trap.c revision 1.5
11.5Sjonathan/* $NetBSD: trap.c,v 1.5 1998/07/04 22:18:34 jonathan Exp $ */ 21.1Sdbj 31.1Sdbj/* 41.1Sdbj * Copyright (c) 1988 University of Utah. 51.1Sdbj * Copyright (c) 1982, 1986, 1990, 1993 61.1Sdbj * The Regents of the University of California. All rights reserved. 71.1Sdbj * 81.1Sdbj * This code is derived from software contributed to Berkeley by 91.1Sdbj * the Systems Programming Group of the University of Utah Computer 101.1Sdbj * Science Department. 111.1Sdbj * 121.1Sdbj * Redistribution and use in source and binary forms, with or without 131.1Sdbj * modification, are permitted provided that the following conditions 141.1Sdbj * are met: 151.1Sdbj * 1. Redistributions of source code must retain the above copyright 161.1Sdbj * notice, this list of conditions and the following disclaimer. 171.1Sdbj * 2. Redistributions in binary form must reproduce the above copyright 181.1Sdbj * notice, this list of conditions and the following disclaimer in the 191.1Sdbj * documentation and/or other materials provided with the distribution. 201.1Sdbj * 3. All advertising materials mentioning features or use of this software 211.1Sdbj * must display the following acknowledgement: 221.1Sdbj * This product includes software developed by the University of 231.1Sdbj * California, Berkeley and its contributors. 241.1Sdbj * 4. Neither the name of the University nor the names of its contributors 251.1Sdbj * may be used to endorse or promote products derived from this software 261.1Sdbj * without specific prior written permission. 271.1Sdbj * 281.1Sdbj * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND 291.1Sdbj * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE 301.1Sdbj * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE 311.1Sdbj * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE 321.1Sdbj * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL 331.1Sdbj * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS 341.1Sdbj * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) 351.1Sdbj * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT 361.1Sdbj * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY 371.1Sdbj * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF 381.1Sdbj * SUCH DAMAGE. 391.1Sdbj * 401.1Sdbj * from: Utah $Hdr: trap.c 1.37 92/12/20$ 411.1Sdbj * 421.1Sdbj * @(#)trap.c 8.5 (Berkeley) 1/4/94 431.1Sdbj */ 441.2Sthorpej 451.5Sjonathan#include "opt_ddb.h" 461.2Sthorpej#include "opt_ktrace.h" 471.3Sthorpej#include "opt_compat_sunos.h" 481.4Sthorpej#include "opt_compat_hpux.h" 491.1Sdbj 501.1Sdbj#if 0 511.1Sdbj#include <machine/hp300spu.h> /* XXX param.h includes cpu.h */ 521.1Sdbj#endif 531.1Sdbj 541.1Sdbj#include <sys/param.h> 551.1Sdbj#include <sys/systm.h> 561.1Sdbj#include <sys/proc.h> 571.1Sdbj#include <sys/acct.h> 581.1Sdbj#include <sys/kernel.h> 591.1Sdbj#include <sys/signalvar.h> 601.1Sdbj#include <sys/resourcevar.h> 611.1Sdbj#include <sys/syscall.h> 621.1Sdbj#include <sys/syslog.h> 631.1Sdbj#include <sys/user.h> 641.1Sdbj#ifdef KTRACE 651.1Sdbj#include <sys/ktrace.h> 661.1Sdbj#endif 671.1Sdbj 681.1Sdbj#include <m68k/frame.h> 691.1Sdbj 701.1Sdbj#include <machine/db_machdep.h> 711.1Sdbj#include <machine/psl.h> 721.1Sdbj#include <machine/trap.h> 731.1Sdbj#include <machine/cpu.h> 741.1Sdbj#include <machine/reg.h> 751.1Sdbj#include <machine/intr.h> 761.1Sdbj 771.1Sdbj#include <vm/vm.h> 781.1Sdbj#include <vm/pmap.h> 791.1Sdbj 801.1Sdbj#include <dev/cons.h> 811.1Sdbj 821.1Sdbj#ifdef COMPAT_HPUX 831.1Sdbj#include <compat/hpux/hpux.h> 841.1Sdbjextern struct emul emul_hpux; 851.1Sdbj#endif 861.1Sdbj 871.1Sdbj#ifdef COMPAT_SUNOS 881.1Sdbj#include <compat/sunos/sunos_syscall.h> 891.1Sdbjextern struct emul emul_sunos; 901.1Sdbj#endif 911.1Sdbj 921.1Sdbjint writeback __P((struct frame *fp, int docachepush)); 931.1Sdbjvoid trap __P((int type, u_int code, u_int v, struct frame frame)); 941.1Sdbjvoid syscall __P((register_t code, struct frame frame)); 951.1Sdbjvoid child_return __P((struct proc *, struct frame)); 961.1Sdbj 971.1Sdbj#ifdef DEBUG 981.1Sdbjvoid dumpssw __P((u_short)); 991.1Sdbjvoid dumpwb __P((int, u_short, u_int, u_int)); 1001.1Sdbj#endif 1011.1Sdbj 1021.1Sdbjstatic inline void userret __P((struct proc *p, struct frame *fp, 1031.1Sdbj u_quad_t oticks, u_int faultaddr, int fromtrap)); 1041.1Sdbj 1051.1Sdbjchar *trap_type[] = { 1061.1Sdbj "Bus error", 1071.1Sdbj "Address error", 1081.1Sdbj "Illegal instruction", 1091.1Sdbj "Zero divide", 1101.1Sdbj "CHK instruction", 1111.1Sdbj "TRAPV instruction", 1121.1Sdbj "Privilege violation", 1131.1Sdbj "Trace trap", 1141.1Sdbj "MMU fault", 1151.1Sdbj "SSIR trap", 1161.1Sdbj "Format error", 1171.1Sdbj "68881 exception", 1181.1Sdbj "Coprocessor violation", 1191.1Sdbj "Async system trap" 1201.1Sdbj}; 1211.1Sdbjint trap_types = sizeof trap_type / sizeof trap_type[0]; 1221.1Sdbj 1231.1Sdbj/* 1241.1Sdbj * Size of various exception stack frames (minus the standard 8 bytes) 1251.1Sdbj */ 1261.1Sdbjshort exframesize[] = { 1271.1Sdbj FMT0SIZE, /* type 0 - normal (68020/030/040/060) */ 1281.1Sdbj FMT1SIZE, /* type 1 - throwaway (68020/030/040) */ 1291.1Sdbj FMT2SIZE, /* type 2 - normal 6-word (68020/030/040/060) */ 1301.1Sdbj FMT3SIZE, /* type 3 - FP post-instruction (68040/060) */ 1311.1Sdbj FMT4SIZE, /* type 4 - access error/fp disabled (68060) */ 1321.1Sdbj -1, -1, /* type 5-6 - undefined */ 1331.1Sdbj FMT7SIZE, /* type 7 - access error (68040) */ 1341.1Sdbj 58, /* type 8 - bus fault (68010) */ 1351.1Sdbj FMT9SIZE, /* type 9 - coprocessor mid-instruction (68020/030) */ 1361.1Sdbj FMTASIZE, /* type A - short bus fault (68020/030) */ 1371.1Sdbj FMTBSIZE, /* type B - long bus fault (68020/030) */ 1381.1Sdbj -1, -1, -1, -1 /* type C-F - undefined */ 1391.1Sdbj}; 1401.1Sdbj 1411.1Sdbj#ifdef M68060 1421.1Sdbj#define KDFAULT_060(c) (cputype == CPU_68060 && ((c) & FSLW_TM_SV)) 1431.1Sdbj#define WRFAULT_060(c) (cputype == CPU_68060 && ((c) & FSLW_RW_W)) 1441.1Sdbj#else 1451.1Sdbj#define KDFAULT_060(c) 0 1461.1Sdbj#define WRFAULT_060(c) 0 1471.1Sdbj#endif 1481.1Sdbj 1491.1Sdbj#ifdef M68040 1501.1Sdbj#define KDFAULT_040(c) (cputype == CPU_68040 && \ 1511.1Sdbj ((c) & SSW4_TMMASK) == SSW4_TMKD) 1521.1Sdbj#define WRFAULT_040(c) (cputype == CPU_68040 && \ 1531.1Sdbj ((c) & SSW4_RW) == 0) 1541.1Sdbj#else 1551.1Sdbj#define KDFAULT_040(c) 0 1561.1Sdbj#define WRFAULT_040(c) 0 1571.1Sdbj#endif 1581.1Sdbj 1591.1Sdbj#if defined(M68030) || defined(M68020) 1601.1Sdbj#define KDFAULT_OTH(c) (cputype <= CPU_68030 && \ 1611.1Sdbj ((c) & (SSW_DF|SSW_FCMASK)) == (SSW_DF|FC_SUPERD)) 1621.1Sdbj#define WRFAULT_OTH(c) (cputype <= CPU_68030 && \ 1631.1Sdbj ((c) & (SSW_DF|SSW_RW)) == SSW_DF) 1641.1Sdbj#else 1651.1Sdbj#define KDFAULT_OTH(c) 0 1661.1Sdbj#define WRFAULT_OTH(c) 0 1671.1Sdbj#endif 1681.1Sdbj 1691.1Sdbj#define KDFAULT(c) (KDFAULT_060(c) || KDFAULT_040(c) || KDFAULT_OTH(c)) 1701.1Sdbj#define WRFAULT(c) (WRFAULT_060(c) || WRFAULT_040(c) || WRFAULT_OTH(c)) 1711.1Sdbj 1721.1Sdbj#ifdef DEBUG 1731.1Sdbjint mmudebug = 0; 1741.1Sdbjint mmupid = -1; 1751.1Sdbj#define MDB_FOLLOW 1 1761.1Sdbj#define MDB_WBFOLLOW 2 1771.1Sdbj#define MDB_WBFAILED 4 1781.1Sdbj#define MDB_ISPID(p) ((p) == mmupid) 1791.1Sdbj#endif 1801.1Sdbj 1811.1Sdbj#define NSIR 32 1821.1Sdbjvoid (*sir_routines[NSIR])(); 1831.1Sdbjvoid *sir_args[NSIR]; 1841.1Sdbjint next_sir; 1851.1Sdbj 1861.1Sdbj/* 1871.1Sdbj * trap and syscall both need the following work done before returning 1881.1Sdbj * to user mode. 1891.1Sdbj */ 1901.1Sdbjstatic inline void 1911.1Sdbjuserret(p, fp, oticks, faultaddr, fromtrap) 1921.1Sdbj struct proc *p; 1931.1Sdbj struct frame *fp; 1941.1Sdbj u_quad_t oticks; 1951.1Sdbj u_int faultaddr; 1961.1Sdbj int fromtrap; 1971.1Sdbj{ 1981.1Sdbj int sig, s; 1991.1Sdbj#ifdef M68040 2001.1Sdbj int beenhere = 0; 2011.1Sdbj 2021.1Sdbjagain: 2031.1Sdbj#endif 2041.1Sdbj /* take pending signals */ 2051.1Sdbj while ((sig = CURSIG(p)) != 0) 2061.1Sdbj postsig(sig); 2071.1Sdbj p->p_priority = p->p_usrpri; 2081.1Sdbj if (want_resched) { 2091.1Sdbj /* 2101.1Sdbj * Since we are curproc, clock will normally just change 2111.1Sdbj * our priority without moving us from one queue to another 2121.1Sdbj * (since the running process is not on a queue.) 2131.1Sdbj * If that happened after we put ourselves on the run queue 2141.1Sdbj * but before we mi_switch()'ed, we might not be on the queue 2151.1Sdbj * indicated by our priority. 2161.1Sdbj */ 2171.1Sdbj s = splstatclock(); 2181.1Sdbj setrunqueue(p); 2191.1Sdbj p->p_stats->p_ru.ru_nivcsw++; 2201.1Sdbj mi_switch(); 2211.1Sdbj splx(s); 2221.1Sdbj while ((sig = CURSIG(p)) != 0) 2231.1Sdbj postsig(sig); 2241.1Sdbj } 2251.1Sdbj 2261.1Sdbj /* 2271.1Sdbj * If profiling, charge system time to the trapped pc. 2281.1Sdbj */ 2291.1Sdbj if (p->p_flag & P_PROFIL) { 2301.1Sdbj extern int psratio; 2311.1Sdbj 2321.1Sdbj addupc_task(p, fp->f_pc, 2331.1Sdbj (int)(p->p_sticks - oticks) * psratio); 2341.1Sdbj } 2351.1Sdbj#ifdef M68040 2361.1Sdbj /* 2371.1Sdbj * Deal with user mode writebacks (from trap, or from sigreturn). 2381.1Sdbj * If any writeback fails, go back and attempt signal delivery. 2391.1Sdbj * unless we have already been here and attempted the writeback 2401.1Sdbj * (e.g. bad address with user ignoring SIGSEGV). In that case 2411.1Sdbj * we just return to the user without sucessfully completing 2421.1Sdbj * the writebacks. Maybe we should just drop the sucker? 2431.1Sdbj */ 2441.1Sdbj if (cputype == CPU_68040 && fp->f_format == FMT7) { 2451.1Sdbj if (beenhere) { 2461.1Sdbj#ifdef DEBUG 2471.1Sdbj if (mmudebug & MDB_WBFAILED) 2481.1Sdbj printf(fromtrap ? 2491.1Sdbj "pid %d(%s): writeback aborted, pc=%x, fa=%x\n" : 2501.1Sdbj "pid %d(%s): writeback aborted in sigreturn, pc=%x\n", 2511.1Sdbj p->p_pid, p->p_comm, fp->f_pc, faultaddr); 2521.1Sdbj#endif 2531.1Sdbj } else if ((sig = writeback(fp, fromtrap))) { 2541.1Sdbj beenhere = 1; 2551.1Sdbj oticks = p->p_sticks; 2561.1Sdbj trapsignal(p, sig, faultaddr); 2571.1Sdbj goto again; 2581.1Sdbj } 2591.1Sdbj } 2601.1Sdbj#endif 2611.1Sdbj curpriority = p->p_priority; 2621.1Sdbj} 2631.1Sdbj 2641.1Sdbj/* 2651.1Sdbj * Trap is called from locore to handle most types of processor traps, 2661.1Sdbj * including events such as simulated software interrupts/AST's. 2671.1Sdbj * System calls are broken out for efficiency. 2681.1Sdbj */ 2691.1Sdbj/*ARGSUSED*/ 2701.1Sdbjvoid 2711.1Sdbjtrap(type, code, v, frame) 2721.1Sdbj int type; 2731.1Sdbj unsigned code; 2741.1Sdbj unsigned v; 2751.1Sdbj struct frame frame; 2761.1Sdbj{ 2771.1Sdbj extern char fubail[], subail[]; 2781.1Sdbj struct proc *p; 2791.1Sdbj int i, s; 2801.1Sdbj int bit; 2811.1Sdbj u_int ucode; 2821.1Sdbj u_quad_t sticks = 0 /* XXX initializer works around compiler bug */; 2831.1Sdbj 2841.1Sdbj cnt.v_trap++; 2851.1Sdbj p = curproc; 2861.1Sdbj ucode = 0; 2871.1Sdbj 2881.1Sdbj /* I have verified that this DOES happen! -gwr */ 2891.1Sdbj if (p == NULL) 2901.1Sdbj p = &proc0; 2911.1Sdbj#ifdef DIAGNOSTIC 2921.1Sdbj if (p->p_addr == NULL) 2931.1Sdbj panic("trap: no pcb"); 2941.1Sdbj#endif 2951.1Sdbj 2961.1Sdbj if (USERMODE(frame.f_sr)) { 2971.1Sdbj type |= T_USER; 2981.1Sdbj sticks = p->p_sticks; 2991.1Sdbj p->p_md.md_regs = frame.f_regs; 3001.1Sdbj } 3011.1Sdbj switch (type) { 3021.1Sdbj 3031.1Sdbj default: 3041.1Sdbj dopanic: 3051.1Sdbj printf("trap type %d, code = 0x%x, v = 0x%x\n", type, code, v); 3061.1Sdbj printf("%s program counter = 0x%x\n", 3071.1Sdbj (type & T_USER) ? "user" : "kernel", frame.f_pc); 3081.1Sdbj /* 3091.1Sdbj * Let the kernel debugger see the trap frame that 3101.1Sdbj * caused us to panic. This is a convenience so 3111.1Sdbj * one can see registers at the point of failure. 3121.1Sdbj */ 3131.1Sdbj s = splhigh(); 3141.1Sdbj#ifdef KGDB 3151.1Sdbj /* If connected, step or cont returns 1 */ 3161.1Sdbj if (kgdb_trap(type, &frame)) 3171.1Sdbj goto kgdb_cont; 3181.1Sdbj#endif 3191.1Sdbj#ifdef DDB 3201.1Sdbj (void)kdb_trap(type, (db_regs_t *)&frame); 3211.1Sdbj#endif 3221.1Sdbj#ifdef KGDB 3231.1Sdbj kgdb_cont: 3241.1Sdbj#endif 3251.1Sdbj splx(s); 3261.1Sdbj if (panicstr) { 3271.1Sdbj printf("trap during panic!\n"); 3281.1Sdbj#ifdef DEBUG 3291.1Sdbj /* XXX should be a machine-dependent hook */ 3301.1Sdbj printf("(press a key)\n"); (void)cngetc(); 3311.1Sdbj#endif 3321.1Sdbj } 3331.1Sdbj regdump((struct trapframe *)&frame, 128); 3341.1Sdbj type &= ~T_USER; 3351.1Sdbj if ((u_int)type < trap_types) 3361.1Sdbj panic(trap_type[type]); 3371.1Sdbj panic("trap"); 3381.1Sdbj 3391.1Sdbj case T_BUSERR: /* kernel bus error */ 3401.1Sdbj if (p->p_addr->u_pcb.pcb_onfault == 0) 3411.1Sdbj goto dopanic; 3421.1Sdbj /* FALLTHROUGH */ 3431.1Sdbj 3441.1Sdbj copyfault: 3451.1Sdbj /* 3461.1Sdbj * If we have arranged to catch this fault in any of the 3471.1Sdbj * copy to/from user space routines, set PC to return to 3481.1Sdbj * indicated location and set flag informing buserror code 3491.1Sdbj * that it may need to clean up stack frame. 3501.1Sdbj */ 3511.1Sdbj frame.f_stackadj = exframesize[frame.f_format]; 3521.1Sdbj frame.f_format = frame.f_vector = 0; 3531.1Sdbj frame.f_pc = (int) p->p_addr->u_pcb.pcb_onfault; 3541.1Sdbj return; 3551.1Sdbj 3561.1Sdbj case T_BUSERR|T_USER: /* bus error */ 3571.1Sdbj case T_ADDRERR|T_USER: /* address error */ 3581.1Sdbj ucode = v; 3591.1Sdbj i = SIGBUS; 3601.1Sdbj break; 3611.1Sdbj 3621.1Sdbj case T_COPERR: /* kernel coprocessor violation */ 3631.1Sdbj case T_FMTERR|T_USER: /* do all RTE errors come in as T_USER? */ 3641.1Sdbj case T_FMTERR: /* ...just in case... */ 3651.1Sdbj /* 3661.1Sdbj * The user has most likely trashed the RTE or FP state info 3671.1Sdbj * in the stack frame of a signal handler. 3681.1Sdbj */ 3691.1Sdbj printf("pid %d: kernel %s exception\n", p->p_pid, 3701.1Sdbj type==T_COPERR ? "coprocessor" : "format"); 3711.1Sdbj type |= T_USER; 3721.1Sdbj p->p_sigacts->ps_sigact[SIGILL] = SIG_DFL; 3731.1Sdbj i = sigmask(SIGILL); 3741.1Sdbj p->p_sigignore &= ~i; 3751.1Sdbj p->p_sigcatch &= ~i; 3761.1Sdbj p->p_sigmask &= ~i; 3771.1Sdbj i = SIGILL; 3781.1Sdbj ucode = frame.f_format; /* XXX was ILL_RESAD_FAULT */ 3791.1Sdbj break; 3801.1Sdbj 3811.1Sdbj case T_COPERR|T_USER: /* user coprocessor violation */ 3821.1Sdbj /* What is a proper response here? */ 3831.1Sdbj ucode = 0; 3841.1Sdbj i = SIGFPE; 3851.1Sdbj break; 3861.1Sdbj 3871.1Sdbj case T_FPERR|T_USER: /* 68881 exceptions */ 3881.1Sdbj /* 3891.1Sdbj * We pass along the 68881 status which locore stashed 3901.1Sdbj * in code for us. Note that there is a possibility that the 3911.1Sdbj * bit pattern of this will conflict with one of the 3921.1Sdbj * FPE_* codes defined in signal.h. Fortunately for us, the 3931.1Sdbj * only such codes we use are all in the range 1-7 and the low 3941.1Sdbj * 3 bits of the status are defined as 0 so there is 3951.1Sdbj * no clash. 3961.1Sdbj */ 3971.1Sdbj ucode = code; 3981.1Sdbj i = SIGFPE; 3991.1Sdbj break; 4001.1Sdbj 4011.1Sdbj#ifdef M68040 4021.1Sdbj case T_FPEMULI|T_USER: /* unimplemented FP instuction */ 4031.1Sdbj case T_FPEMULD|T_USER: /* unimplemented FP data type */ 4041.1Sdbj /* XXX need to FSAVE */ 4051.1Sdbj printf("pid %d(%s): unimplemented FP %s at %x (EA %x)\n", 4061.1Sdbj p->p_pid, p->p_comm, 4071.1Sdbj frame.f_format == 2 ? "instruction" : "data type", 4081.1Sdbj frame.f_pc, frame.f_fmt2.f_iaddr); 4091.1Sdbj /* XXX need to FRESTORE */ 4101.1Sdbj i = SIGFPE; 4111.1Sdbj break; 4121.1Sdbj#endif 4131.1Sdbj 4141.1Sdbj case T_ILLINST|T_USER: /* illegal instruction fault */ 4151.1Sdbj#ifdef COMPAT_HPUX 4161.1Sdbj if (p->p_emul == &emul_hpux) { 4171.1Sdbj ucode = HPUX_ILL_ILLINST_TRAP; 4181.1Sdbj i = SIGILL; 4191.1Sdbj break; 4201.1Sdbj } 4211.1Sdbj /* fall through */ 4221.1Sdbj#endif 4231.1Sdbj case T_PRIVINST|T_USER: /* privileged instruction fault */ 4241.1Sdbj#ifdef COMPAT_HPUX 4251.1Sdbj if (p->p_emul == &emul_hpux) 4261.1Sdbj ucode = HPUX_ILL_PRIV_TRAP; 4271.1Sdbj else 4281.1Sdbj#endif 4291.1Sdbj ucode = frame.f_format; /* XXX was ILL_PRIVIN_FAULT */ 4301.1Sdbj i = SIGILL; 4311.1Sdbj break; 4321.1Sdbj 4331.1Sdbj case T_ZERODIV|T_USER: /* Divide by zero */ 4341.1Sdbj#ifdef COMPAT_HPUX 4351.1Sdbj if (p->p_emul == &emul_hpux) 4361.1Sdbj ucode = HPUX_FPE_INTDIV_TRAP; 4371.1Sdbj else 4381.1Sdbj#endif 4391.1Sdbj ucode = frame.f_format; /* XXX was FPE_INTDIV_TRAP */ 4401.1Sdbj i = SIGFPE; 4411.1Sdbj break; 4421.1Sdbj 4431.1Sdbj case T_CHKINST|T_USER: /* CHK instruction trap */ 4441.1Sdbj#ifdef COMPAT_HPUX 4451.1Sdbj if (p->p_emul == &emul_hpux) { 4461.1Sdbj /* handled differently under hp-ux */ 4471.1Sdbj i = SIGILL; 4481.1Sdbj ucode = HPUX_ILL_CHK_TRAP; 4491.1Sdbj break; 4501.1Sdbj } 4511.1Sdbj#endif 4521.1Sdbj ucode = frame.f_format; /* XXX was FPE_SUBRNG_TRAP */ 4531.1Sdbj i = SIGFPE; 4541.1Sdbj break; 4551.1Sdbj 4561.1Sdbj case T_TRAPVINST|T_USER: /* TRAPV instruction trap */ 4571.1Sdbj#ifdef COMPAT_HPUX 4581.1Sdbj if (p->p_emul == &emul_hpux) { 4591.1Sdbj /* handled differently under hp-ux */ 4601.1Sdbj i = SIGILL; 4611.1Sdbj ucode = HPUX_ILL_TRAPV_TRAP; 4621.1Sdbj break; 4631.1Sdbj } 4641.1Sdbj#endif 4651.1Sdbj ucode = frame.f_format; /* XXX was FPE_INTOVF_TRAP */ 4661.1Sdbj i = SIGFPE; 4671.1Sdbj break; 4681.1Sdbj 4691.1Sdbj /* 4701.1Sdbj * XXX: Trace traps are a nightmare. 4711.1Sdbj * 4721.1Sdbj * HP-UX uses trap #1 for breakpoints, 4731.1Sdbj * NetBSD/m68k uses trap #2, 4741.1Sdbj * SUN 3.x uses trap #15, 4751.1Sdbj * DDB and KGDB uses trap #15 (for kernel breakpoints; 4761.1Sdbj * handled elsewhere). 4771.1Sdbj * 4781.1Sdbj * NetBSD and HP-UX traps both get mapped by locore.s into T_TRACE. 4791.1Sdbj * SUN 3.x traps get passed through as T_TRAP15 and are not really 4801.1Sdbj * supported yet. 4811.1Sdbj * 4821.1Sdbj * XXX: We should never get kernel-mode T_TRACE or T_TRAP15 4831.1Sdbj * XXX: because locore.s now gives them special treatment. 4841.1Sdbj */ 4851.1Sdbj case T_TRACE: /* kernel trace trap */ 4861.1Sdbj case T_TRAP15: /* kernel breakpoint */ 4871.1Sdbj#ifdef DEBUG 4881.1Sdbj printf("unexpected kernel trace trap, type = %d\n", type); 4891.1Sdbj printf("program counter = 0x%x\n", frame.f_pc); 4901.1Sdbj#endif 4911.1Sdbj frame.f_sr &= ~PSL_T; 4921.1Sdbj return; 4931.1Sdbj 4941.1Sdbj case T_TRACE|T_USER: /* user trace trap */ 4951.1Sdbj case T_TRAP15|T_USER: /* SUN user trace trap */ 4961.1Sdbj#ifdef COMPAT_SUNOS 4971.1Sdbj /* 4981.1Sdbj * SunOS uses Trap #2 for a "CPU cache flush". 4991.1Sdbj * Just flush the on-chip caches and return. 5001.1Sdbj */ 5011.1Sdbj if (p->p_emul == &emul_sunos) { 5021.1Sdbj ICIA(); 5031.1Sdbj DCIU(); 5041.1Sdbj return; 5051.1Sdbj } 5061.1Sdbj#endif 5071.1Sdbj frame.f_sr &= ~PSL_T; 5081.1Sdbj i = SIGTRAP; 5091.1Sdbj break; 5101.1Sdbj 5111.1Sdbj case T_ASTFLT: /* system async trap, cannot happen */ 5121.1Sdbj goto dopanic; 5131.1Sdbj 5141.1Sdbj case T_ASTFLT|T_USER: /* user async trap */ 5151.1Sdbj astpending = 0; 5161.1Sdbj /* 5171.1Sdbj * We check for software interrupts first. This is because 5181.1Sdbj * they are at a higher level than ASTs, and on a VAX would 5191.1Sdbj * interrupt the AST. We assume that if we are processing 5201.1Sdbj * an AST that we must be at IPL0 so we don't bother to 5211.1Sdbj * check. Note that we ensure that we are at least at SIR 5221.1Sdbj * IPL while processing the SIR. 5231.1Sdbj */ 5241.1Sdbj spl1(); 5251.1Sdbj /* fall into... */ 5261.1Sdbj 5271.1Sdbj case T_SSIR: /* software interrupt */ 5281.1Sdbj case T_SSIR|T_USER: 5291.1Sdbj while (bit = ffs(ssir)) { 5301.1Sdbj --bit; 5311.1Sdbj ssir &= ~(1 << bit); 5321.1Sdbj cnt.v_soft++; 5331.1Sdbj if (sir_routines[bit]) 5341.1Sdbj sir_routines[bit](sir_args[bit]); 5351.1Sdbj } 5361.1Sdbj 5371.1Sdbj /* 5381.1Sdbj * If this was not an AST trap, we are all done. 5391.1Sdbj */ 5401.1Sdbj if (type != (T_ASTFLT|T_USER)) { 5411.1Sdbj cnt.v_trap--; 5421.1Sdbj return; 5431.1Sdbj } 5441.1Sdbj spl0(); 5451.1Sdbj if (p->p_flag & P_OWEUPC) { 5461.1Sdbj p->p_flag &= ~P_OWEUPC; 5471.1Sdbj ADDUPROF(p); 5481.1Sdbj } 5491.1Sdbj goto out; 5501.1Sdbj 5511.1Sdbj case T_MMUFLT: /* kernel mode page fault */ 5521.1Sdbj /* 5531.1Sdbj * If we were doing profiling ticks or other user mode 5541.1Sdbj * stuff from interrupt code, Just Say No. 5551.1Sdbj */ 5561.1Sdbj if (p->p_addr->u_pcb.pcb_onfault == fubail || 5571.1Sdbj p->p_addr->u_pcb.pcb_onfault == subail) 5581.1Sdbj goto copyfault; 5591.1Sdbj /* fall into ... */ 5601.1Sdbj 5611.1Sdbj case T_MMUFLT|T_USER: /* page fault */ 5621.1Sdbj { 5631.1Sdbj vm_offset_t va; 5641.1Sdbj struct vmspace *vm = p->p_vmspace; 5651.1Sdbj vm_map_t map; 5661.1Sdbj int rv; 5671.1Sdbj vm_prot_t ftype; 5681.1Sdbj extern vm_map_t kernel_map; 5691.1Sdbj 5701.1Sdbj#ifdef DEBUG 5711.1Sdbj if ((mmudebug & MDB_WBFOLLOW) || MDB_ISPID(p->p_pid)) 5721.1Sdbj printf("trap: T_MMUFLT pid=%d, code=%x, v=%x, pc=%x, sr=%x\n", 5731.1Sdbj p->p_pid, code, v, frame.f_pc, frame.f_sr); 5741.1Sdbj#endif 5751.1Sdbj /* 5761.1Sdbj * It is only a kernel address space fault iff: 5771.1Sdbj * 1. (type & T_USER) == 0 and 5781.1Sdbj * 2. pcb_onfault not set or 5791.1Sdbj * 3. pcb_onfault set but supervisor space data fault 5801.1Sdbj * The last can occur during an exec() copyin where the 5811.1Sdbj * argument space is lazy-allocated. 5821.1Sdbj */ 5831.1Sdbj if ((type & T_USER) == 0 && 5841.1Sdbj ((p->p_addr->u_pcb.pcb_onfault == 0) || KDFAULT(code))) 5851.1Sdbj map = kernel_map; 5861.1Sdbj else 5871.1Sdbj map = vm ? &vm->vm_map : kernel_map; 5881.1Sdbj 5891.1Sdbj if (WRFAULT(code)) 5901.1Sdbj ftype = VM_PROT_READ | VM_PROT_WRITE; 5911.1Sdbj else 5921.1Sdbj ftype = VM_PROT_READ; 5931.1Sdbj 5941.1Sdbj va = trunc_page((vm_offset_t)v); 5951.1Sdbj 5961.1Sdbj if (map == kernel_map && va == 0) { 5971.1Sdbj printf("trap: bad kernel %s access at 0x%x\n", 5981.1Sdbj (ftype & VM_PROT_WRITE) ? "read/write" : 5991.1Sdbj "read", v); 6001.1Sdbj goto dopanic; 6011.1Sdbj } 6021.1Sdbj 6031.1Sdbj#ifdef COMPAT_HPUX 6041.1Sdbj if (ISHPMMADDR(va)) { 6051.1Sdbj int pmap_mapmulti __P((pmap_t, vm_offset_t)); 6061.1Sdbj vm_offset_t bva; 6071.1Sdbj 6081.1Sdbj rv = pmap_mapmulti(map->pmap, va); 6091.1Sdbj if (rv != KERN_SUCCESS) { 6101.1Sdbj bva = HPMMBASEADDR(va); 6111.1Sdbj rv = vm_fault(map, bva, ftype, FALSE); 6121.1Sdbj if (rv == KERN_SUCCESS) 6131.1Sdbj (void) pmap_mapmulti(map->pmap, va); 6141.1Sdbj } 6151.1Sdbj } else 6161.1Sdbj#endif 6171.1Sdbj rv = vm_fault(map, va, ftype, FALSE); 6181.1Sdbj#ifdef DEBUG 6191.1Sdbj if (rv && MDB_ISPID(p->p_pid)) 6201.1Sdbj printf("vm_fault(%p, %lx, %x, 0) -> %x\n", 6211.1Sdbj map, va, ftype, rv); 6221.1Sdbj#endif 6231.1Sdbj /* 6241.1Sdbj * If this was a stack access we keep track of the maximum 6251.1Sdbj * accessed stack size. Also, if vm_fault gets a protection 6261.1Sdbj * failure it is due to accessing the stack region outside 6271.1Sdbj * the current limit and we need to reflect that as an access 6281.1Sdbj * error. 6291.1Sdbj */ 6301.1Sdbj if ((vm != NULL && (caddr_t)va >= vm->vm_maxsaddr) 6311.1Sdbj && map != kernel_map) { 6321.1Sdbj if (rv == KERN_SUCCESS) { 6331.1Sdbj unsigned nss; 6341.1Sdbj 6351.1Sdbj nss = clrnd(btoc(USRSTACK-(unsigned)va)); 6361.1Sdbj if (nss > vm->vm_ssize) 6371.1Sdbj vm->vm_ssize = nss; 6381.1Sdbj } else if (rv == KERN_PROTECTION_FAILURE) 6391.1Sdbj rv = KERN_INVALID_ADDRESS; 6401.1Sdbj } 6411.1Sdbj if (rv == KERN_SUCCESS) { 6421.1Sdbj if (type == T_MMUFLT) { 6431.1Sdbj#ifdef M68040 6441.1Sdbj if (cputype == CPU_68040) 6451.1Sdbj (void) writeback(&frame, 1); 6461.1Sdbj#endif 6471.1Sdbj return; 6481.1Sdbj } 6491.1Sdbj goto out; 6501.1Sdbj } 6511.1Sdbj if (type == T_MMUFLT) { 6521.1Sdbj if (p->p_addr->u_pcb.pcb_onfault) 6531.1Sdbj goto copyfault; 6541.1Sdbj printf("vm_fault(%p, %lx, %x, 0) -> %x\n", 6551.1Sdbj map, va, ftype, rv); 6561.1Sdbj printf(" type %x, code [mmu,,ssw]: %x\n", 6571.1Sdbj type, code); 6581.1Sdbj goto dopanic; 6591.1Sdbj } 6601.1Sdbj ucode = v; 6611.1Sdbj i = SIGSEGV; 6621.1Sdbj break; 6631.1Sdbj } 6641.1Sdbj } 6651.1Sdbj trapsignal(p, i, ucode); 6661.1Sdbj if ((type & T_USER) == 0) 6671.1Sdbj return; 6681.1Sdbjout: 6691.1Sdbj userret(p, &frame, sticks, v, 1); 6701.1Sdbj} 6711.1Sdbj 6721.1Sdbj#ifdef M68040 6731.1Sdbj#ifdef DEBUG 6741.1Sdbjstruct writebackstats { 6751.1Sdbj int calls; 6761.1Sdbj int cpushes; 6771.1Sdbj int move16s; 6781.1Sdbj int wb1s, wb2s, wb3s; 6791.1Sdbj int wbsize[4]; 6801.1Sdbj} wbstats; 6811.1Sdbj 6821.1Sdbjchar *f7sz[] = { "longword", "byte", "word", "line" }; 6831.1Sdbjchar *f7tt[] = { "normal", "MOVE16", "AFC", "ACK" }; 6841.1Sdbjchar *f7tm[] = { "d-push", "u-data", "u-code", "M-data", 6851.1Sdbj "M-code", "k-data", "k-code", "RES" }; 6861.1Sdbjchar wberrstr[] = 6871.1Sdbj "WARNING: pid %d(%s) writeback [%s] failed, pc=%x fa=%x wba=%x wbd=%x\n"; 6881.1Sdbj#endif 6891.1Sdbj 6901.1Sdbjint 6911.1Sdbjwriteback(fp, docachepush) 6921.1Sdbj struct frame *fp; 6931.1Sdbj int docachepush; 6941.1Sdbj{ 6951.1Sdbj struct fmt7 *f = &fp->f_fmt7; 6961.1Sdbj struct proc *p = curproc; 6971.1Sdbj int err = 0; 6981.1Sdbj u_int fa; 6991.1Sdbj caddr_t oonfault = p->p_addr->u_pcb.pcb_onfault; 7001.1Sdbj 7011.1Sdbj#ifdef DEBUG 7021.1Sdbj if ((mmudebug & MDB_WBFOLLOW) || MDB_ISPID(p->p_pid)) { 7031.1Sdbj printf(" pid=%d, fa=%x,", p->p_pid, f->f_fa); 7041.1Sdbj dumpssw(f->f_ssw); 7051.1Sdbj } 7061.1Sdbj wbstats.calls++; 7071.1Sdbj#endif 7081.1Sdbj /* 7091.1Sdbj * Deal with special cases first. 7101.1Sdbj */ 7111.1Sdbj if ((f->f_ssw & SSW4_TMMASK) == SSW4_TMDCP) { 7121.1Sdbj /* 7131.1Sdbj * Dcache push fault. 7141.1Sdbj * Line-align the address and write out the push data to 7151.1Sdbj * the indicated physical address. 7161.1Sdbj */ 7171.1Sdbj#ifdef DEBUG 7181.1Sdbj if ((mmudebug & MDB_WBFOLLOW) || MDB_ISPID(p->p_pid)) { 7191.1Sdbj printf(" pushing %s to PA %x, data %x", 7201.1Sdbj f7sz[(f->f_ssw & SSW4_SZMASK) >> 5], 7211.1Sdbj f->f_fa, f->f_pd0); 7221.1Sdbj if ((f->f_ssw & SSW4_SZMASK) == SSW4_SZLN) 7231.1Sdbj printf("/%x/%x/%x", 7241.1Sdbj f->f_pd1, f->f_pd2, f->f_pd3); 7251.1Sdbj printf("\n"); 7261.1Sdbj } 7271.1Sdbj if (f->f_wb1s & SSW4_WBSV) 7281.1Sdbj panic("writeback: cache push with WB1S valid"); 7291.1Sdbj wbstats.cpushes++; 7301.1Sdbj#endif 7311.1Sdbj /* 7321.1Sdbj * XXX there are security problems if we attempt to do a 7331.1Sdbj * cache push after a signal handler has been called. 7341.1Sdbj */ 7351.1Sdbj if (docachepush) { 7361.1Sdbj pmap_enter(pmap_kernel(), (vm_offset_t)vmmap, 7371.1Sdbj trunc_page(f->f_fa), VM_PROT_WRITE, TRUE); 7381.1Sdbj fa = (u_int)&vmmap[(f->f_fa & PGOFSET) & ~0xF]; 7391.1Sdbj bcopy((caddr_t)&f->f_pd0, (caddr_t)fa, 16); 7401.1Sdbj DCFL(pmap_extract(pmap_kernel(), (vm_offset_t)fa)); 7411.1Sdbj pmap_remove(pmap_kernel(), (vm_offset_t)vmmap, 7421.1Sdbj (vm_offset_t)&vmmap[NBPG]); 7431.1Sdbj } else 7441.1Sdbj printf("WARNING: pid %d(%s) uid %d: CPUSH not done\n", 7451.1Sdbj p->p_pid, p->p_comm, p->p_ucred->cr_uid); 7461.1Sdbj } else if ((f->f_ssw & (SSW4_RW|SSW4_TTMASK)) == SSW4_TTM16) { 7471.1Sdbj /* 7481.1Sdbj * MOVE16 fault. 7491.1Sdbj * Line-align the address and write out the push data to 7501.1Sdbj * the indicated virtual address. 7511.1Sdbj */ 7521.1Sdbj#ifdef DEBUG 7531.1Sdbj if ((mmudebug & MDB_WBFOLLOW) || MDB_ISPID(p->p_pid)) 7541.1Sdbj printf(" MOVE16 to VA %x(%x), data %x/%x/%x/%x\n", 7551.1Sdbj f->f_fa, f->f_fa & ~0xF, f->f_pd0, f->f_pd1, 7561.1Sdbj f->f_pd2, f->f_pd3); 7571.1Sdbj if (f->f_wb1s & SSW4_WBSV) 7581.1Sdbj panic("writeback: MOVE16 with WB1S valid"); 7591.1Sdbj wbstats.move16s++; 7601.1Sdbj#endif 7611.1Sdbj if (KDFAULT(f->f_wb1s)) 7621.1Sdbj bcopy((caddr_t)&f->f_pd0, (caddr_t)(f->f_fa & ~0xF), 16); 7631.1Sdbj else 7641.1Sdbj err = suline((caddr_t)(f->f_fa & ~0xF), (caddr_t)&f->f_pd0); 7651.1Sdbj if (err) { 7661.1Sdbj fa = f->f_fa & ~0xF; 7671.1Sdbj#ifdef DEBUG 7681.1Sdbj if (mmudebug & MDB_WBFAILED) 7691.1Sdbj printf(wberrstr, p->p_pid, p->p_comm, 7701.1Sdbj "MOVE16", fp->f_pc, f->f_fa, 7711.1Sdbj f->f_fa & ~0xF, f->f_pd0); 7721.1Sdbj#endif 7731.1Sdbj } 7741.1Sdbj } else if (f->f_wb1s & SSW4_WBSV) { 7751.1Sdbj /* 7761.1Sdbj * Writeback #1. 7771.1Sdbj * Position the "memory-aligned" data and write it out. 7781.1Sdbj */ 7791.1Sdbj u_int wb1d = f->f_wb1d; 7801.1Sdbj int off; 7811.1Sdbj 7821.1Sdbj#ifdef DEBUG 7831.1Sdbj if ((mmudebug & MDB_WBFOLLOW) || MDB_ISPID(p->p_pid)) 7841.1Sdbj dumpwb(1, f->f_wb1s, f->f_wb1a, f->f_wb1d); 7851.1Sdbj wbstats.wb1s++; 7861.1Sdbj wbstats.wbsize[(f->f_wb2s&SSW4_SZMASK)>>5]++; 7871.1Sdbj#endif 7881.1Sdbj off = (f->f_wb1a & 3) * 8; 7891.1Sdbj switch (f->f_wb1s & SSW4_SZMASK) { 7901.1Sdbj case SSW4_SZLW: 7911.1Sdbj if (off) 7921.1Sdbj wb1d = (wb1d >> (32 - off)) | (wb1d << off); 7931.1Sdbj if (KDFAULT(f->f_wb1s)) 7941.1Sdbj *(long *)f->f_wb1a = wb1d; 7951.1Sdbj else 7961.1Sdbj err = suword((caddr_t)f->f_wb1a, wb1d); 7971.1Sdbj break; 7981.1Sdbj case SSW4_SZB: 7991.1Sdbj off = 24 - off; 8001.1Sdbj if (off) 8011.1Sdbj wb1d >>= off; 8021.1Sdbj if (KDFAULT(f->f_wb1s)) 8031.1Sdbj *(char *)f->f_wb1a = wb1d; 8041.1Sdbj else 8051.1Sdbj err = subyte((caddr_t)f->f_wb1a, wb1d); 8061.1Sdbj break; 8071.1Sdbj case SSW4_SZW: 8081.1Sdbj off = (off + 16) % 32; 8091.1Sdbj if (off) 8101.1Sdbj wb1d = (wb1d >> (32 - off)) | (wb1d << off); 8111.1Sdbj if (KDFAULT(f->f_wb1s)) 8121.1Sdbj *(short *)f->f_wb1a = wb1d; 8131.1Sdbj else 8141.1Sdbj err = susword((caddr_t)f->f_wb1a, wb1d); 8151.1Sdbj break; 8161.1Sdbj } 8171.1Sdbj if (err) { 8181.1Sdbj fa = f->f_wb1a; 8191.1Sdbj#ifdef DEBUG 8201.1Sdbj if (mmudebug & MDB_WBFAILED) 8211.1Sdbj printf(wberrstr, p->p_pid, p->p_comm, 8221.1Sdbj "#1", fp->f_pc, f->f_fa, 8231.1Sdbj f->f_wb1a, f->f_wb1d); 8241.1Sdbj#endif 8251.1Sdbj } 8261.1Sdbj } 8271.1Sdbj /* 8281.1Sdbj * Deal with the "normal" writebacks. 8291.1Sdbj * 8301.1Sdbj * XXX writeback2 is known to reflect a LINE size writeback after 8311.1Sdbj * a MOVE16 was already dealt with above. Ignore it. 8321.1Sdbj */ 8331.1Sdbj if (err == 0 && (f->f_wb2s & SSW4_WBSV) && 8341.1Sdbj (f->f_wb2s & SSW4_SZMASK) != SSW4_SZLN) { 8351.1Sdbj#ifdef DEBUG 8361.1Sdbj if ((mmudebug & MDB_WBFOLLOW) || MDB_ISPID(p->p_pid)) 8371.1Sdbj dumpwb(2, f->f_wb2s, f->f_wb2a, f->f_wb2d); 8381.1Sdbj wbstats.wb2s++; 8391.1Sdbj wbstats.wbsize[(f->f_wb2s&SSW4_SZMASK)>>5]++; 8401.1Sdbj#endif 8411.1Sdbj switch (f->f_wb2s & SSW4_SZMASK) { 8421.1Sdbj case SSW4_SZLW: 8431.1Sdbj if (KDFAULT(f->f_wb2s)) 8441.1Sdbj *(long *)f->f_wb2a = f->f_wb2d; 8451.1Sdbj else 8461.1Sdbj err = suword((caddr_t)f->f_wb2a, f->f_wb2d); 8471.1Sdbj break; 8481.1Sdbj case SSW4_SZB: 8491.1Sdbj if (KDFAULT(f->f_wb2s)) 8501.1Sdbj *(char *)f->f_wb2a = f->f_wb2d; 8511.1Sdbj else 8521.1Sdbj err = subyte((caddr_t)f->f_wb2a, f->f_wb2d); 8531.1Sdbj break; 8541.1Sdbj case SSW4_SZW: 8551.1Sdbj if (KDFAULT(f->f_wb2s)) 8561.1Sdbj *(short *)f->f_wb2a = f->f_wb2d; 8571.1Sdbj else 8581.1Sdbj err = susword((caddr_t)f->f_wb2a, f->f_wb2d); 8591.1Sdbj break; 8601.1Sdbj } 8611.1Sdbj if (err) { 8621.1Sdbj fa = f->f_wb2a; 8631.1Sdbj#ifdef DEBUG 8641.1Sdbj if (mmudebug & MDB_WBFAILED) { 8651.1Sdbj printf(wberrstr, p->p_pid, p->p_comm, 8661.1Sdbj "#2", fp->f_pc, f->f_fa, 8671.1Sdbj f->f_wb2a, f->f_wb2d); 8681.1Sdbj dumpssw(f->f_ssw); 8691.1Sdbj dumpwb(2, f->f_wb2s, f->f_wb2a, f->f_wb2d); 8701.1Sdbj } 8711.1Sdbj#endif 8721.1Sdbj } 8731.1Sdbj } 8741.1Sdbj if (err == 0 && (f->f_wb3s & SSW4_WBSV)) { 8751.1Sdbj#ifdef DEBUG 8761.1Sdbj if ((mmudebug & MDB_WBFOLLOW) || MDB_ISPID(p->p_pid)) 8771.1Sdbj dumpwb(3, f->f_wb3s, f->f_wb3a, f->f_wb3d); 8781.1Sdbj wbstats.wb3s++; 8791.1Sdbj wbstats.wbsize[(f->f_wb3s&SSW4_SZMASK)>>5]++; 8801.1Sdbj#endif 8811.1Sdbj switch (f->f_wb3s & SSW4_SZMASK) { 8821.1Sdbj case SSW4_SZLW: 8831.1Sdbj if (KDFAULT(f->f_wb3s)) 8841.1Sdbj *(long *)f->f_wb3a = f->f_wb3d; 8851.1Sdbj else 8861.1Sdbj err = suword((caddr_t)f->f_wb3a, f->f_wb3d); 8871.1Sdbj break; 8881.1Sdbj case SSW4_SZB: 8891.1Sdbj if (KDFAULT(f->f_wb3s)) 8901.1Sdbj *(char *)f->f_wb3a = f->f_wb3d; 8911.1Sdbj else 8921.1Sdbj err = subyte((caddr_t)f->f_wb3a, f->f_wb3d); 8931.1Sdbj break; 8941.1Sdbj case SSW4_SZW: 8951.1Sdbj if (KDFAULT(f->f_wb3s)) 8961.1Sdbj *(short *)f->f_wb3a = f->f_wb3d; 8971.1Sdbj else 8981.1Sdbj err = susword((caddr_t)f->f_wb3a, f->f_wb3d); 8991.1Sdbj break; 9001.1Sdbj#ifdef DEBUG 9011.1Sdbj case SSW4_SZLN: 9021.1Sdbj panic("writeback: wb3s indicates LINE write"); 9031.1Sdbj#endif 9041.1Sdbj } 9051.1Sdbj if (err) { 9061.1Sdbj fa = f->f_wb3a; 9071.1Sdbj#ifdef DEBUG 9081.1Sdbj if (mmudebug & MDB_WBFAILED) 9091.1Sdbj printf(wberrstr, p->p_pid, p->p_comm, 9101.1Sdbj "#3", fp->f_pc, f->f_fa, 9111.1Sdbj f->f_wb3a, f->f_wb3d); 9121.1Sdbj#endif 9131.1Sdbj } 9141.1Sdbj } 9151.1Sdbj p->p_addr->u_pcb.pcb_onfault = oonfault; 9161.1Sdbj if (err) 9171.1Sdbj err = SIGSEGV; 9181.1Sdbj return (err); 9191.1Sdbj} 9201.1Sdbj 9211.1Sdbj#ifdef DEBUG 9221.1Sdbjvoid 9231.1Sdbjdumpssw(ssw) 9241.1Sdbj u_short ssw; 9251.1Sdbj{ 9261.1Sdbj printf(" SSW: %x: ", ssw); 9271.1Sdbj if (ssw & SSW4_CP) 9281.1Sdbj printf("CP,"); 9291.1Sdbj if (ssw & SSW4_CU) 9301.1Sdbj printf("CU,"); 9311.1Sdbj if (ssw & SSW4_CT) 9321.1Sdbj printf("CT,"); 9331.1Sdbj if (ssw & SSW4_CM) 9341.1Sdbj printf("CM,"); 9351.1Sdbj if (ssw & SSW4_MA) 9361.1Sdbj printf("MA,"); 9371.1Sdbj if (ssw & SSW4_ATC) 9381.1Sdbj printf("ATC,"); 9391.1Sdbj if (ssw & SSW4_LK) 9401.1Sdbj printf("LK,"); 9411.1Sdbj if (ssw & SSW4_RW) 9421.1Sdbj printf("RW,"); 9431.1Sdbj printf(" SZ=%s, TT=%s, TM=%s\n", 9441.1Sdbj f7sz[(ssw & SSW4_SZMASK) >> 5], 9451.1Sdbj f7tt[(ssw & SSW4_TTMASK) >> 3], 9461.1Sdbj f7tm[ssw & SSW4_TMMASK]); 9471.1Sdbj} 9481.1Sdbj 9491.1Sdbjvoid 9501.1Sdbjdumpwb(num, s, a, d) 9511.1Sdbj int num; 9521.1Sdbj u_short s; 9531.1Sdbj u_int a, d; 9541.1Sdbj{ 9551.1Sdbj struct proc *p = curproc; 9561.1Sdbj vm_offset_t pa; 9571.1Sdbj 9581.1Sdbj printf(" writeback #%d: VA %x, data %x, SZ=%s, TT=%s, TM=%s\n", 9591.1Sdbj num, a, d, f7sz[(s & SSW4_SZMASK) >> 5], 9601.1Sdbj f7tt[(s & SSW4_TTMASK) >> 3], f7tm[s & SSW4_TMMASK]); 9611.1Sdbj printf(" PA "); 9621.1Sdbj pa = pmap_extract(p->p_vmspace->vm_map.pmap, (vm_offset_t)a); 9631.1Sdbj if (pa == 0) 9641.1Sdbj printf("<invalid address>"); 9651.1Sdbj else 9661.1Sdbj printf("%lx, current value %lx", pa, fuword((caddr_t)a)); 9671.1Sdbj printf("\n"); 9681.1Sdbj} 9691.1Sdbj#endif 9701.1Sdbj#endif 9711.1Sdbj 9721.1Sdbj/* 9731.1Sdbj * Process a system call. 9741.1Sdbj */ 9751.1Sdbjvoid 9761.1Sdbjsyscall(code, frame) 9771.1Sdbj register_t code; 9781.1Sdbj struct frame frame; 9791.1Sdbj{ 9801.1Sdbj caddr_t params; 9811.1Sdbj struct sysent *callp; 9821.1Sdbj struct proc *p; 9831.1Sdbj int error, opc, nsys; 9841.1Sdbj size_t argsize; 9851.1Sdbj register_t args[8], rval[2]; 9861.1Sdbj u_quad_t sticks; 9871.1Sdbj 9881.1Sdbj cnt.v_syscall++; 9891.1Sdbj if (!USERMODE(frame.f_sr)) 9901.1Sdbj panic("syscall"); 9911.1Sdbj p = curproc; 9921.1Sdbj sticks = p->p_sticks; 9931.1Sdbj p->p_md.md_regs = frame.f_regs; 9941.1Sdbj opc = frame.f_pc; 9951.1Sdbj 9961.1Sdbj nsys = p->p_emul->e_nsysent; 9971.1Sdbj callp = p->p_emul->e_sysent; 9981.1Sdbj 9991.1Sdbj#ifdef COMPAT_SUNOS 10001.1Sdbj if (p->p_emul == &emul_sunos) { 10011.1Sdbj /* 10021.1Sdbj * SunOS passes the syscall-number on the stack, whereas 10031.1Sdbj * BSD passes it in D0. So, we have to get the real "code" 10041.1Sdbj * from the stack, and clean up the stack, as SunOS glue 10051.1Sdbj * code assumes the kernel pops the syscall argument the 10061.1Sdbj * glue pushed on the stack. Sigh... 10071.1Sdbj */ 10081.1Sdbj code = fuword((caddr_t)frame.f_regs[SP]); 10091.1Sdbj 10101.1Sdbj /* 10111.1Sdbj * XXX 10121.1Sdbj * Don't do this for sunos_sigreturn, as there's no stored pc 10131.1Sdbj * on the stack to skip, the argument follows the syscall 10141.1Sdbj * number without a gap. 10151.1Sdbj */ 10161.1Sdbj if (code != SUNOS_SYS_sigreturn) { 10171.1Sdbj frame.f_regs[SP] += sizeof (int); 10181.1Sdbj /* 10191.1Sdbj * remember that we adjusted the SP, 10201.1Sdbj * might have to undo this if the system call 10211.1Sdbj * returns ERESTART. 10221.1Sdbj */ 10231.1Sdbj p->p_md.md_flags |= MDP_STACKADJ; 10241.1Sdbj } else 10251.1Sdbj p->p_md.md_flags &= ~MDP_STACKADJ; 10261.1Sdbj } 10271.1Sdbj#endif 10281.1Sdbj 10291.1Sdbj params = (caddr_t)frame.f_regs[SP] + sizeof(int); 10301.1Sdbj 10311.1Sdbj switch (code) { 10321.1Sdbj case SYS_syscall: 10331.1Sdbj /* 10341.1Sdbj * Code is first argument, followed by actual args. 10351.1Sdbj */ 10361.1Sdbj code = fuword(params); 10371.1Sdbj params += sizeof(int); 10381.1Sdbj /* 10391.1Sdbj * XXX sigreturn requires special stack manipulation 10401.1Sdbj * that is only done if entered via the sigreturn 10411.1Sdbj * trap. Cannot allow it here so make sure we fail. 10421.1Sdbj */ 10431.1Sdbj if (code == SYS_sigreturn) 10441.1Sdbj code = nsys; 10451.1Sdbj break; 10461.1Sdbj case SYS___syscall: 10471.1Sdbj /* 10481.1Sdbj * Like syscall, but code is a quad, so as to maintain 10491.1Sdbj * quad alignment for the rest of the arguments. 10501.1Sdbj */ 10511.1Sdbj if (callp != sysent) 10521.1Sdbj break; 10531.1Sdbj code = fuword(params + _QUAD_LOWWORD * sizeof(int)); 10541.1Sdbj params += sizeof(quad_t); 10551.1Sdbj break; 10561.1Sdbj default: 10571.1Sdbj break; 10581.1Sdbj } 10591.1Sdbj if (code < 0 || code >= nsys) 10601.1Sdbj callp += p->p_emul->e_nosys; /* illegal */ 10611.1Sdbj else 10621.1Sdbj callp += code; 10631.1Sdbj argsize = callp->sy_argsize; 10641.1Sdbj if (argsize) 10651.1Sdbj error = copyin(params, (caddr_t)args, argsize); 10661.1Sdbj else 10671.1Sdbj error = 0; 10681.1Sdbj#ifdef SYSCALL_DEBUG 10691.1Sdbj scdebug_call(p, code, args); 10701.1Sdbj#endif 10711.1Sdbj#ifdef KTRACE 10721.1Sdbj if (KTRPOINT(p, KTR_SYSCALL)) 10731.1Sdbj ktrsyscall(p->p_tracep, code, argsize, args); 10741.1Sdbj#endif 10751.1Sdbj if (error) 10761.1Sdbj goto bad; 10771.1Sdbj rval[0] = 0; 10781.1Sdbj rval[1] = frame.f_regs[D1]; 10791.1Sdbj error = (*callp->sy_call)(p, args, rval); 10801.1Sdbj switch (error) { 10811.1Sdbj case 0: 10821.1Sdbj frame.f_regs[D0] = rval[0]; 10831.1Sdbj frame.f_regs[D1] = rval[1]; 10841.1Sdbj frame.f_sr &= ~PSL_C; /* carry bit */ 10851.1Sdbj break; 10861.1Sdbj case ERESTART: 10871.1Sdbj /* 10881.1Sdbj * We always enter through a `trap' instruction, which is 2 10891.1Sdbj * bytes, so adjust the pc by that amount. 10901.1Sdbj */ 10911.1Sdbj frame.f_pc = opc - 2; 10921.1Sdbj break; 10931.1Sdbj case EJUSTRETURN: 10941.1Sdbj /* nothing to do */ 10951.1Sdbj break; 10961.1Sdbj default: 10971.1Sdbj bad: 10981.1Sdbj if (p->p_emul->e_errno) 10991.1Sdbj error = p->p_emul->e_errno[error]; 11001.1Sdbj frame.f_regs[D0] = error; 11011.1Sdbj frame.f_sr |= PSL_C; /* carry bit */ 11021.1Sdbj break; 11031.1Sdbj } 11041.1Sdbj 11051.1Sdbj#ifdef SYSCALL_DEBUG 11061.1Sdbj scdebug_ret(p, code, error, rval); 11071.1Sdbj#endif 11081.1Sdbj#ifdef COMPAT_SUNOS 11091.1Sdbj /* need new p-value for this */ 11101.1Sdbj if (error == ERESTART && (p->p_md.md_flags & MDP_STACKADJ)) 11111.1Sdbj frame.f_regs[SP] -= sizeof (int); 11121.1Sdbj#endif 11131.1Sdbj userret(p, &frame, sticks, (u_int)0, 0); 11141.1Sdbj#ifdef KTRACE 11151.1Sdbj if (KTRPOINT(p, KTR_SYSRET)) 11161.1Sdbj ktrsysret(p->p_tracep, code, error, rval[0]); 11171.1Sdbj#endif 11181.1Sdbj} 11191.1Sdbj 11201.1Sdbjvoid 11211.1Sdbjchild_return(p, frame) 11221.1Sdbj struct proc *p; 11231.1Sdbj struct frame frame; 11241.1Sdbj{ 11251.1Sdbj 11261.1Sdbj frame.f_regs[D0] = 0; 11271.1Sdbj frame.f_sr &= ~PSL_C; 11281.1Sdbj frame.f_format = FMT0; 11291.1Sdbj 11301.1Sdbj userret(p, &frame, 0, (u_int)0, 0); 11311.1Sdbj#ifdef KTRACE 11321.1Sdbj if (KTRPOINT(p, KTR_SYSRET)) 11331.1Sdbj ktrsysret(p->p_tracep, SYS_fork, 0, 0); 11341.1Sdbj#endif 11351.1Sdbj} 11361.1Sdbj 11371.1Sdbj/* 11381.1Sdbj * Allocation routines for software interrupts. 11391.1Sdbj */ 11401.1Sdbju_long 11411.1Sdbjallocate_sir(proc, arg) 11421.1Sdbj void (*proc)(); 11431.1Sdbj void *arg; 11441.1Sdbj{ 11451.1Sdbj int bit; 11461.1Sdbj 11471.1Sdbj if( next_sir >= NSIR ) 11481.1Sdbj panic("allocate_sir: none left"); 11491.1Sdbj bit = next_sir++; 11501.1Sdbj sir_routines[bit] = proc; 11511.1Sdbj sir_args[bit] = arg; 11521.1Sdbj return (1 << bit); 11531.1Sdbj} 11541.1Sdbj 11551.1Sdbjvoid 11561.1Sdbjinit_sir() 11571.1Sdbj{ 11581.1Sdbj extern void netintr(); 11591.1Sdbj 11601.1Sdbj sir_routines[0] = netintr; 11611.1Sdbj sir_routines[1] = softclock; 11621.1Sdbj next_sir = 2; 11631.1Sdbj} 1164