xref: /linux/arch/um/os-Linux/signal.c (revision 0883c2c06fb5bcf5b9e008270827e63c09a88c1e)
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