575 lines
		
	
	
		
			18 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
			
		
		
	
	
			575 lines
		
	
	
		
			18 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
| /* This file handles signals, which are asynchronous events and are generally
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|  * a messy and unpleasant business.  Signals can be generated by the KILL
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|  * system call, or from the keyboard (SIGINT) or from the clock (SIGALRM).
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|  * In all cases control eventually passes to check_sig() to see which processes
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|  * can be signaled.  The actual signaling is done by sig_proc().
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|  *
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|  * The entry points into this file are:
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|  *   do_sigaction:   perform the SIGACTION system call
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|  *   do_sigpending:  perform the SIGPENDING system call
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|  *   do_sigprocmask: perform the SIGPROCMASK system call
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|  *   do_sigreturn:   perform the SIGRETURN system call
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|  *   do_sigsuspend:  perform the SIGSUSPEND system call
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|  *   do_kill:	perform the KILL system call
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|  *   do_pause:	perform the PAUSE system call
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|  *   ksig_pending: the kernel notified about pending signals
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|  *   sig_proc:	interrupt or terminate a signaled process
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|  *   check_sig: check which processes to signal with sig_proc()
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|  *   check_pending:  check if a pending signal can now be delivered
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|  */
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| 
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| #include "pm.h"
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| #include <sys/stat.h>
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| #include <sys/ptrace.h>
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| #include <minix/callnr.h>
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| #include <minix/endpoint.h>
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| #include <minix/com.h>
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| #include <minix/vm.h>
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| #include <signal.h>
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| #include <sys/resource.h>
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| #include <sys/sigcontext.h>
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| #include <string.h>
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| #include "mproc.h"
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| #include "param.h"
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| 
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| FORWARD _PROTOTYPE( void unpause, (int pro, int for_trace)		);
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| FORWARD _PROTOTYPE( void handle_ksig, (int proc_nr, sigset_t sig_map)	);
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| 
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| /*===========================================================================*
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|  *				do_sigaction				     *
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|  *===========================================================================*/
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| PUBLIC int do_sigaction()
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| {
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|   int r;
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|   struct sigaction svec;
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|   struct sigaction *svp;
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| 
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|   if (m_in.sig_nr == SIGKILL) return(OK);
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|   if (m_in.sig_nr < 1 || m_in.sig_nr > _NSIG) return (EINVAL);
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|   svp = &mp->mp_sigact[m_in.sig_nr];
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|   if ((struct sigaction *) m_in.sig_osa != (struct sigaction *) NULL) {
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| 	r = sys_datacopy(PM_PROC_NR,(vir_bytes) svp,
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| 		who_e, (vir_bytes) m_in.sig_osa, (phys_bytes) sizeof(svec));
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| 	if (r != OK) return(r);
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|   }
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| 
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|   if ((struct sigaction *) m_in.sig_nsa == (struct sigaction *) NULL) 
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|   	return(OK);
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| 
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|   /* Read in the sigaction structure. */
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|   r = sys_datacopy(who_e, (vir_bytes) m_in.sig_nsa,
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| 		PM_PROC_NR, (vir_bytes) &svec, (phys_bytes) sizeof(svec));
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|   if (r != OK) return(r);
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| 
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|   if (svec.sa_handler == SIG_IGN) {
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| 	sigaddset(&mp->mp_ignore, m_in.sig_nr);
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| 	sigdelset(&mp->mp_sigpending, m_in.sig_nr);
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| 	sigdelset(&mp->mp_catch, m_in.sig_nr);
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| 	sigdelset(&mp->mp_sig2mess, m_in.sig_nr);
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|   } else if (svec.sa_handler == SIG_DFL) {
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| 	sigdelset(&mp->mp_ignore, m_in.sig_nr);
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| 	sigdelset(&mp->mp_catch, m_in.sig_nr);
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| 	sigdelset(&mp->mp_sig2mess, m_in.sig_nr);
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|   } else if (svec.sa_handler == SIG_MESS) {
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| 	if (! (mp->mp_flags & PRIV_PROC)) return(EPERM);
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| 	sigdelset(&mp->mp_ignore, m_in.sig_nr);
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| 	sigaddset(&mp->mp_sig2mess, m_in.sig_nr);
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| 	sigdelset(&mp->mp_catch, m_in.sig_nr);
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|   } else {
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| 	sigdelset(&mp->mp_ignore, m_in.sig_nr);
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| 	sigaddset(&mp->mp_catch, m_in.sig_nr);
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| 	sigdelset(&mp->mp_sig2mess, m_in.sig_nr);
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|   }
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|   mp->mp_sigact[m_in.sig_nr].sa_handler = svec.sa_handler;
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|   sigdelset(&svec.sa_mask, SIGKILL);
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|   mp->mp_sigact[m_in.sig_nr].sa_mask = svec.sa_mask;
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|   mp->mp_sigact[m_in.sig_nr].sa_flags = svec.sa_flags;
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|   mp->mp_sigreturn = (vir_bytes) m_in.sig_ret;
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|   return(OK);
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| }
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| 
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| /*===========================================================================*
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|  *				do_sigpending                                *
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|  *===========================================================================*/
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| PUBLIC int do_sigpending()
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| {
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|   mp->mp_reply.reply_mask = (long) mp->mp_sigpending;
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|   return OK;
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| }
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| 
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| /*===========================================================================*
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|  *				do_sigprocmask                               *
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|  *===========================================================================*/
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| PUBLIC int do_sigprocmask()
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| {
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| /* Note that the library interface passes the actual mask in sigmask_set,
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|  * not a pointer to the mask, in order to save a copy.  Similarly,
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|  * the old mask is placed in the return message which the library
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|  * interface copies (if requested) to the user specified address.
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|  *
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|  * The library interface must set SIG_INQUIRE if the 'act' argument
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|  * is NULL.
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|  *
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|  * KILL and STOP can't be masked.
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|  */
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| 
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|   int i;
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| 
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|   mp->mp_reply.reply_mask = (long) mp->mp_sigmask;
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| 
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|   switch (m_in.sig_how) {
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|       case SIG_BLOCK:
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| 	sigdelset((sigset_t *)&m_in.sig_set, SIGKILL);
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| 	sigdelset((sigset_t *)&m_in.sig_set, SIGSTOP);
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| 	for (i = 1; i <= _NSIG; i++) {
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| 		if (sigismember((sigset_t *)&m_in.sig_set, i))
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| 			sigaddset(&mp->mp_sigmask, i);
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| 	}
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| 	break;
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| 
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|       case SIG_UNBLOCK:
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| 	for (i = 1; i <= _NSIG; i++) {
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| 		if (sigismember((sigset_t *)&m_in.sig_set, i))
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| 			sigdelset(&mp->mp_sigmask, i);
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| 	}
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| 	check_pending(mp);
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| 	break;
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| 
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|       case SIG_SETMASK:
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| 	sigdelset((sigset_t *) &m_in.sig_set, SIGKILL);
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| 	sigdelset((sigset_t *) &m_in.sig_set, SIGSTOP);
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| 	mp->mp_sigmask = (sigset_t) m_in.sig_set;
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| 	check_pending(mp);
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| 	break;
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| 
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|       case SIG_INQUIRE:
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| 	break;
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| 
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|       default:
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| 	return(EINVAL);
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| 	break;
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|   }
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|   return OK;
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| }
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| 
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| /*===========================================================================*
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|  *				do_sigsuspend                                *
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|  *===========================================================================*/
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| PUBLIC int do_sigsuspend()
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| {
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|   mp->mp_sigmask2 = mp->mp_sigmask;	/* save the old mask */
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|   mp->mp_sigmask = (sigset_t) m_in.sig_set;
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|   sigdelset(&mp->mp_sigmask, SIGKILL);
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|   mp->mp_flags |= SIGSUSPENDED;
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|   check_pending(mp);
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|   return(SUSPEND);
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| }
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| 
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| /*===========================================================================*
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|  *				do_sigreturn				     *
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|  *===========================================================================*/
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| PUBLIC int do_sigreturn()
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| {
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| /* A user signal handler is done.  Restore context and check for
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|  * pending unblocked signals.
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|  */
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| 
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|   int r;
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| 
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|   mp->mp_sigmask = (sigset_t) m_in.sig_set;
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|   sigdelset(&mp->mp_sigmask, SIGKILL);
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| 
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|   r = sys_sigreturn(who_e, (struct sigmsg *) m_in.sig_context);
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|   check_pending(mp);
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|   return(r);
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| }
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| 
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| /*===========================================================================*
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|  *				do_kill					     *
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|  *===========================================================================*/
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| PUBLIC int do_kill()
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| {
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| /* Perform the kill(pid, signo) system call. */
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| 
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|   return check_sig(m_in.pid, m_in.sig_nr);
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| }
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| 
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| /*===========================================================================*
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|  *				ksig_pending				     *
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|  *===========================================================================*/
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| PUBLIC int ksig_pending()
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| {
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| /* Certain signals, such as segmentation violations originate in the kernel.
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|  * When the kernel detects such signals, it notifies the PM to take further 
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|  * action. The PM requests the kernel to send messages with the process
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|  * slot and bit map for all signaled processes. The File System, for example,
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|  * uses this mechanism to signal writing on broken pipes (SIGPIPE). 
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|  *
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|  * The kernel has notified the PM about pending signals. Request pending
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|  * signals until all signals are handled. If there are no more signals,
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|  * NONE is returned in the process number field.
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|  */ 
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|  int proc_nr_e;
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|  sigset_t sig_map;
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| 
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|  while (TRUE) {
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|    int r;
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|    /* get an arbitrary pending signal */
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|    if((r=sys_getksig(&proc_nr_e, &sig_map)) != OK)
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|   	panic(__FILE__,"sys_getksig failed", r);
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|    if (NONE == proc_nr_e) {		/* stop if no more pending signals */
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|  	break;
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|    } else {
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|  	int proc_nr_p;
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|  	if(pm_isokendpt(proc_nr_e, &proc_nr_p) != OK)
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|   		panic(__FILE__,"sys_getksig strange process", proc_nr_e);
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|    	handle_ksig(proc_nr_e, sig_map);	/* handle the received signal */
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| 	/* If the process still exists to the kernel after the signal
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| 	 * has been handled ...
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| 	 */
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|         if ((mproc[proc_nr_p].mp_flags & (IN_USE | EXITING)) == IN_USE)
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| 	{
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| 	   if((r=sys_endksig(proc_nr_e)) != OK)	/* ... tell kernel it's done */
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|   		panic(__FILE__,"sys_endksig failed", r);
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| 	}
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|    }
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|  } 
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|  return(SUSPEND);			/* prevents sending reply */
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| }
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| 
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| /*===========================================================================*
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|  *				handle_ksig				     *
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|  *===========================================================================*/
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| PRIVATE void handle_ksig(proc_nr_e, sig_map)
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| int proc_nr_e;
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| sigset_t sig_map;
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| {
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|   register struct mproc *rmp;
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|   int i, proc_nr;
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|   pid_t proc_id, id;
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| 
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|   if(pm_isokendpt(proc_nr_e, &proc_nr) != OK || proc_nr < 0) {
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| 	printf("PM: handle_ksig: %d?? not ok\n", proc_nr_e);
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| 	return;
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|   }
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|   rmp = &mproc[proc_nr];
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|   if ((rmp->mp_flags & (IN_USE | EXITING)) != IN_USE) {
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| 	printf("PM: handle_ksig: %d?? exiting / not in use\n", proc_nr_e);
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| 	return;
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|   }
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|   proc_id = rmp->mp_pid;
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|   mp = &mproc[0];			/* pretend signals are from PM */
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|   mp->mp_procgrp = rmp->mp_procgrp;	/* get process group right */
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| 
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|   /* Check each bit in turn to see if a signal is to be sent.  Unlike
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|    * kill(), the kernel may collect several unrelated signals for a
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|    * process and pass them to PM in one blow.  Thus loop on the bit
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|    * map. For SIGVTALRM and SIGPROF, see if we need to restart a
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|    * virtual timer. For SIGINT, SIGWINCH and SIGQUIT, use proc_id 0
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|    * to indicate a broadcast to the recipient's process group.  For
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|    * SIGKILL, use proc_id -1 to indicate a systemwide broadcast.
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|    */
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|   for (i = 1; i <= _NSIG; i++) {
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| 	if (!sigismember(&sig_map, i)) continue;
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| #if 0
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| 	printf("PM: sig %d for %d from kernel\n", 
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| 		i, proc_nr_e);
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| #endif
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| 	switch (i) {
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| 	    case SIGINT:
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| 	    case SIGQUIT:
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| 	    case SIGWINCH:
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| 		id = 0; break;	/* broadcast to process group */
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| 	    case SIGVTALRM:
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| 	    case SIGPROF:
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| 	    	check_vtimer(proc_nr, i);
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| 	    	/* fall-through */
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| 	    default:
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| 		id = proc_id;
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| 		break;
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| 	}
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| 	check_sig(id, i);
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|   }
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| }
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| 
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| /*===========================================================================*
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|  *				do_pause				     *
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|  *===========================================================================*/
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| PUBLIC int do_pause()
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| {
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| /* Perform the pause() system call. */
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| 
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|   mp->mp_flags |= PAUSED;
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|   return(SUSPEND);
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| }
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| 
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| /*===========================================================================*
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|  *				sig_proc				     *
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|  *===========================================================================*/
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| PUBLIC void sig_proc(rmp, signo)
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| register struct mproc *rmp;	/* pointer to the process to be signaled */
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| int signo;			/* signal to send to process (1 to _NSIG) */
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| {
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| /* Send a signal to a process.  Check to see if the signal is to be caught,
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|  * ignored, tranformed into a message (for system processes) or blocked.  
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|  *  - If the signal is to be transformed into a message, request the KERNEL to
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|  * send the target process a system notification with the pending signal as an 
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|  * argument. 
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|  *  - If the signal is to be caught, request the KERNEL to push a sigcontext 
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|  * structure and a sigframe structure onto the catcher's stack.  Also, KERNEL 
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|  * will reset the program counter and stack pointer, so that when the process 
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|  * next runs, it will be executing the signal handler. When the signal handler 
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|  * returns,  sigreturn(2) will be called.  Then KERNEL will restore the signal 
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|  * context from the sigcontext structure.
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|  * If there is insufficient stack space, kill the process.
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|  */
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| 
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|   vir_bytes cur_sp;
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|   int s;
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|   int slot;
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|   int sigflags;
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| 
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|   slot = (int) (rmp - mproc);
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|   if ((rmp->mp_flags & (IN_USE | EXITING)) != IN_USE) {
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| 	printf("PM: signal %d sent to exiting process %d\n", signo, slot);
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| 	panic(__FILE__,"", NO_NUM);
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|   }
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|   if (rmp->mp_fs_call != PM_IDLE || rmp->mp_fs_call2 != PM_IDLE)
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|   {
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| 	sigaddset(&rmp->mp_sigpending, signo);
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| 	rmp->mp_flags |= PM_SIG_PENDING;
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| 	/* keep the process from running */
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| 	sys_nice(rmp->mp_endpoint, PRIO_STOP);
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| 	return;
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| 		
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|   }
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|   if ((rmp->mp_flags & TRACED) && signo != SIGKILL) {
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| 	/* A traced process has special handling. */
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| 	unpause(slot, TRUE /*for_trace*/);
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| 	stop_proc(rmp, signo);	/* a signal causes it to stop */
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| 	return;
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|   }
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|   /* Some signals are ignored by default. */
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|   if (sigismember(&rmp->mp_ignore, signo)) { 
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|   	return;
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|   }
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|   if (sigismember(&rmp->mp_sigmask, signo)) {
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| 	/* Signal should be blocked. */
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| 	sigaddset(&rmp->mp_sigpending, signo);
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| 	return;
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|   }
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|   sigflags = rmp->mp_sigact[signo].sa_flags;
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|   if (sigismember(&rmp->mp_catch, signo)) {
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| 	if (rmp->mp_flags & SIGSUSPENDED)
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| 		rmp->mp_sigmsg.sm_mask = rmp->mp_sigmask2;
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| 	else
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| 		rmp->mp_sigmsg.sm_mask = rmp->mp_sigmask;
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| 	rmp->mp_sigmsg.sm_signo = signo;
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| 	rmp->mp_sigmsg.sm_sighandler =
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| 		(vir_bytes) rmp->mp_sigact[signo].sa_handler;
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| 	rmp->mp_sigmsg.sm_sigreturn = rmp->mp_sigreturn;
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| 	rmp->mp_sigmask |= rmp->mp_sigact[signo].sa_mask;
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| 
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| 	if (sigflags & SA_NODEFER)
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| 		sigdelset(&rmp->mp_sigmask, signo);
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| 	else
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| 		sigaddset(&rmp->mp_sigmask, signo);
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| 
 | |
| 	if (sigflags & SA_RESETHAND) {
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| 		sigdelset(&rmp->mp_catch, signo);
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| 		rmp->mp_sigact[signo].sa_handler = SIG_DFL;
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| 	}
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| 	sigdelset(&rmp->mp_sigpending, signo);
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| 
 | |
| 	/* Stop process from running before we fiddle with its stack. */
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| 	sys_nice(rmp->mp_endpoint, PRIO_STOP);
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| 	if(vm_push_sig(rmp->mp_endpoint, &cur_sp) != OK)
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| 		goto doterminate;
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| 
 | |
|         rmp->mp_sigmsg.sm_stkptr = cur_sp;
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| 
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| 	/* Check to see if process is hanging on a PAUSE, WAIT or SIGSUSPEND
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| 	 * call.
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| 	 */
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| 	if (rmp->mp_flags & (PAUSED | WAITING | SIGSUSPENDED)) {
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| 		rmp->mp_flags &= ~(PAUSED | WAITING | SIGSUSPENDED);
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| 		setreply(slot, EINTR);
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| 
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| 		/* Ask the kernel to deliver the signal */
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| 		s= sys_sigsend(rmp->mp_endpoint, &rmp->mp_sigmsg);
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| 		if (s != OK)
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| 			panic(__FILE__, "sys_sigsend failed", s);
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| 
 | |
| 		/* Done */
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| 		return;
 | |
| 	}
 | |
| 
 | |
| 	/* Ask FS to unpause the process. Deliver the signal when FS is
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| 	 * ready.
 | |
| 	 */
 | |
| 	unpause(slot, FALSE /*!for_trace*/);
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| 	return;
 | |
|   }
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|   else if (sigismember(&rmp->mp_sig2mess, signo)) {
 | |
| 
 | |
| 	/* Mark event pending in process slot and send notification. */
 | |
| 	sigaddset(&rmp->mp_sigpending, signo);
 | |
| 	notify(rmp->mp_endpoint);
 | |
|   	return;
 | |
|   }
 | |
| 
 | |
| doterminate:
 | |
|   /* Signal should not or cannot be caught.  Take default action. */
 | |
|   if (sigismember(&ign_sset, signo)) {
 | |
| 	return;
 | |
|   }
 | |
| 
 | |
|   /* Terminate process */
 | |
|   rmp->mp_sigstatus = (char) signo;
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|   if (sigismember(&core_sset, signo) && slot != FS_PROC_NR) {
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| 	printf("PM: coredump signal %d for %d / %s\n", signo, rmp->mp_pid,
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| 		rmp->mp_name);
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| 	exit_proc(rmp, 0, TRUE /*dump_core*/);
 | |
|   }
 | |
|   else {
 | |
|   	exit_proc(rmp, 0, FALSE /*dump_core*/);
 | |
|   }
 | |
| }
 | |
| 
 | |
| /*===========================================================================*
 | |
|  *				check_sig				     *
 | |
|  *===========================================================================*/
 | |
| PUBLIC int check_sig(proc_id, signo)
 | |
| pid_t proc_id;			/* pid of proc to sig, or 0 or -1, or -pgrp */
 | |
| int signo;			/* signal to send to process (0 to _NSIG) */
 | |
| {
 | |
| /* Check to see if it is possible to send a signal.  The signal may have to be
 | |
|  * sent to a group of processes.  This routine is invoked by the KILL system
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|  * call, and also when the kernel catches a DEL or other signal.
 | |
|  */
 | |
| 
 | |
|   register struct mproc *rmp;
 | |
|   int count;			/* count # of signals sent */
 | |
|   int error_code;
 | |
| 
 | |
|   if (signo < 0 || signo > _NSIG) return(EINVAL);
 | |
| 
 | |
|   /* Return EINVAL for attempts to send SIGKILL to INIT alone. */
 | |
|   if (proc_id == INIT_PID && signo == SIGKILL) return(EINVAL);
 | |
| 
 | |
|   /* Search the proc table for processes to signal.  
 | |
|    * (See forkexit.c about pid magic.)
 | |
|    */
 | |
|   count = 0;
 | |
|   error_code = ESRCH;
 | |
|   for (rmp = &mproc[0]; rmp < &mproc[NR_PROCS]; rmp++) {
 | |
| 	if (!(rmp->mp_flags & IN_USE)) continue;
 | |
| 
 | |
| 	/* Check for selection. */
 | |
| 	if (proc_id > 0 && proc_id != rmp->mp_pid) continue;
 | |
| 	if (proc_id == 0 && mp->mp_procgrp != rmp->mp_procgrp) continue;
 | |
| 	if (proc_id == -1 && rmp->mp_pid <= INIT_PID) continue;
 | |
| 	if (proc_id < -1 && rmp->mp_procgrp != -proc_id) continue;
 | |
| 
 | |
| 	/* Do not kill servers and drivers when broadcasting SIGKILL. */
 | |
| 	if (proc_id == -1 && signo == SIGKILL &&
 | |
| 		(rmp->mp_flags & PRIV_PROC)) continue;
 | |
| 
 | |
| 	/* Check for permission. */
 | |
| 	if (mp->mp_effuid != SUPER_USER
 | |
| 	    && mp->mp_realuid != rmp->mp_realuid
 | |
| 	    && mp->mp_effuid != rmp->mp_realuid
 | |
| 	    && mp->mp_realuid != rmp->mp_effuid
 | |
| 	    && mp->mp_effuid != rmp->mp_effuid) {
 | |
| 		error_code = EPERM;
 | |
| 		continue;
 | |
| 	}
 | |
| 
 | |
| 	count++;
 | |
| 	if (signo == 0 || (rmp->mp_flags & EXITING)) continue;
 | |
| 
 | |
| 	/* 'sig_proc' will handle the disposition of the signal.  The
 | |
| 	 * signal may be caught, blocked, ignored, or cause process
 | |
| 	 * termination, possibly with core dump.
 | |
| 	 */
 | |
| 	sig_proc(rmp, signo);
 | |
| 
 | |
| 	if (proc_id > 0) break;	/* only one process being signaled */
 | |
|   }
 | |
| 
 | |
|   /* If the calling process has killed itself, don't reply. */
 | |
|   if ((mp->mp_flags & (IN_USE | EXITING)) != IN_USE) return(SUSPEND);
 | |
|   return(count > 0 ? OK : error_code);
 | |
| }
 | |
| 
 | |
| /*===========================================================================*
 | |
|  *				check_pending				     *
 | |
|  *===========================================================================*/
 | |
| PUBLIC void check_pending(rmp)
 | |
| register struct mproc *rmp;
 | |
| {
 | |
|   /* Check to see if any pending signals have been unblocked.  The
 | |
|    * first such signal found is delivered.
 | |
|    *
 | |
|    * If multiple pending unmasked signals are found, they will be
 | |
|    * delivered sequentially.
 | |
|    *
 | |
|    * There are several places in this file where the signal mask is
 | |
|    * changed.  At each such place, check_pending() should be called to
 | |
|    * check for newly unblocked signals.
 | |
|    */
 | |
| 
 | |
|   int i;
 | |
| 
 | |
|   for (i = 1; i <= _NSIG; i++) {
 | |
| 	if (sigismember(&rmp->mp_sigpending, i) &&
 | |
| 		!sigismember(&rmp->mp_sigmask, i)) {
 | |
| 		sigdelset(&rmp->mp_sigpending, i);
 | |
| 		sig_proc(rmp, i);
 | |
| 		break;
 | |
| 	}
 | |
|   }
 | |
| }
 | |
| 
 | |
| /*===========================================================================*
 | |
|  *				unpause					     *
 | |
|  *===========================================================================*/
 | |
| PRIVATE void unpause(pro, for_trace)
 | |
| int pro;			/* which process number */
 | |
| int for_trace;			/* for tracing */
 | |
| {
 | |
| /* A signal is to be sent to a process.  If that process is hanging on a
 | |
|  * system call, the system call must be terminated with EINTR.  Possible
 | |
|  * calls are PAUSE, WAIT, READ and WRITE, the latter two for pipes and ttys.
 | |
|  * First check if the process is hanging on an PM call.  If not, tell FS,
 | |
|  * so it can check for READs and WRITEs from pipes, ttys and the like.
 | |
|  */
 | |
|   register struct mproc *rmp;
 | |
|   int r;
 | |
| 
 | |
|   rmp = &mproc[pro];
 | |
| 
 | |
|   /* Check to see if process is hanging on a PAUSE, WAIT or SIGSUSPEND call. */
 | |
|   if (rmp->mp_flags & (PAUSED | WAITING | SIGSUSPENDED)) {
 | |
| 	rmp->mp_flags &= ~(PAUSED | WAITING | SIGSUSPENDED);
 | |
| 	setreply(pro, EINTR);
 | |
| 	return;
 | |
|   }
 | |
| 
 | |
|   /* Process is not hanging on an PM call.  Ask FS to take a look. */
 | |
|   if (for_trace)
 | |
|   {
 | |
| 	  if (rmp->mp_fs_call != PM_IDLE)
 | |
| 		panic( __FILE__, "unpause: not idle", rmp->mp_fs_call);
 | |
| 	  rmp->mp_fs_call= PM_UNPAUSE_TR;
 | |
|   }
 | |
|   else
 | |
|   {
 | |
| 	  if (rmp->mp_fs_call2 != PM_IDLE)
 | |
| 		panic( __FILE__, "unpause: not idle", rmp->mp_fs_call2);
 | |
| 	  rmp->mp_fs_call2= PM_UNPAUSE;
 | |
|   }
 | |
|   r= notify(FS_PROC_NR);
 | |
|   if (r != OK) panic("pm", "unpause: unable to notify FS", r);
 | |
| }
 | 
