MF
660 stw_p(p++, 0x83bd); stw_p(p++, NM_LO(ENVP_ADDR - 64));
661 /* ori sp,sp,%lo(ENVP_ADDR - 64) */
28861af8 662
ce3940cc 663 stw_p(p++, 0xe0a0 | NM_HI1(ENVP_ADDR));
28861af8 664
ce3940cc 665 stw_p(p++, NM_HI2(ENVP_ADDR));
28861af8
PB
666 /* lui a1,%hi(ENVP_ADDR) */
667
ce3940cc 668 stw_p(p++, 0x80a5); stw_p(p++, NM_LO(ENVP_ADDR));
28861af8
PB
669 /* ori a1,a1,%lo(ENVP_ADDR) */
670
ce3940cc 671 stw_p(p++, 0xe0c0 | NM_HI1(ENVP_ADDR + 8));
28861af8 672
ce3940cc 673 stw_p(p++, NM_HI2(ENVP_ADDR + 8));
28861af8
PB
674 /* lui a2,%hi(ENVP_ADDR + 8) */
675
ce3940cc
MF
676 stw_p(p++, 0x80c6); stw_p(p++, NM_LO(ENVP_ADDR + 8));
677 /* ori a2,a2,%lo(ENVP_ADDR + 8) */
28861af8 678
ce3940cc 679 stw_p(p++, 0xe0e0 | NM_HI1(loaderparams.ram_low_size));
28861af8 680
ce3940cc
MF
681 stw_p(p++, NM_HI2(loaderparams.ram_low_size));
682 /* lui a3,%hi(loaderparams.ram_low_size) */
28861af8 683
ce3940cc
MF
684 stw_p(p++, 0x80e7); stw_p(p++, NM_LO(loaderparams.ram_low_size));
685 /* ori a3,a3,%lo(loaderparams.ram_low_size) */
28861af8
PB
686
687 /*
688 * Load BAR registers as done by YAMON:
689 *
690 * - set up PCI0 I/O BARs from 0x18000000 to 0x181fffff
691 * - set up PCI0 MEM0 at 0x10000000, size 0x8000000
692 * - set up PCI0 MEM1 at 0x18200000, size 0xbe00000
693 *
694 */
695 stw_p(p++, 0xe040); stw_p(p++, 0x0681);
696 /* lui t1, %hi(0xb4000000) */
697
698#ifdef TARGET_WORDS_BIGENDIAN
699
700 stw_p(p++, 0xe020); stw_p(p++, 0x0be1);
701 /* lui t0, %hi(0xdf000000) */
702
703 /* 0x68 corresponds to GT_ISD (from hw/mips/gt64xxx_pci.c) */
704 stw_p(p++, 0x8422); stw_p(p++, 0x9068);
705 /* sw t0, 0x68(t1) */
706
707 stw_p(p++, 0xe040); stw_p(p++, 0x077d);
708 /* lui t1, %hi(0xbbe00000) */
709
710 stw_p(p++, 0xe020); stw_p(p++, 0x0801);
711 /* lui t0, %hi(0xc0000000) */
712
713 /* 0x48 corresponds to GT_PCI0IOLD */
714 stw_p(p++, 0x8422); stw_p(p++, 0x9048);
715 /* sw t0, 0x48(t1) */
716
717 stw_p(p++, 0xe020); stw_p(p++, 0x0800);
718 /* lui t0, %hi(0x40000000) */
719
720 /* 0x50 corresponds to GT_PCI0IOHD */
721 stw_p(p++, 0x8422); stw_p(p++, 0x9050);
722 /* sw t0, 0x50(t1) */
723
724 stw_p(p++, 0xe020); stw_p(p++, 0x0001);
725 /* lui t0, %hi(0x80000000) */
726
727 /* 0x58 corresponds to GT_PCI0M0LD */
728 stw_p(p++, 0x8422); stw_p(p++, 0x9058);
729 /* sw t0, 0x58(t1) */
730
731 stw_p(p++, 0xe020); stw_p(p++, 0x07e0);
732 /* lui t0, %hi(0x3f000000) */
733
734 /* 0x60 corresponds to GT_PCI0M0HD */
735 stw_p(p++, 0x8422); stw_p(p++, 0x9060);
736 /* sw t0, 0x60(t1) */
737
738 stw_p(p++, 0xe020); stw_p(p++, 0x0821);
739 /* lui t0, %hi(0xc1000000) */
740
741 /* 0x80 corresponds to GT_PCI0M1LD */
742 stw_p(p++, 0x8422); stw_p(p++, 0x9080);
743 /* sw t0, 0x80(t1) */
744
745 stw_p(p++, 0xe020); stw_p(p++, 0x0bc0);
746 /* lui t0, %hi(0x5e000000) */
747
748#else
749
750 stw_p(p++, 0x0020); stw_p(p++, 0x00df);
751 /* addiu[32] t0, $0, 0xdf */
752
753 /* 0x68 corresponds to GT_ISD */
754 stw_p(p++, 0x8422); stw_p(p++, 0x9068);
755 /* sw t0, 0x68(t1) */
756
757 /* Use kseg2 remapped address 0x1be00000 */
758 stw_p(p++, 0xe040); stw_p(p++, 0x077d);
759 /* lui t1, %hi(0xbbe00000) */
760
761 stw_p(p++, 0x0020); stw_p(p++, 0x00c0);
762 /* addiu[32] t0, $0, 0xc0 */
763
764 /* 0x48 corresponds to GT_PCI0IOLD */
765 stw_p(p++, 0x8422); stw_p(p++, 0x9048);
766 /* sw t0, 0x48(t1) */
767
768 stw_p(p++, 0x0020); stw_p(p++, 0x0040);
769 /* addiu[32] t0, $0, 0x40 */
770
771 /* 0x50 corresponds to GT_PCI0IOHD */
772 stw_p(p++, 0x8422); stw_p(p++, 0x9050);
773 /* sw t0, 0x50(t1) */
774
775 stw_p(p++, 0x0020); stw_p(p++, 0x0080);
776 /* addiu[32] t0, $0, 0x80 */
777
778 /* 0x58 corresponds to GT_PCI0M0LD */
779 stw_p(p++, 0x8422); stw_p(p++, 0x9058);
780 /* sw t0, 0x58(t1) */
781
782 stw_p(p++, 0x0020); stw_p(p++, 0x003f);
783 /* addiu[32] t0, $0, 0x3f */
784
785 /* 0x60 corresponds to GT_PCI0M0HD */
786 stw_p(p++, 0x8422); stw_p(p++, 0x9060);
787 /* sw t0, 0x60(t1) */
788
789 stw_p(p++, 0x0020); stw_p(p++, 0x00c1);
790 /* addiu[32] t0, $0, 0xc1 */
791
792 /* 0x80 corresponds to GT_PCI0M1LD */
793 stw_p(p++, 0x8422); stw_p(p++, 0x9080);
794 /* sw t0, 0x80(t1) */
795
796 stw_p(p++, 0x0020); stw_p(p++, 0x005e);
797 /* addiu[32] t0, $0, 0x5e */
798
799#endif
800
801 /* 0x88 corresponds to GT_PCI0M1HD */
802 stw_p(p++, 0x8422); stw_p(p++, 0x9088);
803 /* sw t0, 0x88(t1) */
804
ce3940cc 805 stw_p(p++, 0xe320 | NM_HI1(kernel_entry));
28861af8 806
ce3940cc 807 stw_p(p++, NM_HI2(kernel_entry));
28861af8
PB
808 /* lui t9,%hi(kernel_entry) */
809
ce3940cc 810 stw_p(p++, 0x8339); stw_p(p++, NM_LO(kernel_entry));
28861af8
PB
811 /* ori t9,t9,%lo(kernel_entry) */
812
ce3940cc 813 stw_p(p++, 0x4bf9); stw_p(p++, 0x0000);
28861af8 814 /* jalrc t8 */
ce3940cc
MF
815}
816
94818443
AM
817/*
818 * ROM and pseudo bootloader
819 *
820 * The following code implements a very very simple bootloader. It first
821 * loads the registers a0 to a3 to the values expected by the OS, and
822 * then jump at the kernel address.
823 *
824 * The bootloader should pass the locations of the kernel arguments and
825 * environment variables tables. Those tables contain the 32-bit address
826 * of NULL terminated strings. The environment variables table should be
827 * terminated by a NULL address.
828 *
829 * For a simpler implementation, the number of kernel arguments is fixed
830 * to two (the name of the kernel and the command line), and the two
831 * tables are actually the same one.
832 *
833 * The registers a0 to a3 should contain the following values:
834 * a0 - number of kernel arguments
835 * a1 - 32-bit address of the kernel arguments table
836 * a2 - 32-bit address of the environment variables table
837 * a3 - RAM size in bytes
838 */
cc518af0
LA
839static void write_bootloader(uint8_t *base, int64_t run_addr,
840 int64_t kernel_entry)
5856de80
TS
841{
842 uint32_t *p;
843
844 /* Small bootloader */
d7585251 845 p = (uint32_t *)base;
b0311811
JH
846
847 stl_p(p++, 0x08000000 | /* j 0x1fc00580 */
848 ((run_addr + 0x580) & 0x0fffffff) >> 2);
0983979b 849 stl_p(p++, 0x00000000); /* nop */
5856de80 850
26ea0918 851 /* YAMON service vector */
b0311811
JH
852 stl_p(base + 0x500, run_addr + 0x0580); /* start: */
853 stl_p(base + 0x504, run_addr + 0x083c); /* print_count: */
854 stl_p(base + 0x520, run_addr + 0x0580); /* start: */
855 stl_p(base + 0x52c, run_addr + 0x0800); /* flush_cache: */
856 stl_p(base + 0x534, run_addr + 0x0808); /* print: */
857 stl_p(base + 0x538, run_addr + 0x0800); /* reg_cpu_isr: */
858 stl_p(base + 0x53c, run_addr + 0x0800); /* unred_cpu_isr: */
859 stl_p(base + 0x540, run_addr + 0x0800); /* reg_ic_isr: */
860 stl_p(base + 0x544, run_addr + 0x0800); /* unred_ic_isr: */
861 stl_p(base + 0x548, run_addr + 0x0800); /* reg_esr: */
862 stl_p(base + 0x54c, run_addr + 0x0800); /* unreg_esr: */
863 stl_p(base + 0x550, run_addr + 0x0800); /* getchar: */
864 stl_p(base + 0x554, run_addr + 0x0800); /* syscon_read: */
26ea0918
TS
865
866
5856de80 867 /* Second part of the bootloader */
d7585251 868 p = (uint32_t *) (base + 0x580);
3b3c1694
LA
869
870 if (semihosting_get_argc()) {
871 /* Preserve a0 content as arguments have been passed */
872 stl_p(p++, 0x00000000); /* nop */
873 } else {
874 stl_p(p++, 0x24040002); /* addiu a0, zero, 2 */
875 }
94818443
AM
876
877 /* lui sp, high(ENVP_ADDR) */
878 stl_p(p++, 0x3c1d0000 | (((ENVP_ADDR - 64) >> 16) & 0xffff));
879 /* ori sp, sp, low(ENVP_ADDR) */
880 stl_p(p++, 0x37bd0000 | ((ENVP_ADDR - 64) & 0xffff));
881 /* lui a1, high(ENVP_ADDR) */
882 stl_p(p++, 0x3c050000 | ((ENVP_ADDR >> 16) & 0xffff));
883 /* ori a1, a1, low(ENVP_ADDR) */
884 stl_p(p++, 0x34a50000 | (ENVP_ADDR & 0xffff));
885 /* lui a2, high(ENVP_ADDR + 8) */
886 stl_p(p++, 0x3c060000 | (((ENVP_ADDR + 8) >> 16) & 0xffff));
887 /* ori a2, a2, low(ENVP_ADDR + 8) */
888 stl_p(p++, 0x34c60000 | ((ENVP_ADDR + 8) & 0xffff));
889 /* lui a3, high(ram_low_size) */
890 stl_p(p++, 0x3c070000 | (loaderparams.ram_low_size >> 16));
891 /* ori a3, a3, low(ram_low_size) */
892 stl_p(p++, 0x34e70000 | (loaderparams.ram_low_size & 0xffff));
2802bfe3
TS
893
894 /* Load BAR registers as done by YAMON */
0983979b 895 stl_p(p++, 0x3c09b400); /* lui t1, 0xb400 */
a0a8793e
TS
896
897#ifdef TARGET_WORDS_BIGENDIAN
0983979b 898 stl_p(p++, 0x3c08df00); /* lui t0, 0xdf00 */
a0a8793e 899#else
0983979b 900 stl_p(p++, 0x340800df); /* ori t0, r0, 0x00df */
a0a8793e 901#endif
0983979b 902 stl_p(p++, 0xad280068); /* sw t0, 0x0068(t1) */
a0a8793e 903
0983979b 904 stl_p(p++, 0x3c09bbe0); /* lui t1, 0xbbe0 */
2802bfe3
TS
905
906#ifdef TARGET_WORDS_BIGENDIAN
0983979b 907 stl_p(p++, 0x3c08c000); /* lui t0, 0xc000 */
2802bfe3 908#else
0983979b 909 stl_p(p++, 0x340800c0); /* ori t0, r0, 0x00c0 */
2802bfe3 910#endif
0983979b 911 stl_p(p++, 0xad280048); /* sw t0, 0x0048(t1) */
2802bfe3 912#ifdef TARGET_WORDS_BIGENDIAN
0983979b 913 stl_p(p++, 0x3c084000); /* lui t0, 0x4000 */
2802bfe3 914#else
0983979b 915 stl_p(p++, 0x34080040); /* ori t0, r0, 0x0040 */
2802bfe3 916#endif
0983979b 917 stl_p(p++, 0xad280050); /* sw t0, 0x0050(t1) */
2802bfe3
TS
918
919#ifdef TARGET_WORDS_BIGENDIAN
0983979b 920 stl_p(p++, 0x3c088000); /* lui t0, 0x8000 */
2802bfe3 921#else
0983979b 922 stl_p(p++, 0x34080080); /* ori t0, r0, 0x0080 */
2802bfe3 923#endif
0983979b 924 stl_p(p++, 0xad280058); /* sw t0, 0x0058(t1) */
2802bfe3 925#ifdef TARGET_WORDS_BIGENDIAN
0983979b 926 stl_p(p++, 0x3c083f00); /* lui t0, 0x3f00 */
2802bfe3 927#else
0983979b 928 stl_p(p++, 0x3408003f); /* ori t0, r0, 0x003f */
2802bfe3 929#endif
0983979b 930 stl_p(p++, 0xad280060); /* sw t0, 0x0060(t1) */
2802bfe3
TS
931
932#ifdef TARGET_WORDS_BIGENDIAN
0983979b 933 stl_p(p++, 0x3c08c100); /* lui t0, 0xc100 */
2802bfe3 934#else
0983979b 935 stl_p(p++, 0x340800c1); /* ori t0, r0, 0x00c1 */
2802bfe3 936#endif
0983979b 937 stl_p(p++, 0xad280080); /* sw t0, 0x0080(t1) */
2802bfe3 938#ifdef TARGET_WORDS_BIGENDIAN
0983979b 939 stl_p(p++, 0x3c085e00); /* lui t0, 0x5e00 */
2802bfe3 940#else
0983979b 941 stl_p(p++, 0x3408005e); /* ori t0, r0, 0x005e */
2802bfe3 942#endif
0983979b 943 stl_p(p++, 0xad280088); /* sw t0, 0x0088(t1) */
2802bfe3
TS
944
945 /* Jump to kernel code */
0983979b
PB
946 stl_p(p++, 0x3c1f0000 | ((kernel_entry >> 16) & 0xffff)); /* lui ra, high(kernel_entry) */
947 stl_p(p++, 0x37ff0000 | (kernel_entry & 0xffff)); /* ori ra, ra, low(kernel_entry) */
9fba1500 948 stl_p(p++, 0x03e00009); /* jalr ra */
0983979b 949 stl_p(p++, 0x00000000); /* nop */
26ea0918
TS
950
951 /* YAMON subroutines */
d7585251 952 p = (uint32_t *) (base + 0x800);
9fba1500 953 stl_p(p++, 0x03e00009); /* jalr ra */
0983979b 954 stl_p(p++, 0x24020000); /* li v0,0 */
b0311811 955 /* 808 YAMON print */
0983979b
PB
956 stl_p(p++, 0x03e06821); /* move t5,ra */
957 stl_p(p++, 0x00805821); /* move t3,a0 */
958 stl_p(p++, 0x00a05021); /* move t2,a1 */
959 stl_p(p++, 0x91440000); /* lbu a0,0(t2) */
960 stl_p(p++, 0x254a0001); /* addiu t2,t2,1 */
961 stl_p(p++, 0x10800005); /* beqz a0,834 */
962 stl_p(p++, 0x00000000); /* nop */
963 stl_p(p++, 0x0ff0021c); /* jal 870 */
964 stl_p(p++, 0x00000000); /* nop */
7f81dbb9 965 stl_p(p++, 0x1000fff9); /* b 814 */
0983979b 966 stl_p(p++, 0x00000000); /* nop */
9fba1500 967 stl_p(p++, 0x01a00009); /* jalr t5 */
0983979b 968 stl_p(p++, 0x01602021); /* move a0,t3 */
26ea0918 969 /* 0x83c YAMON print_count */
0983979b
PB
970 stl_p(p++, 0x03e06821); /* move t5,ra */
971 stl_p(p++, 0x00805821); /* move t3,a0 */
972 stl_p(p++, 0x00a05021); /* move t2,a1 */
973 stl_p(p++, 0x00c06021); /* move t4,a2 */
974 stl_p(p++, 0x91440000); /* lbu a0,0(t2) */
975 stl_p(p++, 0x0ff0021c); /* jal 870 */
976 stl_p(p++, 0x00000000); /* nop */
977 stl_p(p++, 0x254a0001); /* addiu t2,t2,1 */
978 stl_p(p++, 0x258cffff); /* addiu t4,t4,-1 */
979 stl_p(p++, 0x1580fffa); /* bnez t4,84c */
980 stl_p(p++, 0x00000000); /* nop */
9fba1500 981 stl_p(p++, 0x01a00009); /* jalr t5 */
0983979b 982 stl_p(p++, 0x01602021); /* move a0,t3 */
26ea0918 983 /* 0x870 */
0983979b
PB
984 stl_p(p++, 0x3c08b800); /* lui t0,0xb400 */
985 stl_p(p++, 0x350803f8); /* ori t0,t0,0x3f8 */
986 stl_p(p++, 0x91090005); /* lbu t1,5(t0) */
987 stl_p(p++, 0x00000000); /* nop */
988 stl_p(p++, 0x31290040); /* andi t1,t1,0x40 */
989 stl_p(p++, 0x1120fffc); /* beqz t1,878 <outch+0x8> */
990 stl_p(p++, 0x00000000); /* nop */
9fba1500 991 stl_p(p++, 0x03e00009); /* jalr ra */
0983979b 992 stl_p(p++, 0xa1040000); /* sb a0,0(t0) */
26ea0918 993
5856de80
TS
994}
995
94818443 996static void GCC_FMT_ATTR(3, 4) prom_set(uint32_t *prom_buf, int index,
8b7968f7 997 const char *string, ...)
5856de80
TS
998{
999 va_list ap;
3ddd0065 1000 int32_t table_addr;
5856de80 1001
94818443 1002 if (index >= ENVP_NB_ENTRIES) {
5856de80 1003 return;
94818443 1004 }
5856de80 1005
5856de80 1006 if (string == NULL) {
c938ada2 1007 prom_buf[index] = 0;
5856de80
TS
1008 return;
1009 }
1010
c938ada2
AJ
1011 table_addr = sizeof(int32_t) * ENVP_NB_ENTRIES + index * ENVP_ENTRY_SIZE;
1012 prom_buf[index] = tswap32(ENVP_ADDR + table_addr);
5856de80
TS
1013
1014 va_start(ap, string);
c938ada2 1015 vsnprintf((char *)prom_buf + table_addr, ENVP_ENTRY_SIZE, string, ap);
5856de80
TS
1016 va_end(ap);
1017}
1018
1019/* Kernel */
94818443 1020static int64_t load_kernel(void)
5856de80 1021{
f3839fda
LZ
1022 int64_t kernel_entry, kernel_high, initrd_size;
1023 long kernel_size;
c227f099 1024 ram_addr_t initrd_offset;
ca20cf32 1025 int big_endian;
c938ada2
AJ
1026 uint32_t *prom_buf;
1027 long prom_size;
1028 int prom_index = 0;
b0311811 1029 uint64_t (*xlate_to_kseg0) (void *opaque, uint64_t addr);
ca20cf32
BS
1030
1031#ifdef TARGET_WORDS_BIGENDIAN
1032 big_endian = 1;
1033#else
1034 big_endian = 0;
1035#endif
5856de80 1036
4366e1db
LM
1037 kernel_size = load_elf(loaderparams.kernel_filename, NULL,
1038 cpu_mips_kseg0_to_phys, NULL,
1039 (uint64_t *)&kernel_entry, NULL,
3ee3122c
AJ
1040 (uint64_t *)&kernel_high, big_endian, EM_MIPS, 1, 0);
1041 if (kernel_size < 0) {
bd6e1d81 1042 error_report("could not load kernel '%s': %s",
3ee3122c
AJ
1043 loaderparams.kernel_filename,
1044 load_elf_strerror(kernel_size));
acdf72bb 1045 exit(1);
5856de80 1046 }
f7f15245 1047
d3d93c6c
JH
1048 /* Check where the kernel has been linked */
1049 if (kernel_entry & 0x80000000ll) {
1050 if (kvm_enabled()) {
f7f15245
JH
1051 error_report("KVM guest kernels must be linked in useg. "
1052 "Did you forget to enable CONFIG_KVM_GUEST?");
1053 exit(1);
1054 }
1055
d3d93c6c 1056 xlate_to_kseg0 = cpu_mips_phys_to_kseg0;
b0311811 1057 } else {
d3d93c6c
JH
1058 /* if kernel entry is in useg it is probably a KVM T&E kernel */
1059 mips_um_ksegs_enable();
f7f15245 1060
d3d93c6c 1061 xlate_to_kseg0 = cpu_mips_kvm_um_phys_to_kseg0;
b0311811 1062 }
5856de80
TS
1063
1064 /* load initrd */
1065 initrd_size = 0;
74287114 1066 initrd_offset = 0;
7df526e3 1067 if (loaderparams.initrd_filename) {
94818443 1068 initrd_size = get_image_size(loaderparams.initrd_filename);
74287114 1069 if (initrd_size > 0) {
94818443
AM
1070 /*
1071 * The kernel allocates the bootmap memory in the low memory after
1072 * the initrd. It takes at most 128kiB for 2GB RAM and 4kiB
1073 * pages.
1074 */
be01029e
PMD
1075 initrd_offset = (loaderparams.ram_low_size - initrd_size
1076 - (128 * KiB)
9768e2ab
AJ
1077 - ~INITRD_PAGE_MASK) & INITRD_PAGE_MASK;
1078 if (kernel_high >= initrd_offset) {
bd6e1d81
AF
1079 error_report("memory too small for initial ram disk '%s'",
1080 loaderparams.initrd_filename);
74287114
TS
1081 exit(1);
1082 }
dcac9679
PB
1083 initrd_size = load_image_targphys(loaderparams.initrd_filename,
1084 initrd_offset,
1085 ram_size - initrd_offset);
74287114 1086 }
5856de80 1087 if (initrd_size == (target_ulong) -1) {
bd6e1d81
AF
1088 error_report("could not load initial ram disk '%s'",
1089 loaderparams.initrd_filename);
5856de80
TS
1090 exit(1);
1091 }
1092 }
1093
c938ada2
AJ
1094 /* Setup prom parameters. */
1095 prom_size = ENVP_NB_ENTRIES * (sizeof(int32_t) + ENVP_ENTRY_SIZE);
7267c094 1096 prom_buf = g_malloc(prom_size);
c938ada2 1097
f36d53ef 1098 prom_set(prom_buf, prom_index++, "%s", loaderparams.kernel_filename);
c938ada2 1099 if (initrd_size > 0) {
94818443
AM
1100 prom_set(prom_buf, prom_index++,
1101 "rd_start=0x%" PRIx64 " rd_size=%" PRId64 " %s",
1102 xlate_to_kseg0(NULL, initrd_offset),
1103 initrd_size, loaderparams.kernel_cmdline);
c938ada2 1104 } else {
f36d53ef 1105 prom_set(prom_buf, prom_index++, "%s", loaderparams.kernel_cmdline);
c938ada2
AJ
1106 }
1107
1108 prom_set(prom_buf, prom_index++, "memsize");
71c199c8
PB
1109 prom_set(prom_buf, prom_index++, "%u", loaderparams.ram_low_size);
1110
1111 prom_set(prom_buf, prom_index++, "ememsize");
1112 prom_set(prom_buf, prom_index++, "%u", loaderparams.ram_size);
b0311811 1113
c938ada2
AJ
1114 prom_set(prom_buf, prom_index++, "modetty0");
1115 prom_set(prom_buf, prom_index++, "38400n8r");
1116 prom_set(prom_buf, prom_index++, NULL);
1117
1118 rom_add_blob_fixed("prom", prom_buf, prom_size,
409dbce5 1119 cpu_mips_kseg0_to_phys(NULL, ENVP_ADDR));
5856de80 1120
3ad9fd5a 1121 g_free(prom_buf);
74287114 1122 return kernel_entry;
5856de80
TS
1123}
1124
ce3960eb 1125static void malta_mips_config(MIPSCPU *cpu)
c4cb2578 1126{
33decbd2
LX
1127 MachineState *ms = MACHINE(qdev_get_machine());
1128 unsigned int smp_cpus = ms->smp.cpus;
ce3960eb
AF
1129 CPUMIPSState *env = &cpu->env;
1130 CPUState *cs = CPU(cpu);
1131
c4cb2578 1132 env->mvp->CP0_MVPConf0 |= ((smp_cpus - 1) << CP0MVPC0_PVPE) |
ce3960eb 1133 ((smp_cpus * cs->nr_threads - 1) << CP0MVPC0_PTC);
c4cb2578
EI
1134}
1135
5856de80
TS
1136static void main_cpu_reset(void *opaque)
1137{
1004ee8d
AF
1138 MIPSCPU *cpu = opaque;
1139 CPUMIPSState *env = &cpu->env;
1140
1141 cpu_reset(CPU(cpu));
5856de80 1142
94818443
AM
1143 /*
1144 * The bootloader does not need to be rewritten as it is located in a
1145 * read only location. The kernel location and the arguments table
1146 * location does not change.
1147 */
7df526e3 1148 if (loaderparams.kernel_filename) {
d6ca4277 1149 env->CP0_Status &= ~(1 << CP0St_ERL);
fb82fea0 1150 }
c4cb2578 1151
ce3960eb 1152 malta_mips_config(cpu);
b0311811
JH
1153
1154 if (kvm_enabled()) {
1155 /* Start running from the bootloader we wrote to end of RAM */
ca2f6bbb 1156 env->active_tc.PC = 0x40000000 + loaderparams.ram_low_size;
b0311811 1157 }
5856de80
TS
1158}
1159
a0628599 1160static void create_cpu_without_cps(MachineState *ms,
bff384a4 1161 qemu_irq *cbus_irq, qemu_irq *i8259_irq)
67a54961
LA
1162{
1163 CPUMIPSState *env;
1164 MIPSCPU *cpu;
1165 int i;
67a54961 1166
a0628599
LX
1167 for (i = 0; i < ms->smp.cpus; i++) {
1168 cpu = MIPS_CPU(cpu_create(ms->cpu_type));
67a54961
LA
1169
1170 /* Init internal devices */
5a975d43
PB
1171 cpu_mips_irq_init_cpu(cpu);
1172 cpu_mips_clock_init(cpu);
67a54961
LA
1173 qemu_register_reset(main_cpu_reset, cpu);
1174 }
1175
1176 cpu = MIPS_CPU(first_cpu);
1177 env = &cpu->env;
1178 *i8259_irq = env->irq[2];
1179 *cbus_irq = env->irq[4];
1180}
1181
a0628599 1182static void create_cps(MachineState *ms, MaltaState *s,
bff384a4
LA
1183 qemu_irq *cbus_irq, qemu_irq *i8259_irq)
1184{
1185 Error *err = NULL;
bff384a4 1186
4626548b
PMD
1187 sysbus_init_child_obj(OBJECT(s), "cps", OBJECT(&s->cps), sizeof(s->cps),
1188 TYPE_MIPS_CPS);
a0628599
LX
1189 object_property_set_str(OBJECT(&s->cps), ms->cpu_type, "cpu-type", &err);
1190 object_property_set_int(OBJECT(&s->cps), ms->smp.cpus, "num-vp", &err);
2d5fac80 1191 object_property_set_bool(OBJECT(&s->cps), true, "realized", &err);
bff384a4
LA
1192 if (err != NULL) {
1193 error_report("%s", error_get_pretty(err));
1194 exit(1);
1195 }
1196
2d5fac80 1197 sysbus_mmio_map_overlap(SYS_BUS_DEVICE(&s->cps), 0, 0, 1);
bff384a4 1198
2d5fac80 1199 *i8259_irq = get_cps_irq(&s->cps, 3);
bff384a4
LA
1200 *cbus_irq = NULL;
1201}
1202
a0628599 1203static void mips_create_cpu(MachineState *ms, MaltaState *s,
a7519f2b 1204 qemu_irq *cbus_irq, qemu_irq *i8259_irq)
bff384a4 1205{
a0628599
LX
1206 if ((ms->smp.cpus > 1) && cpu_supports_cps_smp(ms->cpu_type)) {
1207 create_cps(ms, s, cbus_irq, i8259_irq);
bff384a4 1208 } else {
a0628599 1209 create_cpu_without_cps(ms, cbus_irq, i8259_irq);
bff384a4
LA
1210 }
1211}
1212
70705261 1213static
3ef96221 1214void mips_malta_init(MachineState *machine)
5856de80 1215{
3ef96221 1216 ram_addr_t ram_size = machine->ram_size;
b0311811 1217 ram_addr_t ram_low_size;
3ef96221
MA
1218 const char *kernel_filename = machine->kernel_filename;
1219 const char *kernel_cmdline = machine->kernel_cmdline;
1220 const char *initrd_filename = machine->initrd_filename;
5cea8590 1221 char *filename;
16434065 1222 PFlashCFI01 *fl;
cfe5f011 1223 MemoryRegion *system_memory = get_system_memory();
94c2b6af
PB
1224 MemoryRegion *ram_high = g_new(MemoryRegion, 1);
1225 MemoryRegion *ram_low_preio = g_new(MemoryRegion, 1);
1226 MemoryRegion *ram_low_postio;
a427338b 1227 MemoryRegion *bios, *bios_copy = g_new(MemoryRegion, 1);
35c64807
PB
1228 const size_t smbus_eeprom_size = 8 * 256;
1229 uint8_t *smbus_eeprom_buf = g_malloc0(smbus_eeprom_size);
b0311811 1230 int64_t kernel_entry, bootloader_run_addr;
5856de80 1231 PCIBus *pci_bus;
48a18b3c 1232 ISABus *isa_bus;
67a54961 1233 qemu_irq cbus_irq, i8259_irq;
078778c5 1234 PCIDevice *pci;
7b717336 1235 int piix4_devfn;
a5c82852 1236 I2CBus *smbus;
751c6a17 1237 DriveInfo *dinfo;
fff21c12
PMD
1238 const size_t ide_drives = MAX_IDE_BUS * MAX_IDE_DEVS;
1239 DriveInfo **hd;
c8b153d7 1240 int fl_idx = 0;
01e0451a 1241 int be;
5856de80 1242
cba5cb67
AF
1243 DeviceState *dev = qdev_create(NULL, TYPE_MIPS_MALTA);
1244 MaltaState *s = MIPS_MALTA(dev);
e9b40fd3 1245
94818443
AM
1246 /*
1247 * The whole address space decoded by the GT-64120A doesn't generate
1248 * exception when accessing invalid memory. Create an empty slot to
1249 * emulate this feature.\
1250 */
cc413a39
AJ
1251 empty_slot_init(0, 0x20000000);
1252
e9b40fd3
SW
1253 qdev_init_nofail(dev);
1254
bff384a4 1255 /* create CPU */
a0628599 1256 mips_create_cpu(machine, s, &cbus_irq, &i8259_irq);
5856de80
TS
1257
1258 /* allocate RAM */
be01029e
PMD
1259 if (ram_size > 2 * GiB) {
1260 error_report("Too much memory for this machine: %" PRId64 "MB,"
1261 " maximum 2048MB", ram_size / MiB);
0ccff151
AJ
1262 exit(1);
1263 }
94c2b6af
PB
1264
1265 /* register RAM at high address where it is undisturbed by IO */
6a926fbc
DM
1266 memory_region_allocate_system_memory(ram_high, NULL, "mips_malta.ram",
1267 ram_size);
94c2b6af
PB
1268 memory_region_add_subregion(system_memory, 0x80000000, ram_high);
1269
1270 /* alias for pre IO hole access */
1271 memory_region_init_alias(ram_low_preio, NULL, "mips_malta_low_preio.ram",
be01029e 1272 ram_high, 0, MIN(ram_size, 256 * MiB));
94c2b6af
PB
1273 memory_region_add_subregion(system_memory, 0, ram_low_preio);
1274
1275 /* alias for post IO hole access, if there is enough RAM */
be01029e 1276 if (ram_size > 512 * MiB) {
94c2b6af
PB
1277 ram_low_postio = g_new(MemoryRegion, 1);
1278 memory_region_init_alias(ram_low_postio, NULL,
1279 "mips_malta_low_postio.ram",
be01029e
PMD
1280 ram_high, 512 * MiB,
1281 ram_size - 512 * MiB);
1282 memory_region_add_subregion(system_memory, 512 * MiB,
1283 ram_low_postio);
94c2b6af 1284 }
5856de80 1285
01e0451a
AL
1286#ifdef TARGET_WORDS_BIGENDIAN
1287 be = 1;
1288#else
1289 be = 0;
1290#endif
7313b1f2 1291
070ce5ed 1292 /* FPGA */
7313b1f2 1293
68d00192 1294 /* The CBUS UART is attached to the MIPS CPU INT2 pin, ie interrupt 4 */
9bca0edb 1295 malta_fpga_init(system_memory, FPGA_ADDRESS, cbus_irq, serial_hd(2));
070ce5ed 1296
bb4b3358
SW
1297 /* Load firmware in flash / BIOS. */
1298 dinfo = drive_get(IF_PFLASH, 0, fl_idx);
940d5b13 1299 fl = pflash_cfi01_register(FLASH_ADDRESS, "mips_malta.bios",
7ebfece5 1300 FLASH_SIZE,
4be74634 1301 dinfo ? blk_by_legacy_dinfo(dinfo) : NULL,
ce14710f 1302 65536,
bb4b3358
SW
1303 4, 0x0000, 0x0000, 0x0000, 0x0000, be);
1304 bios = pflash_cfi01_get_memory(fl);
1305 fl_idx++;
c8b153d7 1306 if (kernel_filename) {
be01029e 1307 ram_low_size = MIN(ram_size, 256 * MiB);
fbdb1d95 1308 /* For KVM we reserve 1MB of RAM for running bootloader */
b0311811
JH
1309 if (kvm_enabled()) {
1310 ram_low_size -= 0x100000;
1311 bootloader_run_addr = 0x40000000 + ram_low_size;
1312 } else {
1313 bootloader_run_addr = 0xbfc00000;
1314 }
1315
c8b153d7 1316 /* Write a small bootloader to the flash location. */
71c199c8
PB
1317 loaderparams.ram_size = ram_size;
1318 loaderparams.ram_low_size = ram_low_size;
c8b153d7
TS
1319 loaderparams.kernel_filename = kernel_filename;
1320 loaderparams.kernel_cmdline = kernel_cmdline;
1321 loaderparams.initrd_filename = initrd_filename;
e16ad5b0 1322 kernel_entry = load_kernel();
b0311811 1323
ce3940cc
MF
1324 if (!cpu_supports_isa(machine->cpu_type, ISA_NANOMIPS32)) {
1325 write_bootloader(memory_region_get_ram_ptr(bios),
1326 bootloader_run_addr, kernel_entry);
1327 } else {
1328 write_bootloader_nanomips(memory_region_get_ram_ptr(bios),
1329 bootloader_run_addr, kernel_entry);
1330 }
b0311811
JH
1331 if (kvm_enabled()) {
1332 /* Write the bootloader code @ the end of RAM, 1MB reserved */
cc518af0 1333 write_bootloader(memory_region_get_ram_ptr(ram_low_preio) +
b0311811
JH
1334 ram_low_size,
1335 bootloader_run_addr, kernel_entry);
1336 }
c8b153d7 1337 } else {
74c02ebd 1338 target_long bios_size = FLASH_SIZE;
fbdb1d95 1339 /* The flash region isn't executable from a KVM guest */
3c5d0be5
JH
1340 if (kvm_enabled()) {
1341 error_report("KVM enabled but no -kernel argument was specified. "
fbdb1d95 1342 "Booting from flash is not supported with KVM.");
3c5d0be5
JH
1343 exit(1);
1344 }
bb4b3358
SW
1345 /* Load firmware from flash. */
1346 if (!dinfo) {
c8b153d7 1347 /* Load a BIOS image. */
bb4b3358 1348 if (bios_name == NULL) {
c8b153d7 1349 bios_name = BIOS_FILENAME;
bb4b3358 1350 }
5cea8590
PB
1351 filename = qemu_find_file(QEMU_FILE_TYPE_BIOS, bios_name);
1352 if (filename) {
03a1a8e1 1353 bios_size = load_image_targphys(filename, FLASH_ADDRESS,
5cea8590 1354 BIOS_SIZE);
7267c094 1355 g_free(filename);
5cea8590
PB
1356 } else {
1357 bios_size = -1;
1358 }
2c57bd9b
AF
1359 if ((bios_size < 0 || bios_size > BIOS_SIZE) &&
1360 !kernel_filename && !qtest_enabled()) {
2e985fe0
AJ
1361 error_report("Could not load MIPS bios '%s', and no "
1362 "-kernel argument was specified", bios_name);
1363 exit(1);
c8b153d7 1364 }
070ce5ed 1365 }
94818443
AM
1366 /*
1367 * In little endian mode the 32bit words in the bios are swapped,
1368 * a neat trick which allows bi-endian firmware.
1369 */
3187ef03
TS
1370#ifndef TARGET_WORDS_BIGENDIAN
1371 {
0f0f8b61
TH
1372 uint32_t *end, *addr;
1373 const size_t swapsize = MIN(bios_size, 0x3e0000);
1374 addr = rom_ptr(FLASH_ADDRESS, swapsize);
a2b8813d
PB
1375 if (!addr) {
1376 addr = memory_region_get_ram_ptr(bios);
1377 }
0f0f8b61 1378 end = (void *)addr + swapsize;
d7585251
PB
1379 while (addr < end) {
1380 bswap32s(addr);
a30cfee5 1381 addr++;
3187ef03
TS
1382 }
1383 }
1384#endif
070ce5ed
TS
1385 }
1386
a427338b
PB
1387 /*
1388 * Map the BIOS at a 2nd physical location, as on the real board.
1389 * Copy it so that we can patch in the MIPS revision, which cannot be
1390 * handled by an overlapping region as the resulting ROM code subpage
1391 * regions are not executable.
1392 */
917b77f5 1393 memory_region_init_ram(bios_copy, NULL, "bios.1fc", BIOS_SIZE,
f8ed85ac 1394 &error_fatal);
a427338b 1395 if (!rom_copy(memory_region_get_ram_ptr(bios_copy),
f05d4d94 1396 FLASH_ADDRESS, BIOS_SIZE)) {
a427338b 1397 memcpy(memory_region_get_ram_ptr(bios_copy),
f05d4d94 1398 memory_region_get_ram_ptr(bios), BIOS_SIZE);
a427338b
PB
1399 }
1400 memory_region_set_readonly(bios_copy, true);
1401 memory_region_add_subregion(system_memory, RESET_ADDRESS, bios_copy);
82a9807b 1402
a427338b
PB
1403 /* Board ID = 0x420 (Malta Board with CoreLV) */
1404 stl_p(memory_region_get_ram_ptr(bios_copy) + 0x10, 0x00000420);
5856de80 1405
5856de80 1406 /* Northbridge */
078778c5 1407 pci_bus = gt64120_register(s->i8259);
5856de80
TS
1408
1409 /* Southbridge */
fff21c12
PMD
1410 hd = g_new(DriveInfo *, ide_drives);
1411 ide_drive_get(hd, ide_drives);
e4bcb14c 1412
078778c5 1413 pci = pci_create_simple_multifunction(pci_bus, PCI_DEVFN(10, 0),
9b74b190 1414 true, TYPE_PIIX4_PCI_DEVICE);
078778c5
HP
1415 dev = DEVICE(pci);
1416 isa_bus = ISA_BUS(qdev_get_child_bus(dev, "isa.0"));
1417 piix4_devfn = pci->devfn;
5632ae46 1418
078778c5
HP
1419 /* Interrupt controller */
1420 qdev_connect_gpio_out_named(dev, "intr", 0, i8259_irq);
1421 for (int i = 0; i < ISA_NUM_IRQS; i++) {
1422 s->i8259[i] = qdev_get_gpio_in_named(dev, "isa", i);
1423 }
5632ae46 1424
ae027ad3 1425 pci_piix4_ide_init(pci_bus, hd, piix4_devfn + 1);
fff21c12 1426 g_free(hd);
afb9a60e 1427 pci_create_simple(pci_bus, piix4_devfn + 2, "piix4-usb-uhci");
48a18b3c 1428 smbus = piix4_pm_init(pci_bus, piix4_devfn + 3, 0x1100,
6e7d8249 1429 isa_get_irq(NULL, 9), NULL, 0, NULL);
78f16256
PMD
1430
1431 /* generate SPD EEPROM data */
1432 generate_eeprom_spd(&smbus_eeprom_buf[0 * 256], ram_size);
1433 generate_eeprom_serial(&smbus_eeprom_buf[6 * 256]);
1434 smbus_eeprom_init(smbus, 8, smbus_eeprom_buf, smbus_eeprom_size);
1435 g_free(smbus_eeprom_buf);
5856de80 1436
7313b1f2
PMD
1437 /* Super I/O: SMS FDC37M817 */
1438 isa_create_simple(isa_bus, TYPE_FDC37M81X_SUPERIO);
5856de80 1439
5856de80 1440 /* Network card */
29b358f9 1441 network_init(pci_bus);
11f29511
TS
1442
1443 /* Optional PCI video card */
9c59864d 1444 pci_vga_init(pci_bus);
5856de80
TS
1445}
1446
8c43a6f0 1447static const TypeInfo mips_malta_device = {
cba5cb67 1448 .name = TYPE_MIPS_MALTA,
39bffca2
AL
1449 .parent = TYPE_SYS_BUS_DEVICE,
1450 .instance_size = sizeof(MaltaState),
e9b40fd3
SW
1451};
1452
e264d29d 1453static void mips_malta_machine_init(MachineClass *mc)
e9b40fd3 1454{
e264d29d
EH
1455 mc->desc = "MIPS Malta Core LV";
1456 mc->init = mips_malta_init;
2059839b 1457 mc->block_default_type = IF_IDE;
e264d29d
EH
1458 mc->max_cpus = 16;
1459 mc->is_default = 1;
a7519f2b
IM
1460#ifdef TARGET_MIPS64
1461 mc->default_cpu_type = MIPS_CPU_TYPE_NAME("20Kc");
1462#else
1463 mc->default_cpu_type = MIPS_CPU_TYPE_NAME("24Kf");
1464#endif
e9b40fd3
SW
1465}
1466
e264d29d
EH
1467DEFINE_MACHINE("malta", mips_malta_machine_init)
1468
1469static void mips_malta_register_types(void)
f80f9ec9 1470{
e264d29d 1471 type_register_static(&mips_malta_device);
f80f9ec9
AL
1472}
1473
83f7d43a 1474type_init(mips_malta_register_types)