trap.c revision 1.60 1 1.60 snj /* $NetBSD: trap.c,v 1.60 2009/11/03 05:07:26 snj Exp $ */
2 1.1 fredette
3 1.1 fredette /*-
4 1.1 fredette * Copyright (c) 2001, 2002 The NetBSD Foundation, Inc.
5 1.1 fredette * All rights reserved.
6 1.1 fredette *
7 1.1 fredette * This code is derived from software contributed to The NetBSD Foundation
8 1.1 fredette * by Matthew Fredette.
9 1.1 fredette *
10 1.1 fredette * Redistribution and use in source and binary forms, with or without
11 1.1 fredette * modification, are permitted provided that the following conditions
12 1.1 fredette * are met:
13 1.1 fredette * 1. Redistributions of source code must retain the above copyright
14 1.1 fredette * notice, this list of conditions and the following disclaimer.
15 1.1 fredette * 2. Redistributions in binary form must reproduce the above copyright
16 1.1 fredette * notice, this list of conditions and the following disclaimer in the
17 1.1 fredette * documentation and/or other materials provided with the distribution.
18 1.1 fredette *
19 1.1 fredette * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
20 1.1 fredette * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
21 1.1 fredette * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
22 1.1 fredette * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
23 1.1 fredette * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
24 1.1 fredette * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
25 1.1 fredette * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
26 1.1 fredette * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
27 1.1 fredette * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
28 1.1 fredette * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
29 1.1 fredette * POSSIBILITY OF SUCH DAMAGE.
30 1.1 fredette */
31 1.1 fredette
32 1.1 fredette /* $OpenBSD: trap.c,v 1.30 2001/09/19 20:50:56 mickey Exp $ */
33 1.1 fredette
34 1.1 fredette /*
35 1.60 snj * Copyright (c) 1998-2004 Michael Shalayeff
36 1.1 fredette * All rights reserved.
37 1.1 fredette *
38 1.1 fredette * Redistribution and use in source and binary forms, with or without
39 1.1 fredette * modification, are permitted provided that the following conditions
40 1.1 fredette * are met:
41 1.1 fredette * 1. Redistributions of source code must retain the above copyright
42 1.1 fredette * notice, this list of conditions and the following disclaimer.
43 1.1 fredette * 2. Redistributions in binary form must reproduce the above copyright
44 1.1 fredette * notice, this list of conditions and the following disclaimer in the
45 1.1 fredette * documentation and/or other materials provided with the distribution.
46 1.1 fredette *
47 1.1 fredette * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
48 1.1 fredette * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
49 1.1 fredette * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
50 1.60 snj * IN NO EVENT SHALL THE AUTHOR OR HIS RELATIVES BE LIABLE FOR ANY DIRECT,
51 1.60 snj * INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES
52 1.60 snj * (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR
53 1.60 snj * SERVICES; LOSS OF MIND, USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
54 1.60 snj * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT,
55 1.60 snj * STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING
56 1.60 snj * IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF
57 1.60 snj * THE POSSIBILITY OF SUCH DAMAGE.
58 1.1 fredette */
59 1.8 lukem
60 1.8 lukem #include <sys/cdefs.h>
61 1.60 snj __KERNEL_RCSID(0, "$NetBSD: trap.c,v 1.60 2009/11/03 05:07:26 snj Exp $");
62 1.1 fredette
63 1.1 fredette /* #define INTRDEBUG */
64 1.1 fredette /* #define TRAPDEBUG */
65 1.1 fredette /* #define USERTRACE */
66 1.1 fredette
67 1.1 fredette #include "opt_kgdb.h"
68 1.51 skrll #include "opt_ptrace.h"
69 1.56 wrstuden #include "opt_sa.h"
70 1.1 fredette
71 1.1 fredette #include <sys/param.h>
72 1.1 fredette #include <sys/systm.h>
73 1.1 fredette #include <sys/kernel.h>
74 1.1 fredette #include <sys/syscall.h>
75 1.57 ad #include <sys/syscallvar.h>
76 1.56 wrstuden #include <sys/sa.h>
77 1.56 wrstuden #include <sys/savar.h>
78 1.40 ad #include <sys/mutex.h>
79 1.1 fredette #include <sys/ktrace.h>
80 1.1 fredette #include <sys/proc.h>
81 1.1 fredette #include <sys/signalvar.h>
82 1.1 fredette #include <sys/user.h>
83 1.1 fredette #include <sys/acct.h>
84 1.1 fredette #include <sys/signal.h>
85 1.1 fredette #include <sys/device.h>
86 1.9 chs #include <sys/pool.h>
87 1.20 chs #include <sys/userret.h>
88 1.1 fredette
89 1.1 fredette #include <net/netisr.h>
90 1.1 fredette
91 1.1 fredette #ifdef KGDB
92 1.1 fredette #include <sys/kgdb.h>
93 1.1 fredette #endif
94 1.1 fredette
95 1.1 fredette #include <uvm/uvm.h>
96 1.1 fredette
97 1.1 fredette #include <machine/iomod.h>
98 1.1 fredette #include <machine/cpufunc.h>
99 1.1 fredette #include <machine/reg.h>
100 1.1 fredette #include <machine/autoconf.h>
101 1.1 fredette
102 1.1 fredette #include <machine/db_machdep.h>
103 1.1 fredette
104 1.1 fredette #include <hppa/hppa/machdep.h>
105 1.1 fredette
106 1.1 fredette #include <ddb/db_output.h>
107 1.19 chs #include <ddb/db_interface.h>
108 1.1 fredette
109 1.51 skrll #ifdef PTRACE
110 1.51 skrll void ss_clear_breakpoints(struct lwp *l);
111 1.51 skrll int ss_put_value(struct lwp *, vaddr_t, u_int);
112 1.51 skrll int ss_get_value(struct lwp *, vaddr_t, u_int *);
113 1.51 skrll #endif
114 1.51 skrll
115 1.51 skrll /* single-step breakpoint */
116 1.51 skrll #define SSBREAKPOINT (HPPA_BREAK_KERNEL | (HPPA_BREAK_SS << 13))
117 1.51 skrll
118 1.1 fredette #if defined(DEBUG) || defined(DIAGNOSTIC)
119 1.1 fredette /*
120 1.1 fredette * 0x6fc1000 is a stwm r1, d(sr0, sp), which is the last
121 1.1 fredette * instruction in the function prologue that gcc -O0 uses.
122 1.1 fredette * When we have this instruction we know the relationship
123 1.1 fredette * between the stack pointer and the gcc -O0 frame pointer
124 1.1 fredette * (in r3, loaded with the initial sp) for the body of a
125 1.1 fredette * function.
126 1.1 fredette *
127 1.1 fredette * If the given instruction is a stwm r1, d(sr0, sp) where
128 1.1 fredette * d > 0, we evaluate to d, else we evaluate to zero.
129 1.1 fredette */
130 1.1 fredette #define STWM_R1_D_SR0_SP(inst) \
131 1.1 fredette (((inst) & 0xffffc001) == 0x6fc10000 ? (((inst) & 0x00003ff) >> 1) : 0)
132 1.1 fredette #endif /* DEBUG || DIAGNOSTIC */
133 1.1 fredette
134 1.1 fredette const char *trap_type[] = {
135 1.1 fredette "invalid",
136 1.1 fredette "HPMC",
137 1.1 fredette "power failure",
138 1.1 fredette "recovery counter",
139 1.1 fredette "external interrupt",
140 1.1 fredette "LPMC",
141 1.1 fredette "ITLB miss fault",
142 1.1 fredette "instruction protection",
143 1.1 fredette "Illegal instruction",
144 1.1 fredette "break instruction",
145 1.1 fredette "privileged operation",
146 1.1 fredette "privileged register",
147 1.1 fredette "overflow",
148 1.1 fredette "conditional",
149 1.1 fredette "assist exception",
150 1.1 fredette "DTLB miss",
151 1.1 fredette "ITLB non-access miss",
152 1.1 fredette "DTLB non-access miss",
153 1.1 fredette "data protection/rights/alignment",
154 1.1 fredette "data break",
155 1.1 fredette "TLB dirty",
156 1.1 fredette "page reference",
157 1.1 fredette "assist emulation",
158 1.1 fredette "higher-priv transfer",
159 1.1 fredette "lower-priv transfer",
160 1.1 fredette "taken branch",
161 1.1 fredette "data access rights",
162 1.1 fredette "data protection",
163 1.1 fredette "unaligned data ref",
164 1.1 fredette };
165 1.1 fredette int trap_types = sizeof(trap_type)/sizeof(trap_type[0]);
166 1.1 fredette
167 1.23 chs uint8_t fpopmap[] = {
168 1.23 chs 0x00, 0x00, 0x00, 0x06, 0x00, 0x00, 0x00, 0x00,
169 1.23 chs 0x00, 0x0c, 0x00, 0x0e, 0x00, 0x00, 0x00, 0x00,
170 1.23 chs 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
171 1.23 chs 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
172 1.23 chs 0x00, 0x00, 0x00, 0x26, 0x00, 0x00, 0x00, 0x00,
173 1.23 chs 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
174 1.23 chs 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
175 1.23 chs 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
176 1.23 chs };
177 1.23 chs
178 1.1 fredette volatile int astpending;
179 1.1 fredette
180 1.14 chs void pmap_hptdump(void);
181 1.14 chs void syscall(struct trapframe *, int *);
182 1.1 fredette
183 1.53 skrll #if defined(DEBUG)
184 1.53 skrll struct trapframe *sanity_frame;
185 1.53 skrll struct lwp *sanity_lwp;
186 1.53 skrll int sanity_checked = 0;
187 1.53 skrll void frame_sanity_check(int, int, struct trapframe *, struct lwp *);
188 1.53 skrll #endif
189 1.53 skrll
190 1.53 skrll
191 1.1 fredette #ifdef USERTRACE
192 1.1 fredette /*
193 1.1 fredette * USERTRACE is a crude facility that traces the PC of
194 1.1 fredette * a single user process. This tracing is normally
195 1.1 fredette * activated by the dispatching of a certain syscall
196 1.1 fredette * with certain arguments - see the activation code in
197 1.1 fredette * syscall().
198 1.1 fredette */
199 1.53 skrll static void user_backtrace(struct trapframe *, struct lwp *, int);
200 1.53 skrll static void user_backtrace_raw(u_int, u_int);
201 1.53 skrll
202 1.1 fredette u_int rctr_next_iioq;
203 1.1 fredette #endif
204 1.1 fredette
205 1.30 perry static inline void
206 1.20 chs userret(struct lwp *l, register_t pc, u_quad_t oticks)
207 1.1 fredette {
208 1.9 chs struct proc *p = l->l_proc;
209 1.1 fredette
210 1.47 skrll if (curcpu()->ci_want_resched) {
211 1.40 ad preempt();
212 1.1 fredette }
213 1.1 fredette
214 1.20 chs mi_userret(l);
215 1.20 chs
216 1.1 fredette /*
217 1.1 fredette * If profiling, charge recent system time to the trapped pc.
218 1.1 fredette */
219 1.40 ad if (p->p_stflag & PST_PROFIL) {
220 1.1 fredette extern int psratio;
221 1.1 fredette
222 1.40 ad addupc_task(l, pc, (int)(p->p_sticks - oticks) * psratio);
223 1.1 fredette }
224 1.1 fredette }
225 1.1 fredette
226 1.1 fredette /*
227 1.1 fredette * This handles some messy kernel debugger details.
228 1.1 fredette * It dispatches into either kgdb or DDB, and knows
229 1.1 fredette * about some special things to do, like skipping over
230 1.1 fredette * break instructions and how to really set up for
231 1.1 fredette * a single-step.
232 1.1 fredette */
233 1.1 fredette #if defined(KGDB) || defined(DDB)
234 1.1 fredette static int
235 1.1 fredette trap_kdebug(int type, int code, struct trapframe *frame)
236 1.1 fredette {
237 1.1 fredette int handled;
238 1.1 fredette u_int tf_iioq_head_old;
239 1.1 fredette u_int tf_iioq_tail_old;
240 1.1 fredette
241 1.1 fredette for(;;) {
242 1.1 fredette
243 1.1 fredette /* This trap has not been handled. */
244 1.1 fredette handled = 0;
245 1.1 fredette
246 1.1 fredette /* Remember the instruction offset queue. */
247 1.1 fredette tf_iioq_head_old = frame->tf_iioq_head;
248 1.1 fredette tf_iioq_tail_old = frame->tf_iioq_tail;
249 1.1 fredette
250 1.1 fredette #ifdef KGDB
251 1.1 fredette /* Let KGDB handle it (if connected) */
252 1.1 fredette if (!handled)
253 1.1 fredette handled = kgdb_trap(type, frame);
254 1.1 fredette #endif
255 1.1 fredette #ifdef DDB
256 1.1 fredette /* Let DDB handle it. */
257 1.1 fredette if (!handled)
258 1.1 fredette handled = kdb_trap(type, code, frame);
259 1.1 fredette #endif
260 1.1 fredette
261 1.1 fredette /* If this trap wasn't handled, return now. */
262 1.1 fredette if (!handled)
263 1.1 fredette return(0);
264 1.1 fredette
265 1.1 fredette /*
266 1.1 fredette * If the instruction offset queue head changed,
267 1.1 fredette * but the offset queue tail didn't, assume that
268 1.1 fredette * the user wants to jump to the head offset, and
269 1.1 fredette * adjust the tail accordingly. This should fix
270 1.1 fredette * the kgdb `jump' command, and can help DDB users
271 1.1 fredette * who `set' the offset head but forget the tail.
272 1.1 fredette */
273 1.1 fredette if (frame->tf_iioq_head != tf_iioq_head_old &&
274 1.1 fredette frame->tf_iioq_tail == tf_iioq_tail_old)
275 1.1 fredette frame->tf_iioq_tail = frame->tf_iioq_head + 4;
276 1.1 fredette
277 1.1 fredette /*
278 1.1 fredette * This is some single-stepping support.
279 1.1 fredette * If we're trying to step through a nullified
280 1.1 fredette * instruction, just advance by hand and trap
281 1.1 fredette * again. Otherwise, load the recovery counter
282 1.1 fredette * with zero.
283 1.1 fredette */
284 1.1 fredette if (frame->tf_ipsw & PSW_R) {
285 1.1 fredette #ifdef TRAPDEBUG
286 1.44 skrll printf("(single stepping at head 0x%x tail 0x%x)\n",
287 1.44 skrll frame->tf_iioq_head, frame->tf_iioq_tail);
288 1.1 fredette #endif
289 1.1 fredette if (frame->tf_ipsw & PSW_N) {
290 1.1 fredette #ifdef TRAPDEBUG
291 1.1 fredette printf("(single stepping past nullified)\n");
292 1.1 fredette #endif
293 1.1 fredette
294 1.1 fredette /* Advance the program counter. */
295 1.1 fredette frame->tf_iioq_head = frame->tf_iioq_tail;
296 1.1 fredette frame->tf_iioq_tail = frame->tf_iioq_head + 4;
297 1.1 fredette
298 1.1 fredette /* Clear flags. */
299 1.1 fredette frame->tf_ipsw &= ~(PSW_N|PSW_X|PSW_Y|PSW_Z|PSW_B|PSW_T|PSW_H|PSW_L);
300 1.1 fredette
301 1.1 fredette /* Simulate another trap. */
302 1.1 fredette type = T_RECOVERY;
303 1.1 fredette continue;
304 1.1 fredette }
305 1.1 fredette frame->tf_rctr = 0;
306 1.1 fredette }
307 1.1 fredette
308 1.1 fredette /* We handled this trap. */
309 1.1 fredette return (1);
310 1.1 fredette }
311 1.1 fredette /* NOTREACHED */
312 1.1 fredette }
313 1.1 fredette #else /* !KGDB && !DDB */
314 1.1 fredette #define trap_kdebug(t, c, f) (0)
315 1.1 fredette #endif /* !KGDB && !DDB */
316 1.1 fredette
317 1.24 tsutsui #if defined(DEBUG) || defined(USERTRACE)
318 1.1 fredette /*
319 1.1 fredette * These functions give a crude usermode backtrace. They
320 1.1 fredette * really only work when code has been compiled without
321 1.1 fredette * optimization, as they assume a certain function prologue
322 1.1 fredette * sets up a frame pointer and stores the return pointer
323 1.1 fredette * and arguments in it.
324 1.1 fredette */
325 1.1 fredette static void
326 1.1 fredette user_backtrace_raw(u_int pc, u_int fp)
327 1.1 fredette {
328 1.1 fredette int frame_number;
329 1.1 fredette int arg_number;
330 1.1 fredette
331 1.3 fredette for (frame_number = 0;
332 1.3 fredette frame_number < 100 && pc > HPPA_PC_PRIV_MASK && fp;
333 1.3 fredette frame_number++) {
334 1.3 fredette
335 1.1 fredette printf("%3d: pc=%08x%s fp=0x%08x", frame_number,
336 1.44 skrll pc & ~HPPA_PC_PRIV_MASK, USERMODE(pc) ? " " : "**", fp);
337 1.1 fredette for(arg_number = 0; arg_number < 4; arg_number++)
338 1.1 fredette printf(" arg%d=0x%08x", arg_number,
339 1.1 fredette (int) fuword(HPPA_FRAME_CARG(arg_number, fp)));
340 1.1 fredette printf("\n");
341 1.1 fredette pc = fuword(((register_t *) fp) - 5); /* fetch rp */
342 1.1 fredette if (pc == -1) {
343 1.1 fredette printf(" fuword for pc failed\n");
344 1.1 fredette break;
345 1.1 fredette }
346 1.1 fredette fp = fuword(((register_t *) fp) + 0); /* fetch previous fp */
347 1.1 fredette if (fp == -1) {
348 1.1 fredette printf(" fuword for fp failed\n");
349 1.1 fredette break;
350 1.1 fredette }
351 1.1 fredette }
352 1.1 fredette printf(" backtrace stopped with pc %08x fp 0x%08x\n", pc, fp);
353 1.1 fredette }
354 1.1 fredette
355 1.1 fredette static void
356 1.9 chs user_backtrace(struct trapframe *tf, struct lwp *l, int type)
357 1.1 fredette {
358 1.9 chs struct proc *p = l->l_proc;
359 1.1 fredette u_int pc, fp, inst;
360 1.1 fredette
361 1.1 fredette /*
362 1.3 fredette * Display any trap type that we have.
363 1.3 fredette */
364 1.3 fredette if (type >= 0)
365 1.3 fredette printf("pid %d (%s) trap #%d\n",
366 1.3 fredette p->p_pid, p->p_comm, type & ~T_USER);
367 1.3 fredette
368 1.3 fredette /*
369 1.1 fredette * Assuming that the frame pointer in r3 is valid,
370 1.1 fredette * dump out a stack trace.
371 1.1 fredette */
372 1.1 fredette fp = tf->tf_r3;
373 1.1 fredette printf("pid %d (%s) backtrace, starting with fp 0x%08x\n",
374 1.1 fredette p->p_pid, p->p_comm, fp);
375 1.1 fredette user_backtrace_raw(tf->tf_iioq_head, fp);
376 1.1 fredette
377 1.1 fredette /*
378 1.1 fredette * In case the frame pointer in r3 is not valid,
379 1.1 fredette * assuming the stack pointer is valid and the
380 1.1 fredette * faulting function is a non-leaf, if we can
381 1.1 fredette * find its prologue we can recover its frame
382 1.1 fredette * pointer.
383 1.1 fredette */
384 1.1 fredette pc = tf->tf_iioq_head;
385 1.1 fredette fp = tf->tf_sp - HPPA_FRAME_SIZE;
386 1.1 fredette printf("pid %d (%s) backtrace, starting with sp 0x%08x pc 0x%08x\n",
387 1.1 fredette p->p_pid, p->p_comm, tf->tf_sp, pc);
388 1.44 skrll for (pc &= ~HPPA_PC_PRIV_MASK; pc > 0; pc -= sizeof(inst)) {
389 1.1 fredette inst = fuword((register_t *) pc);
390 1.1 fredette if (inst == -1) {
391 1.1 fredette printf(" fuword for inst at pc %08x failed\n", pc);
392 1.1 fredette break;
393 1.1 fredette }
394 1.1 fredette /* Check for the prologue instruction that sets sp. */
395 1.1 fredette if (STWM_R1_D_SR0_SP(inst)) {
396 1.1 fredette fp = tf->tf_sp - STWM_R1_D_SR0_SP(inst);
397 1.1 fredette printf(" sp from fp at pc %08x: %08x\n", pc, inst);
398 1.1 fredette break;
399 1.1 fredette }
400 1.1 fredette }
401 1.1 fredette user_backtrace_raw(tf->tf_iioq_head, fp);
402 1.1 fredette }
403 1.24 tsutsui #endif /* DEBUG || USERTRACE */
404 1.1 fredette
405 1.1 fredette #ifdef DEBUG
406 1.1 fredette /*
407 1.1 fredette * This sanity-checks a trapframe. It is full of various
408 1.1 fredette * assumptions about what a healthy CPU state should be,
409 1.1 fredette * with some documented elsewhere, some not.
410 1.1 fredette */
411 1.1 fredette void
412 1.26 chs frame_sanity_check(int where, int type, struct trapframe *tf, struct lwp *l)
413 1.1 fredette {
414 1.1 fredette extern int kernel_text;
415 1.1 fredette extern int etext;
416 1.1 fredette extern register_t kpsw;
417 1.1 fredette #define SANITY(e) \
418 1.1 fredette do { \
419 1.1 fredette if (sanity_frame == NULL && !(e)) { \
420 1.1 fredette sanity_frame = tf; \
421 1.9 chs sanity_lwp = l; \
422 1.1 fredette sanity_checked = __LINE__; \
423 1.1 fredette } \
424 1.1 fredette } while (/* CONSTCOND */ 0)
425 1.1 fredette
426 1.1 fredette SANITY((tf->tf_ipsw & kpsw) == kpsw);
427 1.1 fredette SANITY((kpsw & PSW_I) == 0 || tf->tf_eiem != 0);
428 1.1 fredette if (tf->tf_iisq_head == HPPA_SID_KERNEL) {
429 1.45 skrll vaddr_t minsp, maxsp;
430 1.45 skrll
431 1.1 fredette /*
432 1.1 fredette * If the trap happened in the gateway
433 1.1 fredette * page, we take the easy way out and
434 1.1 fredette * assume that the trapframe is okay.
435 1.1 fredette */
436 1.45 skrll if ((tf->tf_iioq_head & ~PAGE_MASK) == SYSCALLGATE)
437 1.45 skrll goto out;
438 1.45 skrll
439 1.45 skrll SANITY(!USERMODE(tf->tf_iioq_head));
440 1.45 skrll SANITY(!USERMODE(tf->tf_iioq_tail));
441 1.45 skrll
442 1.45 skrll /*
443 1.45 skrll * Don't check the instruction queues or stack on interrupts
444 1.45 skrll * as we could be be in the sti code (outside normal kernel
445 1.45 skrll * text) or switching LWPs (curlwp and sp are not in sync)
446 1.45 skrll */
447 1.45 skrll if ((type & ~T_USER) == T_INTERRUPT)
448 1.45 skrll goto out;
449 1.45 skrll
450 1.45 skrll SANITY(tf->tf_iioq_head >= (u_int) &kernel_text);
451 1.45 skrll SANITY(tf->tf_iioq_head < (u_int) &etext);
452 1.45 skrll SANITY(tf->tf_iioq_tail >= (u_int) &kernel_text);
453 1.45 skrll SANITY(tf->tf_iioq_tail < (u_int) &etext);
454 1.43 yamt
455 1.59 skrll maxsp = (u_int)(l->l_addr) + USPACE + PAGE_SIZE;
456 1.45 skrll minsp = (u_int)(l->l_addr) + PAGE_SIZE;
457 1.43 yamt
458 1.45 skrll SANITY(l != NULL || (tf->tf_sp >= minsp && tf->tf_sp < maxsp));
459 1.1 fredette } else {
460 1.1 fredette SANITY(USERMODE(tf->tf_iioq_head));
461 1.1 fredette SANITY(USERMODE(tf->tf_iioq_tail));
462 1.42 christos SANITY(l != NULL && tf->tf_cr30 == kvtop((void *)l->l_addr));
463 1.1 fredette }
464 1.1 fredette #undef SANITY
465 1.45 skrll out:
466 1.1 fredette if (sanity_frame == tf) {
467 1.26 chs printf("insanity: where 0x%x type 0x%x tf %p lwp %p line %d "
468 1.26 chs "sp 0x%x pc 0x%x\n",
469 1.26 chs where, type, sanity_frame, sanity_lwp, sanity_checked,
470 1.22 chs tf->tf_sp, tf->tf_iioq_head);
471 1.4 fredette (void) trap_kdebug(T_IBREAK, 0, tf);
472 1.1 fredette sanity_frame = NULL;
473 1.9 chs sanity_lwp = NULL;
474 1.1 fredette sanity_checked = 0;
475 1.1 fredette }
476 1.1 fredette }
477 1.1 fredette #endif /* DEBUG */
478 1.1 fredette
479 1.1 fredette void
480 1.14 chs trap(int type, struct trapframe *frame)
481 1.1 fredette {
482 1.13 tsutsui struct lwp *l;
483 1.13 tsutsui struct proc *p;
484 1.1 fredette struct pcb *pcbp;
485 1.9 chs vaddr_t va;
486 1.9 chs struct vm_map *map;
487 1.1 fredette struct vmspace *vm;
488 1.9 chs vm_prot_t vftype;
489 1.9 chs pa_space_t space;
490 1.22 chs ksiginfo_t ksi;
491 1.19 chs u_int opcode, onfault;
492 1.1 fredette int ret;
493 1.1 fredette const char *tts;
494 1.1 fredette int type_raw;
495 1.1 fredette #ifdef DIAGNOSTIC
496 1.1 fredette extern int emergency_stack_start, emergency_stack_end;
497 1.1 fredette #endif
498 1.1 fredette
499 1.1 fredette type_raw = type & ~T_USER;
500 1.1 fredette opcode = frame->tf_iir;
501 1.51 skrll if (type_raw == T_ITLBMISS || type_raw == T_ITLBMISSNA ||
502 1.51 skrll type_raw == T_IBREAK || type_raw == T_TAKENBR) {
503 1.1 fredette va = frame->tf_iioq_head;
504 1.1 fredette space = frame->tf_iisq_head;
505 1.17 chs vftype = VM_PROT_EXECUTE;
506 1.1 fredette } else {
507 1.1 fredette va = frame->tf_ior;
508 1.1 fredette space = frame->tf_isr;
509 1.1 fredette vftype = inst_store(opcode) ? VM_PROT_WRITE : VM_PROT_READ;
510 1.1 fredette }
511 1.13 tsutsui
512 1.18 chs l = curlwp;
513 1.18 chs p = l ? l->l_proc : NULL;
514 1.36 ad if ((type & T_USER) != 0)
515 1.36 ad LWP_CACHE_CREDS(l, p);
516 1.1 fredette
517 1.23 chs tts = (type & ~T_USER) > trap_types ? "reserved" :
518 1.23 chs trap_type[type & ~T_USER];
519 1.23 chs
520 1.1 fredette #ifdef DIAGNOSTIC
521 1.1 fredette /*
522 1.1 fredette * If we are on the emergency stack, then we either got
523 1.1 fredette * a fault on the kernel stack, or we're just handling
524 1.1 fredette * a trap for the machine check handler (which also
525 1.1 fredette * runs on the emergency stack).
526 1.1 fredette *
527 1.1 fredette * We *very crudely* differentiate between the two cases
528 1.1 fredette * by checking the faulting instruction: if it is the
529 1.1 fredette * function prologue instruction that stores the old
530 1.1 fredette * frame pointer and updates the stack pointer, we assume
531 1.1 fredette * that we faulted on the kernel stack.
532 1.1 fredette *
533 1.1 fredette * In this case, not completing that instruction will
534 1.1 fredette * probably confuse backtraces in kgdb/ddb. Completing
535 1.1 fredette * it would be difficult, because we already faulted on
536 1.1 fredette * that part of the stack, so instead we fix up the
537 1.1 fredette * frame as if the function called has just returned.
538 1.1 fredette * This has peculiar knowledge about what values are in
539 1.1 fredette * what registers during the "normal gcc -g" prologue.
540 1.1 fredette */
541 1.1 fredette if (&type >= &emergency_stack_start &&
542 1.1 fredette &type < &emergency_stack_end &&
543 1.1 fredette type != T_IBREAK && STWM_R1_D_SR0_SP(opcode)) {
544 1.1 fredette /* Restore the caller's frame pointer. */
545 1.1 fredette frame->tf_r3 = frame->tf_r1;
546 1.1 fredette /* Restore the caller's instruction offsets. */
547 1.1 fredette frame->tf_iioq_head = frame->tf_rp;
548 1.1 fredette frame->tf_iioq_tail = frame->tf_iioq_head + 4;
549 1.1 fredette goto dead_end;
550 1.1 fredette }
551 1.1 fredette #endif /* DIAGNOSTIC */
552 1.1 fredette
553 1.1 fredette #ifdef DEBUG
554 1.26 chs frame_sanity_check(0xdead01, type, frame, l);
555 1.1 fredette #endif /* DEBUG */
556 1.1 fredette
557 1.1 fredette /* If this is a trap, not an interrupt, reenable interrupts. */
558 1.1 fredette if (type_raw != T_INTERRUPT)
559 1.1 fredette mtctl(frame->tf_eiem, CR_EIEM);
560 1.1 fredette
561 1.1 fredette if (frame->tf_flags & TFF_LAST)
562 1.9 chs l->l_md.md_regs = frame;
563 1.1 fredette
564 1.1 fredette #ifdef TRAPDEBUG
565 1.1 fredette if (type_raw != T_INTERRUPT && type_raw != T_IBREAK)
566 1.1 fredette printf("trap: %d, %s for %x:%x at %x:%x, fp=%p, rp=%x\n",
567 1.1 fredette type, tts, space, (u_int)va, frame->tf_iisq_head,
568 1.1 fredette frame->tf_iioq_head, frame, frame->tf_rp);
569 1.1 fredette else if (type_raw == T_IBREAK)
570 1.1 fredette printf("trap: break instruction %x:%x at %x:%x, fp=%p\n",
571 1.1 fredette break5(opcode), break13(opcode),
572 1.1 fredette frame->tf_iisq_head, frame->tf_iioq_head, frame);
573 1.1 fredette
574 1.1 fredette {
575 1.1 fredette extern int etext;
576 1.1 fredette if (frame < (struct trapframe *)&etext) {
577 1.1 fredette printf("trap: bogus frame ptr %p\n", frame);
578 1.1 fredette goto dead_end;
579 1.1 fredette }
580 1.1 fredette }
581 1.1 fredette #endif
582 1.1 fredette switch (type) {
583 1.1 fredette case T_NONEXIST:
584 1.1 fredette case T_NONEXIST|T_USER:
585 1.1 fredette #if !defined(DDB) && !defined(KGDB)
586 1.1 fredette /* we've got screwed up by the central scrutinizer */
587 1.1 fredette panic ("trap: elvis has just left the building!");
588 1.1 fredette break;
589 1.1 fredette #else
590 1.1 fredette goto dead_end;
591 1.1 fredette #endif
592 1.1 fredette case T_RECOVERY|T_USER:
593 1.1 fredette #ifdef USERTRACE
594 1.1 fredette for(;;) {
595 1.1 fredette if (frame->tf_iioq_head != rctr_next_iioq)
596 1.1 fredette printf("-%08x\nr %08x",
597 1.1 fredette rctr_next_iioq - 4,
598 1.1 fredette frame->tf_iioq_head);
599 1.1 fredette rctr_next_iioq = frame->tf_iioq_head + 4;
600 1.1 fredette if (frame->tf_ipsw & PSW_N) {
601 1.1 fredette /* Advance the program counter. */
602 1.1 fredette frame->tf_iioq_head = frame->tf_iioq_tail;
603 1.1 fredette frame->tf_iioq_tail = frame->tf_iioq_head + 4;
604 1.1 fredette /* Clear flags. */
605 1.1 fredette frame->tf_ipsw &= ~(PSW_N|PSW_X|PSW_Y|PSW_Z|PSW_B|PSW_T|PSW_H|PSW_L);
606 1.1 fredette /* Simulate another trap. */
607 1.1 fredette continue;
608 1.1 fredette }
609 1.1 fredette break;
610 1.1 fredette }
611 1.1 fredette frame->tf_rctr = 0;
612 1.1 fredette break;
613 1.1 fredette #endif /* USERTRACE */
614 1.1 fredette case T_RECOVERY:
615 1.1 fredette #if !defined(DDB) && !defined(KGDB)
616 1.1 fredette /* XXX will implement later */
617 1.1 fredette printf ("trap: handicapped");
618 1.1 fredette break;
619 1.1 fredette #else
620 1.1 fredette goto dead_end;
621 1.1 fredette #endif
622 1.1 fredette
623 1.1 fredette case T_EMULATION | T_USER:
624 1.1 fredette #ifdef FPEMUL
625 1.21 chs hppa_fpu_emulate(frame, l, opcode);
626 1.1 fredette #else /* !FPEMUL */
627 1.1 fredette /*
628 1.1 fredette * We don't have FPU emulation, so signal the
629 1.1 fredette * process with a SIGFPE.
630 1.1 fredette */
631 1.22 chs
632 1.22 chs KSI_INIT_TRAP(&ksi);
633 1.22 chs ksi.ksi_signo = SIGFPE;
634 1.22 chs ksi.ksi_code = SI_NOINFO;
635 1.22 chs ksi.ksi_trap = type;
636 1.22 chs ksi.ksi_addr = (void *)frame->tf_iioq_head;
637 1.22 chs trapsignal(l, &ksi);
638 1.1 fredette #endif /* !FPEMUL */
639 1.1 fredette break;
640 1.1 fredette
641 1.25 chs case T_DATALIGN:
642 1.25 chs if (l->l_addr->u_pcb.pcb_onfault) {
643 1.25 chs do_onfault:
644 1.25 chs pcbp = &l->l_addr->u_pcb;
645 1.25 chs frame->tf_iioq_tail = 4 +
646 1.25 chs (frame->tf_iioq_head =
647 1.25 chs pcbp->pcb_onfault);
648 1.25 chs pcbp->pcb_onfault = 0;
649 1.25 chs break;
650 1.25 chs }
651 1.25 chs /*FALLTHROUGH*/
652 1.25 chs
653 1.1 fredette #ifdef DIAGNOSTIC
654 1.1 fredette /* these just can't happen ever */
655 1.1 fredette case T_PRIV_OP:
656 1.1 fredette case T_PRIV_REG:
657 1.1 fredette /* these just can't make it to the trap() ever */
658 1.25 chs case T_HPMC:
659 1.25 chs case T_HPMC | T_USER:
660 1.1 fredette case T_EMULATION:
661 1.25 chs case T_EXCEPTION:
662 1.1 fredette #endif
663 1.1 fredette case T_IBREAK:
664 1.1 fredette case T_DBREAK:
665 1.1 fredette dead_end:
666 1.3 fredette if (type & T_USER) {
667 1.3 fredette #ifdef DEBUG
668 1.9 chs user_backtrace(frame, l, type);
669 1.3 fredette #endif
670 1.22 chs KSI_INIT_TRAP(&ksi);
671 1.22 chs ksi.ksi_signo = SIGILL;
672 1.22 chs ksi.ksi_code = ILL_ILLTRP;
673 1.22 chs ksi.ksi_trap = type;
674 1.22 chs ksi.ksi_addr = (void *)frame->tf_iioq_head;
675 1.22 chs trapsignal(l, &ksi);
676 1.3 fredette break;
677 1.3 fredette }
678 1.1 fredette if (trap_kdebug(type, va, frame))
679 1.1 fredette return;
680 1.1 fredette else if (type == T_DATALIGN)
681 1.1 fredette panic ("trap: %s at 0x%x", tts, (u_int) va);
682 1.1 fredette else
683 1.1 fredette panic ("trap: no debugger for \"%s\" (%d)", tts, type);
684 1.1 fredette break;
685 1.1 fredette
686 1.1 fredette case T_IBREAK | T_USER:
687 1.1 fredette case T_DBREAK | T_USER:
688 1.51 skrll KSI_INIT_TRAP(&ksi);
689 1.51 skrll ksi.ksi_signo = SIGTRAP;
690 1.51 skrll ksi.ksi_code = TRAP_TRACE;
691 1.51 skrll ksi.ksi_trap = type_raw;
692 1.51 skrll ksi.ksi_addr = (void *)frame->tf_iioq_head;
693 1.51 skrll #ifdef PTRACE
694 1.51 skrll ss_clear_breakpoints(l);
695 1.51 skrll if (opcode == SSBREAKPOINT)
696 1.51 skrll ksi.ksi_code = TRAP_BRKPT;
697 1.51 skrll #endif
698 1.1 fredette /* pass to user debugger */
699 1.51 skrll trapsignal(l, &ksi);
700 1.51 skrll
701 1.51 skrll break;
702 1.51 skrll
703 1.51 skrll #ifdef PTRACE
704 1.51 skrll case T_TAKENBR | T_USER:
705 1.51 skrll ss_clear_breakpoints(l);
706 1.51 skrll
707 1.51 skrll KSI_INIT_TRAP(&ksi);
708 1.51 skrll ksi.ksi_signo = SIGTRAP;
709 1.51 skrll ksi.ksi_code = TRAP_TRACE;
710 1.51 skrll ksi.ksi_trap = type_raw;
711 1.51 skrll ksi.ksi_addr = (void *)frame->tf_iioq_head;
712 1.51 skrll
713 1.51 skrll /* pass to user debugger */
714 1.51 skrll trapsignal(l, &ksi);
715 1.1 fredette break;
716 1.51 skrll #endif
717 1.1 fredette
718 1.21 chs case T_EXCEPTION | T_USER: { /* co-proc assist trap */
719 1.21 chs uint64_t *fpp;
720 1.23 chs uint32_t *pex, ex, inst;
721 1.23 chs int i;
722 1.21 chs
723 1.21 chs hppa_fpu_flush(l);
724 1.21 chs fpp = l->l_addr->u_pcb.pcb_fpregs;
725 1.23 chs pex = (uint32_t *)&fpp[1];
726 1.23 chs for (i = 1; i < 8 && !*pex; i++, pex++)
727 1.21 chs ;
728 1.23 chs KASSERT(i < 8);
729 1.23 chs ex = *pex;
730 1.23 chs *pex = 0;
731 1.23 chs
732 1.21 chs /* reset the trap flag, as if there was none */
733 1.21 chs fpp[0] &= ~(((uint64_t)HPPA_FPU_T) << 32);
734 1.21 chs
735 1.23 chs /* emulate the instruction */
736 1.23 chs inst = ((uint32_t)fpopmap[ex >> 26] << 26) | (ex & 0x03ffffff);
737 1.21 chs hppa_fpu_emulate(frame, l, inst);
738 1.21 chs }
739 1.1 fredette break;
740 1.1 fredette
741 1.1 fredette case T_OVERFLOW | T_USER:
742 1.22 chs KSI_INIT_TRAP(&ksi);
743 1.22 chs ksi.ksi_signo = SIGFPE;
744 1.22 chs ksi.ksi_code = SI_NOINFO;
745 1.22 chs ksi.ksi_trap = type;
746 1.22 chs ksi.ksi_addr = (void *)va;
747 1.22 chs trapsignal(l, &ksi);
748 1.1 fredette break;
749 1.1 fredette
750 1.1 fredette case T_CONDITION | T_USER:
751 1.23 chs KSI_INIT_TRAP(&ksi);
752 1.23 chs ksi.ksi_signo = SIGFPE;
753 1.23 chs ksi.ksi_code = FPE_INTDIV;
754 1.23 chs ksi.ksi_trap = type;
755 1.23 chs ksi.ksi_addr = (void *)va;
756 1.23 chs trapsignal(l, &ksi);
757 1.1 fredette break;
758 1.1 fredette
759 1.1 fredette case T_ILLEGAL | T_USER:
760 1.3 fredette #ifdef DEBUG
761 1.9 chs user_backtrace(frame, l, type);
762 1.3 fredette #endif
763 1.22 chs KSI_INIT_TRAP(&ksi);
764 1.22 chs ksi.ksi_signo = SIGILL;
765 1.22 chs ksi.ksi_code = ILL_ILLOPC;
766 1.22 chs ksi.ksi_trap = type;
767 1.22 chs ksi.ksi_addr = (void *)va;
768 1.22 chs trapsignal(l, &ksi);
769 1.1 fredette break;
770 1.1 fredette
771 1.1 fredette case T_PRIV_OP | T_USER:
772 1.3 fredette #ifdef DEBUG
773 1.9 chs user_backtrace(frame, l, type);
774 1.3 fredette #endif
775 1.22 chs KSI_INIT_TRAP(&ksi);
776 1.22 chs ksi.ksi_signo = SIGILL;
777 1.22 chs ksi.ksi_code = ILL_PRVOPC;
778 1.22 chs ksi.ksi_trap = type;
779 1.22 chs ksi.ksi_addr = (void *)va;
780 1.22 chs trapsignal(l, &ksi);
781 1.1 fredette break;
782 1.1 fredette
783 1.1 fredette case T_PRIV_REG | T_USER:
784 1.3 fredette #ifdef DEBUG
785 1.9 chs user_backtrace(frame, l, type);
786 1.3 fredette #endif
787 1.22 chs KSI_INIT_TRAP(&ksi);
788 1.22 chs ksi.ksi_signo = SIGILL;
789 1.22 chs ksi.ksi_code = ILL_PRVREG;
790 1.22 chs ksi.ksi_trap = type;
791 1.22 chs ksi.ksi_addr = (void *)va;
792 1.22 chs trapsignal(l, &ksi);
793 1.1 fredette break;
794 1.1 fredette
795 1.1 fredette /* these should never got here */
796 1.1 fredette case T_HIGHERPL | T_USER:
797 1.1 fredette case T_LOWERPL | T_USER:
798 1.22 chs KSI_INIT_TRAP(&ksi);
799 1.22 chs ksi.ksi_signo = SIGSEGV;
800 1.22 chs ksi.ksi_code = SEGV_ACCERR;
801 1.22 chs ksi.ksi_trap = type;
802 1.22 chs ksi.ksi_addr = (void *)va;
803 1.22 chs trapsignal(l, &ksi);
804 1.1 fredette break;
805 1.1 fredette
806 1.1 fredette case T_IPROT | T_USER:
807 1.1 fredette case T_DPROT | T_USER:
808 1.22 chs KSI_INIT_TRAP(&ksi);
809 1.22 chs ksi.ksi_signo = SIGSEGV;
810 1.22 chs ksi.ksi_code = SEGV_ACCERR;
811 1.22 chs ksi.ksi_trap = type;
812 1.22 chs ksi.ksi_addr = (void *)va;
813 1.22 chs trapsignal(l, &ksi);
814 1.1 fredette break;
815 1.1 fredette
816 1.1 fredette case T_DATACC: case T_USER | T_DATACC:
817 1.1 fredette case T_ITLBMISS: case T_USER | T_ITLBMISS:
818 1.1 fredette case T_DTLBMISS: case T_USER | T_DTLBMISS:
819 1.1 fredette case T_ITLBMISSNA: case T_USER | T_ITLBMISSNA:
820 1.1 fredette case T_DTLBMISSNA: case T_USER | T_DTLBMISSNA:
821 1.1 fredette case T_TLB_DIRTY: case T_USER | T_TLB_DIRTY:
822 1.1 fredette vm = p->p_vmspace;
823 1.1 fredette
824 1.1 fredette if (!vm) {
825 1.1 fredette #ifdef TRAPDEBUG
826 1.1 fredette printf("trap: no vm, p=%p\n", p);
827 1.1 fredette #endif
828 1.1 fredette goto dead_end;
829 1.1 fredette }
830 1.1 fredette
831 1.1 fredette /*
832 1.1 fredette * it could be a kernel map for exec_map faults
833 1.1 fredette */
834 1.1 fredette if (!(type & T_USER) && space == HPPA_SID_KERNEL)
835 1.1 fredette map = kernel_map;
836 1.56 wrstuden else {
837 1.1 fredette map = &vm->vm_map;
838 1.56 wrstuden if ((l->l_flag & LW_SA)
839 1.56 wrstuden && (~l->l_pflag & LP_SA_NOBLOCK)) {
840 1.56 wrstuden l->l_savp->savp_faultaddr = va;
841 1.56 wrstuden l->l_pflag |= LP_SA_PAGEFAULT;
842 1.56 wrstuden }
843 1.56 wrstuden }
844 1.10 cl
845 1.41 skrll va = trunc_page(va);
846 1.1 fredette
847 1.59 skrll if (map->pmap->pm_space != space) {
848 1.1 fredette #ifdef TRAPDEBUG
849 1.37 skrll printf("trap: space mismatch %d != %d\n",
850 1.59 skrll space, map->pmap->pm_space);
851 1.1 fredette #endif
852 1.1 fredette /* actually dump the user, crap the kernel */
853 1.1 fredette goto dead_end;
854 1.1 fredette }
855 1.1 fredette
856 1.1 fredette /* Never call uvm_fault in interrupt context. */
857 1.1 fredette KASSERT(hppa_intr_depth == 0);
858 1.1 fredette
859 1.19 chs onfault = l->l_addr->u_pcb.pcb_onfault;
860 1.19 chs l->l_addr->u_pcb.pcb_onfault = 0;
861 1.33 drochner ret = uvm_fault(map, va, vftype);
862 1.19 chs l->l_addr->u_pcb.pcb_onfault = onfault;
863 1.1 fredette
864 1.1 fredette #ifdef TRAPDEBUG
865 1.33 drochner printf("uvm_fault(%p, %x, %d)=%d\n",
866 1.33 drochner map, (u_int)va, vftype, ret);
867 1.1 fredette #endif
868 1.1 fredette
869 1.56 wrstuden if (map != kernel_map)
870 1.56 wrstuden l->l_pflag &= ~LP_SA_PAGEFAULT;
871 1.56 wrstuden
872 1.1 fredette /*
873 1.1 fredette * If this was a stack access we keep track of the maximum
874 1.1 fredette * accessed stack size. Also, if uvm_fault gets a protection
875 1.1 fredette * failure it is due to accessing the stack region outside
876 1.1 fredette * the current limit and we need to reflect that as an access
877 1.1 fredette * error.
878 1.1 fredette */
879 1.39 skrll if (map != kernel_map && va >= (vaddr_t)vm->vm_minsaddr) {
880 1.39 skrll if (ret == 0)
881 1.39 skrll uvm_grow(l->l_proc, va);
882 1.39 skrll else if (ret == EACCES)
883 1.1 fredette ret = EFAULT;
884 1.1 fredette }
885 1.1 fredette
886 1.1 fredette if (ret != 0) {
887 1.1 fredette if (type & T_USER) {
888 1.1 fredette #ifdef DEBUG
889 1.9 chs user_backtrace(frame, l, type);
890 1.1 fredette #endif
891 1.22 chs KSI_INIT_TRAP(&ksi);
892 1.22 chs ksi.ksi_signo = SIGSEGV;
893 1.22 chs ksi.ksi_code = (ret == EACCES ?
894 1.22 chs SEGV_ACCERR : SEGV_MAPERR);
895 1.22 chs ksi.ksi_trap = type;
896 1.22 chs ksi.ksi_addr = (void *)va;
897 1.22 chs trapsignal(l, &ksi);
898 1.1 fredette } else {
899 1.19 chs if (l->l_addr->u_pcb.pcb_onfault) {
900 1.25 chs goto do_onfault;
901 1.1 fredette }
902 1.33 drochner panic("trap: uvm_fault(%p, %lx, %d): %d",
903 1.33 drochner map, va, vftype, ret);
904 1.1 fredette }
905 1.1 fredette }
906 1.1 fredette break;
907 1.1 fredette
908 1.1 fredette case T_DATALIGN | T_USER:
909 1.3 fredette #ifdef DEBUG
910 1.9 chs user_backtrace(frame, l, type);
911 1.3 fredette #endif
912 1.22 chs KSI_INIT_TRAP(&ksi);
913 1.22 chs ksi.ksi_signo = SIGBUS;
914 1.22 chs ksi.ksi_code = BUS_ADRALN;
915 1.22 chs ksi.ksi_trap = type;
916 1.22 chs ksi.ksi_addr = (void *)va;
917 1.22 chs trapsignal(l, &ksi);
918 1.1 fredette break;
919 1.1 fredette
920 1.1 fredette case T_INTERRUPT:
921 1.1 fredette case T_INTERRUPT|T_USER:
922 1.1 fredette hppa_intr(frame);
923 1.1 fredette mtctl(frame->tf_eiem, CR_EIEM);
924 1.1 fredette break;
925 1.22 chs
926 1.1 fredette case T_LOWERPL:
927 1.1 fredette case T_DPROT:
928 1.1 fredette case T_IPROT:
929 1.1 fredette case T_OVERFLOW:
930 1.1 fredette case T_CONDITION:
931 1.1 fredette case T_ILLEGAL:
932 1.1 fredette case T_HIGHERPL:
933 1.1 fredette case T_TAKENBR:
934 1.1 fredette case T_POWERFAIL:
935 1.1 fredette case T_LPMC:
936 1.1 fredette case T_PAGEREF:
937 1.1 fredette case T_DATAPID: case T_DATAPID | T_USER:
938 1.1 fredette if (0 /* T-chip */) {
939 1.1 fredette break;
940 1.1 fredette }
941 1.1 fredette /* FALLTHROUGH to unimplemented */
942 1.1 fredette default:
943 1.1 fredette panic ("trap: unimplemented \'%s\' (%d)", tts, type);
944 1.1 fredette }
945 1.1 fredette
946 1.1 fredette if (type & T_USER)
947 1.9 chs userret(l, l->l_md.md_regs->tf_iioq_head, 0);
948 1.1 fredette
949 1.1 fredette #ifdef DEBUG
950 1.26 chs frame_sanity_check(0xdead02, type, frame, l);
951 1.43 yamt if (frame->tf_flags & TFF_LAST && (curlwp->l_flag & LW_IDLE) == 0)
952 1.26 chs frame_sanity_check(0xdead03, type, curlwp->l_md.md_regs,
953 1.26 chs curlwp);
954 1.1 fredette #endif /* DEBUG */
955 1.1 fredette }
956 1.1 fredette
957 1.1 fredette void
958 1.14 chs child_return(void *arg)
959 1.1 fredette {
960 1.9 chs struct lwp *l = arg;
961 1.1 fredette
962 1.9 chs userret(l, l->l_md.md_regs->tf_iioq_head, 0);
963 1.46 ad ktrsysret(SYS_fork, 0, 0);
964 1.1 fredette #ifdef DEBUG
965 1.26 chs frame_sanity_check(0xdead04, 0, l->l_md.md_regs, l);
966 1.1 fredette #endif /* DEBUG */
967 1.1 fredette }
968 1.1 fredette
969 1.51 skrll #ifdef PTRACE
970 1.51 skrll
971 1.51 skrll #include <sys/ptrace.h>
972 1.51 skrll
973 1.51 skrll int
974 1.51 skrll ss_get_value(struct lwp *l, vaddr_t addr, u_int *value)
975 1.51 skrll {
976 1.51 skrll struct uio uio;
977 1.51 skrll struct iovec iov;
978 1.51 skrll
979 1.51 skrll iov.iov_base = (void *)value;
980 1.51 skrll iov.iov_len = sizeof(u_int);
981 1.51 skrll uio.uio_iov = &iov;
982 1.51 skrll uio.uio_iovcnt = 1;
983 1.51 skrll uio.uio_offset = (off_t)addr;
984 1.51 skrll uio.uio_resid = sizeof(u_int);
985 1.51 skrll uio.uio_rw = UIO_READ;
986 1.51 skrll UIO_SETUP_SYSSPACE(&uio);
987 1.51 skrll
988 1.51 skrll return (process_domem(curlwp, l, &uio));
989 1.51 skrll }
990 1.51 skrll
991 1.51 skrll int
992 1.51 skrll ss_put_value(struct lwp *l, vaddr_t addr, u_int value)
993 1.51 skrll {
994 1.51 skrll struct uio uio;
995 1.51 skrll struct iovec iov;
996 1.51 skrll
997 1.51 skrll iov.iov_base = (void *)&value;
998 1.51 skrll iov.iov_len = sizeof(u_int);
999 1.51 skrll uio.uio_iov = &iov;
1000 1.51 skrll uio.uio_iovcnt = 1;
1001 1.51 skrll uio.uio_offset = (off_t)addr;
1002 1.51 skrll uio.uio_resid = sizeof(u_int);
1003 1.51 skrll uio.uio_rw = UIO_WRITE;
1004 1.51 skrll UIO_SETUP_SYSSPACE(&uio);
1005 1.51 skrll
1006 1.51 skrll return (process_domem(curlwp, l, &uio));
1007 1.51 skrll }
1008 1.51 skrll
1009 1.51 skrll void
1010 1.51 skrll ss_clear_breakpoints(struct lwp *l)
1011 1.51 skrll {
1012 1.51 skrll /* Restore origional instructions. */
1013 1.51 skrll if (l->l_md.md_bpva != 0) {
1014 1.51 skrll ss_put_value(l, l->l_md.md_bpva, l->l_md.md_bpsave[0]);
1015 1.51 skrll ss_put_value(l, l->l_md.md_bpva + 4, l->l_md.md_bpsave[1]);
1016 1.51 skrll l->l_md.md_bpva = 0;
1017 1.51 skrll }
1018 1.51 skrll }
1019 1.51 skrll
1020 1.51 skrll
1021 1.51 skrll int
1022 1.51 skrll process_sstep(struct lwp *l, int sstep)
1023 1.51 skrll {
1024 1.51 skrll struct trapframe *tf = l->l_md.md_regs;
1025 1.51 skrll int error;
1026 1.51 skrll
1027 1.51 skrll ss_clear_breakpoints(l);
1028 1.51 skrll
1029 1.51 skrll /* We're continuing... */
1030 1.51 skrll /* Don't touch the syscall gateway page. */
1031 1.51 skrll /* XXX head */
1032 1.51 skrll if (sstep == 0 ||
1033 1.51 skrll (tf->tf_iioq_tail & ~PAGE_MASK) == SYSCALLGATE) {
1034 1.51 skrll tf->tf_ipsw &= ~PSW_T;
1035 1.51 skrll return 0;
1036 1.51 skrll }
1037 1.51 skrll
1038 1.51 skrll l->l_md.md_bpva = tf->tf_iioq_tail & ~HPPA_PC_PRIV_MASK;
1039 1.51 skrll
1040 1.51 skrll /*
1041 1.51 skrll * Insert two breakpoint instructions; the first one might be
1042 1.51 skrll * nullified. Of course we need to save two instruction
1043 1.51 skrll * first.
1044 1.51 skrll */
1045 1.51 skrll
1046 1.51 skrll error = ss_get_value(l, l->l_md.md_bpva, &l->l_md.md_bpsave[0]);
1047 1.51 skrll if (error)
1048 1.51 skrll return (error);
1049 1.51 skrll error = ss_get_value(l, l->l_md.md_bpva + 4, &l->l_md.md_bpsave[1]);
1050 1.51 skrll if (error)
1051 1.51 skrll return (error);
1052 1.51 skrll
1053 1.51 skrll error = ss_put_value(l, l->l_md.md_bpva, SSBREAKPOINT);
1054 1.51 skrll if (error)
1055 1.51 skrll return error;
1056 1.51 skrll error = ss_put_value(l, l->l_md.md_bpva + 4, SSBREAKPOINT);
1057 1.51 skrll if (error)
1058 1.51 skrll return error;
1059 1.51 skrll
1060 1.51 skrll tf->tf_ipsw |= PSW_T;
1061 1.51 skrll
1062 1.51 skrll return 0;
1063 1.51 skrll }
1064 1.51 skrll #endif
1065 1.51 skrll
1066 1.51 skrll
1067 1.1 fredette /*
1068 1.1 fredette * call actual syscall routine
1069 1.1 fredette * from the low-level syscall handler:
1070 1.1 fredette * - all HPPA_FRAME_NARGS syscall's arguments supposed to be copied onto
1071 1.1 fredette * our stack, this wins compared to copyin just needed amount anyway
1072 1.1 fredette * - register args are copied onto stack too
1073 1.1 fredette */
1074 1.1 fredette void
1075 1.14 chs syscall(struct trapframe *frame, int *args)
1076 1.1 fredette {
1077 1.9 chs struct lwp *l;
1078 1.9 chs struct proc *p;
1079 1.9 chs const struct sysent *callp;
1080 1.54 dsl int nsys, code, error;
1081 1.1 fredette int tmp;
1082 1.1 fredette int rval[2];
1083 1.1 fredette
1084 1.1 fredette uvmexp.syscalls++;
1085 1.1 fredette
1086 1.1 fredette #ifdef DEBUG
1087 1.26 chs frame_sanity_check(0xdead04, 0, frame, curlwp);
1088 1.1 fredette #endif /* DEBUG */
1089 1.1 fredette
1090 1.1 fredette if (!USERMODE(frame->tf_iioq_head))
1091 1.1 fredette panic("syscall");
1092 1.1 fredette
1093 1.9 chs l = curlwp;
1094 1.9 chs p = l->l_proc;
1095 1.9 chs l->l_md.md_regs = frame;
1096 1.1 fredette nsys = p->p_emul->e_nsysent;
1097 1.1 fredette callp = p->p_emul->e_sysent;
1098 1.1 fredette code = frame->tf_t1;
1099 1.36 ad LWP_CACHE_CREDS(l, p);
1100 1.1 fredette
1101 1.56 wrstuden #ifdef KERN_SA
1102 1.56 wrstuden if (__predict_false((l->l_savp)
1103 1.56 wrstuden && (l->l_savp->savp_pflags & SAVP_FLAG_DELIVERING)))
1104 1.56 wrstuden l->l_savp->savp_pflags &= ~SAVP_FLAG_DELIVERING;
1105 1.56 wrstuden #endif
1106 1.56 wrstuden
1107 1.1 fredette /*
1108 1.1 fredette * Restarting a system call is touchy on the HPPA,
1109 1.1 fredette * because syscall arguments are passed in registers
1110 1.1 fredette * and the program counter of the syscall "point"
1111 1.1 fredette * isn't easily divined.
1112 1.1 fredette *
1113 1.1 fredette * We handle the first problem by assuming that we
1114 1.1 fredette * will have to restart this system call, so we
1115 1.1 fredette * stuff the first four words of the original arguments
1116 1.1 fredette * back into the frame as arg0...arg3, which is where
1117 1.1 fredette * we found them in the first place. Any further
1118 1.1 fredette * arguments are (still) on the user's stack and the
1119 1.1 fredette * syscall code will fetch them from there (again).
1120 1.1 fredette *
1121 1.1 fredette * The program counter problem is addressed below.
1122 1.1 fredette */
1123 1.1 fredette frame->tf_arg0 = args[0];
1124 1.1 fredette frame->tf_arg1 = args[1];
1125 1.1 fredette frame->tf_arg2 = args[2];
1126 1.1 fredette frame->tf_arg3 = args[3];
1127 1.1 fredette
1128 1.1 fredette /*
1129 1.1 fredette * Some special handling for the syscall(2) and
1130 1.1 fredette * __syscall(2) system calls.
1131 1.1 fredette */
1132 1.1 fredette switch (code) {
1133 1.1 fredette case SYS_syscall:
1134 1.1 fredette code = *args;
1135 1.1 fredette args += 1;
1136 1.1 fredette break;
1137 1.1 fredette case SYS___syscall:
1138 1.1 fredette if (callp != sysent)
1139 1.1 fredette break;
1140 1.1 fredette /*
1141 1.1 fredette * NB: even though __syscall(2) takes a quad_t
1142 1.1 fredette * containing the system call number, because
1143 1.1 fredette * our argument copying word-swaps 64-bit arguments,
1144 1.1 fredette * the least significant word of that quad_t
1145 1.1 fredette * is the first word in the argument array.
1146 1.1 fredette */
1147 1.1 fredette code = *args;
1148 1.1 fredette args += 2;
1149 1.1 fredette }
1150 1.1 fredette
1151 1.1 fredette /*
1152 1.1 fredette * Stacks growing from lower addresses to higher
1153 1.1 fredette * addresses are not really such a good idea, because
1154 1.1 fredette * it makes it impossible to overlay a struct on top
1155 1.1 fredette * of C stack arguments (the arguments appear in
1156 1.1 fredette * reversed order).
1157 1.1 fredette *
1158 1.1 fredette * You can do the obvious thing (as locore.S does) and
1159 1.1 fredette * copy argument words one by one, laying them out in
1160 1.1 fredette * the "right" order in the destination buffer, but this
1161 1.1 fredette * ends up word-swapping multi-word arguments (like off_t).
1162 1.1 fredette *
1163 1.1 fredette * To compensate, we have some automatically-generated
1164 1.1 fredette * code that word-swaps these multi-word arguments.
1165 1.1 fredette * Right now the script that generates this code is
1166 1.1 fredette * in Perl, because I don't know awk.
1167 1.1 fredette *
1168 1.1 fredette * FIXME - this works only on native binaries and
1169 1.1 fredette * will probably screw up any and all emulation.
1170 1.1 fredette */
1171 1.1 fredette switch (code) {
1172 1.1 fredette case SYS_pread:
1173 1.1 fredette /*
1174 1.1 fredette * syscallarg(int) fd;
1175 1.1 fredette * syscallarg(void *) buf;
1176 1.1 fredette * syscallarg(size_t) nbyte;
1177 1.1 fredette * syscallarg(int) pad;
1178 1.1 fredette * syscallarg(off_t) offset;
1179 1.1 fredette */
1180 1.1 fredette tmp = args[4];
1181 1.1 fredette args[4] = args[4 + 1];
1182 1.1 fredette args[4 + 1] = tmp;
1183 1.1 fredette break;
1184 1.1 fredette case SYS_pwrite:
1185 1.1 fredette /*
1186 1.1 fredette * syscallarg(int) fd;
1187 1.1 fredette * syscallarg(const void *) buf;
1188 1.1 fredette * syscallarg(size_t) nbyte;
1189 1.1 fredette * syscallarg(int) pad;
1190 1.1 fredette * syscallarg(off_t) offset;
1191 1.1 fredette */
1192 1.1 fredette tmp = args[4];
1193 1.1 fredette args[4] = args[4 + 1];
1194 1.1 fredette args[4 + 1] = tmp;
1195 1.1 fredette break;
1196 1.1 fredette case SYS_mmap:
1197 1.1 fredette /*
1198 1.1 fredette * syscallarg(void *) addr;
1199 1.1 fredette * syscallarg(size_t) len;
1200 1.1 fredette * syscallarg(int) prot;
1201 1.1 fredette * syscallarg(int) flags;
1202 1.1 fredette * syscallarg(int) fd;
1203 1.1 fredette * syscallarg(long) pad;
1204 1.1 fredette * syscallarg(off_t) pos;
1205 1.1 fredette */
1206 1.1 fredette tmp = args[6];
1207 1.1 fredette args[6] = args[6 + 1];
1208 1.1 fredette args[6 + 1] = tmp;
1209 1.1 fredette break;
1210 1.1 fredette case SYS_lseek:
1211 1.1 fredette /*
1212 1.1 fredette * syscallarg(int) fd;
1213 1.1 fredette * syscallarg(int) pad;
1214 1.1 fredette * syscallarg(off_t) offset;
1215 1.1 fredette */
1216 1.1 fredette tmp = args[2];
1217 1.1 fredette args[2] = args[2 + 1];
1218 1.1 fredette args[2 + 1] = tmp;
1219 1.1 fredette break;
1220 1.1 fredette case SYS_truncate:
1221 1.1 fredette /*
1222 1.1 fredette * syscallarg(const char *) path;
1223 1.1 fredette * syscallarg(int) pad;
1224 1.1 fredette * syscallarg(off_t) length;
1225 1.1 fredette */
1226 1.1 fredette tmp = args[2];
1227 1.1 fredette args[2] = args[2 + 1];
1228 1.1 fredette args[2 + 1] = tmp;
1229 1.1 fredette break;
1230 1.1 fredette case SYS_ftruncate:
1231 1.1 fredette /*
1232 1.1 fredette * syscallarg(int) fd;
1233 1.1 fredette * syscallarg(int) pad;
1234 1.1 fredette * syscallarg(off_t) length;
1235 1.1 fredette */
1236 1.1 fredette tmp = args[2];
1237 1.1 fredette args[2] = args[2 + 1];
1238 1.1 fredette args[2 + 1] = tmp;
1239 1.1 fredette break;
1240 1.1 fredette case SYS_preadv:
1241 1.1 fredette /*
1242 1.1 fredette * syscallarg(int) fd;
1243 1.1 fredette * syscallarg(const struct iovec *) iovp;
1244 1.1 fredette * syscallarg(int) iovcnt;
1245 1.1 fredette * syscallarg(int) pad;
1246 1.1 fredette * syscallarg(off_t) offset;
1247 1.1 fredette */
1248 1.1 fredette tmp = args[4];
1249 1.1 fredette args[4] = args[4 + 1];
1250 1.1 fredette args[4 + 1] = tmp;
1251 1.1 fredette break;
1252 1.1 fredette case SYS_pwritev:
1253 1.1 fredette /*
1254 1.1 fredette * syscallarg(int) fd;
1255 1.1 fredette * syscallarg(const struct iovec *) iovp;
1256 1.1 fredette * syscallarg(int) iovcnt;
1257 1.1 fredette * syscallarg(int) pad;
1258 1.1 fredette * syscallarg(off_t) offset;
1259 1.1 fredette */
1260 1.1 fredette tmp = args[4];
1261 1.1 fredette args[4] = args[4 + 1];
1262 1.1 fredette args[4 + 1] = tmp;
1263 1.1 fredette break;
1264 1.58 skrll case SYS___posix_fadvise50:
1265 1.58 skrll /*
1266 1.58 skrll * syscallarg(int) fd;
1267 1.58 skrll * syscallarg(int) pad;
1268 1.58 skrll * syscallarg(off_t) offset;
1269 1.58 skrll * syscallarg(off_t) len;
1270 1.58 skrll * syscallarg(int) advice;
1271 1.58 skrll */
1272 1.58 skrll tmp = args[2];
1273 1.58 skrll args[2] = args[2 + 1];
1274 1.58 skrll args[2 + 1] = tmp;
1275 1.58 skrll tmp = args[4];
1276 1.58 skrll args[4] = args[4 + 1];
1277 1.58 skrll args[4 + 1] = tmp;
1278 1.58 skrll case SYS___mknod50:
1279 1.58 skrll /*
1280 1.58 skrll * syscallarg(const char *) path;
1281 1.58 skrll * syscallarg(mode_t) mode;
1282 1.58 skrll * syscallarg(dev_t) dev;
1283 1.58 skrll */
1284 1.58 skrll tmp = args[2];
1285 1.58 skrll args[2] = args[2 + 1];
1286 1.58 skrll args[2 + 1] = tmp;
1287 1.1 fredette default:
1288 1.1 fredette break;
1289 1.1 fredette }
1290 1.1 fredette
1291 1.1 fredette #ifdef USERTRACE
1292 1.1 fredette if (0) {
1293 1.35 skrll user_backtrace(frame, l, -1);
1294 1.1 fredette frame->tf_ipsw |= PSW_R;
1295 1.1 fredette frame->tf_rctr = 0;
1296 1.1 fredette printf("r %08x", frame->tf_iioq_head);
1297 1.1 fredette rctr_next_iioq = frame->tf_iioq_head + 4;
1298 1.1 fredette }
1299 1.1 fredette #endif
1300 1.1 fredette
1301 1.1 fredette if (code < 0 || code >= nsys)
1302 1.1 fredette callp += p->p_emul->e_nosys; /* bad syscall # */
1303 1.1 fredette else
1304 1.1 fredette callp += code;
1305 1.1 fredette
1306 1.54 dsl if ((error = trace_enter(code, args, callp->sy_narg)) != 0)
1307 1.27 christos goto out;
1308 1.1 fredette
1309 1.1 fredette rval[0] = 0;
1310 1.1 fredette rval[1] = 0;
1311 1.57 ad error = sy_call(callp, l, args, rval);
1312 1.27 christos out:
1313 1.27 christos switch (error) {
1314 1.1 fredette case 0:
1315 1.9 chs l = curlwp; /* changes on exec() */
1316 1.9 chs frame = l->l_md.md_regs;
1317 1.1 fredette frame->tf_ret0 = rval[0];
1318 1.1 fredette frame->tf_ret1 = rval[1];
1319 1.1 fredette frame->tf_t1 = 0;
1320 1.1 fredette break;
1321 1.1 fredette case ERESTART:
1322 1.1 fredette /*
1323 1.1 fredette * Now we have to wind back the instruction
1324 1.1 fredette * offset queue to the point where the system
1325 1.1 fredette * call will be made again. This is inherently
1326 1.1 fredette * tied to the SYSCALL macro.
1327 1.1 fredette *
1328 1.1 fredette * Currently, the part of the SYSCALL macro
1329 1.1 fredette * that we want to rerun reads as:
1330 1.1 fredette *
1331 1.1 fredette * ldil L%SYSCALLGATE, r1
1332 1.1 fredette * ble 4(sr7, r1)
1333 1.1 fredette * ldi __CONCAT(SYS_,x), t1
1334 1.52 skrll * comb,<> %r0, %t1, __cerror
1335 1.1 fredette *
1336 1.1 fredette * And our offset queue head points to the
1337 1.52 skrll * comb instruction. So we need to
1338 1.1 fredette * subtract twelve to reach the ldil.
1339 1.1 fredette */
1340 1.1 fredette frame->tf_iioq_head -= 12;
1341 1.1 fredette frame->tf_iioq_tail = frame->tf_iioq_head + 4;
1342 1.1 fredette break;
1343 1.1 fredette case EJUSTRETURN:
1344 1.1 fredette p = curproc;
1345 1.1 fredette break;
1346 1.1 fredette default:
1347 1.1 fredette if (p->p_emul->e_errno)
1348 1.1 fredette error = p->p_emul->e_errno[error];
1349 1.1 fredette frame->tf_t1 = error;
1350 1.1 fredette break;
1351 1.1 fredette }
1352 1.2 christos
1353 1.54 dsl trace_exit(code, rval, error);
1354 1.2 christos
1355 1.9 chs userret(l, frame->tf_iioq_head, 0);
1356 1.1 fredette #ifdef DEBUG
1357 1.26 chs frame_sanity_check(0xdead05, 0, frame, l);
1358 1.1 fredette #endif /* DEBUG */
1359 1.9 chs }
1360 1.9 chs
1361 1.9 chs /*
1362 1.9 chs * Start a new LWP
1363 1.9 chs */
1364 1.9 chs void
1365 1.14 chs startlwp(void *arg)
1366 1.9 chs {
1367 1.9 chs int err;
1368 1.9 chs ucontext_t *uc = arg;
1369 1.9 chs struct lwp *l = curlwp;
1370 1.9 chs
1371 1.9 chs err = cpu_setmcontext(l, &uc->uc_mcontext, uc->uc_flags);
1372 1.9 chs #if DIAGNOSTIC
1373 1.9 chs if (err) {
1374 1.9 chs printf("Error %d from cpu_setmcontext.", err);
1375 1.9 chs }
1376 1.9 chs #endif
1377 1.9 chs pool_put(&lwp_uc_pool, uc);
1378 1.9 chs
1379 1.9 chs userret(l, l->l_md.md_regs->tf_iioq_head, 0);
1380 1.9 chs }
1381 1.56 wrstuden
1382 1.56 wrstuden /*
1383 1.56 wrstuden * XXX This is a terrible name.
1384 1.56 wrstuden */
1385 1.56 wrstuden void
1386 1.56 wrstuden upcallret(struct lwp *l)
1387 1.56 wrstuden {
1388 1.56 wrstuden userret(l, l->l_md.md_regs->tf_iioq_head, 0);
1389 1.56 wrstuden }
1390