traps.c 35.2 KB
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/*
 * File:         arch/blackfin/kernel/traps.c
 * Based on:
 * Author:       Hamish Macdonald
 *
 * Created:
 * Description:  uses S/W interrupt 15 for the system calls
 *
 * Modified:
 *               Copyright 2004-2006 Analog Devices Inc.
 *
 * Bugs:         Enter bugs at http://blackfin.uclinux.org/
 *
 * This program is free software; you can redistribute it and/or modify
 * it under the terms of the GNU General Public License as published by
 * the Free Software Foundation; either version 2 of the License, or
 * (at your option) any later version.
 *
 * This program is distributed in the hope that it will be useful,
 * but WITHOUT ANY WARRANTY; without even the implied warranty of
 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
 * GNU General Public License for more details.
 *
 * You should have received a copy of the GNU General Public License
 * along with this program; if not, see the file COPYING, or write
 * to the Free Software Foundation, Inc.,
 * 51 Franklin St, Fifth Floor, Boston, MA  02110-1301  USA
 */

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#include <linux/uaccess.h>
#include <linux/interrupt.h>
#include <linux/module.h>
#include <linux/kallsyms.h>
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#include <linux/fs.h>
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#include <asm/traps.h>
#include <asm/cacheflush.h>
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#include <asm/cplb.h>
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#include <asm/blackfin.h>
#include <asm/irq_handler.h>
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#include <linux/irq.h>
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#include <asm/trace.h>
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#include <asm/fixed_code.h>
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#ifdef CONFIG_KGDB
# include <linux/kgdb.h>
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# define CHK_DEBUGGER_TRAP() \
	do { \
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		kgdb_handle_exception(trapnr, sig, info.si_code, fp); \
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	} while (0)
# define CHK_DEBUGGER_TRAP_MAYBE() \
	do { \
		if (kgdb_connected) \
			CHK_DEBUGGER_TRAP(); \
	} while (0)
#else
# define CHK_DEBUGGER_TRAP() do { } while (0)
# define CHK_DEBUGGER_TRAP_MAYBE() do { } while (0)
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#endif

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#ifdef CONFIG_DEBUG_VERBOSE
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#define verbose_printk(fmt, arg...) \
	printk(fmt, ##arg)
#else
#define verbose_printk(fmt, arg...) \
	({ if (0) printk(fmt, ##arg); 0; })
#endif

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/* Initiate the event table handler */
void __init trap_init(void)
{
	CSYNC();
	bfin_write_EVT3(trap);
	CSYNC();
}

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static void decode_address(char *buf, unsigned long address)
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{
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#ifdef CONFIG_DEBUG_VERBOSE
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	struct vm_list_struct *vml;
	struct task_struct *p;
	struct mm_struct *mm;
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	unsigned long flags, offset;
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	unsigned char in_atomic = (bfin_read_IPEND() & 0x10) || in_atomic();
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#ifdef CONFIG_KALLSYMS
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	unsigned long symsize;
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	const char *symname;
	char *modname;
	char *delim = ":";
	char namebuf[128];

	/* look up the address and see if we are in kernel space */
	symname = kallsyms_lookup(address, &symsize, &offset, &modname, namebuf);

	if (symname) {
		/* yeah! kernel space! */
		if (!modname)
			modname = delim = "";
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		sprintf(buf, "<0x%p> { %s%s%s%s + 0x%lx }",
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		              (void *)address, delim, modname, delim, symname,
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		              (unsigned long)offset);
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		return;
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	}
#endif

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	/* Problem in fixed code section? */
	if (address >= FIXED_CODE_START && address < FIXED_CODE_END) {
		sprintf(buf, "<0x%p> /* Maybe fixed code section */", (void *)address);
		return;
	}

	/* Problem somewhere before the kernel start address */
	if (address < CONFIG_BOOT_LOAD) {
		sprintf(buf, "<0x%p> /* Maybe null pointer? */", (void *)address);
		return;
	}

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	/* looks like we're off in user-land, so let's walk all the
	 * mappings of all our processes and see if we can't be a whee
	 * bit more specific
	 */
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	write_lock_irqsave(&tasklist_lock, flags);
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	for_each_process(p) {
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		mm = (in_atomic ? p->mm : get_task_mm(p));
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		if (!mm)
			continue;

		vml = mm->context.vmlist;
		while (vml) {
			struct vm_area_struct *vma = vml->vma;

			if (address >= vma->vm_start && address < vma->vm_end) {
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				char _tmpbuf[256];
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				char *name = p->comm;
				struct file *file = vma->vm_file;
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				if (file) {
					char *d_name = d_path(&file->f_path, _tmpbuf,
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						      sizeof(_tmpbuf));
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					if (!IS_ERR(d_name))
						name = d_name;
				}
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				/* FLAT does not have its text aligned to the start of
				 * the map while FDPIC ELF does ...
				 */
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				/* before we can check flat/fdpic, we need to
				 * make sure current is valid
				 */
				if ((unsigned long)current >= FIXED_CODE_START &&
				    !((unsigned long)current & 0x3)) {
					if (current->mm &&
					    (address > current->mm->start_code) &&
					    (address < current->mm->end_code))
						offset = address - current->mm->start_code;
					else
						offset = (address - vma->vm_start) +
							 (vma->vm_pgoff << PAGE_SHIFT);

					sprintf(buf, "<0x%p> [ %s + 0x%lx ]",
						(void *)address, name, offset);
				} else
					sprintf(buf, "<0x%p> [ %s vma:0x%lx-0x%lx]",
						(void *)address, name,
						vma->vm_start, vma->vm_end);

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				if (!in_atomic)
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					mmput(mm);
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				if (!strlen(buf))
					sprintf(buf, "<0x%p> [ %s ] dynamic memory", (void *)address, name);

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				goto done;
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			}

			vml = vml->next;
		}
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		if (!in_atomic)
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			mmput(mm);
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	}

	/* we were unable to find this address anywhere */
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	sprintf(buf, "<0x%p> /* kernel dynamic memory */", (void *)address);
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done:
	write_unlock_irqrestore(&tasklist_lock, flags);
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#else
	sprintf(buf, " ");
#endif
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}

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asmlinkage void double_fault_c(struct pt_regs *fp)
{
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	console_verbose();
	oops_in_progress = 1;
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#ifdef CONFIG_DEBUG_VERBOSE
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	printk(KERN_EMERG "\n" KERN_EMERG "Double Fault\n");
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#ifdef CONFIG_DEBUG_DOUBLEFAULT_PRINT
	if (((long)fp->seqstat &  SEQSTAT_EXCAUSE) == VEC_UNCOV) {
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		unsigned int cpu = smp_processor_id();
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		char buf[150];
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		decode_address(buf, cpu_pda[cpu].retx);
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		printk(KERN_EMERG "While handling exception (EXCAUSE = 0x%x) at %s:\n",
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			(unsigned int)cpu_pda[cpu].seqstat & SEQSTAT_EXCAUSE, buf);
		decode_address(buf, cpu_pda[cpu].dcplb_fault_addr);
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		printk(KERN_NOTICE "   DCPLB_FAULT_ADDR: %s\n", buf);
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		decode_address(buf, cpu_pda[cpu].icplb_fault_addr);
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		printk(KERN_NOTICE "   ICPLB_FAULT_ADDR: %s\n", buf);

		decode_address(buf, fp->retx);
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		printk(KERN_NOTICE "The instruction at %s caused a double exception\n", buf);
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	} else
#endif
	{
		dump_bfin_process(fp);
		dump_bfin_mem(fp);
		show_regs(fp);
	}
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#endif
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	panic("Double Fault - unrecoverable event\n");

}

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asmlinkage void trap_c(struct pt_regs *fp)
{
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#ifdef CONFIG_DEBUG_BFIN_HWTRACE_ON
	int j;
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#endif
#ifdef CONFIG_DEBUG_HUNT_FOR_ZERO
	unsigned int cpu = smp_processor_id();
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#endif
	int sig = 0;
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	siginfo_t info;
	unsigned long trapnr = fp->seqstat & SEQSTAT_EXCAUSE;

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	trace_buffer_save(j);

	/* Important - be very careful dereferncing pointers - will lead to
	 * double faults if the stack has become corrupt
	 */

	/* If the fault was caused by a kernel thread, or interrupt handler
	 * we will kernel panic, so the system reboots.
	 * If KGDB is enabled, don't set this for kernel breakpoints
	*/
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	/* TODO: check to see if we are in some sort of deferred HWERR
	 * that we should be able to recover from, not kernel panic
	 */
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	if ((bfin_read_IPEND() & 0xFFC0) && (trapnr != VEC_STEP)
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#ifdef CONFIG_KGDB
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		&& (trapnr != VEC_EXCPT02)
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#endif
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	){
		console_verbose();
		oops_in_progress = 1;
	} else if (current) {
		if (current->mm == NULL) {
			console_verbose();
			oops_in_progress = 1;
		}
	}
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	/* trap_c() will be called for exceptions. During exceptions
	 * processing, the pc value should be set with retx value.
	 * With this change we can cleanup some code in signal.c- TODO
	 */
	fp->orig_pc = fp->retx;
	/* printk("exception: 0x%x, ipend=%x, reti=%x, retx=%x\n",
		trapnr, fp->ipend, fp->pc, fp->retx); */

	/* send the appropriate signal to the user program */
	switch (trapnr) {

	/* This table works in conjuction with the one in ./mach-common/entry.S
	 * Some exceptions are handled there (in assembly, in exception space)
	 * Some are handled here, (in C, in interrupt space)
	 * Some, like CPLB, are handled in both, where the normal path is
	 * handled in assembly/exception space, and the error path is handled
	 * here
	 */

	/* 0x00 - Linux Syscall, getting here is an error */
	/* 0x01 - userspace gdb breakpoint, handled here */
	case VEC_EXCPT01:
		info.si_code = TRAP_ILLTRAP;
		sig = SIGTRAP;
		CHK_DEBUGGER_TRAP_MAYBE();
		/* Check if this is a breakpoint in kernel space */
		if (fp->ipend & 0xffc0)
			return;
		else
			break;
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	/* 0x03 - User Defined, userspace stack overflow */
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	case VEC_EXCPT03:
		info.si_code = SEGV_STACKFLOW;
		sig = SIGSEGV;
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		verbose_printk(KERN_NOTICE EXC_0x03(KERN_NOTICE));
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		CHK_DEBUGGER_TRAP_MAYBE();
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		break;
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	/* 0x02 - KGDB initial connection and break signal trap */
	case VEC_EXCPT02:
#ifdef CONFIG_KGDB
		info.si_code = TRAP_ILLTRAP;
		sig = SIGTRAP;
		CHK_DEBUGGER_TRAP();
		return;
#endif
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	/* 0x04 - User Defined */
	/* 0x05 - User Defined */
	/* 0x06 - User Defined */
	/* 0x07 - User Defined */
	/* 0x08 - User Defined */
	/* 0x09 - User Defined */
	/* 0x0A - User Defined */
	/* 0x0B - User Defined */
	/* 0x0C - User Defined */
	/* 0x0D - User Defined */
	/* 0x0E - User Defined */
	/* 0x0F - User Defined */
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	/* If we got here, it is most likely that someone was trying to use a
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	 * custom exception handler, and it is not actually installed properly
	 */
	case VEC_EXCPT04 ... VEC_EXCPT15:
		info.si_code = ILL_ILLPARAOP;
		sig = SIGILL;
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		verbose_printk(KERN_NOTICE EXC_0x04(KERN_NOTICE));
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		CHK_DEBUGGER_TRAP_MAYBE();
		break;
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	/* 0x10 HW Single step, handled here */
	case VEC_STEP:
		info.si_code = TRAP_STEP;
		sig = SIGTRAP;
		CHK_DEBUGGER_TRAP_MAYBE();
		/* Check if this is a single step in kernel space */
		if (fp->ipend & 0xffc0)
			return;
		else
			break;
	/* 0x11 - Trace Buffer Full, handled here */
	case VEC_OVFLOW:
		info.si_code = TRAP_TRACEFLOW;
		sig = SIGTRAP;
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		verbose_printk(KERN_NOTICE EXC_0x11(KERN_NOTICE));
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		CHK_DEBUGGER_TRAP_MAYBE();
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		break;
	/* 0x12 - Reserved, Caught by default */
	/* 0x13 - Reserved, Caught by default */
	/* 0x14 - Reserved, Caught by default */
	/* 0x15 - Reserved, Caught by default */
	/* 0x16 - Reserved, Caught by default */
	/* 0x17 - Reserved, Caught by default */
	/* 0x18 - Reserved, Caught by default */
	/* 0x19 - Reserved, Caught by default */
	/* 0x1A - Reserved, Caught by default */
	/* 0x1B - Reserved, Caught by default */
	/* 0x1C - Reserved, Caught by default */
	/* 0x1D - Reserved, Caught by default */
	/* 0x1E - Reserved, Caught by default */
	/* 0x1F - Reserved, Caught by default */
	/* 0x20 - Reserved, Caught by default */
	/* 0x21 - Undefined Instruction, handled here */
	case VEC_UNDEF_I:
		info.si_code = ILL_ILLOPC;
		sig = SIGILL;
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		verbose_printk(KERN_NOTICE EXC_0x21(KERN_NOTICE));
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		CHK_DEBUGGER_TRAP_MAYBE();
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		break;
	/* 0x22 - Illegal Instruction Combination, handled here */
	case VEC_ILGAL_I:
		info.si_code = ILL_ILLPARAOP;
		sig = SIGILL;
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		verbose_printk(KERN_NOTICE EXC_0x22(KERN_NOTICE));
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		CHK_DEBUGGER_TRAP_MAYBE();
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		break;
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	/* 0x23 - Data CPLB protection violation, handled here */
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	case VEC_CPLB_VL:
		info.si_code = ILL_CPLB_VI;
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		sig = SIGBUS;
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		verbose_printk(KERN_NOTICE EXC_0x23(KERN_NOTICE));
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		CHK_DEBUGGER_TRAP_MAYBE();
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		break;
	/* 0x24 - Data access misaligned, handled here */
	case VEC_MISALI_D:
		info.si_code = BUS_ADRALN;
		sig = SIGBUS;
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		verbose_printk(KERN_NOTICE EXC_0x24(KERN_NOTICE));
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		CHK_DEBUGGER_TRAP_MAYBE();
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		break;
	/* 0x25 - Unrecoverable Event, handled here */
	case VEC_UNCOV:
		info.si_code = ILL_ILLEXCPT;
		sig = SIGILL;
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		verbose_printk(KERN_NOTICE EXC_0x25(KERN_NOTICE));
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		CHK_DEBUGGER_TRAP_MAYBE();
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		break;
	/* 0x26 - Data CPLB Miss, normal case is handled in _cplb_hdr,
		error case is handled here */
	case VEC_CPLB_M:
		info.si_code = BUS_ADRALN;
		sig = SIGBUS;
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		verbose_printk(KERN_NOTICE EXC_0x26(KERN_NOTICE));
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		break;
	/* 0x27 - Data CPLB Multiple Hits - Linux Trap Zero, handled here */
	case VEC_CPLB_MHIT:
		info.si_code = ILL_CPLB_MULHIT;
		sig = SIGSEGV;
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#ifdef CONFIG_DEBUG_HUNT_FOR_ZERO
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		if (cpu_pda[cpu].dcplb_fault_addr < FIXED_CODE_START)
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			verbose_printk(KERN_NOTICE "NULL pointer access\n");
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		else
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#endif
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			verbose_printk(KERN_NOTICE EXC_0x27(KERN_NOTICE));
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		CHK_DEBUGGER_TRAP_MAYBE();
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		break;
	/* 0x28 - Emulation Watchpoint, handled here */
	case VEC_WATCH:
		info.si_code = TRAP_WATCHPT;
		sig = SIGTRAP;
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		pr_debug(EXC_0x28(KERN_DEBUG));
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		CHK_DEBUGGER_TRAP_MAYBE();
		/* Check if this is a watchpoint in kernel space */
		if (fp->ipend & 0xffc0)
			return;
		else
			break;
#ifdef CONFIG_BF535
	/* 0x29 - Instruction fetch access error (535 only) */
	case VEC_ISTRU_VL:      /* ADSP-BF535 only (MH) */
		info.si_code = BUS_OPFETCH;
		sig = SIGBUS;
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		verbose_printk(KERN_NOTICE "BF535: VEC_ISTRU_VL\n");
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		CHK_DEBUGGER_TRAP_MAYBE();
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		break;
#else
	/* 0x29 - Reserved, Caught by default */
#endif
	/* 0x2A - Instruction fetch misaligned, handled here */
	case VEC_MISALI_I:
		info.si_code = BUS_ADRALN;
		sig = SIGBUS;
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		verbose_printk(KERN_NOTICE EXC_0x2A(KERN_NOTICE));
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		CHK_DEBUGGER_TRAP_MAYBE();
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		break;
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	/* 0x2B - Instruction CPLB protection violation, handled here */
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	case VEC_CPLB_I_VL:
		info.si_code = ILL_CPLB_VI;
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		sig = SIGBUS;
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		verbose_printk(KERN_NOTICE EXC_0x2B(KERN_NOTICE));
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		CHK_DEBUGGER_TRAP_MAYBE();
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		break;
	/* 0x2C - Instruction CPLB miss, handled in _cplb_hdr */
	case VEC_CPLB_I_M:
		info.si_code = ILL_CPLB_MISS;
		sig = SIGBUS;
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		verbose_printk(KERN_NOTICE EXC_0x2C(KERN_NOTICE));
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		break;
	/* 0x2D - Instruction CPLB Multiple Hits, handled here */
	case VEC_CPLB_I_MHIT:
		info.si_code = ILL_CPLB_MULHIT;
		sig = SIGSEGV;
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#ifdef CONFIG_DEBUG_HUNT_FOR_ZERO
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		if (cpu_pda[cpu].icplb_fault_addr < FIXED_CODE_START)
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			verbose_printk(KERN_NOTICE "Jump to NULL address\n");
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		else
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#endif
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			verbose_printk(KERN_NOTICE EXC_0x2D(KERN_NOTICE));
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		CHK_DEBUGGER_TRAP_MAYBE();
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		break;
	/* 0x2E - Illegal use of Supervisor Resource, handled here */
	case VEC_ILL_RES:
		info.si_code = ILL_PRVOPC;
		sig = SIGILL;
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		verbose_printk(KERN_NOTICE EXC_0x2E(KERN_NOTICE));
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		CHK_DEBUGGER_TRAP_MAYBE();
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		break;
	/* 0x2F - Reserved, Caught by default */
	/* 0x30 - Reserved, Caught by default */
	/* 0x31 - Reserved, Caught by default */
	/* 0x32 - Reserved, Caught by default */
	/* 0x33 - Reserved, Caught by default */
	/* 0x34 - Reserved, Caught by default */
	/* 0x35 - Reserved, Caught by default */
	/* 0x36 - Reserved, Caught by default */
	/* 0x37 - Reserved, Caught by default */
	/* 0x38 - Reserved, Caught by default */
	/* 0x39 - Reserved, Caught by default */
	/* 0x3A - Reserved, Caught by default */
	/* 0x3B - Reserved, Caught by default */
	/* 0x3C - Reserved, Caught by default */
	/* 0x3D - Reserved, Caught by default */
	/* 0x3E - Reserved, Caught by default */
	/* 0x3F - Reserved, Caught by default */
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	case VEC_HWERR:
		info.si_code = BUS_ADRALN;
		sig = SIGBUS;
		switch (fp->seqstat & SEQSTAT_HWERRCAUSE) {
		/* System MMR Error */
		case (SEQSTAT_HWERRCAUSE_SYSTEM_MMR):
			info.si_code = BUS_ADRALN;
			sig = SIGBUS;
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			verbose_printk(KERN_NOTICE HWC_x2(KERN_NOTICE));
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			break;
		/* External Memory Addressing Error */
		case (SEQSTAT_HWERRCAUSE_EXTERN_ADDR):
			info.si_code = BUS_ADRERR;
			sig = SIGBUS;
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			verbose_printk(KERN_NOTICE HWC_x3(KERN_NOTICE));
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			break;
		/* Performance Monitor Overflow */
		case (SEQSTAT_HWERRCAUSE_PERF_FLOW):
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			verbose_printk(KERN_NOTICE HWC_x12(KERN_NOTICE));
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			break;
		/* RAISE 5 instruction */
		case (SEQSTAT_HWERRCAUSE_RAISE_5):
			printk(KERN_NOTICE HWC_x18(KERN_NOTICE));
			break;
		default:        /* Reserved */
			printk(KERN_NOTICE HWC_default(KERN_NOTICE));
			break;
		}
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		CHK_DEBUGGER_TRAP_MAYBE();
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		break;
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	/*
	 * We should be handling all known exception types above,
	 * if we get here we hit a reserved one, so panic
	 */
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	default:
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		oops_in_progress = 1;
		info.si_code = ILL_ILLPARAOP;
		sig = SIGILL;
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		verbose_printk(KERN_EMERG "Caught Unhandled Exception, code = %08lx\n",
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			(fp->seqstat & SEQSTAT_EXCAUSE));
538
		CHK_DEBUGGER_TRAP_MAYBE();
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539 540 541
		break;
	}

542 543 544
	BUG_ON(sig == 0);

	if (sig != SIGTRAP) {
545
		dump_bfin_process(fp);
546
		dump_bfin_mem(fp);
547
		show_regs(fp);
548 549 550 551

		/* Print out the trace buffer if it makes sense */
#ifndef CONFIG_DEBUG_BFIN_NO_KERN_HWTRACE
		if (trapnr == VEC_CPLB_I_M || trapnr == VEC_CPLB_M)
552
			verbose_printk(KERN_NOTICE "No trace since you do not have "
553 554 555 556 557
				"CONFIG_DEBUG_BFIN_NO_KERN_HWTRACE enabled\n"
				KERN_NOTICE "\n");
		else
#endif
			dump_bfin_trace_buffer();
558

559
		if (oops_in_progress) {
560
			/* Dump the current kernel stack */
561
			verbose_printk(KERN_NOTICE "\n" KERN_NOTICE "Kernel Stack\n");
562
			show_stack(current, NULL);
563
			print_modules();
564
#ifndef CONFIG_ACCESS_CHECK
565
			verbose_printk(KERN_EMERG "Please turn on "
566
			       "CONFIG_ACCESS_CHECK\n");
567
#endif
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568
			panic("Kernel exception");
569
		} else {
570
#ifdef CONFIG_DEBUG_VERBOSE
571
			unsigned long *stack;
572 573
			/* Dump the user space stack */
			stack = (unsigned long *)rdusp();
574
			verbose_printk(KERN_NOTICE "Userspace Stack\n");
575
			show_stack(NULL, stack);
576
#endif
577
		}
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578
	}
579

580 581 582 583 584 585 586 587 588
#ifdef CONFIG_IPIPE
	if (!ipipe_trap_notify(fp->seqstat & 0x3f, fp))
#endif
	{
		info.si_signo = sig;
		info.si_errno = 0;
		info.si_addr = (void __user *)fp->pc;
		force_sig_info(sig, &info, current);
	}
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589 590 591 592 593 594 595

	trace_buffer_restore(j);
	return;
}

/* Typical exception handling routines	*/

596 597
#define EXPAND_LEN ((1 << CONFIG_DEBUG_BFIN_HWTRACE_EXPAND_LEN) * 256 - 1)

598 599 600 601
/*
 * Similar to get_user, do some address checking, then dereference
 * Return true on sucess, false on bad address
 */
602
static bool get_instruction(unsigned short *val, unsigned short *address)
603 604 605 606 607 608 609 610 611 612 613 614 615 616 617 618 619 620 621 622
{

	unsigned long addr;

	addr = (unsigned long)address;

	/* Check for odd addresses */
	if (addr & 0x1)
		return false;

	/* Check that things do not wrap around */
	if (addr > (addr + 2))
		return false;

	/*
	 * Since we are in exception context, we need to do a little address checking
	 * We need to make sure we are only accessing valid memory, and
	 * we don't read something in the async space that can hang forever
	 */
	if ((addr >= FIXED_CODE_START && (addr + 2) <= physical_mem_end) ||
623
#if L2_LENGTH != 0
624 625 626 627 628 629 630 631 632 633 634 635 636 637 638 639 640 641 642 643 644 645 646 647
	    (addr >= L2_START && (addr + 2) <= (L2_START + L2_LENGTH)) ||
#endif
	    (addr >= BOOT_ROM_START && (addr + 2) <= (BOOT_ROM_START + BOOT_ROM_LENGTH)) ||
#if L1_DATA_A_LENGTH != 0
	    (addr >= L1_DATA_A_START && (addr + 2) <= (L1_DATA_A_START + L1_DATA_A_LENGTH)) ||
#endif
#if L1_DATA_B_LENGTH != 0
	    (addr >= L1_DATA_B_START && (addr + 2) <= (L1_DATA_B_START + L1_DATA_B_LENGTH)) ||
#endif
	    (addr >= L1_SCRATCH_START && (addr + 2) <= (L1_SCRATCH_START + L1_SCRATCH_LENGTH)) ||
	    (!(bfin_read_EBIU_AMBCTL0() & B0RDYEN) &&
	       addr >= ASYNC_BANK0_BASE && (addr + 2) <= (ASYNC_BANK0_BASE + ASYNC_BANK0_SIZE)) ||
	    (!(bfin_read_EBIU_AMBCTL0() & B1RDYEN) &&
	       addr >= ASYNC_BANK1_BASE && (addr + 2) <= (ASYNC_BANK1_BASE + ASYNC_BANK1_SIZE)) ||
	    (!(bfin_read_EBIU_AMBCTL1() & B2RDYEN) &&
	       addr >= ASYNC_BANK2_BASE && (addr + 2) <= (ASYNC_BANK2_BASE + ASYNC_BANK1_SIZE)) ||
	    (!(bfin_read_EBIU_AMBCTL1() & B3RDYEN) &&
	      addr >= ASYNC_BANK3_BASE && (addr + 2) <= (ASYNC_BANK3_BASE + ASYNC_BANK1_SIZE))) {
		*val = *address;
		return true;
	}

#if L1_CODE_LENGTH != 0
	if (addr >= L1_CODE_START && (addr + 2) <= (L1_CODE_START + L1_CODE_LENGTH)) {
648
		isram_memcpy(val, address, 2);
649 650 651 652 653 654 655 656
		return true;
	}
#endif


	return false;
}

657
/*
658 659 660 661 662
 * decode the instruction if we are printing out the trace, as it
 * makes things easier to follow, without running it through objdump
 * These are the normal instructions which cause change of flow, which
 * would be at the source of the trace buffer
 */
663
#if defined(CONFIG_DEBUG_VERBOSE) && defined(CONFIG_DEBUG_BFIN_HWTRACE_ON)
664
static void decode_instruction(unsigned short *address)
665 666 667 668 669
{
	unsigned short opcode;

	if (get_instruction(&opcode, address)) {
		if (opcode == 0x0010)
670
			verbose_printk("RTS");
671
		else if (opcode == 0x0011)
672
			verbose_printk("RTI");
673
		else if (opcode == 0x0012)
674
			verbose_printk("RTX");
675
		else if (opcode >= 0x0050 && opcode <= 0x0057)
676
			verbose_printk("JUMP (P%i)", opcode & 7);
677
		else if (opcode >= 0x0060 && opcode <= 0x0067)
678
			verbose_printk("CALL (P%i)", opcode & 7);
679
		else if (opcode >= 0x0070 && opcode <= 0x0077)
680
			verbose_printk("CALL (PC+P%i)", opcode & 7);
681
		else if (opcode >= 0x0080 && opcode <= 0x0087)
682
			verbose_printk("JUMP (PC+P%i)", opcode & 7);
683
		else if ((opcode >= 0x1000 && opcode <= 0x13FF) || (opcode >= 0x1800 && opcode <= 0x1BFF))
684
			verbose_printk("IF !CC JUMP");
685
		else if ((opcode >= 0x1400 && opcode <= 0x17ff) || (opcode >= 0x1c00 && opcode <= 0x1fff))
686
			verbose_printk("IF CC JUMP");
687
		else if (opcode >= 0x2000 && opcode <= 0x2fff)
688
			verbose_printk("JUMP.S");
689
		else if (opcode >= 0xe080 && opcode <= 0xe0ff)
690
			verbose_printk("LSETUP");
691
		else if (opcode >= 0xe200 && opcode <= 0xe2ff)
692
			verbose_printk("JUMP.L");
693
		else if (opcode >= 0xe300 && opcode <= 0xe3ff)
694
			verbose_printk("CALL pcrel");
695
		else
696
			verbose_printk("0x%04x", opcode);
697 698 699
	}

}
700
#endif
701

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702 703
void dump_bfin_trace_buffer(void)
{
704
#ifdef CONFIG_DEBUG_VERBOSE
705 706
#ifdef CONFIG_DEBUG_BFIN_HWTRACE_ON
	int tflags, i = 0;
707
	char buf[150];
708
	unsigned short *addr;
709 710 711 712
#ifdef CONFIG_DEBUG_BFIN_HWTRACE_EXPAND
	int j, index;
#endif

B
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713 714
	trace_buffer_save(tflags);

715
	printk(KERN_NOTICE "Hardware Trace:\n");
716

717 718 719 720
#ifdef CONFIG_DEBUG_BFIN_HWTRACE_EXPAND
	printk(KERN_NOTICE "WARNING: Expanded trace turned on - can not trace exceptions\n");
#endif

B
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721
	if (likely(bfin_read_TBUFSTAT() & TBUFCNT)) {
722
		for (; bfin_read_TBUFSTAT() & TBUFCNT; i++) {
723 724
			decode_address(buf, (unsigned long)bfin_read_TBUF());
			printk(KERN_NOTICE "%4i Target : %s\n", i, buf);
725 726 727
			addr = (unsigned short *)bfin_read_TBUF();
			decode_address(buf, (unsigned long)addr);
			printk(KERN_NOTICE "     Source : %s ", buf);
728
			decode_instruction(addr);
729
			printk("\n");
B
Bryan Wu 已提交
730 731 732
		}
	}

733 734
#ifdef CONFIG_DEBUG_BFIN_HWTRACE_EXPAND
	if (trace_buff_offset)
735
		index = trace_buff_offset / 4;
736 737 738 739 740
	else
		index = EXPAND_LEN;

	j = (1 << CONFIG_DEBUG_BFIN_HWTRACE_EXPAND_LEN) * 128;
	while (j) {
741 742
		decode_address(buf, software_trace_buff[index]);
		printk(KERN_NOTICE "%4i Target : %s\n", i, buf);
743 744 745
		index -= 1;
		if (index < 0 )
			index = EXPAND_LEN;
746
		decode_address(buf, software_trace_buff[index]);
747 748 749
		printk(KERN_NOTICE "     Source : %s ", buf);
		decode_instruction((unsigned short *)software_trace_buff[index]);
		printk("\n");
750 751 752 753 754 755 756 757
		index -= 1;
		if (index < 0)
			index = EXPAND_LEN;
		j--;
		i++;
	}
#endif

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758
	trace_buffer_restore(tflags);
759
#endif
760
#endif
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761 762 763
}
EXPORT_SYMBOL(dump_bfin_trace_buffer);

764 765 766 767
/*
 * Checks to see if the address pointed to is either a
 * 16-bit CALL instruction, or a 32-bit CALL instruction
 */
768
static bool is_bfin_call(unsigned short *addr)
B
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769
{
770 771
	unsigned short opcode = 0, *ins_addr;
	ins_addr = (unsigned short *)addr;
B
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772

773 774
	if (!get_instruction(&opcode, ins_addr))
		return false;
B
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775

776 777 778 779 780 781 782
	if ((opcode >= 0x0060 && opcode <= 0x0067) ||
	    (opcode >= 0x0070 && opcode <= 0x0077))
		return true;

	ins_addr--;
	if (!get_instruction(&opcode, ins_addr))
		return false;
B
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783

784 785 786 787 788 789
	if (opcode >= 0xE300 && opcode <= 0xE3FF)
		return true;

	return false;

}
790

B
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791 792
void show_stack(struct task_struct *task, unsigned long *stack)
{
793
#ifdef CONFIG_PRINTK
794 795 796 797
	unsigned int *addr, *endstack, *fp = 0, *frame;
	unsigned short *ins_addr;
	char buf[150];
	unsigned int i, j, ret_addr, frame_no = 0;
B
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798

799 800 801 802
	/*
	 * If we have been passed a specific stack, use that one otherwise
	 *    if we have been passed a task structure, use that, otherwise
	 *    use the stack of where the variable "stack" exists
B
Bryan Wu 已提交
803 804
	 */

805 806 807
	if (stack == NULL) {
		if (task) {
			/* We know this is a kernel stack, so this is the start/end */
B
Bryan Wu 已提交
808
			stack = (unsigned long *)task->thread.ksp;
809 810 811
			endstack = (unsigned int *)(((unsigned int)(stack) & ~(THREAD_SIZE - 1)) + THREAD_SIZE);
		} else {
			/* print out the existing stack info */
B
Bryan Wu 已提交
812
			stack = (unsigned long *)&stack;
813 814 815 816 817
			endstack = (unsigned int *)PAGE_ALIGN((unsigned int)stack);
		}
	} else
		endstack = (unsigned int *)PAGE_ALIGN((unsigned int)stack);

818
	printk(KERN_NOTICE "Stack info:\n");
819
	decode_address(buf, (unsigned int)stack);
820 821
	printk(KERN_NOTICE " SP: [0x%p] %s\n", stack, buf);

822 823 824 825 826 827 828 829 830 831 832 833 834 835 836 837 838 839 840 841 842 843
	addr = (unsigned int *)((unsigned int)stack & ~0x3F);

	/* First thing is to look for a frame pointer */
	for (addr = (unsigned int *)((unsigned int)stack & ~0xF), i = 0;
		addr < endstack; addr++, i++) {
		if (*addr & 0x1)
			continue;
		ins_addr = (unsigned short *)*addr;
		ins_addr--;
		if (is_bfin_call(ins_addr))
			fp = addr - 1;

		if (fp) {
			/* Let's check to see if it is a frame pointer */
			while (fp >= (addr - 1) && fp < endstack && fp)
				fp = (unsigned int *)*fp;
			if (fp == 0 || fp == endstack) {
				fp = addr - 1;
				break;
			}
			fp = 0;
		}
B
Bryan Wu 已提交
844
	}
845 846
	if (fp) {
		frame = fp;
847
		printk(KERN_NOTICE " FP: (0x%p)\n", fp);
848 849
	} else
		frame = 0;
B
Bryan Wu 已提交
850

851 852 853 854 855 856
	/*
	 * Now that we think we know where things are, we
	 * walk the stack again, this time printing things out
	 * incase there is no frame pointer, we still look for
	 * valid return addresses
	 */
B
Bryan Wu 已提交
857

858 859 860 861 862 863 864 865 866 867 868 869 870 871 872 873 874 875 876 877 878 879 880 881 882 883 884 885 886 887 888 889 890 891 892 893 894 895 896 897 898 899 900 901 902 903 904 905 906 907 908 909 910
	/* First time print out data, next time, print out symbols */
	for (j = 0; j <= 1; j++) {
		if (j)
			printk(KERN_NOTICE "Return addresses in stack:\n");
		else
			printk(KERN_NOTICE " Memory from 0x%08lx to %p", ((long unsigned int)stack & ~0xF), endstack);

		fp = frame;
		frame_no = 0;

		for (addr = (unsigned int *)((unsigned int)stack & ~0xF), i = 0;
		     addr <= endstack; addr++, i++) {

			ret_addr = 0;
			if (!j && i % 8 == 0)
				printk("\n" KERN_NOTICE "%p:",addr);

			/* if it is an odd address, or zero, just skip it */
			if (*addr & 0x1 || !*addr)
				goto print;

			ins_addr = (unsigned short *)*addr;

			/* Go back one instruction, and see if it is a CALL */
			ins_addr--;
			ret_addr = is_bfin_call(ins_addr);
 print:
			if (!j && stack == (unsigned long *)addr)
				printk("[%08x]", *addr);
			else if (ret_addr)
				if (j) {
					decode_address(buf, (unsigned int)*addr);
					if (frame == addr) {
						printk(KERN_NOTICE "   frame %2i : %s\n", frame_no, buf);
						continue;
					}
					printk(KERN_NOTICE "    address : %s\n", buf);
				} else
					printk("<%08x>", *addr);
			else if (fp == addr) {
				if (j)
					frame = addr+1;
				else
					printk("(%08x)", *addr);

				fp = (unsigned int *)*addr;
				frame_no++;

			} else if (!j)
				printk(" %08x ", *addr);
		}
		if (!j)
			printk("\n");
B
Bryan Wu 已提交
911
	}
912
#endif
B
Bryan Wu 已提交
913 914 915 916 917
}

void dump_stack(void)
{
	unsigned long stack;
918
#ifdef CONFIG_DEBUG_BFIN_HWTRACE_ON
B
Bryan Wu 已提交
919
	int tflags;
920
#endif
B
Bryan Wu 已提交
921 922 923 924 925 926 927
	trace_buffer_save(tflags);
	dump_bfin_trace_buffer();
	show_stack(current, &stack);
	trace_buffer_restore(tflags);
}
EXPORT_SYMBOL(dump_stack);

928
void dump_bfin_process(struct pt_regs *fp)
B
Bryan Wu 已提交
929
{
930
#ifdef CONFIG_DEBUG_VERBOSE
931 932 933 934 935
	/* We should be able to look at fp->ipend, but we don't push it on the
	 * stack all the time, so do this until we fix that */
	unsigned int context = bfin_read_IPEND();

	if (oops_in_progress)
936
		verbose_printk(KERN_EMERG "Kernel OOPS in progress\n");
937

938
	if (context & 0x0020 && (fp->seqstat & SEQSTAT_EXCAUSE) == VEC_HWERR)
939
		verbose_printk(KERN_NOTICE "HW Error context\n");
940
	else if (context & 0x0020)
941
		verbose_printk(KERN_NOTICE "Deferred Exception context\n");
942
	else if (context & 0x3FC0)
943
		verbose_printk(KERN_NOTICE "Interrupt context\n");
944
	else if (context & 0x4000)
945
		verbose_printk(KERN_NOTICE "Deferred Interrupt context\n");
946
	else if (context & 0x8000)
947
		verbose_printk(KERN_NOTICE "Kernel process context\n");
948

949 950 951
	/* Because we are crashing, and pointers could be bad, we check things
	 * pretty closely before we use them
	 */
952 953
	if ((unsigned long)current >= FIXED_CODE_START &&
	    !((unsigned long)current & 0x3) && current->pid) {
954
		verbose_printk(KERN_NOTICE "CURRENT PROCESS:\n");
955
		if (current->comm >= (char *)FIXED_CODE_START)
956
			verbose_printk(KERN_NOTICE "COMM=%s PID=%d\n",
957 958
				current->comm, current->pid);
		else
959
			verbose_printk(KERN_NOTICE "COMM= invalid\n");
960

961
		printk(KERN_NOTICE "CPU = %d\n", current_thread_info()->cpu);
962
		if (!((unsigned long)current->mm & 0x3) && (unsigned long)current->mm >= FIXED_CODE_START)
963
			verbose_printk(KERN_NOTICE  "TEXT = 0x%p-0x%p        DATA = 0x%p-0x%p\n"
964 965 966 967 968 969 970 971 972 973
				KERN_NOTICE " BSS = 0x%p-0x%p  USER-STACK = 0x%p\n"
				KERN_NOTICE "\n",
				(void *)current->mm->start_code,
				(void *)current->mm->end_code,
				(void *)current->mm->start_data,
				(void *)current->mm->end_data,
				(void *)current->mm->end_data,
				(void *)current->mm->brk,
				(void *)current->mm->start_stack);
		else
974
			verbose_printk(KERN_NOTICE "invalid mm\n");
975
	} else
976
		verbose_printk(KERN_NOTICE "\n" KERN_NOTICE
977
		     "No Valid process in current context\n");
978
#endif
979
}
980

981
void dump_bfin_mem(struct pt_regs *fp)
982
{
983
#ifdef CONFIG_DEBUG_VERBOSE
984 985
	unsigned short *addr, *erraddr, val = 0, err = 0;
	char sti = 0, buf[6];
B
Bryan Wu 已提交
986

987
	erraddr = (void *)fp->pc;
988

989
	verbose_printk(KERN_NOTICE "return address: [0x%p]; contents of:", erraddr);
990 991 992 993 994

	for (addr = (unsigned short *)((unsigned long)erraddr & ~0xF) - 0x10;
	     addr < (unsigned short *)((unsigned long)erraddr & ~0xF) + 0x10;
	     addr++) {
		if (!((unsigned long)addr & 0xF))
995
			verbose_printk("\n" KERN_NOTICE "0x%p: ", addr);
996

997
		if (!get_instruction(&val, addr)) {
998 999 1000 1001 1002 1003
				val = 0;
				sprintf(buf, "????");
		} else
			sprintf(buf, "%04x", val);

		if (addr == erraddr) {
1004
			verbose_printk("[%s]", buf);
1005 1006
			err = val;
		} else
1007
			verbose_printk(" %s ", buf);
1008 1009 1010 1011 1012 1013 1014 1015

		/* Do any previous instructions turn on interrupts? */
		if (addr <= erraddr &&				/* in the past */
		    ((val >= 0x0040 && val <= 0x0047) ||	/* STI instruction */
		      val == 0x017b))				/* [SP++] = RETI */
			sti = 1;
	}

1016
	verbose_printk("\n");
1017 1018 1019 1020

	/* Hardware error interrupts can be deferred */
	if (unlikely(sti && (fp->seqstat & SEQSTAT_EXCAUSE) == VEC_HWERR &&
	    oops_in_progress)){
1021
		verbose_printk(KERN_NOTICE "Looks like this was a deferred error - sorry\n");
B
Bryan Wu 已提交
1022
#ifndef CONFIG_DEBUG_HWERR
1023
		verbose_printk(KERN_NOTICE "The remaining message may be meaningless\n"
1024 1025 1026 1027 1028 1029 1030 1031 1032 1033 1034 1035 1036
			KERN_NOTICE "You should enable CONFIG_DEBUG_HWERR to get a"
			 " better idea where it came from\n");
#else
		/* If we are handling only one peripheral interrupt
		 * and current mm and pid are valid, and the last error
		 * was in that user space process's text area
		 * print it out - because that is where the problem exists
		 */
		if ((!(((fp)->ipend & ~0x30) & (((fp)->ipend & ~0x30) - 1))) &&
		     (current->pid && current->mm)) {
			/* And the last RETI points to the current userspace context */
			if ((fp + 1)->pc >= current->mm->start_code &&
			    (fp + 1)->pc <= current->mm->end_code) {
1037 1038
				verbose_printk(KERN_NOTICE "It might be better to look around here : \n");
				verbose_printk(KERN_NOTICE "-------------------------------------------\n");
1039
				show_regs(fp + 1);
1040
				verbose_printk(KERN_NOTICE "-------------------------------------------\n");
1041
			}
B
Bryan Wu 已提交
1042
		}
1043 1044
#endif
	}
1045
#endif
1046 1047 1048 1049
}

void show_regs(struct pt_regs *fp)
{
1050
#ifdef CONFIG_DEBUG_VERBOSE
1051
	char buf [150];
1052 1053 1054
	struct irqaction *action;
	unsigned int i;
	unsigned long flags;
1055
	unsigned int cpu = smp_processor_id();
1056

1057 1058
	verbose_printk(KERN_NOTICE "\n" KERN_NOTICE "SEQUENCER STATUS:\t\t%s\n", print_tainted());
	verbose_printk(KERN_NOTICE " SEQSTAT: %08lx  IPEND: %04lx  SYSCFG: %04lx\n",
1059
		(long)fp->seqstat, fp->ipend, fp->syscfg);
1060
	if ((fp->seqstat & SEQSTAT_EXCAUSE) == VEC_HWERR) {
1061
		verbose_printk(KERN_NOTICE "  HWERRCAUSE: 0x%lx\n",
1062 1063 1064 1065
			(fp->seqstat & SEQSTAT_HWERRCAUSE) >> 14);
#ifdef EBIU_ERRMST
		/* If the error was from the EBIU, print it out */
		if (bfin_read_EBIU_ERRMST() & CORE_ERROR) {
1066
			verbose_printk(KERN_NOTICE "  EBIU Error Reason  : 0x%04x\n",
1067
				bfin_read_EBIU_ERRMST());
1068
			verbose_printk(KERN_NOTICE "  EBIU Error Address : 0x%08x\n",
1069 1070 1071 1072
				bfin_read_EBIU_ERRADD());
		}
#endif
	}
1073
	verbose_printk(KERN_NOTICE "  EXCAUSE   : 0x%lx\n",
1074
		fp->seqstat & SEQSTAT_EXCAUSE);
1075 1076 1077
	for (i = 6; i <= 15 ; i++) {
		if (fp->ipend & (1 << i)) {
			decode_address(buf, bfin_read32(EVT0 + 4*i));
1078
			verbose_printk(KERN_NOTICE "  physical IVG%i asserted : %s\n", i, buf);
1079 1080 1081 1082 1083 1084 1085 1086 1087 1088 1089 1090
		}
	}

	/* if no interrupts are going off, don't print this out */
	if (fp->ipend & ~0x3F) {
		for (i = 0; i < (NR_IRQS - 1); i++) {
			spin_lock_irqsave(&irq_desc[i].lock, flags);
			action = irq_desc[i].action;
			if (!action)
				goto unlock;

			decode_address(buf, (unsigned int)action->handler);
1091
			verbose_printk(KERN_NOTICE "  logical irq %3d mapped  : %s", i, buf);
1092 1093
			for (action = action->next; action; action = action->next) {
				decode_address(buf, (unsigned int)action->handler);
1094
				verbose_printk(", %s", buf);
1095
			}
1096
			verbose_printk("\n");
1097 1098 1099 1100
unlock:
			spin_unlock_irqrestore(&irq_desc[i].lock, flags);
		}
	}
1101

1102
	decode_address(buf, fp->rete);
1103
	verbose_printk(KERN_NOTICE " RETE: %s\n", buf);
1104
	decode_address(buf, fp->retn);
1105
	verbose_printk(KERN_NOTICE " RETN: %s\n", buf);
1106
	decode_address(buf, fp->retx);
1107
	verbose_printk(KERN_NOTICE " RETX: %s\n", buf);
1108
	decode_address(buf, fp->rets);
1109
	verbose_printk(KERN_NOTICE " RETS: %s\n", buf);
1110
	decode_address(buf, fp->pc);
1111
	verbose_printk(KERN_NOTICE " PC  : %s\n", buf);
1112

1113 1114
	if (((long)fp->seqstat &  SEQSTAT_EXCAUSE) &&
	    (((long)fp->seqstat & SEQSTAT_EXCAUSE) != VEC_HWERR)) {
1115
		decode_address(buf, cpu_pda[cpu].dcplb_fault_addr);
1116
		verbose_printk(KERN_NOTICE "DCPLB_FAULT_ADDR: %s\n", buf);
1117
		decode_address(buf, cpu_pda[cpu].icplb_fault_addr);
1118
		verbose_printk(KERN_NOTICE "ICPLB_FAULT_ADDR: %s\n", buf);
1119 1120
	}

1121 1122
	verbose_printk(KERN_NOTICE "\n" KERN_NOTICE "PROCESSOR STATE:\n");
	verbose_printk(KERN_NOTICE " R0 : %08lx    R1 : %08lx    R2 : %08lx    R3 : %08lx\n",
1123
		fp->r0, fp->r1, fp->r2, fp->r3);
1124
	verbose_printk(KERN_NOTICE " R4 : %08lx    R5 : %08lx    R6 : %08lx    R7 : %08lx\n",
1125
		fp->r4, fp->r5, fp->r6, fp->r7);
1126
	verbose_printk(KERN_NOTICE " P0 : %08lx    P1 : %08lx    P2 : %08lx    P3 : %08lx\n",
1127
		fp->p0, fp->p1, fp->p2, fp->p3);
1128
	verbose_printk(KERN_NOTICE " P4 : %08lx    P5 : %08lx    FP : %08lx    SP : %08lx\n",
1129
		fp->p4, fp->p5, fp->fp, (long)fp);
1130
	verbose_printk(KERN_NOTICE " LB0: %08lx    LT0: %08lx    LC0: %08lx\n",
1131
		fp->lb0, fp->lt0, fp->lc0);
1132
	verbose_printk(KERN_NOTICE " LB1: %08lx    LT1: %08lx    LC1: %08lx\n",
1133
		fp->lb1, fp->lt1, fp->lc1);
1134
	verbose_printk(KERN_NOTICE " B0 : %08lx    L0 : %08lx    M0 : %08lx    I0 : %08lx\n",
1135
		fp->b0, fp->l0, fp->m0, fp->i0);
1136
	verbose_printk(KERN_NOTICE " B1 : %08lx    L1 : %08lx    M1 : %08lx    I1 : %08lx\n",
1137
		fp->b1, fp->l1, fp->m1, fp->i1);
1138
	verbose_printk(KERN_NOTICE " B2 : %08lx    L2 : %08lx    M2 : %08lx    I2 : %08lx\n",
1139
		fp->b2, fp->l2, fp->m2, fp->i2);
1140
	verbose_printk(KERN_NOTICE " B3 : %08lx    L3 : %08lx    M3 : %08lx    I3 : %08lx\n",
1141
		fp->b3, fp->l3, fp->m3, fp->i3);
1142
	verbose_printk(KERN_NOTICE "A0.w: %08lx   A0.x: %08lx   A1.w: %08lx   A1.x: %08lx\n",
1143
		fp->a0w, fp->a0x, fp->a1w, fp->a1x);
1144

1145
	verbose_printk(KERN_NOTICE "USP : %08lx  ASTAT: %08lx\n",
1146
		rdusp(), fp->astat);
B
Bryan Wu 已提交
1147

1148 1149
	verbose_printk(KERN_NOTICE "\n");
#endif
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1150 1151 1152 1153 1154 1155
}

#ifdef CONFIG_SYS_BFIN_SPINLOCK_L1
asmlinkage int sys_bfin_spinlock(int *spinlock)__attribute__((l1_text));
#endif

1156 1157 1158
static DEFINE_SPINLOCK(bfin_spinlock_lock);

asmlinkage int sys_bfin_spinlock(int *p)
B
Bryan Wu 已提交
1159
{
1160
	int ret, tmp = 0;
B
Bryan Wu 已提交
1161

1162 1163 1164 1165
	spin_lock(&bfin_spinlock_lock);	/* This would also hold kernel preemption. */
	ret = get_user(tmp, p);
	if (likely(ret == 0)) {
		if (unlikely(tmp))
B
Bryan Wu 已提交
1166
			ret = 1;
1167 1168
		else
			put_user(1, p);
B
Bryan Wu 已提交
1169
	}
1170
	spin_unlock(&bfin_spinlock_lock);
B
Bryan Wu 已提交
1171 1172 1173
	return ret;
}

1174 1175 1176 1177 1178 1179 1180 1181 1182 1183 1184 1185 1186 1187 1188 1189 1190 1191 1192 1193 1194 1195 1196 1197 1198 1199 1200 1201 1202 1203 1204 1205 1206 1207 1208 1209
int bfin_request_exception(unsigned int exception, void (*handler)(void))
{
	void (*curr_handler)(void);

	if (exception > 0x3F)
		return -EINVAL;

	curr_handler = ex_table[exception];

	if (curr_handler != ex_replaceable)
		return -EBUSY;

	ex_table[exception] = handler;

	return 0;
}
EXPORT_SYMBOL(bfin_request_exception);

int bfin_free_exception(unsigned int exception, void (*handler)(void))
{
	void (*curr_handler)(void);

	if (exception > 0x3F)
		return -EINVAL;

	curr_handler = ex_table[exception];

	if (curr_handler != handler)
		return -EBUSY;

	ex_table[exception] = ex_replaceable;

	return 0;
}
EXPORT_SYMBOL(bfin_free_exception);

B
Bryan Wu 已提交
1210 1211 1212 1213 1214 1215 1216 1217 1218 1219 1220 1221 1222 1223 1224
void panic_cplb_error(int cplb_panic, struct pt_regs *fp)
{
	switch (cplb_panic) {
	case CPLB_NO_UNLOCKED:
		printk(KERN_EMERG "All CPLBs are locked\n");
		break;
	case CPLB_PROT_VIOL:
		return;
	case CPLB_NO_ADDR_MATCH:
		return;
	case CPLB_UNKNOWN_ERR:
		printk(KERN_EMERG "Unknown CPLB Exception\n");
		break;
	}

1225 1226
	oops_in_progress = 1;

1227
	dump_bfin_process(fp);
1228
	dump_bfin_mem(fp);
1229
	show_regs(fp);
B
Bryan Wu 已提交
1230 1231 1232
	dump_stack();
	panic("Unrecoverable event\n");
}