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fault.c revision 1.105.4.1
      1 /*	$NetBSD: fault.c,v 1.105.4.1 2019/06/10 22:05:51 christos Exp $	*/
      2 
      3 /*
      4  * Copyright 2003 Wasabi Systems, Inc.
      5  * All rights reserved.
      6  *
      7  * Written by Steve C. Woodford for Wasabi Systems, Inc.
      8  *
      9  * Redistribution and use in source and binary forms, with or without
     10  * modification, are permitted provided that the following conditions
     11  * are met:
     12  * 1. Redistributions of source code must retain the above copyright
     13  *    notice, this list of conditions and the following disclaimer.
     14  * 2. Redistributions in binary form must reproduce the above copyright
     15  *    notice, this list of conditions and the following disclaimer in the
     16  *    documentation and/or other materials provided with the distribution.
     17  * 3. All advertising materials mentioning features or use of this software
     18  *    must display the following acknowledgement:
     19  *      This product includes software developed for the NetBSD Project by
     20  *      Wasabi Systems, Inc.
     21  * 4. The name of Wasabi Systems, Inc. may not be used to endorse
     22  *    or promote products derived from this software without specific prior
     23  *    written permission.
     24  *
     25  * THIS SOFTWARE IS PROVIDED BY WASABI SYSTEMS, INC. ``AS IS'' AND
     26  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
     27  * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
     28  * PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL WASABI SYSTEMS, INC
     29  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
     30  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
     31  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
     32  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
     33  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
     34  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
     35  * POSSIBILITY OF SUCH DAMAGE.
     36  */
     37 /*
     38  * Copyright (c) 1994-1997 Mark Brinicombe.
     39  * Copyright (c) 1994 Brini.
     40  * All rights reserved.
     41  *
     42  * This code is derived from software written for Brini by Mark Brinicombe
     43  *
     44  * Redistribution and use in source and binary forms, with or without
     45  * modification, are permitted provided that the following conditions
     46  * are met:
     47  * 1. Redistributions of source code must retain the above copyright
     48  *    notice, this list of conditions and the following disclaimer.
     49  * 2. Redistributions in binary form must reproduce the above copyright
     50  *    notice, this list of conditions and the following disclaimer in the
     51  *    documentation and/or other materials provided with the distribution.
     52  * 3. All advertising materials mentioning features or use of this software
     53  *    must display the following acknowledgement:
     54  *	This product includes software developed by Brini.
     55  * 4. The name of the company nor the name of the author may be used to
     56  *    endorse or promote products derived from this software without specific
     57  *    prior written permission.
     58  *
     59  * THIS SOFTWARE IS PROVIDED BY BRINI ``AS IS'' AND ANY EXPRESS OR IMPLIED
     60  * WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES OF
     61  * MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
     62  * IN NO EVENT SHALL BRINI OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT,
     63  * INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES
     64  * (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR
     65  * SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     66  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     67  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     68  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     69  * SUCH DAMAGE.
     70  *
     71  * RiscBSD kernel project
     72  *
     73  * fault.c
     74  *
     75  * Fault handlers
     76  *
     77  * Created      : 28/11/94
     78  */
     79 
     80 #include "opt_ddb.h"
     81 #include "opt_kgdb.h"
     82 
     83 #include <sys/types.h>
     84 __KERNEL_RCSID(0, "$NetBSD: fault.c,v 1.105.4.1 2019/06/10 22:05:51 christos Exp $");
     85 
     86 #include <sys/param.h>
     87 #include <sys/systm.h>
     88 #include <sys/proc.h>
     89 #include <sys/kernel.h>
     90 #include <sys/kauth.h>
     91 #include <sys/cpu.h>
     92 #include <sys/intr.h>
     93 
     94 #include <uvm/uvm_extern.h>
     95 #include <uvm/uvm_stat.h>
     96 #ifdef UVMHIST
     97 #include <uvm/uvm.h>
     98 #endif
     99 
    100 #include <arm/locore.h>
    101 
    102 #include <machine/pcb.h>
    103 #if defined(DDB) || defined(KGDB)
    104 #include <machine/db_machdep.h>
    105 #ifdef KGDB
    106 #include <sys/kgdb.h>
    107 #endif
    108 #if !defined(DDB)
    109 #define kdb_trap	kgdb_trap
    110 #endif
    111 #endif
    112 
    113 #include <arch/arm/arm/disassem.h>
    114 #include <arm/arm32/machdep.h>
    115 
    116 #ifdef DEBUG
    117 int last_fault_code;	/* For the benefit of pmap_fault_fixup() */
    118 #endif
    119 
    120 #if defined(CPU_ARM6) || defined(CPU_ARM7) || defined(CPU_ARM7TDMI)
    121 /* These CPUs may need data/prefetch abort fixups */
    122 #define	CPU_ABORT_FIXUP_REQUIRED
    123 #endif
    124 
    125 struct data_abort {
    126 	int (*func)(trapframe_t *, u_int, u_int, struct lwp *, ksiginfo_t *);
    127 	const char *desc;
    128 };
    129 
    130 static int dab_fatal(trapframe_t *, u_int, u_int, struct lwp *, ksiginfo_t *);
    131 static int dab_align(trapframe_t *, u_int, u_int, struct lwp *, ksiginfo_t *);
    132 static int dab_buserr(trapframe_t *, u_int, u_int, struct lwp *, ksiginfo_t *);
    133 
    134 static const struct data_abort data_aborts[] = {
    135 	{dab_fatal,	"Vector Exception"},
    136 	{dab_align,	"Alignment Fault 1"},
    137 	{dab_fatal,	"Terminal Exception"},
    138 	{dab_align,	"Alignment Fault 3"},
    139 	{dab_buserr,	"External Linefetch Abort (S)"},
    140 	{NULL,		"Translation Fault (S)"},
    141 	{dab_buserr,	"External Linefetch Abort (P)"},
    142 	{NULL,		"Translation Fault (P)"},
    143 	{dab_buserr,	"External Non-Linefetch Abort (S)"},
    144 	{NULL,		"Domain Fault (S)"},
    145 	{dab_buserr,	"External Non-Linefetch Abort (P)"},
    146 	{NULL,		"Domain Fault (P)"},
    147 	{dab_buserr,	"External Translation Abort (L1)"},
    148 	{NULL,		"Permission Fault (S)"},
    149 	{dab_buserr,	"External Translation Abort (L2)"},
    150 	{NULL,		"Permission Fault (P)"}
    151 };
    152 
    153 /* Determine if 'x' is a permission fault */
    154 #define	IS_PERMISSION_FAULT(x)					\
    155 	(((1 << ((x) & FAULT_TYPE_MASK)) &			\
    156 	  ((1 << FAULT_PERM_P) | (1 << FAULT_PERM_S))) != 0)
    157 
    158 #if 0
    159 /* maybe one day we'll do emulations */
    160 #define	TRAPSIGNAL(l,k)	(*(l)->l_proc->p_emul->e_trapsignal)((l), (k))
    161 #else
    162 #define	TRAPSIGNAL(l,k)	trapsignal((l), (k))
    163 #endif
    164 
    165 static inline void
    166 call_trapsignal(struct lwp *l, const struct trapframe *tf, ksiginfo_t *ksi)
    167 {
    168 	if (l->l_proc->p_pid == 1 || cpu_printfataltraps) {
    169 		printf("%d.%d(%s): trap: signo=%d code=%d addr=%p trap=%#x\n",
    170 		    l->l_proc->p_pid, l->l_lid, l->l_proc->p_comm,
    171 		    ksi->ksi_signo, ksi->ksi_code, ksi->ksi_addr,
    172 		    ksi->ksi_trap);
    173 		printf("r0=%08x r1=%08x r2=%08x r3=%08x\n",
    174 		    tf->tf_r0, tf->tf_r1, tf->tf_r2, tf->tf_r3);
    175 		printf("r4=%08x r5=%08x r6=%08x r7=%08x\n",
    176 		    tf->tf_r4, tf->tf_r5, tf->tf_r6, tf->tf_r7);
    177 		printf("r8=%08x r9=%08x rA=%08x rB=%08x\n",
    178 		    tf->tf_r8, tf->tf_r9, tf->tf_r10, tf->tf_r11);
    179 		printf("ip=%08x sp=%08x lr=%08x pc=%08x spsr=%08x\n",
    180 		    tf->tf_r12, tf->tf_usr_sp, tf->tf_usr_lr, tf->tf_pc,
    181 		    tf->tf_spsr);
    182 	}
    183 
    184 	TRAPSIGNAL(l, ksi);
    185 }
    186 
    187 static inline int
    188 data_abort_fixup(trapframe_t *tf, u_int fsr, u_int far, struct lwp *l)
    189 {
    190 #ifdef CPU_ABORT_FIXUP_REQUIRED
    191 	int error;
    192 
    193 	/* Call the CPU specific data abort fixup routine */
    194 	error = cpu_dataabt_fixup(tf);
    195 	if (__predict_true(error != ABORT_FIXUP_FAILED))
    196 		return (error);
    197 
    198 	/*
    199 	 * Oops, couldn't fix up the instruction
    200 	 */
    201 	printf("%s: fixup for %s mode data abort failed.\n", __func__,
    202 	    TRAP_USERMODE(tf) ? "user" : "kernel");
    203 #ifdef THUMB_CODE
    204 	if (tf->tf_spsr & PSR_T_bit) {
    205 		printf("pc = 0x%08x, opcode 0x%04x, 0x%04x, insn = ",
    206 		    tf->tf_pc, *((uint16 *)(tf->tf_pc & ~1)),
    207 		    *((uint16 *)((tf->tf_pc + 2) & ~1)));
    208 	}
    209 	else
    210 #endif
    211 	{
    212 		printf("pc = 0x%08x, opcode 0x%08x, insn = ", tf->tf_pc,
    213 		    *((u_int *)tf->tf_pc));
    214 	}
    215 	disassemble(tf->tf_pc);
    216 
    217 	/* Die now if this happened in kernel mode */
    218 	if (!TRAP_USERMODE(tf))
    219 		dab_fatal(tf, fsr, far, l, NULL);
    220 
    221 	return (error);
    222 #else
    223 	return (ABORT_FIXUP_OK);
    224 #endif /* CPU_ABORT_FIXUP_REQUIRED */
    225 }
    226 
    227 void
    228 data_abort_handler(trapframe_t *tf)
    229 {
    230 	struct vm_map *map;
    231 	struct lwp * const l = curlwp;
    232 	struct cpu_info * const ci = curcpu();
    233 	u_int far, fsr;
    234 	vm_prot_t ftype;
    235 	void *onfault;
    236 	vaddr_t va;
    237 	int error;
    238 	ksiginfo_t ksi;
    239 
    240 	UVMHIST_FUNC(__func__);
    241 	UVMHIST_CALLED(maphist);
    242 
    243 	/* Grab FAR/FSR before enabling interrupts */
    244 	far = cpu_faultaddress();
    245 	fsr = cpu_faultstatus();
    246 
    247 	/* Update vmmeter statistics */
    248 	ci->ci_data.cpu_ntrap++;
    249 
    250 	/* Re-enable interrupts if they were enabled previously */
    251 	KASSERT(!TRAP_USERMODE(tf) || VALID_R15_PSR(tf->tf_pc, tf->tf_spsr));
    252 #ifdef __NO_FIQ
    253 	if (__predict_true((tf->tf_spsr & I32_bit) != I32_bit))
    254 		restore_interrupts(tf->tf_spsr & IF32_bits);
    255 #else
    256 	if (__predict_true((tf->tf_spsr & IF32_bits) != IF32_bits))
    257 		restore_interrupts(tf->tf_spsr & IF32_bits);
    258 #endif
    259 
    260 	/* Get the current lwp structure */
    261 
    262 	UVMHIST_LOG(maphist, " (l=%#jx, far=%#jx, fsr=%#jx",
    263 	    (uintptr_t)l, far, fsr, 0);
    264 	UVMHIST_LOG(maphist, "  tf=%#jx, pc=%#jx)",
    265 	    (uintptr_t)tf, (uintptr_t)tf->tf_pc, 0, 0);
    266 
    267 	/* Data abort came from user mode? */
    268 	bool user = (TRAP_USERMODE(tf) != 0);
    269 	if (user)
    270 		LWP_CACHE_CREDS(l, l->l_proc);
    271 
    272 	/* Grab the current pcb */
    273 	struct pcb * const pcb = lwp_getpcb(l);
    274 
    275 	curcpu()->ci_abt_evs[fsr & FAULT_TYPE_MASK].ev_count++;
    276 
    277 	/* Invoke the appropriate handler, if necessary */
    278 	if (__predict_false(data_aborts[fsr & FAULT_TYPE_MASK].func != NULL)) {
    279 #ifdef DIAGNOSTIC
    280 		printf("%s: data_aborts fsr=0x%x far=0x%x\n",
    281 		    __func__, fsr, far);
    282 #endif
    283 		if ((data_aborts[fsr & FAULT_TYPE_MASK].func)(tf, fsr, far,
    284 		    l, &ksi))
    285 			goto do_trapsignal;
    286 		goto out;
    287 	}
    288 
    289 	/*
    290 	 * At this point, we're dealing with one of the following data aborts:
    291 	 *
    292 	 *  FAULT_TRANS_S  - Translation -- Section
    293 	 *  FAULT_TRANS_P  - Translation -- Page
    294 	 *  FAULT_DOMAIN_S - Domain -- Section
    295 	 *  FAULT_DOMAIN_P - Domain -- Page
    296 	 *  FAULT_PERM_S   - Permission -- Section
    297 	 *  FAULT_PERM_P   - Permission -- Page
    298 	 *
    299 	 * These are the main virtual memory-related faults signalled by
    300 	 * the MMU.
    301 	 */
    302 
    303 	KASSERTMSG(!user || tf == lwp_trapframe(l), "tf %p vs %p", tf,
    304 	    lwp_trapframe(l));
    305 
    306 	/*
    307 	 * Make sure the Program Counter is sane. We could fall foul of
    308 	 * someone executing Thumb code, in which case the PC might not
    309 	 * be word-aligned. This would cause a kernel alignment fault
    310 	 * further down if we have to decode the current instruction.
    311 	 */
    312 #ifdef THUMB_CODE
    313 	/*
    314 	 * XXX: It would be nice to be able to support Thumb in the kernel
    315 	 * at some point.
    316 	 */
    317 	if (__predict_false(!user && (tf->tf_pc & 3) != 0)) {
    318 		printf("\n%s: Misaligned Kernel-mode Program Counter\n",
    319 		    __func__);
    320 		dab_fatal(tf, fsr, far, l, NULL);
    321 	}
    322 #else
    323 	if (__predict_false((tf->tf_pc & 3) != 0)) {
    324 		if (user) {
    325 			/*
    326 			 * Give the user an illegal instruction signal.
    327 			 */
    328 			/* Deliver a SIGILL to the process */
    329 			KSI_INIT_TRAP(&ksi);
    330 			ksi.ksi_signo = SIGILL;
    331 			ksi.ksi_code = ILL_ILLOPC;
    332 			ksi.ksi_addr = (uint32_t *)(intptr_t) far;
    333 			ksi.ksi_trap = fsr;
    334 			goto do_trapsignal;
    335 		}
    336 
    337 		/*
    338 		 * The kernel never executes Thumb code.
    339 		 */
    340 		printf("\n%s: Misaligned Kernel-mode Program Counter\n",
    341 		    __func__);
    342 		dab_fatal(tf, fsr, far, l, NULL);
    343 	}
    344 #endif
    345 
    346 	/* See if the CPU state needs to be fixed up */
    347 	switch (data_abort_fixup(tf, fsr, far, l)) {
    348 	case ABORT_FIXUP_RETURN:
    349 		return;
    350 	case ABORT_FIXUP_FAILED:
    351 		/* Deliver a SIGILL to the process */
    352 		KSI_INIT_TRAP(&ksi);
    353 		ksi.ksi_signo = SIGILL;
    354 		ksi.ksi_code = ILL_ILLOPC;
    355 		ksi.ksi_addr = (uint32_t *)(intptr_t) far;
    356 		ksi.ksi_trap = fsr;
    357 		goto do_trapsignal;
    358 	default:
    359 		break;
    360 	}
    361 
    362 	va = trunc_page((vaddr_t)far);
    363 
    364 	/*
    365 	 * It is only a kernel address space fault iff:
    366 	 *	1. user == 0  and
    367 	 *	2. pcb_onfault not set or
    368 	 *	3. pcb_onfault set and not LDRT/LDRBT/STRT/STRBT instruction.
    369 	 */
    370 	if (!user && (va >= VM_MIN_KERNEL_ADDRESS ||
    371 	    (va < VM_MIN_ADDRESS && vector_page == ARM_VECTORS_LOW)) &&
    372 	    __predict_true((pcb->pcb_onfault == NULL ||
    373 	     (read_insn(tf->tf_pc, false) & 0x05200000) != 0x04200000))) {
    374 		map = kernel_map;
    375 
    376 		/* Was the fault due to the FPE ? */
    377 		if (__predict_false((tf->tf_spsr & PSR_MODE)==PSR_UND32_MODE)) {
    378 			KSI_INIT_TRAP(&ksi);
    379 			ksi.ksi_signo = SIGSEGV;
    380 			ksi.ksi_code = SEGV_ACCERR;
    381 			ksi.ksi_addr = (uint32_t *)(intptr_t) far;
    382 			ksi.ksi_trap = fsr;
    383 
    384 			/*
    385 			 * Force exit via userret()
    386 			 * This is necessary as the FPE is an extension to
    387 			 * userland that actually runs in a priveledged mode
    388 			 * but uses USR mode permissions for its accesses.
    389 			 */
    390 			user = true;
    391 			goto do_trapsignal;
    392 		}
    393 	} else {
    394 		map = &l->l_proc->p_vmspace->vm_map;
    395 	}
    396 
    397 	/*
    398 	 * We need to know whether the page should be mapped as R or R/W.
    399 	 * Before ARMv6, the MMU did not give us the info as to whether the
    400 	 * fault was caused by a read or a write.
    401 	 *
    402 	 * However, we know that a permission fault can only be the result of
    403 	 * a write to a read-only location, so we can deal with those quickly.
    404 	 *
    405 	 * Otherwise we need to disassemble the instruction responsible to
    406 	 * determine if it was a write.
    407 	 */
    408 	if (CPU_IS_ARMV6_P() || CPU_IS_ARMV7_P()) {
    409 		ftype = (fsr & FAULT_WRITE) ? VM_PROT_WRITE : VM_PROT_READ;
    410 	} else if (IS_PERMISSION_FAULT(fsr)) {
    411 		ftype = VM_PROT_WRITE;
    412 	} else {
    413 #ifdef THUMB_CODE
    414 		/* Fast track the ARM case.  */
    415 		if (__predict_false(tf->tf_spsr & PSR_T_bit)) {
    416 			u_int insn = read_thumb_insn(tf->tf_pc, user);
    417 			u_int insn_f8 = insn & 0xf800;
    418 			u_int insn_fe = insn & 0xfe00;
    419 
    420 			if (insn_f8 == 0x6000 || /* STR(1) */
    421 			    insn_f8 == 0x7000 || /* STRB(1) */
    422 			    insn_f8 == 0x8000 || /* STRH(1) */
    423 			    insn_f8 == 0x9000 || /* STR(3) */
    424 			    insn_f8 == 0xc000 || /* STM */
    425 			    insn_fe == 0x5000 || /* STR(2) */
    426 			    insn_fe == 0x5200 || /* STRH(2) */
    427 			    insn_fe == 0x5400)   /* STRB(2) */
    428 				ftype = VM_PROT_WRITE;
    429 			else
    430 				ftype = VM_PROT_READ;
    431 		}
    432 		else
    433 #endif
    434 		{
    435 			u_int insn = read_insn(tf->tf_pc, user);
    436 
    437 			if (((insn & 0x0c100000) == 0x04000000) || /* STR[B] */
    438 			    ((insn & 0x0e1000b0) == 0x000000b0) || /* STR[HD]*/
    439 			    ((insn & 0x0a100000) == 0x08000000) || /* STM/CDT*/
    440 			    ((insn & 0x0f9000f0) == 0x01800090))   /* STREX[BDH] */
    441 				ftype = VM_PROT_WRITE;
    442 			else if ((insn & 0x0fb00ff0) == 0x01000090)/* SWP */
    443 				ftype = VM_PROT_READ | VM_PROT_WRITE;
    444 			else
    445 				ftype = VM_PROT_READ;
    446 		}
    447 	}
    448 
    449 	/*
    450 	 * See if the fault is as a result of ref/mod emulation,
    451 	 * or domain mismatch.
    452 	 */
    453 #ifdef DEBUG
    454 	last_fault_code = fsr;
    455 #endif
    456 	if (pmap_fault_fixup(map->pmap, va, ftype, user)) {
    457 		UVMHIST_LOG(maphist, " <- ref/mod emul", 0, 0, 0, 0);
    458 		goto out;
    459 	}
    460 
    461 	if (__predict_false(curcpu()->ci_intr_depth > 0)) {
    462 		if (pcb->pcb_onfault) {
    463 			tf->tf_r0 = EINVAL;
    464 			tf->tf_pc = (register_t)(intptr_t) pcb->pcb_onfault;
    465 			return;
    466 		}
    467 		printf("\nNon-emulated page fault with intr_depth > 0\n");
    468 		dab_fatal(tf, fsr, far, l, NULL);
    469 	}
    470 
    471 	onfault = pcb->pcb_onfault;
    472 	pcb->pcb_onfault = NULL;
    473 	error = uvm_fault(map, va, ftype);
    474 	pcb->pcb_onfault = onfault;
    475 
    476 	if (__predict_true(error == 0)) {
    477 		if (user)
    478 			uvm_grow(l->l_proc, va); /* Record any stack growth */
    479 		UVMHIST_LOG(maphist, " <- uvm", 0, 0, 0, 0);
    480 		goto out;
    481 	}
    482 
    483 	if (user == 0) {
    484 		if (pcb->pcb_onfault) {
    485 			tf->tf_r0 = error;
    486 			tf->tf_pc = (register_t)(intptr_t) pcb->pcb_onfault;
    487 			return;
    488 		}
    489 
    490 		printf("\nuvm_fault(%p, %lx, %x) -> %x\n", map, va, ftype,
    491 		    error);
    492 		dab_fatal(tf, fsr, far, l, NULL);
    493 	}
    494 
    495 	KSI_INIT_TRAP(&ksi);
    496 
    497 	switch (error) {
    498 	case ENOMEM:
    499 		printf("UVM: pid %d (%s), uid %d killed: "
    500 		    "out of swap\n", l->l_proc->p_pid, l->l_proc->p_comm,
    501 		    l->l_cred ? kauth_cred_geteuid(l->l_cred) : -1);
    502 		ksi.ksi_signo = SIGKILL;
    503 		break;
    504 	case EACCES:
    505 		ksi.ksi_signo = SIGSEGV;
    506 		ksi.ksi_code = SEGV_ACCERR;
    507 		break;
    508 	case EINVAL:
    509 		ksi.ksi_signo = SIGBUS;
    510 		ksi.ksi_code = BUS_ADRERR;
    511 		break;
    512 	default:
    513 		ksi.ksi_signo = SIGSEGV;
    514 		ksi.ksi_code = SEGV_MAPERR;
    515 		break;
    516 	}
    517 	ksi.ksi_addr = (uint32_t *)(intptr_t) far;
    518 	ksi.ksi_trap = fsr;
    519 	UVMHIST_LOG(maphist, " <- error (%jd)", error, 0, 0, 0);
    520 
    521 do_trapsignal:
    522 	call_trapsignal(l, tf, &ksi);
    523 out:
    524 	/* If returning to user mode, make sure to invoke userret() */
    525 	if (user)
    526 		userret(l);
    527 }
    528 
    529 /*
    530  * dab_fatal() handles the following data aborts:
    531  *
    532  *  FAULT_WRTBUF_0 - Vector Exception
    533  *  FAULT_WRTBUF_1 - Terminal Exception
    534  *
    535  * We should never see these on a properly functioning system.
    536  *
    537  * This function is also called by the other handlers if they
    538  * detect a fatal problem.
    539  *
    540  * Note: If 'l' is NULL, we assume we're dealing with a prefetch abort.
    541  */
    542 static int
    543 dab_fatal(trapframe_t *tf, u_int fsr, u_int far, struct lwp *l, ksiginfo_t *ksi)
    544 {
    545 	const char * const mode = TRAP_USERMODE(tf) ? "user" : "kernel";
    546 
    547 	if (l != NULL) {
    548 		printf("Fatal %s mode data abort: '%s'\n", mode,
    549 		    data_aborts[fsr & FAULT_TYPE_MASK].desc);
    550 		printf("trapframe: %p\nFSR=%08x, FAR=", tf, fsr);
    551 		if ((fsr & FAULT_IMPRECISE) == 0)
    552 			printf("%08x, ", far);
    553 		else
    554 			printf("Invalid,  ");
    555 		printf("spsr=%08x\n", tf->tf_spsr);
    556 	} else {
    557 		printf("Fatal %s mode prefetch abort at 0x%08x\n",
    558 		    mode, tf->tf_pc);
    559 		printf("trapframe: %p, spsr=%08x\n", tf, tf->tf_spsr);
    560 	}
    561 
    562 	printf("r0 =%08x, r1 =%08x, r2 =%08x, r3 =%08x\n",
    563 	    tf->tf_r0, tf->tf_r1, tf->tf_r2, tf->tf_r3);
    564 	printf("r4 =%08x, r5 =%08x, r6 =%08x, r7 =%08x\n",
    565 	    tf->tf_r4, tf->tf_r5, tf->tf_r6, tf->tf_r7);
    566 	printf("r8 =%08x, r9 =%08x, r10=%08x, r11=%08x\n",
    567 	    tf->tf_r8, tf->tf_r9, tf->tf_r10, tf->tf_r11);
    568 	printf("r12=%08x, ", tf->tf_r12);
    569 
    570 	if (TRAP_USERMODE(tf))
    571 		printf("usp=%08x, ulr=%08x",
    572 		    tf->tf_usr_sp, tf->tf_usr_lr);
    573 	else
    574 		printf("ssp=%08x, slr=%08x",
    575 		    tf->tf_svc_sp, tf->tf_svc_lr);
    576 	printf(", pc =%08x\n\n", tf->tf_pc);
    577 
    578 #if defined(DDB) || defined(KGDB)
    579 	kdb_trap(T_FAULT, tf);
    580 #endif
    581 	panic("Fatal abort");
    582 	/*NOTREACHED*/
    583 }
    584 
    585 /*
    586  * dab_align() handles the following data aborts:
    587  *
    588  *  FAULT_ALIGN_0 - Alignment fault
    589  *  FAULT_ALIGN_0 - Alignment fault
    590  *
    591  * These faults are fatal if they happen in kernel mode. Otherwise, we
    592  * deliver a bus error to the process.
    593  */
    594 static int
    595 dab_align(trapframe_t *tf, u_int fsr, u_int far, struct lwp *l, ksiginfo_t *ksi)
    596 {
    597 	/* Alignment faults are always fatal if they occur in kernel mode */
    598 	if (!TRAP_USERMODE(tf))
    599 		dab_fatal(tf, fsr, far, l, NULL);
    600 
    601 	/* pcb_onfault *must* be NULL at this point */
    602 	KDASSERT(((struct pcb *)lwp_getpcb(l))->pcb_onfault == NULL);
    603 
    604 	/* See if the CPU state needs to be fixed up */
    605 	(void) data_abort_fixup(tf, fsr, far, l);
    606 
    607 	/* Deliver a bus error signal to the process */
    608 	KSI_INIT_TRAP(ksi);
    609 	ksi->ksi_signo = SIGBUS;
    610 	ksi->ksi_code = BUS_ADRALN;
    611 	ksi->ksi_addr = (uint32_t *)(intptr_t)far;
    612 	ksi->ksi_trap = fsr;
    613 
    614 	KASSERTMSG(tf == lwp_trapframe(l), "tf %p vs %p", tf, lwp_trapframe(l));
    615 
    616 	return (1);
    617 }
    618 
    619 /*
    620  * dab_buserr() handles the following data aborts:
    621  *
    622  *  FAULT_BUSERR_0 - External Abort on Linefetch -- Section
    623  *  FAULT_BUSERR_1 - External Abort on Linefetch -- Page
    624  *  FAULT_BUSERR_2 - External Abort on Non-linefetch -- Section
    625  *  FAULT_BUSERR_3 - External Abort on Non-linefetch -- Page
    626  *  FAULT_BUSTRNL1 - External abort on Translation -- Level 1
    627  *  FAULT_BUSTRNL2 - External abort on Translation -- Level 2
    628  *
    629  * If pcb_onfault is set, flag the fault and return to the handler.
    630  * If the fault occurred in user mode, give the process a SIGBUS.
    631  *
    632  * Note: On XScale, FAULT_BUSERR_0, FAULT_BUSERR_1, and FAULT_BUSERR_2
    633  * can be flagged as imprecise in the FSR. This causes a real headache
    634  * since some of the machine state is lost. In this case, tf->tf_pc
    635  * may not actually point to the offending instruction. In fact, if
    636  * we've taken a double abort fault, it generally points somewhere near
    637  * the top of "data_abort_entry" in exception.S.
    638  *
    639  * In all other cases, these data aborts are considered fatal.
    640  */
    641 static int
    642 dab_buserr(trapframe_t *tf, u_int fsr, u_int far, struct lwp *l,
    643     ksiginfo_t *ksi)
    644 {
    645 	struct pcb *pcb = lwp_getpcb(l);
    646 
    647 #ifdef __XSCALE__
    648 	if ((fsr & FAULT_IMPRECISE) != 0 &&
    649 	    (tf->tf_spsr & PSR_MODE) == PSR_ABT32_MODE) {
    650 		/*
    651 		 * Oops, an imprecise, double abort fault. We've lost the
    652 		 * r14_abt/spsr_abt values corresponding to the original
    653 		 * abort, and the spsr saved in the trapframe indicates
    654 		 * ABT mode.
    655 		 */
    656 		tf->tf_spsr &= ~PSR_MODE;
    657 
    658 		/*
    659 		 * We use a simple heuristic to determine if the double abort
    660 		 * happened as a result of a kernel or user mode access.
    661 		 * If the current trapframe is at the top of the kernel stack,
    662 		 * the fault _must_ have come from user mode.
    663 		 */
    664 		if (tf != ((trapframe_t *)pcb->pcb_ksp) - 1) {
    665 			/*
    666 			 * Kernel mode. We're either about to die a
    667 			 * spectacular death, or pcb_onfault will come
    668 			 * to our rescue. Either way, the current value
    669 			 * of tf->tf_pc is irrelevant.
    670 			 */
    671 			tf->tf_spsr |= PSR_SVC32_MODE;
    672 			if (pcb->pcb_onfault == NULL)
    673 				printf("\nKernel mode double abort!\n");
    674 		} else {
    675 			/*
    676 			 * User mode. We've lost the program counter at the
    677 			 * time of the fault (not that it was accurate anyway;
    678 			 * it's not called an imprecise fault for nothing).
    679 			 * About all we can do is copy r14_usr to tf_pc and
    680 			 * hope for the best. The process is about to get a
    681 			 * SIGBUS, so it's probably history anyway.
    682 			 */
    683 			tf->tf_spsr |= PSR_USR32_MODE;
    684 			tf->tf_pc = tf->tf_usr_lr;
    685 #ifdef THUMB_CODE
    686 			tf->tf_spsr &= ~PSR_T_bit;
    687 			if (tf->tf_usr_lr & 1)
    688 				tf->tf_spsr |= PSR_T_bit;
    689 #endif
    690 		}
    691 	}
    692 
    693 	/* FAR is invalid for imprecise exceptions */
    694 	if ((fsr & FAULT_IMPRECISE) != 0)
    695 		far = 0;
    696 #endif /* __XSCALE__ */
    697 
    698 	if (pcb->pcb_onfault) {
    699 		KDASSERT(TRAP_USERMODE(tf) == 0);
    700 		tf->tf_r0 = EFAULT;
    701 		tf->tf_pc = (register_t)(intptr_t) pcb->pcb_onfault;
    702 		return (0);
    703 	}
    704 
    705 	/* See if the CPU state needs to be fixed up */
    706 	(void) data_abort_fixup(tf, fsr, far, l);
    707 
    708 	/*
    709 	 * At this point, if the fault happened in kernel mode, we're toast
    710 	 */
    711 	if (!TRAP_USERMODE(tf))
    712 		dab_fatal(tf, fsr, far, l, NULL);
    713 
    714 	/* Deliver a bus error signal to the process */
    715 	KSI_INIT_TRAP(ksi);
    716 	ksi->ksi_signo = SIGBUS;
    717 	ksi->ksi_code = BUS_ADRERR;
    718 	ksi->ksi_addr = (uint32_t *)(intptr_t)far;
    719 	ksi->ksi_trap = fsr;
    720 
    721 	KASSERTMSG(tf == lwp_trapframe(l), "tf %p vs %p", tf, lwp_trapframe(l));
    722 
    723 	return (1);
    724 }
    725 
    726 static inline int
    727 prefetch_abort_fixup(trapframe_t *tf)
    728 {
    729 #ifdef CPU_ABORT_FIXUP_REQUIRED
    730 	int error;
    731 
    732 	/* Call the CPU specific prefetch abort fixup routine */
    733 	error = cpu_prefetchabt_fixup(tf);
    734 	if (__predict_true(error != ABORT_FIXUP_FAILED))
    735 		return (error);
    736 
    737 	/*
    738 	 * Oops, couldn't fix up the instruction
    739 	 */
    740 	printf("%s: fixup for %s mode prefetch abort failed.\n", __func__,
    741 	    TRAP_USERMODE(tf) ? "user" : "kernel");
    742 #ifdef THUMB_CODE
    743 	if (tf->tf_spsr & PSR_T_bit) {
    744 		printf("pc = 0x%08x, opcode 0x%04x, 0x%04x, insn = ",
    745 		    tf->tf_pc, *((uint16 *)(tf->tf_pc & ~1)),
    746 		    *((uint16 *)((tf->tf_pc + 2) & ~1)));
    747 	}
    748 	else
    749 #endif
    750 	{
    751 		printf("pc = 0x%08x, opcode 0x%08x, insn = ", tf->tf_pc,
    752 		    *((u_int *)tf->tf_pc));
    753 	}
    754 	disassemble(tf->tf_pc);
    755 
    756 	/* Die now if this happened in kernel mode */
    757 	if (!TRAP_USERMODE(tf))
    758 		dab_fatal(tf, 0, tf->tf_pc, NULL, NULL);
    759 
    760 	return (error);
    761 #else
    762 	return (ABORT_FIXUP_OK);
    763 #endif /* CPU_ABORT_FIXUP_REQUIRED */
    764 }
    765 
    766 /*
    767  * void prefetch_abort_handler(trapframe_t *tf)
    768  *
    769  * Abort handler called when instruction execution occurs at
    770  * a non existent or restricted (access permissions) memory page.
    771  * If the address is invalid and we were in SVC mode then panic as
    772  * the kernel should never prefetch abort.
    773  * If the address is invalid and the page is mapped then the user process
    774  * does no have read permission so send it a signal.
    775  * Otherwise fault the page in and try again.
    776  */
    777 void
    778 prefetch_abort_handler(trapframe_t *tf)
    779 {
    780 	struct lwp *l;
    781 	struct pcb *pcb __diagused;
    782 	struct vm_map *map;
    783 	vaddr_t fault_pc, va;
    784 	ksiginfo_t ksi;
    785 	int error, user;
    786 
    787 	UVMHIST_FUNC(__func__);
    788 	UVMHIST_CALLED(maphist);
    789 
    790 	/* Update vmmeter statistics */
    791 	curcpu()->ci_data.cpu_ntrap++;
    792 
    793 	l = curlwp;
    794 	pcb = lwp_getpcb(l);
    795 
    796 	if ((user = TRAP_USERMODE(tf)) != 0)
    797 		LWP_CACHE_CREDS(l, l->l_proc);
    798 
    799 	/*
    800 	 * Enable IRQ's (disabled by the abort) This always comes
    801 	 * from user mode so we know interrupts were not disabled.
    802 	 * But we check anyway.
    803 	 */
    804 	KASSERT(!TRAP_USERMODE(tf) || VALID_R15_PSR(tf->tf_pc, tf->tf_spsr));
    805 #ifdef __NO_FIQ
    806 	if (__predict_true((tf->tf_spsr & I32_bit) != I32_bit))
    807 		restore_interrupts(tf->tf_spsr & IF32_bits);
    808 #else
    809 	if (__predict_true((tf->tf_spsr & IF32_bits) != IF32_bits))
    810 		restore_interrupts(tf->tf_spsr & IF32_bits);
    811 #endif
    812 
    813 	/* See if the CPU state needs to be fixed up */
    814 	switch (prefetch_abort_fixup(tf)) {
    815 	case ABORT_FIXUP_RETURN:
    816 		KASSERT(!TRAP_USERMODE(tf) || VALID_R15_PSR(tf->tf_pc, tf->tf_spsr));
    817 		return;
    818 	case ABORT_FIXUP_FAILED:
    819 		/* Deliver a SIGILL to the process */
    820 		KSI_INIT_TRAP(&ksi);
    821 		ksi.ksi_signo = SIGILL;
    822 		ksi.ksi_code = ILL_ILLOPC;
    823 		ksi.ksi_addr = (uint32_t *)(intptr_t) tf->tf_pc;
    824 		KASSERTMSG(tf == lwp_trapframe(l), "tf %p vs %p", tf,
    825 		    lwp_trapframe(l));
    826 		goto do_trapsignal;
    827 	default:
    828 		break;
    829 	}
    830 
    831 	/* Prefetch aborts cannot happen in kernel mode */
    832 	if (__predict_false(!user))
    833 		dab_fatal(tf, 0, tf->tf_pc, NULL, NULL);
    834 
    835 	/* Get fault address */
    836 	fault_pc = tf->tf_pc;
    837 	KASSERTMSG(tf == lwp_trapframe(l), "tf %p vs %p", tf, lwp_trapframe(l));
    838 	UVMHIST_LOG(maphist, " (pc=0x%jx, l=0x%#jx, tf=0x%#jx)",
    839 	    fault_pc, (uintptr_t)l, (uintptr_t)tf, 0);
    840 
    841 	/* Ok validate the address, can only execute in USER space */
    842 	if (__predict_false(fault_pc >= VM_MAXUSER_ADDRESS ||
    843 	    (fault_pc < VM_MIN_ADDRESS && vector_page == ARM_VECTORS_LOW))) {
    844 		KSI_INIT_TRAP(&ksi);
    845 		ksi.ksi_signo = SIGSEGV;
    846 		ksi.ksi_code = SEGV_ACCERR;
    847 		ksi.ksi_addr = (uint32_t *)(intptr_t) fault_pc;
    848 		ksi.ksi_trap = fault_pc;
    849 		goto do_trapsignal;
    850 	}
    851 
    852 	map = &l->l_proc->p_vmspace->vm_map;
    853 	va = trunc_page(fault_pc);
    854 
    855 	/*
    856 	 * See if the pmap can handle this fault on its own...
    857 	 */
    858 #ifdef DEBUG
    859 	last_fault_code = -1;
    860 #endif
    861 	if (pmap_fault_fixup(map->pmap, va, VM_PROT_READ|VM_PROT_EXECUTE, 1)) {
    862 		UVMHIST_LOG (maphist, " <- emulated", 0, 0, 0, 0);
    863 		goto out;
    864 	}
    865 
    866 #ifdef DIAGNOSTIC
    867 	if (__predict_false(curcpu()->ci_intr_depth > 0)) {
    868 		printf("\nNon-emulated prefetch abort with intr_depth > 0\n");
    869 		dab_fatal(tf, 0, tf->tf_pc, NULL, NULL);
    870 	}
    871 #endif
    872 
    873 	KASSERT(pcb->pcb_onfault == NULL);
    874 	error = uvm_fault(map, va, VM_PROT_READ|VM_PROT_EXECUTE);
    875 
    876 	if (__predict_true(error == 0)) {
    877 		UVMHIST_LOG (maphist, " <- uvm", 0, 0, 0, 0);
    878 		goto out;
    879 	}
    880 	KSI_INIT_TRAP(&ksi);
    881 
    882 	UVMHIST_LOG (maphist, " <- fatal (%jd)", error, 0, 0, 0);
    883 
    884 	if (error == ENOMEM) {
    885 		printf("UVM: pid %d (%s), uid %d killed: "
    886 		    "out of swap\n", l->l_proc->p_pid, l->l_proc->p_comm,
    887 		    l->l_cred ? kauth_cred_geteuid(l->l_cred) : -1);
    888 		ksi.ksi_signo = SIGKILL;
    889 	} else
    890 		ksi.ksi_signo = SIGSEGV;
    891 
    892 	ksi.ksi_code = SEGV_MAPERR;
    893 	ksi.ksi_addr = (uint32_t *)(intptr_t) fault_pc;
    894 	ksi.ksi_trap = fault_pc;
    895 
    896 do_trapsignal:
    897 	call_trapsignal(l, tf, &ksi);
    898 
    899 out:
    900 	KASSERT(!TRAP_USERMODE(tf) || VALID_R15_PSR(tf->tf_pc, tf->tf_spsr));
    901 	userret(l);
    902 }
    903 
    904 /*
    905  * Tentatively read an 8, 16, or 32-bit value from 'addr'.
    906  * If the read succeeds, the value is written to 'rptr' and zero is returned.
    907  * Else, return EFAULT.
    908  */
    909 int
    910 badaddr_read(void *addr, size_t size, void *rptr)
    911 {
    912 	extern int badaddr_read_1(const uint8_t *, uint8_t *);
    913 	extern int badaddr_read_2(const uint16_t *, uint16_t *);
    914 	extern int badaddr_read_4(const uint32_t *, uint32_t *);
    915 	union {
    916 		uint8_t v1;
    917 		uint16_t v2;
    918 		uint32_t v4;
    919 	} u;
    920 	int rv, s;
    921 
    922 	cpu_drain_writebuf();
    923 
    924 	s = splhigh();
    925 
    926 	/* Read from the test address. */
    927 	switch (size) {
    928 	case sizeof(uint8_t):
    929 		rv = badaddr_read_1(addr, &u.v1);
    930 		if (rv == 0 && rptr)
    931 			*(uint8_t *) rptr = u.v1;
    932 		break;
    933 
    934 	case sizeof(uint16_t):
    935 		rv = badaddr_read_2(addr, &u.v2);
    936 		if (rv == 0 && rptr)
    937 			*(uint16_t *) rptr = u.v2;
    938 		break;
    939 
    940 	case sizeof(uint32_t):
    941 		rv = badaddr_read_4(addr, &u.v4);
    942 		if (rv == 0 && rptr)
    943 			*(uint32_t *) rptr = u.v4;
    944 		break;
    945 
    946 	default:
    947 		panic("%s: invalid size (%zu)", __func__, size);
    948 	}
    949 
    950 	splx(s);
    951 
    952 	/* Return EFAULT if the address was invalid, else zero */
    953 	return (rv);
    954 }
    955