2009-11-17 09:20:58 -07:00
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// Use of this source file is governed by a BSD-style
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// license that can be found in the LICENSE file.`
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#include "runtime.h"
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#include "defs.h"
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#include "os.h"
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2010-04-08 19:15:30 -06:00
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extern SigTab sigtab[];
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2010-04-08 22:13:42 -06:00
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extern int32 sys_umtx_op(uint32*, int32, uint32, void*, void*);
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2010-04-08 19:15:30 -06:00
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2009-11-17 09:20:58 -07:00
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// FreeBSD's umtx_op syscall is effectively the same as Linux's futex, and
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// thus the code is largely similar. See linux/thread.c for comments.
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static void
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umtx_wait(uint32 *addr, uint32 val)
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{
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int32 ret;
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ret = sys_umtx_op(addr, UMTX_OP_WAIT, val, nil, nil);
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if(ret >= 0 || ret == -EINTR)
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return;
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printf("umtx_wait addr=%p val=%d ret=%d\n", addr, val, ret);
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*(int32*)0x1005 = 0x1005;
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}
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static void
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umtx_wake(uint32 *addr)
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{
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int32 ret;
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ret = sys_umtx_op(addr, UMTX_OP_WAKE, 1, nil, nil);
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if(ret >= 0)
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return;
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printf("umtx_wake addr=%p ret=%d\n", addr, ret);
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*(int32*)0x1006 = 0x1006;
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}
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// See linux/thread.c for comments about the algorithm.
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static void
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umtx_lock(Lock *l)
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{
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uint32 v;
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again:
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v = l->key;
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if((v&1) == 0){
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if(cas(&l->key, v, v|1))
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return;
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goto again;
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}
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if(!cas(&l->key, v, v+2))
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goto again;
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umtx_wait(&l->key, v+2);
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for(;;){
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v = l->key;
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if(v < 2)
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throw("bad lock key");
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if(cas(&l->key, v, v-2))
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break;
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}
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goto again;
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}
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static void
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umtx_unlock(Lock *l)
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{
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uint32 v;
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again:
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v = l->key;
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if((v&1) == 0)
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throw("unlock of unlocked lock");
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if(!cas(&l->key, v, v&~1))
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goto again;
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if(v&~1)
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umtx_wake(&l->key);
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}
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void
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lock(Lock *l)
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{
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if(m->locks < 0)
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throw("lock count");
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m->locks++;
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umtx_lock(l);
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}
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void
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unlock(Lock *l)
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{
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m->locks--;
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if(m->locks < 0)
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throw("lock count");
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umtx_unlock(l);
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}
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2010-02-08 22:41:54 -07:00
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void
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2010-04-08 22:13:42 -06:00
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destroylock(Lock*)
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2010-02-08 22:41:54 -07:00
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{
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}
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2009-11-17 09:20:58 -07:00
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// Event notifications.
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void
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noteclear(Note *n)
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{
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n->lock.key = 0;
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umtx_lock(&n->lock);
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}
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void
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notesleep(Note *n)
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{
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umtx_lock(&n->lock);
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umtx_unlock(&n->lock);
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}
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void
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notewakeup(Note *n)
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{
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umtx_unlock(&n->lock);
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}
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void thr_start(void*);
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void
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newosproc(M *m, G *g, void *stk, void (*fn)(void))
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{
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2009-11-18 00:58:51 -07:00
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ThrParam param;
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2009-11-17 09:20:58 -07:00
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USED(fn); // thr_start assumes fn == mstart
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USED(g); // thr_start assumes g == m->g0
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if(0){
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printf("newosproc stk=%p m=%p g=%p fn=%p id=%d/%d ostk=%p\n",
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stk, m, g, fn, m->id, m->tls[0], &m);
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}
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runtime_memclr((byte*)¶m, sizeof param);
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param.start_func = thr_start;
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param.arg = m;
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2009-12-08 19:19:30 -07:00
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param.stack_base = (int8*)g->stackbase;
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param.stack_size = (byte*)stk - (byte*)g->stackbase;
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2009-11-18 10:11:39 -07:00
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param.child_tid = (intptr*)&m->procid;
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2009-11-17 09:20:58 -07:00
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param.parent_tid = nil;
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2009-11-18 00:58:51 -07:00
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param.tls_base = (int8*)&m->tls[0];
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param.tls_size = sizeof m->tls;
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m->tls[0] = m->id; // so 386 asm can find it
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2009-11-17 09:20:58 -07:00
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thr_new(¶m, sizeof param);
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}
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void
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osinit(void)
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{
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}
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// Called to initialize a new m (including the bootstrap m).
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void
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minit(void)
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{
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// Initialize signal handling
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m->gsignal = malg(32*1024);
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signalstack(m->gsignal->stackguard, 32*1024);
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}
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2010-04-08 19:15:30 -06:00
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void
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sigpanic(void)
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{
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switch(g->sig) {
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case SIGBUS:
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if(g->sigcode0 == BUS_ADRERR && g->sigcode1 < 0x1000)
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panicstring("invalid memory address or nil pointer dereference");
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2010-07-30 12:32:55 -06:00
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printf("unexpected fault address %p\n", g->sigcode1);
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throw("fault");
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2010-04-08 19:15:30 -06:00
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case SIGSEGV:
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if((g->sigcode0 == 0 || g->sigcode0 == SEGV_MAPERR) && g->sigcode1 < 0x1000)
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panicstring("invalid memory address or nil pointer dereference");
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2010-07-30 12:32:55 -06:00
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printf("unexpected fault address %p\n", g->sigcode1);
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throw("fault");
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2010-04-08 19:15:30 -06:00
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case SIGFPE:
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switch(g->sigcode0) {
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case FPE_INTDIV:
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panicstring("integer divide by zero");
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case FPE_INTOVF:
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panicstring("integer overflow");
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}
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panicstring("floating point error");
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}
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panicstring(sigtab[g->sig].name);
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}
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