2 * File: arch/blackfin/kernel/traps.c
4 * Author: Hamish Macdonald
7 * Description: uses S/W interrupt 15 for the system calls
10 * Copyright 2004-2006 Analog Devices Inc.
12 * Bugs: Enter bugs at http://blackfin.uclinux.org/
14 * This program is free software; you can redistribute it and/or modify
15 * it under the terms of the GNU General Public License as published by
16 * the Free Software Foundation; either version 2 of the License, or
17 * (at your option) any later version.
19 * This program is distributed in the hope that it will be useful,
20 * but WITHOUT ANY WARRANTY; without even the implied warranty of
21 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
22 * GNU General Public License for more details.
24 * You should have received a copy of the GNU General Public License
25 * along with this program; if not, see the file COPYING, or write
26 * to the Free Software Foundation, Inc.,
27 * 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA
30 #include <linux/uaccess.h>
31 #include <linux/interrupt.h>
32 #include <linux/module.h>
33 #include <linux/kallsyms.h>
35 #include <asm/traps.h>
36 #include <asm/cacheflush.h>
37 #include <asm/blackfin.h>
38 #include <asm/irq_handler.h>
39 #include <linux/irq.h>
40 #include <asm/trace.h>
41 #include <asm/fixed_code.h>
45 # include <linux/debugger.h>
46 # include <linux/kgdb.h>
48 # define CHK_DEBUGGER_TRAP() \
50 CHK_DEBUGGER(trapnr, sig, info.si_code, fp, ); \
52 # define CHK_DEBUGGER_TRAP_MAYBE() \
55 CHK_DEBUGGER_TRAP(); \
58 # define CHK_DEBUGGER_TRAP() do { } while (0)
59 # define CHK_DEBUGGER_TRAP_MAYBE() do { } while (0)
62 /* Initiate the event table handler */
63 void __init trap_init(void)
66 bfin_write_EVT3(trap);
70 unsigned long saved_icplb_fault_addr, saved_dcplb_fault_addr;
72 static void decode_address(char *buf, unsigned long address)
74 struct vm_list_struct *vml;
75 struct task_struct *p;
77 unsigned long flags, offset;
78 unsigned char in_atomic = (bfin_read_IPEND() & 0x10) || in_atomic();
80 #ifdef CONFIG_KALLSYMS
81 unsigned long symsize;
87 /* look up the address and see if we are in kernel space */
88 symname = kallsyms_lookup(address, &symsize, &offset, &modname, namebuf);
91 /* yeah! kernel space! */
94 sprintf(buf, "<0x%p> { %s%s%s%s + 0x%lx }",
95 (void *)address, delim, modname, delim, symname,
96 (unsigned long)offset);
102 /* Problem in fixed code section? */
103 if (address >= FIXED_CODE_START && address < FIXED_CODE_END) {
104 sprintf(buf, "<0x%p> /* Maybe fixed code section */", (void *)address);
108 /* Problem somewhere before the kernel start address */
109 if (address < CONFIG_BOOT_LOAD) {
110 sprintf(buf, "<0x%p> /* Maybe null pointer? */", (void *)address);
114 /* looks like we're off in user-land, so let's walk all the
115 * mappings of all our processes and see if we can't be a whee
118 write_lock_irqsave(&tasklist_lock, flags);
119 for_each_process(p) {
120 mm = (in_atomic ? p->mm : get_task_mm(p));
124 vml = mm->context.vmlist;
126 struct vm_area_struct *vma = vml->vma;
128 if (address >= vma->vm_start && address < vma->vm_end) {
130 char *name = p->comm;
131 struct file *file = vma->vm_file;
134 name = d_path(&file->f_path, _tmpbuf,
137 /* FLAT does not have its text aligned to the start of
138 * the map while FDPIC ELF does ...
141 /* before we can check flat/fdpic, we need to
142 * make sure current is valid
144 if ((unsigned long)current >= FIXED_CODE_START &&
145 !((unsigned long)current & 0x3)) {
147 (address > current->mm->start_code) &&
148 (address < current->mm->end_code))
149 offset = address - current->mm->start_code;
151 offset = (address - vma->vm_start) +
152 (vma->vm_pgoff << PAGE_SHIFT);
154 sprintf(buf, "<0x%p> [ %s + 0x%lx ]",
155 (void *)address, name, offset);
157 sprintf(buf, "<0x%p> [ %s vma:0x%lx-0x%lx]",
158 (void *)address, name,
159 vma->vm_start, vma->vm_end);
165 sprintf(buf, "<0x%p> [ %s ] dynamic memory", (void *)address, name);
176 /* we were unable to find this address anywhere */
177 sprintf(buf, "<0x%p> /* kernel dynamic memory */", (void *)address);
180 write_unlock_irqrestore(&tasklist_lock, flags);
183 asmlinkage void double_fault_c(struct pt_regs *fp)
186 oops_in_progress = 1;
187 printk(KERN_EMERG "\n" KERN_EMERG "Double Fault\n");
188 dump_bfin_process(fp);
191 panic("Double Fault - unrecoverable event\n");
195 asmlinkage void trap_c(struct pt_regs *fp)
197 #ifdef CONFIG_DEBUG_BFIN_HWTRACE_ON
202 unsigned long trapnr = fp->seqstat & SEQSTAT_EXCAUSE;
204 trace_buffer_save(j);
206 /* Important - be very careful dereferncing pointers - will lead to
207 * double faults if the stack has become corrupt
210 /* If the fault was caused by a kernel thread, or interrupt handler
211 * we will kernel panic, so the system reboots.
212 * If KGDB is enabled, don't set this for kernel breakpoints
215 /* TODO: check to see if we are in some sort of deferred HWERR
216 * that we should be able to recover from, not kernel panic
218 if ((bfin_read_IPEND() & 0xFFC0) && (trapnr != VEC_STEP)
220 && (trapnr != VEC_EXCPT02)
224 oops_in_progress = 1;
225 } else if (current) {
226 if (current->mm == NULL) {
228 oops_in_progress = 1;
232 /* trap_c() will be called for exceptions. During exceptions
233 * processing, the pc value should be set with retx value.
234 * With this change we can cleanup some code in signal.c- TODO
236 fp->orig_pc = fp->retx;
237 /* printk("exception: 0x%x, ipend=%x, reti=%x, retx=%x\n",
238 trapnr, fp->ipend, fp->pc, fp->retx); */
240 /* send the appropriate signal to the user program */
243 /* This table works in conjuction with the one in ./mach-common/entry.S
244 * Some exceptions are handled there (in assembly, in exception space)
245 * Some are handled here, (in C, in interrupt space)
246 * Some, like CPLB, are handled in both, where the normal path is
247 * handled in assembly/exception space, and the error path is handled
251 /* 0x00 - Linux Syscall, getting here is an error */
252 /* 0x01 - userspace gdb breakpoint, handled here */
254 info.si_code = TRAP_ILLTRAP;
256 CHK_DEBUGGER_TRAP_MAYBE();
257 /* Check if this is a breakpoint in kernel space */
258 if (fp->ipend & 0xffc0)
263 case VEC_EXCPT02 : /* gdb connection */
264 info.si_code = TRAP_ILLTRAP;
269 /* 0x02 - User Defined, Caught by default */
271 /* 0x03 - User Defined, userspace stack overflow */
273 info.si_code = SEGV_STACKFLOW;
275 printk(KERN_NOTICE EXC_0x03(KERN_NOTICE));
278 /* 0x04 - User Defined, Caught by default */
279 /* 0x05 - User Defined, Caught by default */
280 /* 0x06 - User Defined, Caught by default */
281 /* 0x07 - User Defined, Caught by default */
282 /* 0x08 - User Defined, Caught by default */
283 /* 0x09 - User Defined, Caught by default */
284 /* 0x0A - User Defined, Caught by default */
285 /* 0x0B - User Defined, Caught by default */
286 /* 0x0C - User Defined, Caught by default */
287 /* 0x0D - User Defined, Caught by default */
288 /* 0x0E - User Defined, Caught by default */
289 /* 0x0F - User Defined, Caught by default */
290 /* 0x10 HW Single step, handled here */
292 info.si_code = TRAP_STEP;
294 CHK_DEBUGGER_TRAP_MAYBE();
295 /* Check if this is a single step in kernel space */
296 if (fp->ipend & 0xffc0)
300 /* 0x11 - Trace Buffer Full, handled here */
302 info.si_code = TRAP_TRACEFLOW;
304 printk(KERN_NOTICE EXC_0x11(KERN_NOTICE));
307 /* 0x12 - Reserved, Caught by default */
308 /* 0x13 - Reserved, Caught by default */
309 /* 0x14 - Reserved, Caught by default */
310 /* 0x15 - Reserved, Caught by default */
311 /* 0x16 - Reserved, Caught by default */
312 /* 0x17 - Reserved, Caught by default */
313 /* 0x18 - Reserved, Caught by default */
314 /* 0x19 - Reserved, Caught by default */
315 /* 0x1A - Reserved, Caught by default */
316 /* 0x1B - Reserved, Caught by default */
317 /* 0x1C - Reserved, Caught by default */
318 /* 0x1D - Reserved, Caught by default */
319 /* 0x1E - Reserved, Caught by default */
320 /* 0x1F - Reserved, Caught by default */
321 /* 0x20 - Reserved, Caught by default */
322 /* 0x21 - Undefined Instruction, handled here */
324 info.si_code = ILL_ILLOPC;
326 printk(KERN_NOTICE EXC_0x21(KERN_NOTICE));
329 /* 0x22 - Illegal Instruction Combination, handled here */
331 info.si_code = ILL_ILLPARAOP;
333 printk(KERN_NOTICE EXC_0x22(KERN_NOTICE));
336 /* 0x23 - Data CPLB protection violation, handled here */
338 info.si_code = ILL_CPLB_VI;
340 printk(KERN_NOTICE EXC_0x23(KERN_NOTICE));
343 /* 0x24 - Data access misaligned, handled here */
345 info.si_code = BUS_ADRALN;
347 printk(KERN_NOTICE EXC_0x24(KERN_NOTICE));
350 /* 0x25 - Unrecoverable Event, handled here */
352 info.si_code = ILL_ILLEXCPT;
354 printk(KERN_NOTICE EXC_0x25(KERN_NOTICE));
357 /* 0x26 - Data CPLB Miss, normal case is handled in _cplb_hdr,
358 error case is handled here */
360 info.si_code = BUS_ADRALN;
362 printk(KERN_NOTICE EXC_0x26(KERN_NOTICE));
365 /* 0x27 - Data CPLB Multiple Hits - Linux Trap Zero, handled here */
367 info.si_code = ILL_CPLB_MULHIT;
369 #ifdef CONFIG_DEBUG_HUNT_FOR_ZERO
370 if (saved_dcplb_fault_addr < FIXED_CODE_START)
371 printk(KERN_NOTICE "NULL pointer access\n");
374 printk(KERN_NOTICE EXC_0x27(KERN_NOTICE));
377 /* 0x28 - Emulation Watchpoint, handled here */
379 info.si_code = TRAP_WATCHPT;
381 pr_debug(EXC_0x28(KERN_DEBUG));
382 CHK_DEBUGGER_TRAP_MAYBE();
383 /* Check if this is a watchpoint in kernel space */
384 if (fp->ipend & 0xffc0)
389 /* 0x29 - Instruction fetch access error (535 only) */
390 case VEC_ISTRU_VL: /* ADSP-BF535 only (MH) */
391 info.si_code = BUS_OPFETCH;
393 printk(KERN_NOTICE "BF535: VEC_ISTRU_VL\n");
397 /* 0x29 - Reserved, Caught by default */
399 /* 0x2A - Instruction fetch misaligned, handled here */
401 info.si_code = BUS_ADRALN;
403 printk(KERN_NOTICE EXC_0x2A(KERN_NOTICE));
406 /* 0x2B - Instruction CPLB protection violation, handled here */
408 info.si_code = ILL_CPLB_VI;
410 printk(KERN_NOTICE EXC_0x2B(KERN_NOTICE));
413 /* 0x2C - Instruction CPLB miss, handled in _cplb_hdr */
415 info.si_code = ILL_CPLB_MISS;
417 printk(KERN_NOTICE EXC_0x2C(KERN_NOTICE));
420 /* 0x2D - Instruction CPLB Multiple Hits, handled here */
421 case VEC_CPLB_I_MHIT:
422 info.si_code = ILL_CPLB_MULHIT;
424 #ifdef CONFIG_DEBUG_HUNT_FOR_ZERO
425 if (saved_icplb_fault_addr < FIXED_CODE_START)
426 printk(KERN_NOTICE "Jump to NULL address\n");
429 printk(KERN_NOTICE EXC_0x2D(KERN_NOTICE));
432 /* 0x2E - Illegal use of Supervisor Resource, handled here */
434 info.si_code = ILL_PRVOPC;
436 printk(KERN_NOTICE EXC_0x2E(KERN_NOTICE));
439 /* 0x2F - Reserved, Caught by default */
440 /* 0x30 - Reserved, Caught by default */
441 /* 0x31 - Reserved, Caught by default */
442 /* 0x32 - Reserved, Caught by default */
443 /* 0x33 - Reserved, Caught by default */
444 /* 0x34 - Reserved, Caught by default */
445 /* 0x35 - Reserved, Caught by default */
446 /* 0x36 - Reserved, Caught by default */
447 /* 0x37 - Reserved, Caught by default */
448 /* 0x38 - Reserved, Caught by default */
449 /* 0x39 - Reserved, Caught by default */
450 /* 0x3A - Reserved, Caught by default */
451 /* 0x3B - Reserved, Caught by default */
452 /* 0x3C - Reserved, Caught by default */
453 /* 0x3D - Reserved, Caught by default */
454 /* 0x3E - Reserved, Caught by default */
455 /* 0x3F - Reserved, Caught by default */
457 info.si_code = BUS_ADRALN;
459 switch (fp->seqstat & SEQSTAT_HWERRCAUSE) {
460 /* System MMR Error */
461 case (SEQSTAT_HWERRCAUSE_SYSTEM_MMR):
462 info.si_code = BUS_ADRALN;
464 printk(KERN_NOTICE HWC_x2(KERN_NOTICE));
466 /* External Memory Addressing Error */
467 case (SEQSTAT_HWERRCAUSE_EXTERN_ADDR):
468 info.si_code = BUS_ADRERR;
470 printk(KERN_NOTICE HWC_x3(KERN_NOTICE));
472 /* Performance Monitor Overflow */
473 case (SEQSTAT_HWERRCAUSE_PERF_FLOW):
474 printk(KERN_NOTICE HWC_x12(KERN_NOTICE));
476 /* RAISE 5 instruction */
477 case (SEQSTAT_HWERRCAUSE_RAISE_5):
478 printk(KERN_NOTICE HWC_x18(KERN_NOTICE));
480 default: /* Reserved */
481 printk(KERN_NOTICE HWC_default(KERN_NOTICE));
487 info.si_code = TRAP_ILLTRAP;
489 printk(KERN_EMERG "Caught Unhandled Exception, code = %08lx\n",
490 (fp->seqstat & SEQSTAT_EXCAUSE));
497 if (sig != SIGTRAP) {
498 unsigned long *stack;
499 dump_bfin_process(fp);
503 /* Print out the trace buffer if it makes sense */
504 #ifndef CONFIG_DEBUG_BFIN_NO_KERN_HWTRACE
505 if (trapnr == VEC_CPLB_I_M || trapnr == VEC_CPLB_M)
506 printk(KERN_NOTICE "No trace since you do not have "
507 "CONFIG_DEBUG_BFIN_NO_KERN_HWTRACE enabled\n"
511 dump_bfin_trace_buffer();
513 if (oops_in_progress) {
514 /* Dump the current kernel stack */
515 printk(KERN_NOTICE "\n" KERN_NOTICE "Kernel Stack\n");
516 show_stack(current, NULL);
519 #ifndef CONFIG_ACCESS_CHECK
520 printk(KERN_EMERG "Please turn on "
521 "CONFIG_ACCESS_CHECK\n");
523 panic("Kernel exception");
525 /* Dump the user space stack */
526 stack = (unsigned long *)rdusp();
527 printk(KERN_NOTICE "Userspace Stack\n");
528 show_stack(NULL, stack);
534 info.si_addr = (void __user *)fp->pc;
535 force_sig_info(sig, &info, current);
537 trace_buffer_restore(j);
541 /* Typical exception handling routines */
543 #define EXPAND_LEN ((1 << CONFIG_DEBUG_BFIN_HWTRACE_EXPAND_LEN) * 256 - 1)
546 * Similar to get_user, do some address checking, then dereference
547 * Return true on sucess, false on bad address
549 bool get_instruction(unsigned short *val, unsigned short *address)
554 addr = (unsigned long)address;
556 /* Check for odd addresses */
560 /* Check that things do not wrap around */
561 if (addr > (addr + 2))
565 * Since we are in exception context, we need to do a little address checking
566 * We need to make sure we are only accessing valid memory, and
567 * we don't read something in the async space that can hang forever
569 if ((addr >= FIXED_CODE_START && (addr + 2) <= physical_mem_end) ||
571 (addr >= L2_START && (addr + 2) <= (L2_START + L2_LENGTH)) ||
573 (addr >= BOOT_ROM_START && (addr + 2) <= (BOOT_ROM_START + BOOT_ROM_LENGTH)) ||
574 #if L1_DATA_A_LENGTH != 0
575 (addr >= L1_DATA_A_START && (addr + 2) <= (L1_DATA_A_START + L1_DATA_A_LENGTH)) ||
577 #if L1_DATA_B_LENGTH != 0
578 (addr >= L1_DATA_B_START && (addr + 2) <= (L1_DATA_B_START + L1_DATA_B_LENGTH)) ||
580 (addr >= L1_SCRATCH_START && (addr + 2) <= (L1_SCRATCH_START + L1_SCRATCH_LENGTH)) ||
581 (!(bfin_read_EBIU_AMBCTL0() & B0RDYEN) &&
582 addr >= ASYNC_BANK0_BASE && (addr + 2) <= (ASYNC_BANK0_BASE + ASYNC_BANK0_SIZE)) ||
583 (!(bfin_read_EBIU_AMBCTL0() & B1RDYEN) &&
584 addr >= ASYNC_BANK1_BASE && (addr + 2) <= (ASYNC_BANK1_BASE + ASYNC_BANK1_SIZE)) ||
585 (!(bfin_read_EBIU_AMBCTL1() & B2RDYEN) &&
586 addr >= ASYNC_BANK2_BASE && (addr + 2) <= (ASYNC_BANK2_BASE + ASYNC_BANK1_SIZE)) ||
587 (!(bfin_read_EBIU_AMBCTL1() & B3RDYEN) &&
588 addr >= ASYNC_BANK3_BASE && (addr + 2) <= (ASYNC_BANK3_BASE + ASYNC_BANK1_SIZE))) {
593 #if L1_CODE_LENGTH != 0
594 if (addr >= L1_CODE_START && (addr + 2) <= (L1_CODE_START + L1_CODE_LENGTH)) {
595 dma_memcpy(val, address, 2);
605 * decode the instruction if we are printing out the trace, as it
606 * makes things easier to follow, without running it through objdump
607 * These are the normal instructions which cause change of flow, which
608 * would be at the source of the trace buffer
610 void decode_instruction(unsigned short *address)
612 unsigned short opcode;
614 if (get_instruction(&opcode, address)) {
615 if (opcode == 0x0010)
617 else if (opcode == 0x0011)
619 else if (opcode == 0x0012)
621 else if (opcode >= 0x0050 && opcode <= 0x0057)
622 printk("JUMP (P%i)", opcode & 7);
623 else if (opcode >= 0x0060 && opcode <= 0x0067)
624 printk("CALL (P%i)", opcode & 7);
625 else if (opcode >= 0x0070 && opcode <= 0x0077)
626 printk("CALL (PC+P%i)", opcode & 7);
627 else if (opcode >= 0x0080 && opcode <= 0x0087)
628 printk("JUMP (PC+P%i)", opcode & 7);
629 else if ((opcode >= 0x1000 && opcode <= 0x13FF) || (opcode >= 0x1800 && opcode <= 0x1BFF))
630 printk("IF !CC JUMP");
631 else if ((opcode >= 0x1400 && opcode <= 0x17ff) || (opcode >= 0x1c00 && opcode <= 0x1fff))
632 printk("IF CC JUMP");
633 else if (opcode >= 0x2000 && opcode <= 0x2fff)
635 else if (opcode >= 0xe080 && opcode <= 0xe0ff)
637 else if (opcode >= 0xe200 && opcode <= 0xe2ff)
639 else if (opcode >= 0xe300 && opcode <= 0xe3ff)
640 printk("CALL pcrel");
642 printk("0x%04x", opcode);
647 void dump_bfin_trace_buffer(void)
649 #ifdef CONFIG_DEBUG_BFIN_HWTRACE_ON
652 unsigned short *addr;
653 #ifdef CONFIG_DEBUG_BFIN_HWTRACE_EXPAND
657 trace_buffer_save(tflags);
659 printk(KERN_NOTICE "Hardware Trace:\n");
661 #ifdef CONFIG_DEBUG_BFIN_HWTRACE_EXPAND
662 printk(KERN_NOTICE "WARNING: Expanded trace turned on - can not trace exceptions\n");
665 if (likely(bfin_read_TBUFSTAT() & TBUFCNT)) {
666 for (; bfin_read_TBUFSTAT() & TBUFCNT; i++) {
667 decode_address(buf, (unsigned long)bfin_read_TBUF());
668 printk(KERN_NOTICE "%4i Target : %s\n", i, buf);
669 addr = (unsigned short *)bfin_read_TBUF();
670 decode_address(buf, (unsigned long)addr);
671 printk(KERN_NOTICE " Source : %s ", buf);
672 decode_instruction(addr);
677 #ifdef CONFIG_DEBUG_BFIN_HWTRACE_EXPAND
678 if (trace_buff_offset)
679 index = trace_buff_offset / 4;
683 j = (1 << CONFIG_DEBUG_BFIN_HWTRACE_EXPAND_LEN) * 128;
685 decode_address(buf, software_trace_buff[index]);
686 printk(KERN_NOTICE "%4i Target : %s\n", i, buf);
690 decode_address(buf, software_trace_buff[index]);
691 printk(KERN_NOTICE " Source : %s ", buf);
692 decode_instruction((unsigned short *)software_trace_buff[index]);
702 trace_buffer_restore(tflags);
705 EXPORT_SYMBOL(dump_bfin_trace_buffer);
708 * Checks to see if the address pointed to is either a
709 * 16-bit CALL instruction, or a 32-bit CALL instruction
711 bool is_bfin_call(unsigned short *addr)
713 unsigned short opcode = 0, *ins_addr;
714 ins_addr = (unsigned short *)addr;
716 if (!get_instruction(&opcode, ins_addr))
719 if ((opcode >= 0x0060 && opcode <= 0x0067) ||
720 (opcode >= 0x0070 && opcode <= 0x0077))
724 if (!get_instruction(&opcode, ins_addr))
727 if (opcode >= 0xE300 && opcode <= 0xE3FF)
733 void show_stack(struct task_struct *task, unsigned long *stack)
735 unsigned int *addr, *endstack, *fp = 0, *frame;
736 unsigned short *ins_addr;
738 unsigned int i, j, ret_addr, frame_no = 0;
741 * If we have been passed a specific stack, use that one otherwise
742 * if we have been passed a task structure, use that, otherwise
743 * use the stack of where the variable "stack" exists
748 /* We know this is a kernel stack, so this is the start/end */
749 stack = (unsigned long *)task->thread.ksp;
750 endstack = (unsigned int *)(((unsigned int)(stack) & ~(THREAD_SIZE - 1)) + THREAD_SIZE);
752 /* print out the existing stack info */
753 stack = (unsigned long *)&stack;
754 endstack = (unsigned int *)PAGE_ALIGN((unsigned int)stack);
757 endstack = (unsigned int *)PAGE_ALIGN((unsigned int)stack);
759 decode_address(buf, (unsigned int)stack);
760 printk(KERN_NOTICE "Stack info:\n" KERN_NOTICE " SP: [0x%p] %s\n", stack, buf);
761 addr = (unsigned int *)((unsigned int)stack & ~0x3F);
763 /* First thing is to look for a frame pointer */
764 for (addr = (unsigned int *)((unsigned int)stack & ~0xF), i = 0;
765 addr < endstack; addr++, i++) {
768 ins_addr = (unsigned short *)*addr;
770 if (is_bfin_call(ins_addr))
774 /* Let's check to see if it is a frame pointer */
775 while (fp >= (addr - 1) && fp < endstack && fp)
776 fp = (unsigned int *)*fp;
777 if (fp == 0 || fp == endstack) {
786 printk(" FP: (0x%p)\n", fp);
791 * Now that we think we know where things are, we
792 * walk the stack again, this time printing things out
793 * incase there is no frame pointer, we still look for
794 * valid return addresses
797 /* First time print out data, next time, print out symbols */
798 for (j = 0; j <= 1; j++) {
800 printk(KERN_NOTICE "Return addresses in stack:\n");
802 printk(KERN_NOTICE " Memory from 0x%08lx to %p", ((long unsigned int)stack & ~0xF), endstack);
807 for (addr = (unsigned int *)((unsigned int)stack & ~0xF), i = 0;
808 addr <= endstack; addr++, i++) {
811 if (!j && i % 8 == 0)
812 printk("\n" KERN_NOTICE "%p:",addr);
814 /* if it is an odd address, or zero, just skip it */
815 if (*addr & 0x1 || !*addr)
818 ins_addr = (unsigned short *)*addr;
820 /* Go back one instruction, and see if it is a CALL */
822 ret_addr = is_bfin_call(ins_addr);
824 if (!j && stack == (unsigned long *)addr)
825 printk("[%08x]", *addr);
828 decode_address(buf, (unsigned int)*addr);
830 printk(KERN_NOTICE " frame %2i : %s\n", frame_no, buf);
833 printk(KERN_NOTICE " address : %s\n", buf);
835 printk("<%08x>", *addr);
836 else if (fp == addr) {
840 printk("(%08x)", *addr);
842 fp = (unsigned int *)*addr;
846 printk(" %08x ", *addr);
854 void dump_stack(void)
857 #ifdef CONFIG_DEBUG_BFIN_HWTRACE_ON
860 trace_buffer_save(tflags);
861 dump_bfin_trace_buffer();
862 show_stack(current, &stack);
863 trace_buffer_restore(tflags);
865 EXPORT_SYMBOL(dump_stack);
867 void dump_bfin_process(struct pt_regs *fp)
869 /* We should be able to look at fp->ipend, but we don't push it on the
870 * stack all the time, so do this until we fix that */
871 unsigned int context = bfin_read_IPEND();
873 if (oops_in_progress)
874 printk(KERN_EMERG "Kernel OOPS in progress\n");
876 if (context & 0x0020 && (fp->seqstat & SEQSTAT_EXCAUSE) == VEC_HWERR)
877 printk(KERN_NOTICE "HW Error context\n");
878 else if (context & 0x0020)
879 printk(KERN_NOTICE "Deferred Exception context\n");
880 else if (context & 0x3FC0)
881 printk(KERN_NOTICE "Interrupt context\n");
882 else if (context & 0x4000)
883 printk(KERN_NOTICE "Deferred Interrupt context\n");
884 else if (context & 0x8000)
885 printk(KERN_NOTICE "Kernel process context\n");
887 /* Because we are crashing, and pointers could be bad, we check things
888 * pretty closely before we use them
890 if ((unsigned long)current >= FIXED_CODE_START &&
891 !((unsigned long)current & 0x3) && current->pid) {
892 printk(KERN_NOTICE "CURRENT PROCESS:\n");
893 if (current->comm >= (char *)FIXED_CODE_START)
894 printk(KERN_NOTICE "COMM=%s PID=%d\n",
895 current->comm, current->pid);
897 printk(KERN_NOTICE "COMM= invalid\n");
899 if (!((unsigned long)current->mm & 0x3) && (unsigned long)current->mm >= FIXED_CODE_START)
900 printk(KERN_NOTICE "TEXT = 0x%p-0x%p DATA = 0x%p-0x%p\n"
901 KERN_NOTICE " BSS = 0x%p-0x%p USER-STACK = 0x%p\n"
903 (void *)current->mm->start_code,
904 (void *)current->mm->end_code,
905 (void *)current->mm->start_data,
906 (void *)current->mm->end_data,
907 (void *)current->mm->end_data,
908 (void *)current->mm->brk,
909 (void *)current->mm->start_stack);
911 printk(KERN_NOTICE "invalid mm\n");
913 printk(KERN_NOTICE "\n" KERN_NOTICE
914 "No Valid process in current context\n");
917 void dump_bfin_mem(struct pt_regs *fp)
919 unsigned short *addr, *erraddr, val = 0, err = 0;
920 char sti = 0, buf[6];
922 erraddr = (void *)fp->pc;
924 printk(KERN_NOTICE "return address: [0x%p]; contents of:", erraddr);
926 for (addr = (unsigned short *)((unsigned long)erraddr & ~0xF) - 0x10;
927 addr < (unsigned short *)((unsigned long)erraddr & ~0xF) + 0x10;
929 if (!((unsigned long)addr & 0xF))
930 printk("\n" KERN_NOTICE "0x%p: ", addr);
932 if (get_instruction(&val, addr)) {
934 sprintf(buf, "????");
936 sprintf(buf, "%04x", val);
938 if (addr == erraddr) {
944 /* Do any previous instructions turn on interrupts? */
945 if (addr <= erraddr && /* in the past */
946 ((val >= 0x0040 && val <= 0x0047) || /* STI instruction */
947 val == 0x017b)) /* [SP++] = RETI */
953 /* Hardware error interrupts can be deferred */
954 if (unlikely(sti && (fp->seqstat & SEQSTAT_EXCAUSE) == VEC_HWERR &&
956 printk(KERN_NOTICE "Looks like this was a deferred error - sorry\n");
957 #ifndef CONFIG_DEBUG_HWERR
958 printk(KERN_NOTICE "The remaining message may be meaningless\n"
959 KERN_NOTICE "You should enable CONFIG_DEBUG_HWERR to get a"
960 " better idea where it came from\n");
962 /* If we are handling only one peripheral interrupt
963 * and current mm and pid are valid, and the last error
964 * was in that user space process's text area
965 * print it out - because that is where the problem exists
967 if ((!(((fp)->ipend & ~0x30) & (((fp)->ipend & ~0x30) - 1))) &&
968 (current->pid && current->mm)) {
969 /* And the last RETI points to the current userspace context */
970 if ((fp + 1)->pc >= current->mm->start_code &&
971 (fp + 1)->pc <= current->mm->end_code) {
972 printk(KERN_NOTICE "It might be better to look around here : \n");
973 printk(KERN_NOTICE "-------------------------------------------\n");
975 printk(KERN_NOTICE "-------------------------------------------\n");
982 void show_regs(struct pt_regs *fp)
985 struct irqaction *action;
989 printk(KERN_NOTICE "\n" KERN_NOTICE "SEQUENCER STATUS:\t\t%s\n", print_tainted());
990 printk(KERN_NOTICE " SEQSTAT: %08lx IPEND: %04lx SYSCFG: %04lx\n",
991 (long)fp->seqstat, fp->ipend, fp->syscfg);
992 printk(KERN_NOTICE " HWERRCAUSE: 0x%lx\n",
993 (fp->seqstat & SEQSTAT_HWERRCAUSE) >> 14);
994 printk(KERN_NOTICE " EXCAUSE : 0x%lx\n",
995 fp->seqstat & SEQSTAT_EXCAUSE);
996 for (i = 6; i <= 15 ; i++) {
997 if (fp->ipend & (1 << i)) {
998 decode_address(buf, bfin_read32(EVT0 + 4*i));
999 printk(KERN_NOTICE " physical IVG%i asserted : %s\n", i, buf);
1003 /* if no interrupts are going off, don't print this out */
1004 if (fp->ipend & ~0x3F) {
1005 for (i = 0; i < (NR_IRQS - 1); i++) {
1006 spin_lock_irqsave(&irq_desc[i].lock, flags);
1007 action = irq_desc[i].action;
1011 decode_address(buf, (unsigned int)action->handler);
1012 printk(KERN_NOTICE " logical irq %3d mapped : %s", i, buf);
1013 for (action = action->next; action; action = action->next) {
1014 decode_address(buf, (unsigned int)action->handler);
1015 printk(", %s", buf);
1019 spin_unlock_irqrestore(&irq_desc[i].lock, flags);
1023 decode_address(buf, fp->rete);
1024 printk(KERN_NOTICE " RETE: %s\n", buf);
1025 decode_address(buf, fp->retn);
1026 printk(KERN_NOTICE " RETN: %s\n", buf);
1027 decode_address(buf, fp->retx);
1028 printk(KERN_NOTICE " RETX: %s\n", buf);
1029 decode_address(buf, fp->rets);
1030 printk(KERN_NOTICE " RETS: %s\n", buf);
1031 decode_address(buf, fp->pc);
1032 printk(KERN_NOTICE " PC : %s\n", buf);
1034 if (((long)fp->seqstat & SEQSTAT_EXCAUSE) &&
1035 (((long)fp->seqstat & SEQSTAT_EXCAUSE) != VEC_HWERR)) {
1036 decode_address(buf, saved_dcplb_fault_addr);
1037 printk(KERN_NOTICE "DCPLB_FAULT_ADDR: %s\n", buf);
1038 decode_address(buf, saved_icplb_fault_addr);
1039 printk(KERN_NOTICE "ICPLB_FAULT_ADDR: %s\n", buf);
1042 printk(KERN_NOTICE "\n" KERN_NOTICE "PROCESSOR STATE:\n");
1043 printk(KERN_NOTICE " R0 : %08lx R1 : %08lx R2 : %08lx R3 : %08lx\n",
1044 fp->r0, fp->r1, fp->r2, fp->r3);
1045 printk(KERN_NOTICE " R4 : %08lx R5 : %08lx R6 : %08lx R7 : %08lx\n",
1046 fp->r4, fp->r5, fp->r6, fp->r7);
1047 printk(KERN_NOTICE " P0 : %08lx P1 : %08lx P2 : %08lx P3 : %08lx\n",
1048 fp->p0, fp->p1, fp->p2, fp->p3);
1049 printk(KERN_NOTICE " P4 : %08lx P5 : %08lx FP : %08lx SP : %08lx\n",
1050 fp->p4, fp->p5, fp->fp, (long)fp);
1051 printk(KERN_NOTICE " LB0: %08lx LT0: %08lx LC0: %08lx\n",
1052 fp->lb0, fp->lt0, fp->lc0);
1053 printk(KERN_NOTICE " LB1: %08lx LT1: %08lx LC1: %08lx\n",
1054 fp->lb1, fp->lt1, fp->lc1);
1055 printk(KERN_NOTICE " B0 : %08lx L0 : %08lx M0 : %08lx I0 : %08lx\n",
1056 fp->b0, fp->l0, fp->m0, fp->i0);
1057 printk(KERN_NOTICE " B1 : %08lx L1 : %08lx M1 : %08lx I1 : %08lx\n",
1058 fp->b1, fp->l1, fp->m1, fp->i1);
1059 printk(KERN_NOTICE " B2 : %08lx L2 : %08lx M2 : %08lx I2 : %08lx\n",
1060 fp->b2, fp->l2, fp->m2, fp->i2);
1061 printk(KERN_NOTICE " B3 : %08lx L3 : %08lx M3 : %08lx I3 : %08lx\n",
1062 fp->b3, fp->l3, fp->m3, fp->i3);
1063 printk(KERN_NOTICE "A0.w: %08lx A0.x: %08lx A1.w: %08lx A1.x: %08lx\n",
1064 fp->a0w, fp->a0x, fp->a1w, fp->a1x);
1066 printk(KERN_NOTICE "USP : %08lx ASTAT: %08lx\n",
1067 rdusp(), fp->astat);
1069 printk(KERN_NOTICE "\n");
1072 #ifdef CONFIG_SYS_BFIN_SPINLOCK_L1
1073 asmlinkage int sys_bfin_spinlock(int *spinlock)__attribute__((l1_text));
1076 asmlinkage int sys_bfin_spinlock(int *spinlock)
1081 local_irq_disable();
1082 ret = get_user(tmp, spinlock);
1087 put_user(tmp, spinlock);
1093 int bfin_request_exception(unsigned int exception, void (*handler)(void))
1095 void (*curr_handler)(void);
1097 if (exception > 0x3F)
1100 curr_handler = ex_table[exception];
1102 if (curr_handler != ex_replaceable)
1105 ex_table[exception] = handler;
1109 EXPORT_SYMBOL(bfin_request_exception);
1111 int bfin_free_exception(unsigned int exception, void (*handler)(void))
1113 void (*curr_handler)(void);
1115 if (exception > 0x3F)
1118 curr_handler = ex_table[exception];
1120 if (curr_handler != handler)
1123 ex_table[exception] = ex_replaceable;
1127 EXPORT_SYMBOL(bfin_free_exception);
1129 void panic_cplb_error(int cplb_panic, struct pt_regs *fp)
1131 switch (cplb_panic) {
1132 case CPLB_NO_UNLOCKED:
1133 printk(KERN_EMERG "All CPLBs are locked\n");
1135 case CPLB_PROT_VIOL:
1137 case CPLB_NO_ADDR_MATCH:
1139 case CPLB_UNKNOWN_ERR:
1140 printk(KERN_EMERG "Unknown CPLB Exception\n");
1144 oops_in_progress = 1;
1146 dump_bfin_process(fp);
1150 panic("Unrecoverable event\n");