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1 /*
2 * This file is subject to the terms and conditions of the GNU General Public
3 * License. See the file "COPYING" in the main directory of this archive
4 * for more details.
5 *
6 * Copyright (C) 2004-2007 Cavium Networks
7 * Copyright (C) 2008 Wind River Systems
8 */
9 #include <linux/init.h>
10 #include <linux/console.h>
11 #include <linux/delay.h>
12 #include <linux/export.h>
13 #include <linux/interrupt.h>
14 #include <linux/io.h>
15 #include <linux/serial.h>
16 #include <linux/smp.h>
17 #include <linux/types.h>
18 #include <linux/string.h> /* for memset */
19 #include <linux/tty.h>
20 #include <linux/time.h>
21 #include <linux/platform_device.h>
22 #include <linux/serial_core.h>
23 #include <linux/serial_8250.h>
24 #include <linux/of_fdt.h>
25 #include <linux/libfdt.h>
26
27 #include <asm/processor.h>
28 #include <asm/reboot.h>
29 #include <asm/smp-ops.h>
30 #include <asm/irq_cpu.h>
31 #include <asm/mipsregs.h>
32 #include <asm/bootinfo.h>
33 #include <asm/sections.h>
34 #include <asm/time.h>
35
36 #include <asm/octeon/octeon.h>
37 #include <asm/octeon/pci-octeon.h>
38 #include <asm/octeon/cvmx-mio-defs.h>
39
40 #ifdef CONFIG_CAVIUM_DECODE_RSL
41 extern void cvmx_interrupt_rsl_decode(void);
42 extern int __cvmx_interrupt_ecc_report_single_bit_errors;
43 extern void cvmx_interrupt_rsl_enable(void);
44 #endif
45
46 extern struct plat_smp_ops octeon_smp_ops;
47
48 #ifdef CONFIG_PCI
49 extern void pci_console_init(const char *arg);
50 #endif
51
52 static unsigned long long MAX_MEMORY = 512ull << 20;
53
54 struct octeon_boot_descriptor *octeon_boot_desc_ptr;
55
56 struct cvmx_bootinfo *octeon_bootinfo;
57 EXPORT_SYMBOL(octeon_bootinfo);
58
59 #ifdef CONFIG_CAVIUM_RESERVE32
60 uint64_t octeon_reserve32_memory;
61 EXPORT_SYMBOL(octeon_reserve32_memory);
62 #endif
63
64 static int octeon_uart;
65
66 extern asmlinkage void handle_int(void);
67 extern asmlinkage void plat_irq_dispatch(void);
68
69 /**
70 * Return non zero if we are currently running in the Octeon simulator
71 *
72 * Returns
73 */
74 int octeon_is_simulation(void)
75 {
76 return octeon_bootinfo->board_type == CVMX_BOARD_TYPE_SIM;
77 }
78 EXPORT_SYMBOL(octeon_is_simulation);
79
80 /**
81 * Return true if Octeon is in PCI Host mode. This means
82 * Linux can control the PCI bus.
83 *
84 * Returns Non zero if Octeon in host mode.
85 */
86 int octeon_is_pci_host(void)
87 {
88 #ifdef CONFIG_PCI
89 return octeon_bootinfo->config_flags & CVMX_BOOTINFO_CFG_FLAG_PCI_HOST;
90 #else
91 return 0;
92 #endif
93 }
94
95 /**
96 * Get the clock rate of Octeon
97 *
98 * Returns Clock rate in HZ
99 */
100 uint64_t octeon_get_clock_rate(void)
101 {
102 struct cvmx_sysinfo *sysinfo = cvmx_sysinfo_get();
103
104 return sysinfo->cpu_clock_hz;
105 }
106 EXPORT_SYMBOL(octeon_get_clock_rate);
107
108 static u64 octeon_io_clock_rate;
109
110 u64 octeon_get_io_clock_rate(void)
111 {
112 return octeon_io_clock_rate;
113 }
114 EXPORT_SYMBOL(octeon_get_io_clock_rate);
115
116
117 /**
118 * Write to the LCD display connected to the bootbus. This display
119 * exists on most Cavium evaluation boards. If it doesn't exist, then
120 * this function doesn't do anything.
121 *
122 * @s: String to write
123 */
124 void octeon_write_lcd(const char *s)
125 {
126 if (octeon_bootinfo->led_display_base_addr) {
127 void __iomem *lcd_address =
128 ioremap_nocache(octeon_bootinfo->led_display_base_addr,
129 8);
130 int i;
131 for (i = 0; i < 8; i++, s++) {
132 if (*s)
133 iowrite8(*s, lcd_address + i);
134 else
135 iowrite8(' ', lcd_address + i);
136 }
137 iounmap(lcd_address);
138 }
139 }
140
141 /**
142 * Return the console uart passed by the bootloader
143 *
144 * Returns uart (0 or 1)
145 */
146 int octeon_get_boot_uart(void)
147 {
148 int uart;
149 #ifdef CONFIG_CAVIUM_OCTEON_2ND_KERNEL
150 uart = 1;
151 #else
152 uart = (octeon_boot_desc_ptr->flags & OCTEON_BL_FLAG_CONSOLE_UART1) ?
153 1 : 0;
154 #endif
155 return uart;
156 }
157
158 /**
159 * Get the coremask Linux was booted on.
160 *
161 * Returns Core mask
162 */
163 int octeon_get_boot_coremask(void)
164 {
165 return octeon_boot_desc_ptr->core_mask;
166 }
167
168 /**
169 * Check the hardware BIST results for a CPU
170 */
171 void octeon_check_cpu_bist(void)
172 {
173 const int coreid = cvmx_get_core_num();
174 unsigned long long mask;
175 unsigned long long bist_val;
176
177 /* Check BIST results for COP0 registers */
178 mask = 0x1f00000000ull;
179 bist_val = read_octeon_c0_icacheerr();
180 if (bist_val & mask)
181 pr_err("Core%d BIST Failure: CacheErr(icache) = 0x%llx\n",
182 coreid, bist_val);
183
184 bist_val = read_octeon_c0_dcacheerr();
185 if (bist_val & 1)
186 pr_err("Core%d L1 Dcache parity error: "
187 "CacheErr(dcache) = 0x%llx\n",
188 coreid, bist_val);
189
190 mask = 0xfc00000000000000ull;
191 bist_val = read_c0_cvmmemctl();
192 if (bist_val & mask)
193 pr_err("Core%d BIST Failure: COP0_CVM_MEM_CTL = 0x%llx\n",
194 coreid, bist_val);
195
196 write_octeon_c0_dcacheerr(0);
197 }
198
199 /**
200 * Reboot Octeon
201 *
202 * @command: Command to pass to the bootloader. Currently ignored.
203 */
204 static void octeon_restart(char *command)
205 {
206 /* Disable all watchdogs before soft reset. They don't get cleared */
207 #ifdef CONFIG_SMP
208 int cpu;
209 for_each_online_cpu(cpu)
210 cvmx_write_csr(CVMX_CIU_WDOGX(cpu_logical_map(cpu)), 0);
211 #else
212 cvmx_write_csr(CVMX_CIU_WDOGX(cvmx_get_core_num()), 0);
213 #endif
214
215 mb();
216 while (1)
217 cvmx_write_csr(CVMX_CIU_SOFT_RST, 1);
218 }
219
220
221 /**
222 * Permanently stop a core.
223 *
224 * @arg: Ignored.
225 */
226 static void octeon_kill_core(void *arg)
227 {
228 mb();
229 if (octeon_is_simulation()) {
230 /* The simulator needs the watchdog to stop for dead cores */
231 cvmx_write_csr(CVMX_CIU_WDOGX(cvmx_get_core_num()), 0);
232 /* A break instruction causes the simulator stop a core */
233 asm volatile ("sync\nbreak");
234 }
235 }
236
237
238 /**
239 * Halt the system
240 */
241 static void octeon_halt(void)
242 {
243 smp_call_function(octeon_kill_core, NULL, 0);
244
245 switch (octeon_bootinfo->board_type) {
246 case CVMX_BOARD_TYPE_NAO38:
247 /* Driving a 1 to GPIO 12 shuts off this board */
248 cvmx_write_csr(CVMX_GPIO_BIT_CFGX(12), 1);
249 cvmx_write_csr(CVMX_GPIO_TX_SET, 0x1000);
250 break;
251 default:
252 octeon_write_lcd("PowerOff");
253 break;
254 }
255
256 octeon_kill_core(NULL);
257 }
258
259 /**
260 * Handle all the error condition interrupts that might occur.
261 *
262 */
263 #ifdef CONFIG_CAVIUM_DECODE_RSL
264 static irqreturn_t octeon_rlm_interrupt(int cpl, void *dev_id)
265 {
266 cvmx_interrupt_rsl_decode();
267 return IRQ_HANDLED;
268 }
269 #endif
270
271 /**
272 * Return a string representing the system type
273 *
274 * Returns
275 */
276 const char *octeon_board_type_string(void)
277 {
278 static char name[80];
279 sprintf(name, "%s (%s)",
280 cvmx_board_type_to_string(octeon_bootinfo->board_type),
281 octeon_model_get_string(read_c0_prid()));
282 return name;
283 }
284
285 const char *get_system_type(void)
286 __attribute__ ((alias("octeon_board_type_string")));
287
288 void octeon_user_io_init(void)
289 {
290 union octeon_cvmemctl cvmmemctl;
291 union cvmx_iob_fau_timeout fau_timeout;
292 union cvmx_pow_nw_tim nm_tim;
293
294 /* Get the current settings for CP0_CVMMEMCTL_REG */
295 cvmmemctl.u64 = read_c0_cvmmemctl();
296 /* R/W If set, marked write-buffer entries time out the same
297 * as as other entries; if clear, marked write-buffer entries
298 * use the maximum timeout. */
299 cvmmemctl.s.dismarkwblongto = 1;
300 /* R/W If set, a merged store does not clear the write-buffer
301 * entry timeout state. */
302 cvmmemctl.s.dismrgclrwbto = 0;
303 /* R/W Two bits that are the MSBs of the resultant CVMSEG LM
304 * word location for an IOBDMA. The other 8 bits come from the
305 * SCRADDR field of the IOBDMA. */
306 cvmmemctl.s.iobdmascrmsb = 0;
307 /* R/W If set, SYNCWS and SYNCS only order marked stores; if
308 * clear, SYNCWS and SYNCS only order unmarked
309 * stores. SYNCWSMARKED has no effect when DISSYNCWS is
310 * set. */
311 cvmmemctl.s.syncwsmarked = 0;
312 /* R/W If set, SYNCWS acts as SYNCW and SYNCS acts as SYNC. */
313 cvmmemctl.s.dissyncws = 0;
314 /* R/W If set, no stall happens on write buffer full. */
315 if (OCTEON_IS_MODEL(OCTEON_CN38XX_PASS2))
316 cvmmemctl.s.diswbfst = 1;
317 else
318 cvmmemctl.s.diswbfst = 0;
319 /* R/W If set (and SX set), supervisor-level loads/stores can
320 * use XKPHYS addresses with <48>==0 */
321 cvmmemctl.s.xkmemenas = 0;
322
323 /* R/W If set (and UX set), user-level loads/stores can use
324 * XKPHYS addresses with VA<48>==0 */
325 cvmmemctl.s.xkmemenau = 0;
326
327 /* R/W If set (and SX set), supervisor-level loads/stores can
328 * use XKPHYS addresses with VA<48>==1 */
329 cvmmemctl.s.xkioenas = 0;
330
331 /* R/W If set (and UX set), user-level loads/stores can use
332 * XKPHYS addresses with VA<48>==1 */
333 cvmmemctl.s.xkioenau = 0;
334
335 /* R/W If set, all stores act as SYNCW (NOMERGE must be set
336 * when this is set) RW, reset to 0. */
337 cvmmemctl.s.allsyncw = 0;
338
339 /* R/W If set, no stores merge, and all stores reach the
340 * coherent bus in order. */
341 cvmmemctl.s.nomerge = 0;
342 /* R/W Selects the bit in the counter used for DID time-outs 0
343 * = 231, 1 = 230, 2 = 229, 3 = 214. Actual time-out is
344 * between 1x and 2x this interval. For example, with
345 * DIDTTO=3, expiration interval is between 16K and 32K. */
346 cvmmemctl.s.didtto = 0;
347 /* R/W If set, the (mem) CSR clock never turns off. */
348 cvmmemctl.s.csrckalwys = 0;
349 /* R/W If set, mclk never turns off. */
350 cvmmemctl.s.mclkalwys = 0;
351 /* R/W Selects the bit in the counter used for write buffer
352 * flush time-outs (WBFLT+11) is the bit position in an
353 * internal counter used to determine expiration. The write
354 * buffer expires between 1x and 2x this interval. For
355 * example, with WBFLT = 0, a write buffer expires between 2K
356 * and 4K cycles after the write buffer entry is allocated. */
357 cvmmemctl.s.wbfltime = 0;
358 /* R/W If set, do not put Istream in the L2 cache. */
359 cvmmemctl.s.istrnol2 = 0;
360
361 /*
362 * R/W The write buffer threshold. As per erratum Core-14752
363 * for CN63XX, a sc/scd might fail if the write buffer is
364 * full. Lowering WBTHRESH greatly lowers the chances of the
365 * write buffer ever being full and triggering the erratum.
366 */
367 if (OCTEON_IS_MODEL(OCTEON_CN63XX_PASS1_X))
368 cvmmemctl.s.wbthresh = 4;
369 else
370 cvmmemctl.s.wbthresh = 10;
371
372 /* R/W If set, CVMSEG is available for loads/stores in
373 * kernel/debug mode. */
374 #if CONFIG_CAVIUM_OCTEON_CVMSEG_SIZE > 0
375 cvmmemctl.s.cvmsegenak = 1;
376 #else
377 cvmmemctl.s.cvmsegenak = 0;
378 #endif
379 /* R/W If set, CVMSEG is available for loads/stores in
380 * supervisor mode. */
381 cvmmemctl.s.cvmsegenas = 0;
382 /* R/W If set, CVMSEG is available for loads/stores in user
383 * mode. */
384 cvmmemctl.s.cvmsegenau = 0;
385 /* R/W Size of local memory in cache blocks, 54 (6912 bytes)
386 * is max legal value. */
387 cvmmemctl.s.lmemsz = CONFIG_CAVIUM_OCTEON_CVMSEG_SIZE;
388
389 write_c0_cvmmemctl(cvmmemctl.u64);
390
391 if (smp_processor_id() == 0)
392 pr_notice("CVMSEG size: %d cache lines (%d bytes)\n",
393 CONFIG_CAVIUM_OCTEON_CVMSEG_SIZE,
394 CONFIG_CAVIUM_OCTEON_CVMSEG_SIZE * 128);
395
396 /* Set a default for the hardware timeouts */
397 fau_timeout.u64 = 0;
398 fau_timeout.s.tout_val = 0xfff;
399 /* Disable tagwait FAU timeout */
400 fau_timeout.s.tout_enb = 0;
401 cvmx_write_csr(CVMX_IOB_FAU_TIMEOUT, fau_timeout.u64);
402
403 nm_tim.u64 = 0;
404 /* 4096 cycles */
405 nm_tim.s.nw_tim = 3;
406 cvmx_write_csr(CVMX_POW_NW_TIM, nm_tim.u64);
407
408 write_octeon_c0_icacheerr(0);
409 write_c0_derraddr1(0);
410 }
411
412 /**
413 * Early entry point for arch setup
414 */
415 void __init prom_init(void)
416 {
417 struct cvmx_sysinfo *sysinfo;
418 int i;
419 int argc;
420 #ifdef CONFIG_CAVIUM_RESERVE32
421 int64_t addr = -1;
422 #endif
423 /*
424 * The bootloader passes a pointer to the boot descriptor in
425 * $a3, this is available as fw_arg3.
426 */
427 octeon_boot_desc_ptr = (struct octeon_boot_descriptor *)fw_arg3;
428 octeon_bootinfo =
429 cvmx_phys_to_ptr(octeon_boot_desc_ptr->cvmx_desc_vaddr);
430 cvmx_bootmem_init(cvmx_phys_to_ptr(octeon_bootinfo->phy_mem_desc_addr));
431
432 sysinfo = cvmx_sysinfo_get();
433 memset(sysinfo, 0, sizeof(*sysinfo));
434 sysinfo->system_dram_size = octeon_bootinfo->dram_size << 20;
435 sysinfo->phy_mem_desc_ptr =
436 cvmx_phys_to_ptr(octeon_bootinfo->phy_mem_desc_addr);
437 sysinfo->core_mask = octeon_bootinfo->core_mask;
438 sysinfo->exception_base_addr = octeon_bootinfo->exception_base_addr;
439 sysinfo->cpu_clock_hz = octeon_bootinfo->eclock_hz;
440 sysinfo->dram_data_rate_hz = octeon_bootinfo->dclock_hz * 2;
441 sysinfo->board_type = octeon_bootinfo->board_type;
442 sysinfo->board_rev_major = octeon_bootinfo->board_rev_major;
443 sysinfo->board_rev_minor = octeon_bootinfo->board_rev_minor;
444 memcpy(sysinfo->mac_addr_base, octeon_bootinfo->mac_addr_base,
445 sizeof(sysinfo->mac_addr_base));
446 sysinfo->mac_addr_count = octeon_bootinfo->mac_addr_count;
447 memcpy(sysinfo->board_serial_number,
448 octeon_bootinfo->board_serial_number,
449 sizeof(sysinfo->board_serial_number));
450 sysinfo->compact_flash_common_base_addr =
451 octeon_bootinfo->compact_flash_common_base_addr;
452 sysinfo->compact_flash_attribute_base_addr =
453 octeon_bootinfo->compact_flash_attribute_base_addr;
454 sysinfo->led_display_base_addr = octeon_bootinfo->led_display_base_addr;
455 sysinfo->dfa_ref_clock_hz = octeon_bootinfo->dfa_ref_clock_hz;
456 sysinfo->bootloader_config_flags = octeon_bootinfo->config_flags;
457
458 if (OCTEON_IS_MODEL(OCTEON_CN6XXX)) {
459 /* I/O clock runs at a different rate than the CPU. */
460 union cvmx_mio_rst_boot rst_boot;
461 rst_boot.u64 = cvmx_read_csr(CVMX_MIO_RST_BOOT);
462 octeon_io_clock_rate = 50000000 * rst_boot.s.pnr_mul;
463 } else {
464 octeon_io_clock_rate = sysinfo->cpu_clock_hz;
465 }
466
467 /*
468 * Only enable the LED controller if we're running on a CN38XX, CN58XX,
469 * or CN56XX. The CN30XX and CN31XX don't have an LED controller.
470 */
471 if (!octeon_is_simulation() &&
472 octeon_has_feature(OCTEON_FEATURE_LED_CONTROLLER)) {
473 cvmx_write_csr(CVMX_LED_EN, 0);
474 cvmx_write_csr(CVMX_LED_PRT, 0);
475 cvmx_write_csr(CVMX_LED_DBG, 0);
476 cvmx_write_csr(CVMX_LED_PRT_FMT, 0);
477 cvmx_write_csr(CVMX_LED_UDD_CNTX(0), 32);
478 cvmx_write_csr(CVMX_LED_UDD_CNTX(1), 32);
479 cvmx_write_csr(CVMX_LED_UDD_DATX(0), 0);
480 cvmx_write_csr(CVMX_LED_UDD_DATX(1), 0);
481 cvmx_write_csr(CVMX_LED_EN, 1);
482 }
483 #ifdef CONFIG_CAVIUM_RESERVE32
484 /*
485 * We need to temporarily allocate all memory in the reserve32
486 * region. This makes sure the kernel doesn't allocate this
487 * memory when it is getting memory from the
488 * bootloader. Later, after the memory allocations are
489 * complete, the reserve32 will be freed.
490 *
491 * Allocate memory for RESERVED32 aligned on 2MB boundary. This
492 * is in case we later use hugetlb entries with it.
493 */
494 addr = cvmx_bootmem_phy_named_block_alloc(CONFIG_CAVIUM_RESERVE32 << 20,
495 0, 0, 2 << 20,
496 "CAVIUM_RESERVE32", 0);
497 if (addr < 0)
498 pr_err("Failed to allocate CAVIUM_RESERVE32 memory area\n");
499 else
500 octeon_reserve32_memory = addr;
501 #endif
502
503 #ifdef CONFIG_CAVIUM_OCTEON_LOCK_L2
504 if (cvmx_read_csr(CVMX_L2D_FUS3) & (3ull << 34)) {
505 pr_info("Skipping L2 locking due to reduced L2 cache size\n");
506 } else {
507 uint32_t ebase = read_c0_ebase() & 0x3ffff000;
508 #ifdef CONFIG_CAVIUM_OCTEON_LOCK_L2_TLB
509 /* TLB refill */
510 cvmx_l2c_lock_mem_region(ebase, 0x100);
511 #endif
512 #ifdef CONFIG_CAVIUM_OCTEON_LOCK_L2_EXCEPTION
513 /* General exception */
514 cvmx_l2c_lock_mem_region(ebase + 0x180, 0x80);
515 #endif
516 #ifdef CONFIG_CAVIUM_OCTEON_LOCK_L2_LOW_LEVEL_INTERRUPT
517 /* Interrupt handler */
518 cvmx_l2c_lock_mem_region(ebase + 0x200, 0x80);
519 #endif
520 #ifdef CONFIG_CAVIUM_OCTEON_LOCK_L2_INTERRUPT
521 cvmx_l2c_lock_mem_region(__pa_symbol(handle_int), 0x100);
522 cvmx_l2c_lock_mem_region(__pa_symbol(plat_irq_dispatch), 0x80);
523 #endif
524 #ifdef CONFIG_CAVIUM_OCTEON_LOCK_L2_MEMCPY
525 cvmx_l2c_lock_mem_region(__pa_symbol(memcpy), 0x480);
526 #endif
527 }
528 #endif
529
530 octeon_check_cpu_bist();
531
532 octeon_uart = octeon_get_boot_uart();
533
534 #ifdef CONFIG_SMP
535 octeon_write_lcd("LinuxSMP");
536 #else
537 octeon_write_lcd("Linux");
538 #endif
539
540 #ifdef CONFIG_CAVIUM_GDB
541 /*
542 * When debugging the linux kernel, force the cores to enter
543 * the debug exception handler to break in.
544 */
545 if (octeon_get_boot_debug_flag()) {
546 cvmx_write_csr(CVMX_CIU_DINT, 1 << cvmx_get_core_num());
547 cvmx_read_csr(CVMX_CIU_DINT);
548 }
549 #endif
550
551 /*
552 * BIST should always be enabled when doing a soft reset. L2
553 * Cache locking for instance is not cleared unless BIST is
554 * enabled. Unfortunately due to a chip errata G-200 for
555 * Cn38XX and CN31XX, BIST msut be disabled on these parts.
556 */
557 if (OCTEON_IS_MODEL(OCTEON_CN38XX_PASS2) ||
558 OCTEON_IS_MODEL(OCTEON_CN31XX))
559 cvmx_write_csr(CVMX_CIU_SOFT_BIST, 0);
560 else
561 cvmx_write_csr(CVMX_CIU_SOFT_BIST, 1);
562
563 /* Default to 64MB in the simulator to speed things up */
564 if (octeon_is_simulation())
565 MAX_MEMORY = 64ull << 20;
566
567 arcs_cmdline[0] = 0;
568 argc = octeon_boot_desc_ptr->argc;
569 for (i = 0; i < argc; i++) {
570 const char *arg =
571 cvmx_phys_to_ptr(octeon_boot_desc_ptr->argv[i]);
572 if ((strncmp(arg, "MEM=", 4) == 0) ||
573 (strncmp(arg, "mem=", 4) == 0)) {
574 sscanf(arg + 4, "%llu", &MAX_MEMORY);
575 MAX_MEMORY <<= 20;
576 if (MAX_MEMORY == 0)
577 MAX_MEMORY = 32ull << 30;
578 } else if (strcmp(arg, "ecc_verbose") == 0) {
579 #ifdef CONFIG_CAVIUM_REPORT_SINGLE_BIT_ECC
580 __cvmx_interrupt_ecc_report_single_bit_errors = 1;
581 pr_notice("Reporting of single bit ECC errors is "
582 "turned on\n");
583 #endif
584 } else if (strlen(arcs_cmdline) + strlen(arg) + 1 <
585 sizeof(arcs_cmdline) - 1) {
586 strcat(arcs_cmdline, " ");
587 strcat(arcs_cmdline, arg);
588 }
589 }
590
591 if (strstr(arcs_cmdline, "console=") == NULL) {
592 #ifdef CONFIG_CAVIUM_OCTEON_2ND_KERNEL
593 strcat(arcs_cmdline, " console=ttyS0,115200");
594 #else
595 if (octeon_uart == 1)
596 strcat(arcs_cmdline, " console=ttyS1,115200");
597 else
598 strcat(arcs_cmdline, " console=ttyS0,115200");
599 #endif
600 }
601
602 if (octeon_is_simulation()) {
603 /*
604 * The simulator uses a mtdram device pre filled with
605 * the filesystem. Also specify the calibration delay
606 * to avoid calculating it every time.
607 */
608 strcat(arcs_cmdline, " rw root=1f00 slram=root,0x40000000,+1073741824");
609 }
610
611 mips_hpt_frequency = octeon_get_clock_rate();
612
613 octeon_init_cvmcount();
614 octeon_setup_delays();
615
616 _machine_restart = octeon_restart;
617 _machine_halt = octeon_halt;
618
619 octeon_user_io_init();
620 register_smp_ops(&octeon_smp_ops);
621 }
622
623 /* Exclude a single page from the regions obtained in plat_mem_setup. */
624 static __init void memory_exclude_page(u64 addr, u64 *mem, u64 *size)
625 {
626 if (addr > *mem && addr < *mem + *size) {
627 u64 inc = addr - *mem;
628 add_memory_region(*mem, inc, BOOT_MEM_RAM);
629 *mem += inc;
630 *size -= inc;
631 }
632
633 if (addr == *mem && *size > PAGE_SIZE) {
634 *mem += PAGE_SIZE;
635 *size -= PAGE_SIZE;
636 }
637 }
638
639 void __init plat_mem_setup(void)
640 {
641 uint64_t mem_alloc_size;
642 uint64_t total;
643 int64_t memory;
644
645 total = 0;
646
647 /*
648 * The Mips memory init uses the first memory location for
649 * some memory vectors. When SPARSEMEM is in use, it doesn't
650 * verify that the size is big enough for the final
651 * vectors. Making the smallest chuck 4MB seems to be enough
652 * to consistently work.
653 */
654 mem_alloc_size = 4 << 20;
655 if (mem_alloc_size > MAX_MEMORY)
656 mem_alloc_size = MAX_MEMORY;
657
658 /*
659 * When allocating memory, we want incrementing addresses from
660 * bootmem_alloc so the code in add_memory_region can merge
661 * regions next to each other.
662 */
663 cvmx_bootmem_lock();
664 while ((boot_mem_map.nr_map < BOOT_MEM_MAP_MAX)
665 && (total < MAX_MEMORY)) {
666 #if defined(CONFIG_64BIT) || defined(CONFIG_64BIT_PHYS_ADDR)
667 memory = cvmx_bootmem_phy_alloc(mem_alloc_size,
668 __pa_symbol(&__init_end), -1,
669 0x100000,
670 CVMX_BOOTMEM_FLAG_NO_LOCKING);
671 #elif defined(CONFIG_HIGHMEM)
672 memory = cvmx_bootmem_phy_alloc(mem_alloc_size, 0, 1ull << 31,
673 0x100000,
674 CVMX_BOOTMEM_FLAG_NO_LOCKING);
675 #else
676 memory = cvmx_bootmem_phy_alloc(mem_alloc_size, 0, 512 << 20,
677 0x100000,
678 CVMX_BOOTMEM_FLAG_NO_LOCKING);
679 #endif
680 if (memory >= 0) {
681 u64 size = mem_alloc_size;
682
683 /*
684 * exclude a page at the beginning and end of
685 * the 256MB PCIe 'hole' so the kernel will not
686 * try to allocate multi-page buffers that
687 * span the discontinuity.
688 */
689 memory_exclude_page(CVMX_PCIE_BAR1_PHYS_BASE,
690 &memory, &size);
691 memory_exclude_page(CVMX_PCIE_BAR1_PHYS_BASE +
692 CVMX_PCIE_BAR1_PHYS_SIZE,
693 &memory, &size);
694
695 /*
696 * This function automatically merges address
697 * regions next to each other if they are
698 * received in incrementing order.
699 */
700 if (size)
701 add_memory_region(memory, size, BOOT_MEM_RAM);
702 total += mem_alloc_size;
703 } else {
704 break;
705 }
706 }
707 cvmx_bootmem_unlock();
708
709 #ifdef CONFIG_CAVIUM_RESERVE32
710 /*
711 * Now that we've allocated the kernel memory it is safe to
712 * free the reserved region. We free it here so that builtin
713 * drivers can use the memory.
714 */
715 if (octeon_reserve32_memory)
716 cvmx_bootmem_free_named("CAVIUM_RESERVE32");
717 #endif /* CONFIG_CAVIUM_RESERVE32 */
718
719 if (total == 0)
720 panic("Unable to allocate memory from "
721 "cvmx_bootmem_phy_alloc\n");
722 }
723
724 /*
725 * Emit one character to the boot UART. Exported for use by the
726 * watchdog timer.
727 */
728 int prom_putchar(char c)
729 {
730 uint64_t lsrval;
731
732 /* Spin until there is room */
733 do {
734 lsrval = cvmx_read_csr(CVMX_MIO_UARTX_LSR(octeon_uart));
735 } while ((lsrval & 0x20) == 0);
736
737 /* Write the byte */
738 cvmx_write_csr(CVMX_MIO_UARTX_THR(octeon_uart), c & 0xffull);
739 return 1;
740 }
741 EXPORT_SYMBOL(prom_putchar);
742
743 void prom_free_prom_memory(void)
744 {
745 if (OCTEON_IS_MODEL(OCTEON_CN63XX_PASS1_X)) {
746 /* Check for presence of Core-14449 fix. */
747 u32 insn;
748 u32 *foo;
749
750 foo = &insn;
751
752 asm volatile("# before" : : : "memory");
753 prefetch(foo);
754 asm volatile(
755 ".set push\n\t"
756 ".set noreorder\n\t"
757 "bal 1f\n\t"
758 "nop\n"
759 "1:\tlw %0,-12($31)\n\t"
760 ".set pop\n\t"
761 : "=r" (insn) : : "$31", "memory");
762
763 if ((insn >> 26) != 0x33)
764 panic("No PREF instruction at Core-14449 probe point.");
765
766 if (((insn >> 16) & 0x1f) != 28)
767 panic("Core-14449 WAR not in place (%04x).\n"
768 "Please build kernel with proper options (CONFIG_CAVIUM_CN63XXP1).", insn);
769 }
770 #ifdef CONFIG_CAVIUM_DECODE_RSL
771 cvmx_interrupt_rsl_enable();
772
773 /* Add an interrupt handler for general failures. */
774 if (request_irq(OCTEON_IRQ_RML, octeon_rlm_interrupt, IRQF_SHARED,
775 "RML/RSL", octeon_rlm_interrupt)) {
776 panic("Unable to request_irq(OCTEON_IRQ_RML)");
777 }
778 #endif
779 }
780
781 int octeon_prune_device_tree(void);
782
783 extern const char __dtb_octeon_3xxx_begin;
784 extern const char __dtb_octeon_3xxx_end;
785 extern const char __dtb_octeon_68xx_begin;
786 extern const char __dtb_octeon_68xx_end;
787 void __init device_tree_init(void)
788 {
789 int dt_size;
790 struct boot_param_header *fdt;
791 bool do_prune;
792
793 if (octeon_bootinfo->minor_version >= 3 && octeon_bootinfo->fdt_addr) {
794 fdt = phys_to_virt(octeon_bootinfo->fdt_addr);
795 if (fdt_check_header(fdt))
796 panic("Corrupt Device Tree passed to kernel.");
797 dt_size = be32_to_cpu(fdt->totalsize);
798 do_prune = false;
799 } else if (OCTEON_IS_MODEL(OCTEON_CN68XX)) {
800 fdt = (struct boot_param_header *)&__dtb_octeon_68xx_begin;
801 dt_size = &__dtb_octeon_68xx_end - &__dtb_octeon_68xx_begin;
802 do_prune = true;
803 } else {
804 fdt = (struct boot_param_header *)&__dtb_octeon_3xxx_begin;
805 dt_size = &__dtb_octeon_3xxx_end - &__dtb_octeon_3xxx_begin;
806 do_prune = true;
807 }
808
809 /* Copy the default tree from init memory. */
810 initial_boot_params = early_init_dt_alloc_memory_arch(dt_size, 8);
811 if (initial_boot_params == NULL)
812 panic("Could not allocate initial_boot_params\n");
813 memcpy(initial_boot_params, fdt, dt_size);
814
815 if (do_prune) {
816 octeon_prune_device_tree();
817 pr_info("Using internal Device Tree.\n");
818 } else {
819 pr_info("Using passed Device Tree.\n");
820 }
821 unflatten_device_tree();
822 }