378 lines
12 KiB
C
378 lines
12 KiB
C
/* This file handles the EXEC system call. It performs the work as follows:
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* - see if the permissions allow the file to be executed
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* - read the header and extract the sizes
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* - fetch the initial args and environment from the user space
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* - allocate the memory for the new process
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* - copy the initial stack from PM to the process
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* - read in the text and data segments and copy to the process
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* - take care of setuid and setgid bits
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* - fix up 'mproc' table
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* - tell kernel about EXEC
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* - save offset to initial argc (for ps)
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*
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* The entry points into this file are:
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* do_exec: perform the EXEC system call
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* exec_newmem: allocate new memory map for a process that tries to exec
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* do_execrestart: finish the special exec call for RS
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* exec_restart: finish a regular exec call
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* find_share: find a process whose text segment can be shared
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*/
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#include "pm.h"
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#include <sys/stat.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 <a.out.h>
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#include <signal.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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FORWARD _PROTOTYPE( int new_mem, (struct mproc *rmp, struct mproc *sh_mp,
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vir_bytes text_bytes, vir_bytes data_bytes, vir_bytes bss_bytes,
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vir_bytes stk_bytes, phys_bytes tot_bytes) );
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#define ESCRIPT (-2000) /* Returned by read_header for a #! script. */
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#define PTRSIZE sizeof(char *) /* Size of pointers in argv[] and envp[]. */
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/*===========================================================================*
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* do_exec *
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*===========================================================================*/
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PUBLIC int do_exec()
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{
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int r;
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/* Save parameters */
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mp->mp_exec_path= m_in.exec_name;
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mp->mp_exec_path_len= m_in.exec_len;
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mp->mp_exec_frame= m_in.stack_ptr;
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mp->mp_exec_frame_len= m_in.stack_bytes;
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/* Forward call to FS */
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if (mp->mp_fs_call != PM_IDLE)
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{
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panic(__FILE__, "do_exec: not idle", mp->mp_fs_call);
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}
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mp->mp_fs_call= PM_EXEC;
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r= notify(FS_PROC_NR);
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if (r != OK)
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panic(__FILE__, "do_getset: unable to notify FS", r);
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/* Do not reply */
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return SUSPEND;
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}
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/*===========================================================================*
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* exec_newmem *
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*===========================================================================*/
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PUBLIC int exec_newmem()
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{
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int r, proc_e, proc_n, allow_setuid;
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vir_bytes stack_top;
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vir_clicks tc, dc, sc, totc, dvir, s_vir;
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struct mproc *rmp, *sh_mp;
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char *ptr;
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struct exec_newmem args;
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if (who_e != FS_PROC_NR && who_e != RS_PROC_NR)
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return EPERM;
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proc_e= m_in.EXC_NM_PROC;
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if (pm_isokendpt(proc_e, &proc_n) != OK)
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{
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panic(__FILE__, "exec_newmem: got bad endpoint",
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proc_e);
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}
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rmp= &mproc[proc_n];
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ptr= m_in.EXC_NM_PTR;
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r= sys_datacopy(who_e, (vir_bytes)ptr,
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SELF, (vir_bytes)&args, sizeof(args));
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if (r != OK)
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panic(__FILE__, "exec_newmem: sys_datacopy failed", r);
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/* Check to see if segment sizes are feasible. */
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tc = ((unsigned long) args.text_bytes + CLICK_SIZE - 1) >> CLICK_SHIFT;
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dc = (args.data_bytes+args.bss_bytes + CLICK_SIZE - 1) >> CLICK_SHIFT;
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totc = (args.tot_bytes + CLICK_SIZE - 1) >> CLICK_SHIFT;
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sc = (args.args_bytes + CLICK_SIZE - 1) >> CLICK_SHIFT;
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if (dc >= totc) return(ENOEXEC); /* stack must be at least 1 click */
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dvir = (args.sep_id ? 0 : tc);
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s_vir = dvir + (totc - sc);
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#if (CHIP == INTEL && _WORD_SIZE == 2)
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r = size_ok(*ft, tc, dc, sc, dvir, s_vir);
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#else
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r = (dvir + dc > s_vir) ? ENOMEM : OK;
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#endif
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if (r != OK)
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return r;
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/* Can the process' text be shared with that of one already running? */
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sh_mp = find_share(rmp, args.st_ino, args.st_dev, args.st_ctime);
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/* Allocate new memory and release old memory. Fix map and tell
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* kernel.
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*/
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r = new_mem(rmp, sh_mp, args.text_bytes, args.data_bytes,
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args.bss_bytes, args.args_bytes, args.tot_bytes);
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if (r != OK) return(r);
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rmp->mp_flags |= PARTIAL_EXEC; /* Kill process if something goes
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* wrong after this point.
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*/
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/* Save file identification to allow it to be shared. */
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rmp->mp_ino = args.st_ino;
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rmp->mp_dev = args.st_dev;
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rmp->mp_ctime = args.st_ctime;
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stack_top= ((vir_bytes)rmp->mp_seg[S].mem_vir << CLICK_SHIFT) +
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((vir_bytes)rmp->mp_seg[S].mem_len << CLICK_SHIFT);
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/* Save offset to initial argc (for ps) */
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rmp->mp_procargs = stack_top - args.args_bytes;
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/* set/clear separate I&D flag */
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if (args.sep_id)
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rmp->mp_flags |= SEPARATE;
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else
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rmp->mp_flags &= ~SEPARATE;
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allow_setuid= 0; /* Do not allow setuid execution */
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if ((rmp->mp_flags & TRACED) == 0) {
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/* Okay, setuid execution is allowed */
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allow_setuid= 1;
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rmp->mp_effuid = args.new_uid;
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rmp->mp_effgid = args.new_gid;
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}
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/* System will save command line for debugging, ps(1) output, etc. */
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strncpy(rmp->mp_name, args.progname, PROC_NAME_LEN-1);
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rmp->mp_name[PROC_NAME_LEN-1] = '\0';
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mp->mp_reply.reply_res2= stack_top;
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mp->mp_reply.reply_res3= 0;
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if (!sh_mp) /* Load text if sh_mp = NULL */
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mp->mp_reply.reply_res3 |= EXC_NM_RF_LOAD_TEXT;
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if (allow_setuid)
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mp->mp_reply.reply_res3 |= EXC_NM_RF_ALLOW_SETUID;
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return OK;
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}
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/*===========================================================================*
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* do_execrestart *
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*===========================================================================*/
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PUBLIC int do_execrestart()
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{
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int proc_e, proc_n, result;
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struct mproc *rmp;
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if (who_e != RS_PROC_NR)
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return EPERM;
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proc_e= m_in.EXC_RS_PROC;
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if (pm_isokendpt(proc_e, &proc_n) != OK)
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{
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panic(__FILE__, "do_execrestart: got bad endpoint",
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proc_e);
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}
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rmp= &mproc[proc_n];
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result= m_in.EXC_RS_RESULT;
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exec_restart(rmp, result);
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return OK;
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}
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/*===========================================================================*
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* exec_restart *
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*===========================================================================*/
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PUBLIC void exec_restart(rmp, result)
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struct mproc *rmp;
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int result;
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{
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int r, sn;
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vir_bytes pc;
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char *new_sp;
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if (result != OK)
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{
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if (rmp->mp_flags & PARTIAL_EXEC)
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{
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printf("partial exec; killing process\n");
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/* Use SIGILL signal that something went wrong */
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rmp->mp_sigstatus = SIGILL;
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pm_exit(rmp, 0, FALSE /*!for_trace*/);
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return;
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}
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setreply(rmp-mproc, result);
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return;
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}
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rmp->mp_flags &= ~PARTIAL_EXEC;
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/* Fix 'mproc' fields, tell kernel that exec is done, reset caught
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* sigs.
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*/
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for (sn = 1; sn <= _NSIG; sn++) {
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if (sigismember(&rmp->mp_catch, sn)) {
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sigdelset(&rmp->mp_catch, sn);
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rmp->mp_sigact[sn].sa_handler = SIG_DFL;
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sigemptyset(&rmp->mp_sigact[sn].sa_mask);
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}
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}
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new_sp= (char *)rmp->mp_procargs;
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pc= 0; /* for now */
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r= sys_exec(rmp->mp_endpoint, new_sp, rmp->mp_name, pc);
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if (r != OK) panic(__FILE__, "sys_exec failed", r);
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/* Cause a signal if this process is traced. */
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if (rmp->mp_flags & TRACED) check_sig(rmp->mp_pid, SIGTRAP);
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}
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/*===========================================================================*
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* find_share *
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*===========================================================================*/
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PUBLIC struct mproc *find_share(mp_ign, ino, dev, ctime)
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struct mproc *mp_ign; /* process that should not be looked at */
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ino_t ino; /* parameters that uniquely identify a file */
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dev_t dev;
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time_t ctime;
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{
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/* Look for a process that is the file <ino, dev, ctime> in execution. Don't
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* accidentally "find" mp_ign, because it is the process on whose behalf this
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* call is made.
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*/
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struct mproc *sh_mp;
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for (sh_mp = &mproc[0]; sh_mp < &mproc[NR_PROCS]; sh_mp++) {
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if (!(sh_mp->mp_flags & SEPARATE)) continue;
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if (sh_mp == mp_ign) continue;
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if (sh_mp->mp_ino != ino) continue;
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if (sh_mp->mp_dev != dev) continue;
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if (sh_mp->mp_ctime != ctime) continue;
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return sh_mp;
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}
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return(NULL);
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}
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/*===========================================================================*
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* new_mem *
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*===========================================================================*/
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PRIVATE int new_mem(rmp, sh_mp, text_bytes, data_bytes,
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bss_bytes,stk_bytes,tot_bytes)
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struct mproc *rmp; /* process to get a new memory map */
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struct mproc *sh_mp; /* text can be shared with this process */
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vir_bytes text_bytes; /* text segment size in bytes */
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vir_bytes data_bytes; /* size of initialized data in bytes */
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vir_bytes bss_bytes; /* size of bss in bytes */
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vir_bytes stk_bytes; /* size of initial stack segment in bytes */
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phys_bytes tot_bytes; /* total memory to allocate, including gap */
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{
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/* Allocate new memory and release the old memory. Change the map and report
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* the new map to the kernel. Zero the new core image's bss, gap and stack.
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*/
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vir_clicks text_clicks, data_clicks, gap_clicks, stack_clicks, tot_clicks;
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phys_clicks new_base;
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phys_bytes bytes, base, bss_offset;
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int s, r2;
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/* No need to allocate text if it can be shared. */
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if (sh_mp != NULL) text_bytes = 0;
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/* Allow the old data to be swapped out to make room. (Which is really a
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* waste of time, because we are going to throw it away anyway.)
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*/
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rmp->mp_flags |= WAITING;
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/* Acquire the new memory. Each of the 4 parts: text, (data+bss), gap,
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* and stack occupies an integral number of clicks, starting at click
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* boundary. The data and bss parts are run together with no space.
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*/
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text_clicks = ((unsigned long) text_bytes + CLICK_SIZE - 1) >> CLICK_SHIFT;
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data_clicks = (data_bytes + bss_bytes + CLICK_SIZE - 1) >> CLICK_SHIFT;
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stack_clicks = (stk_bytes + CLICK_SIZE - 1) >> CLICK_SHIFT;
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tot_clicks = (tot_bytes + CLICK_SIZE - 1) >> CLICK_SHIFT;
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gap_clicks = tot_clicks - data_clicks - stack_clicks;
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if ( (int) gap_clicks < 0) return(ENOMEM);
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/* Try to allocate memory for the new process. */
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new_base = alloc_mem(text_clicks + tot_clicks);
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if (new_base == NO_MEM) return(ENOMEM);
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/* We've got memory for the new core image. Release the old one. */
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if (find_share(rmp, rmp->mp_ino, rmp->mp_dev, rmp->mp_ctime) == NULL) {
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/* No other process shares the text segment, so free it. */
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free_mem(rmp->mp_seg[T].mem_phys, rmp->mp_seg[T].mem_len);
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}
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/* Free the data and stack segments. */
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free_mem(rmp->mp_seg[D].mem_phys,
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rmp->mp_seg[S].mem_vir + rmp->mp_seg[S].mem_len - rmp->mp_seg[D].mem_vir);
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/* We have now passed the point of no return. The old core image has been
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* forever lost, memory for a new core image has been allocated. Set up
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* and report new map.
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*/
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if (sh_mp != NULL) {
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/* Share the text segment. */
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rmp->mp_seg[T] = sh_mp->mp_seg[T];
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} else {
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rmp->mp_seg[T].mem_phys = new_base;
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rmp->mp_seg[T].mem_vir = 0;
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rmp->mp_seg[T].mem_len = text_clicks;
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if (text_clicks > 0)
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{
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/* Zero the last click of the text segment. Otherwise the
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* part of that click may remain unchanged.
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*/
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base = (phys_bytes)(new_base+text_clicks-1) << CLICK_SHIFT;
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if ((s= sys_memset(0, base, CLICK_SIZE)) != OK)
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panic(__FILE__, "new_mem: sys_memset failed", s);
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}
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}
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rmp->mp_seg[D].mem_phys = new_base + text_clicks;
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rmp->mp_seg[D].mem_vir = 0;
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rmp->mp_seg[D].mem_len = data_clicks;
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rmp->mp_seg[S].mem_phys = rmp->mp_seg[D].mem_phys + data_clicks + gap_clicks;
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rmp->mp_seg[S].mem_vir = rmp->mp_seg[D].mem_vir + data_clicks + gap_clicks;
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rmp->mp_seg[S].mem_len = stack_clicks;
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#if (CHIP == M68000)
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rmp->mp_seg[T].mem_vir = 0;
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rmp->mp_seg[D].mem_vir = rmp->mp_seg[T].mem_len;
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rmp->mp_seg[S].mem_vir = rmp->mp_seg[D].mem_vir
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+ rmp->mp_seg[D].mem_len + gap_clicks;
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#endif
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if((r2=sys_newmap(rmp->mp_endpoint, rmp->mp_seg)) != OK) {
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/* report new map to the kernel */
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panic(__FILE__,"sys_newmap failed", r2);
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}
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/* The old memory may have been swapped out, but the new memory is real. */
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rmp->mp_flags &= ~(WAITING|ONSWAP|SWAPIN);
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/* Zero the bss, gap, and stack segment. */
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bytes = (phys_bytes)(data_clicks + gap_clicks + stack_clicks) << CLICK_SHIFT;
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base = (phys_bytes) rmp->mp_seg[D].mem_phys << CLICK_SHIFT;
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bss_offset = (data_bytes >> CLICK_SHIFT) << CLICK_SHIFT;
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base += bss_offset;
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bytes -= bss_offset;
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if ((s=sys_memset(0, base, bytes)) != OK) {
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panic(__FILE__,"new_mem can't zero", s);
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}
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return(OK);
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}
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