1 /* 2 * Copyright (C) 2015 Anton Ivanov (aivanov@{brocade.com,kot-begemot.co.uk}) 3 * Copyright (C) 2015 Thomas Meyer (thomas@m3y3r.de) 4 * Copyright (C) 2004 PathScale, Inc 5 * Copyright (C) 2004 - 2007 Jeff Dike (jdike@{addtoit,linux.intel}.com) 6 * Licensed under the GPL 7 */ 8 9 #include <stdlib.h> 10 #include <stdarg.h> 11 #include <errno.h> 12 #include <signal.h> 13 #include <strings.h> 14 #include <as-layout.h> 15 #include <kern_util.h> 16 #include <os.h> 17 #include <sysdep/mcontext.h> 18 19 void (*sig_info[NSIG])(int, struct siginfo *, struct uml_pt_regs *) = { 20 [SIGTRAP] = relay_signal, 21 [SIGFPE] = relay_signal, 22 [SIGILL] = relay_signal, 23 [SIGWINCH] = winch, 24 [SIGBUS] = bus_handler, 25 [SIGSEGV] = segv_handler, 26 [SIGIO] = sigio_handler, 27 [SIGALRM] = timer_handler 28 }; 29 30 static void sig_handler_common(int sig, struct siginfo *si, mcontext_t *mc) 31 { 32 struct uml_pt_regs *r; 33 int save_errno = errno; 34 35 r = malloc(sizeof(struct uml_pt_regs)); 36 if (!r) 37 panic("out of memory"); 38 39 r->is_user = 0; 40 if (sig == SIGSEGV) { 41 /* For segfaults, we want the data from the sigcontext. */ 42 get_regs_from_mc(r, mc); 43 GET_FAULTINFO_FROM_MC(r->faultinfo, mc); 44 } 45 46 /* enable signals if sig isn't IRQ signal */ 47 if ((sig != SIGIO) && (sig != SIGWINCH) && (sig != SIGALRM)) 48 unblock_signals(); 49 50 (*sig_info[sig])(sig, si, r); 51 52 errno = save_errno; 53 54 free(r); 55 } 56 57 /* 58 * These are the asynchronous signals. SIGPROF is excluded because we want to 59 * be able to profile all of UML, not just the non-critical sections. If 60 * profiling is not thread-safe, then that is not my problem. We can disable 61 * profiling when SMP is enabled in that case. 62 */ 63 #define SIGIO_BIT 0 64 #define SIGIO_MASK (1 << SIGIO_BIT) 65 66 #define SIGALRM_BIT 1 67 #define SIGALRM_MASK (1 << SIGALRM_BIT) 68 69 static int signals_enabled; 70 static unsigned int signals_pending; 71 static unsigned int signals_active = 0; 72 73 void sig_handler(int sig, struct siginfo *si, mcontext_t *mc) 74 { 75 int enabled; 76 77 enabled = signals_enabled; 78 if (!enabled && (sig == SIGIO)) { 79 signals_pending |= SIGIO_MASK; 80 return; 81 } 82 83 block_signals(); 84 85 sig_handler_common(sig, si, mc); 86 87 set_signals(enabled); 88 } 89 90 static void timer_real_alarm_handler(mcontext_t *mc) 91 { 92 struct uml_pt_regs *regs; 93 94 regs = malloc(sizeof(struct uml_pt_regs)); 95 if (!regs) 96 panic("out of memory"); 97 98 if (mc != NULL) 99 get_regs_from_mc(regs, mc); 100 timer_handler(SIGALRM, NULL, regs); 101 102 free(regs); 103 } 104 105 void timer_alarm_handler(int sig, struct siginfo *unused_si, mcontext_t *mc) 106 { 107 int enabled; 108 109 enabled = signals_enabled; 110 if (!signals_enabled) { 111 signals_pending |= SIGALRM_MASK; 112 return; 113 } 114 115 block_signals(); 116 117 signals_active |= SIGALRM_MASK; 118 119 timer_real_alarm_handler(mc); 120 121 signals_active &= ~SIGALRM_MASK; 122 123 set_signals(enabled); 124 } 125 126 void deliver_alarm(void) { 127 timer_alarm_handler(SIGALRM, NULL, NULL); 128 } 129 130 void timer_set_signal_handler(void) 131 { 132 set_handler(SIGALRM); 133 } 134 135 void set_sigstack(void *sig_stack, int size) 136 { 137 stack_t stack = { 138 .ss_flags = 0, 139 .ss_sp = sig_stack, 140 .ss_size = size - sizeof(void *) 141 }; 142 143 if (sigaltstack(&stack, NULL) != 0) 144 panic("enabling signal stack failed, errno = %d\n", errno); 145 } 146 147 static void (*handlers[_NSIG])(int sig, struct siginfo *si, mcontext_t *mc) = { 148 [SIGSEGV] = sig_handler, 149 [SIGBUS] = sig_handler, 150 [SIGILL] = sig_handler, 151 [SIGFPE] = sig_handler, 152 [SIGTRAP] = sig_handler, 153 154 [SIGIO] = sig_handler, 155 [SIGWINCH] = sig_handler, 156 [SIGALRM] = timer_alarm_handler 157 }; 158 159 static void hard_handler(int sig, siginfo_t *si, void *p) 160 { 161 struct ucontext *uc = p; 162 mcontext_t *mc = &uc->uc_mcontext; 163 unsigned long pending = 1UL << sig; 164 165 do { 166 int nested, bail; 167 168 /* 169 * pending comes back with one bit set for each 170 * interrupt that arrived while setting up the stack, 171 * plus a bit for this interrupt, plus the zero bit is 172 * set if this is a nested interrupt. 173 * If bail is true, then we interrupted another 174 * handler setting up the stack. In this case, we 175 * have to return, and the upper handler will deal 176 * with this interrupt. 177 */ 178 bail = to_irq_stack(&pending); 179 if (bail) 180 return; 181 182 nested = pending & 1; 183 pending &= ~1; 184 185 while ((sig = ffs(pending)) != 0){ 186 sig--; 187 pending &= ~(1 << sig); 188 (*handlers[sig])(sig, (struct siginfo *)si, mc); 189 } 190 191 /* 192 * Again, pending comes back with a mask of signals 193 * that arrived while tearing down the stack. If this 194 * is non-zero, we just go back, set up the stack 195 * again, and handle the new interrupts. 196 */ 197 if (!nested) 198 pending = from_irq_stack(nested); 199 } while (pending); 200 } 201 202 void set_handler(int sig) 203 { 204 struct sigaction action; 205 int flags = SA_SIGINFO | SA_ONSTACK; 206 sigset_t sig_mask; 207 208 action.sa_sigaction = hard_handler; 209 210 /* block irq ones */ 211 sigemptyset(&action.sa_mask); 212 sigaddset(&action.sa_mask, SIGIO); 213 sigaddset(&action.sa_mask, SIGWINCH); 214 sigaddset(&action.sa_mask, SIGALRM); 215 216 if (sig == SIGSEGV) 217 flags |= SA_NODEFER; 218 219 if (sigismember(&action.sa_mask, sig)) 220 flags |= SA_RESTART; /* if it's an irq signal */ 221 222 action.sa_flags = flags; 223 action.sa_restorer = NULL; 224 if (sigaction(sig, &action, NULL) < 0) 225 panic("sigaction failed - errno = %d\n", errno); 226 227 sigemptyset(&sig_mask); 228 sigaddset(&sig_mask, sig); 229 if (sigprocmask(SIG_UNBLOCK, &sig_mask, NULL) < 0) 230 panic("sigprocmask failed - errno = %d\n", errno); 231 } 232 233 int change_sig(int signal, int on) 234 { 235 sigset_t sigset; 236 237 sigemptyset(&sigset); 238 sigaddset(&sigset, signal); 239 if (sigprocmask(on ? SIG_UNBLOCK : SIG_BLOCK, &sigset, NULL) < 0) 240 return -errno; 241 242 return 0; 243 } 244 245 void block_signals(void) 246 { 247 signals_enabled = 0; 248 /* 249 * This must return with signals disabled, so this barrier 250 * ensures that writes are flushed out before the return. 251 * This might matter if gcc figures out how to inline this and 252 * decides to shuffle this code into the caller. 253 */ 254 barrier(); 255 } 256 257 void unblock_signals(void) 258 { 259 int save_pending; 260 261 if (signals_enabled == 1) 262 return; 263 264 /* 265 * We loop because the IRQ handler returns with interrupts off. So, 266 * interrupts may have arrived and we need to re-enable them and 267 * recheck signals_pending. 268 */ 269 while (1) { 270 /* 271 * Save and reset save_pending after enabling signals. This 272 * way, signals_pending won't be changed while we're reading it. 273 */ 274 signals_enabled = 1; 275 276 /* 277 * Setting signals_enabled and reading signals_pending must 278 * happen in this order. 279 */ 280 barrier(); 281 282 save_pending = signals_pending; 283 if (save_pending == 0) 284 return; 285 286 signals_pending = 0; 287 288 /* 289 * We have pending interrupts, so disable signals, as the 290 * handlers expect them off when they are called. They will 291 * be enabled again above. 292 */ 293 294 signals_enabled = 0; 295 296 /* 297 * Deal with SIGIO first because the alarm handler might 298 * schedule, leaving the pending SIGIO stranded until we come 299 * back here. 300 * 301 * SIGIO's handler doesn't use siginfo or mcontext, 302 * so they can be NULL. 303 */ 304 if (save_pending & SIGIO_MASK) 305 sig_handler_common(SIGIO, NULL, NULL); 306 307 /* Do not reenter the handler */ 308 309 if ((save_pending & SIGALRM_MASK) && (!(signals_active & SIGALRM_MASK))) 310 timer_real_alarm_handler(NULL); 311 312 /* Rerun the loop only if there is still pending SIGIO and not in TIMER handler */ 313 314 if (!(signals_pending & SIGIO_MASK) && (signals_active & SIGALRM_MASK)) 315 return; 316 317 } 318 } 319 320 int get_signals(void) 321 { 322 return signals_enabled; 323 } 324 325 int set_signals(int enable) 326 { 327 int ret; 328 if (signals_enabled == enable) 329 return enable; 330 331 ret = signals_enabled; 332 if (enable) 333 unblock_signals(); 334 else block_signals(); 335 336 return ret; 337 } 338 339 int os_is_signal_stack(void) 340 { 341 stack_t ss; 342 sigaltstack(NULL, &ss); 343 344 return ss.ss_flags & SS_ONSTACK; 345 } 346