586 lines
		
	
	
		
			18 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
			
		
		
	
	
			586 lines
		
	
	
		
			18 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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|  *   pm_exec:	 perform the EXEC system call
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|  */
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| 
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| #include "fs.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 <minix/u64.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 <dirent.h>
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| #include "fproc.h"
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| #include "param.h"
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| #include "vnode.h"
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| #include "vmnt.h"
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| #include <minix/vfsif.h>
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| 
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| FORWARD _PROTOTYPE( int exec_newmem, (int proc_e, vir_bytes text_bytes,
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| 	vir_bytes data_bytes, vir_bytes bss_bytes, vir_bytes tot_bytes,
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| 	vir_bytes frame_len, int sep_id,
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| 	dev_t st_dev, ino_t st_ino, time_t st_ctime, char *progname,
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| 	int new_uid, int new_gid,
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| 	vir_bytes *stack_topp, int *load_textp, int *allow_setuidp)	);
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| FORWARD _PROTOTYPE( int read_header, (struct vnode *vp, int *sep_id,
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| 	vir_bytes *text_bytes, vir_bytes *data_bytes,
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| 	vir_bytes *bss_bytes, phys_bytes *tot_bytes, vir_bytes *pc,
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| 	int *hdrlenp)							);
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| FORWARD _PROTOTYPE( int patch_stack, (struct vnode *vp,
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| 	char stack[ARG_MAX], vir_bytes *stk_bytes)			);
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| FORWARD _PROTOTYPE( int insert_arg, (char stack[ARG_MAX],
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| 	vir_bytes *stk_bytes, char *arg, int replace)			);
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| FORWARD _PROTOTYPE( void patch_ptr, (char stack[ARG_MAX],
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| 							vir_bytes base)	);
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| FORWARD _PROTOTYPE( int read_seg, (struct vnode *vp, off_t off,
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| 	int proc_e, int seg, phys_bytes seg_bytes)			);
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| FORWARD _PROTOTYPE( void clo_exec, (struct fproc *rfp)			);
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| 
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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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| /*===========================================================================*
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|  *				pm_exec					     *
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|  *===========================================================================*/
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| PUBLIC int pm_exec(proc_e, path, path_len, frame, frame_len)
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| int proc_e;
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| char *path;
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| vir_bytes path_len;
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| char *frame;
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| vir_bytes frame_len;
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| {
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| /* Perform the execve(name, argv, envp) call.  The user library builds a
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|  * complete stack image, including pointers, args, environ, etc.  The stack
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|  * is copied to a buffer inside FS, and then to the new core image.
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|  */
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|   int r, r1, sep_id, round, proc_s, hdrlen, load_text, allow_setuid;
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|   vir_bytes text_bytes, data_bytes, bss_bytes, pc;
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|   phys_bytes tot_bytes;		/* total space for program, including gap */
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|   vir_bytes stack_top, vsp;
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|   off_t off;
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|   uid_t new_uid;
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|   gid_t new_gid;
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|   struct fproc *rfp;
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|   struct vnode *vp;
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|   time_t v_ctime;
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|   char *cp;
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|   struct stat sb;
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|   char progname[PROC_NAME_LEN];
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|   static char mbuf[ARG_MAX];	/* buffer for stack and zeroes */
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| 
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|   okendpt(proc_e, &proc_s);
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|   rfp = fp = &fproc[proc_s];
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|   who_e = proc_e;
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|   who_p = proc_s;
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|   super_user = (fp->fp_effuid == SU_UID ? TRUE : FALSE);   /* su? */
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| 
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|   /* Get the exec file name. */
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|   if ((r = fetch_name(path, path_len, 0)) != OK) return(r);
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| 
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|   /* Fetch the stack from the user before destroying the old core image. */
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|   if (frame_len > ARG_MAX) return(ENOMEM);	/* stack too big */
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|   r = sys_datacopy(proc_e, (vir_bytes) frame, SELF, (vir_bytes) mbuf,
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|   		   (phys_bytes) frame_len);
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|   if (r != OK) { /* can't fetch stack (e.g. bad virtual addr) */
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|         printf("pm_exec: sys_datacopy failed\n");
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|         return(r);	
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|   }
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| 
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|   /* The default is to keep the original user and group IDs */
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|   new_uid = rfp->fp_effuid;
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|   new_gid = rfp->fp_effgid;
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| 
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|   for (round= 0; round < 2; round++) {
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| 	/* round = 0 (first attempt), or 1 (interpreted script) */
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| 
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| 	/* Save the name of the program */
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| 	(cp= strrchr(user_fullpath, '/')) ? cp++ : (cp= user_fullpath);
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| 
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| 	strncpy(progname, cp, PROC_NAME_LEN-1);
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| 	progname[PROC_NAME_LEN-1] = '\0';
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| 
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| 	/* Open executable */
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| 	if ((vp = eat_path(PATH_NOFLAGS)) == NULL) return(err_code);
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| 
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| 	if ((vp->v_mode & I_TYPE) != I_REGULAR) 
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| 		r = ENOEXEC;
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| 	else if ((r1 = forbidden(vp, X_BIT)) != OK)
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| 		r = r1;
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| 	else
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| 		r = req_stat(vp->v_fs_e, vp->v_inode_nr, VFS_PROC_NR,
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| 			     (char *) &sb, 0);
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| 	if (r != OK) {
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| 	    put_vnode(vp);
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| 	    return(r);
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| 	}
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| 
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|         v_ctime = sb.st_ctime;
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|         if (round == 0) {
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|             /* Deal with setuid/setgid executables */
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|             if (vp->v_mode & I_SET_UID_BIT) new_uid = vp->v_uid;
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|             if (vp->v_mode & I_SET_GID_BIT) new_gid = vp->v_gid;
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|         }
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| 
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|         /* Read the file header and extract the segment sizes. */
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| 	r = read_header(vp, &sep_id, &text_bytes, &data_bytes, &bss_bytes, 
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| 			&tot_bytes, &pc, &hdrlen);
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| 	if (r != ESCRIPT || round != 0)
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| 		break;
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| 
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| 	/* Get fresh copy of the file name. */
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| 	if ((r = fetch_name(path, path_len, 0)) != OK) 
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| 		printf("VFS pm_exec: 2nd fetch_name failed\n");
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| 	else if ((r = patch_stack(vp, mbuf, &frame_len)) != OK) 
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| 		printf("VFS pm_exec: patch_stack failed\n");
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| 	put_vnode(vp);
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| 	if (r != OK) return(r);
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|   }
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| 
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|   if (r != OK) {
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| 	put_vnode(vp);
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| 	return(ENOEXEC);
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|   }
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| 
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|   r = exec_newmem(proc_e, text_bytes, data_bytes, bss_bytes, tot_bytes,
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| 		  frame_len, sep_id, vp->v_dev, vp->v_inode_nr, v_ctime, 
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| 		  progname, new_uid, new_gid, &stack_top, &load_text,
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| 		  &allow_setuid);
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|   if (r != OK) {
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|         printf("VFS: pm_exec: exec_newmem failed: %d\n", r);
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|         put_vnode(vp);
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|         return(r);
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|   }
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| 
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|   /* Patch up stack and copy it from FS to new core image. */
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|   vsp = stack_top;
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|   vsp -= frame_len;
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|   patch_ptr(mbuf, vsp);
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|   if ((r = sys_datacopy(SELF, (vir_bytes) mbuf, proc_e, (vir_bytes) vsp,
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| 		   (phys_bytes)frame_len)) != OK) {
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| 	printf("VFS: datacopy failed (%d) trying to copy to %p\n", r, vsp);
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| 	return(r);
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|   }
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| 
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|   off = hdrlen;
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| 
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|   /* Read in text and data segments. */
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|   if (load_text) r = read_seg(vp, off, proc_e, T, text_bytes);
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|   off += text_bytes;
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|   if (r == OK) r = read_seg(vp, off, proc_e, D, data_bytes);
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|   put_vnode(vp);
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|   if (r != OK) return(r);
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|   clo_exec(rfp);
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| 
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|   if (allow_setuid) {
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| 	rfp->fp_effuid = new_uid;
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| 	rfp->fp_effgid = new_gid;
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|   }
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| 
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|   /* This child has now exec()ced. */
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|   rfp->fp_execced = 1;
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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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| /*===========================================================================*
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|  *				exec_newmem				     *
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|  *===========================================================================*/
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| PRIVATE int exec_newmem(
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|   int proc_e,
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|   vir_bytes text_bytes,
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|   vir_bytes data_bytes,
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|   vir_bytes bss_bytes,
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|   vir_bytes tot_bytes,
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|   vir_bytes frame_len,
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|   int sep_id,
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|   dev_t st_dev,
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|   ino_t st_ino,
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|   time_t st_ctime,
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|   char *progname,
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|   int new_uid,
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|   int new_gid,
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|   vir_bytes *stack_topp,
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|   int *load_textp,
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|   int *allow_setuidp
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| )
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| {
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|   int r;
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|   struct exec_newmem e;
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|   message m;
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| 
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|   e.text_bytes = text_bytes;
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|   e.data_bytes = data_bytes;
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|   e.bss_bytes  = bss_bytes;
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|   e.tot_bytes  = tot_bytes;
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|   e.args_bytes = frame_len;
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|   e.sep_id     = sep_id;
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|   e.st_dev     = st_dev;
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|   e.st_ino     = st_ino;
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|   e.st_ctime   = st_ctime;
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|   e.new_uid    = new_uid;
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|   e.new_gid    = new_gid;
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|   strncpy(e.progname, progname, sizeof(e.progname)-1);
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|   e.progname[sizeof(e.progname)-1] = '\0';
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| 
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|   m.m_type = EXEC_NEWMEM;
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|   m.EXC_NM_PROC = proc_e;
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|   m.EXC_NM_PTR = (char *)&e;
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|   if ((r = sendrec(PM_PROC_NR, &m)) != OK) return(r);
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| 
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|   *stack_topp = m.m1_i1;
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|   *load_textp = !!(m.m1_i2 & EXC_NM_RF_LOAD_TEXT);
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|   *allow_setuidp = !!(m.m1_i2 & EXC_NM_RF_ALLOW_SETUID);
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| 
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|   return(m.m_type);
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| }
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| 
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| 
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| /*===========================================================================*
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|  *				read_header				     *
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|  *===========================================================================*/
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| PRIVATE int read_header(
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|   struct vnode *vp,		/* inode for reading exec file */
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|   int *sep_id,			/* true iff sep I&D */
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|   vir_bytes *text_bytes,	/* place to return text size */
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|   vir_bytes *data_bytes,	/* place to return initialized data size */
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|   vir_bytes *bss_bytes,		/* place to return bss size */
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|   phys_bytes *tot_bytes,	/* place to return total size */
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|   vir_bytes *pc,		/* program entry point (initial PC) */
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|   int *hdrlenp
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| )
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| {
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| /* Read the header and extract the text, data, bss and total sizes from it. */
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|   off_t pos;
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|   int r;
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|   u64_t new_pos;
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|   unsigned int cum_io;
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|   struct exec hdr;		/* a.out header is read in here */
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| 
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|   /* Read the header and check the magic number.  The standard MINIX header 
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|    * is defined in <a.out.h>.  It consists of 8 chars followed by 6 longs.
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|    * Then come 4 more longs that are not used here.
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|    *	Byte 0: magic number 0x01
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|    *	Byte 1: magic number 0x03
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|    *	Byte 2: normal = 0x10 (not checked, 0 is OK), separate I/D = 0x20
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|    *	Byte 3: CPU type, Intel 16 bit = 0x04, Intel 32 bit = 0x10, 
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|    *            Motorola = 0x0B, Sun SPARC = 0x17
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|    *	Byte 4: Header length = 0x20
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|    *	Bytes 5-7 are not used.
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|    *
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|    *	Now come the 6 longs
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|    *	Bytes  8-11: size of text segments in bytes
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|    *	Bytes 12-15: size of initialized data segment in bytes
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|    *	Bytes 16-19: size of bss in bytes
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|    *	Bytes 20-23: program entry point
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|    *	Bytes 24-27: total memory allocated to program (text, data + stack)
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|    *	Bytes 28-31: size of symbol table in bytes
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|    * The longs are represented in a machine dependent order,
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|    * little-endian on the 8088, big-endian on the 68000.
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|    * The header is followed directly by the text and data segments, and the 
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|    * symbol table (if any). The sizes are given in the header. Only the 
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|    * text and data segments are copied into memory by exec. The header is 
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|    * used here only. The symbol table is for the benefit of a debugger and 
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|    * is ignored here.
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|    */
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|   
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|   pos= 0;	/* Read from the start of the file */
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| 
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|   /* Issue request */
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|   r = req_readwrite(vp->v_fs_e, vp->v_inode_nr, cvul64(pos), READING,
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|   		    VFS_PROC_NR, (char*)&hdr, sizeof(hdr), &new_pos, &cum_io);
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|   if (r != OK) return r;
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| 
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|   /* Interpreted script? */
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|   if (((char*)&hdr)[0] == '#' && ((char*)&hdr)[1] == '!' && vp->v_size >= 2)
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| 	return(ESCRIPT);
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| 
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|   if (vp->v_size < A_MINHDR) return(ENOEXEC);
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| 
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|   /* Check magic number, cpu type, and flags. */
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|   if (BADMAG(hdr)) return(ENOEXEC);
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| #if (CHIP == INTEL && _WORD_SIZE == 2)
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|   if (hdr.a_cpu != A_I8086) return(ENOEXEC);
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| #endif
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| #if (CHIP == INTEL && _WORD_SIZE == 4)
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|   if (hdr.a_cpu != A_I80386) return(ENOEXEC);
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| #endif
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|   if ((hdr.a_flags & ~(A_NSYM | A_EXEC | A_SEP)) != 0) return(ENOEXEC);
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| 
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|   *sep_id = !!(hdr.a_flags & A_SEP);	    /* separate I & D or not */
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| 
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|   /* Get text and data sizes. */
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|   *text_bytes = (vir_bytes) hdr.a_text;	/* text size in bytes */
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|   *data_bytes = (vir_bytes) hdr.a_data;	/* data size in bytes */
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|   *bss_bytes  = (vir_bytes) hdr.a_bss;	/* bss size in bytes */
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|   *tot_bytes  = hdr.a_total;		/* total bytes to allocate for prog */
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|   if (*tot_bytes == 0) return(ENOEXEC);
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| 
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|   if (!*sep_id) {
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| 	/* If I & D space is not separated, it is all considered data. Text=0*/
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| 	*data_bytes += *text_bytes;
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| 	*text_bytes = 0;
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|   }
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|   *pc = hdr.a_entry;	/* initial address to start execution */
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|   *hdrlenp = hdr.a_hdrlen & BYTE;		/* header length */
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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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| /*===========================================================================*
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|  *				patch_stack				     *
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|  *===========================================================================*/
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| PRIVATE int patch_stack(vp, stack, stk_bytes)
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| struct vnode *vp;		/* pointer for open script file */
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| char stack[ARG_MAX];		/* pointer to stack image within FS */
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| vir_bytes *stk_bytes;		/* size of initial stack */
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| {
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| /* Patch the argument vector to include the path name of the script to be
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|  * interpreted, and all strings on the #! line.  Returns the path name of
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|  * the interpreter.
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|  */
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|   enum { INSERT=FALSE, REPLACE=TRUE };
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|   int n, r;
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|   off_t pos;
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|   char *sp, *interp = NULL;
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|   u64_t new_pos;
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|   unsigned int cum_io;
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|   char buf[_MAX_BLOCK_SIZE];
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| 
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|   /* Make user_fullpath the new argv[0]. */
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|   if (!insert_arg(stack, stk_bytes, user_fullpath, REPLACE)) return(ENOMEM);
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| 
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|   pos = 0;	/* Read from the start of the file */
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| 
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|   /* Issue request */
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|   r = req_readwrite(vp->v_fs_e, vp->v_inode_nr, cvul64(pos), READING,
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|   		    VFS_PROC_NR, buf, _MAX_BLOCK_SIZE, &new_pos, &cum_io);
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|   if (r != OK) return(r);
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|   
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|   n = vp->v_size;
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|   if (n > _MAX_BLOCK_SIZE)
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| 	n = _MAX_BLOCK_SIZE;
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|   if (n < 2) return ENOEXEC;
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|   
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|   sp = &(buf[2]);				/* just behind the #! */
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|   n -= 2;
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|   if (n > PATH_MAX) n = PATH_MAX;
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| 
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|   /* Use the user_fullpath variable for temporary storage */
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|   memcpy(user_fullpath, sp, n);
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| 
 | |
|   if ((sp = memchr(user_fullpath, '\n', n)) == NULL) /* must be a proper line */
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| 	return(ENOEXEC);
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| 
 | |
|   /* Move sp backwards through script[], prepending each string to stack. */
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|   for (;;) {
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| 	/* skip spaces behind argument. */
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| 	while (sp > user_fullpath && (*--sp == ' ' || *sp == '\t')) {}
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| 	if (sp == user_fullpath) break;
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| 
 | |
| 	sp[1] = 0;
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| 	/* Move to the start of the argument. */
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| 	while (sp > user_fullpath && sp[-1] != ' ' && sp[-1] != '\t') --sp;
 | |
| 
 | |
| 	interp = sp;
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| 	if (!insert_arg(stack, stk_bytes, sp, INSERT)) return(ENOMEM);
 | |
|   }
 | |
| 
 | |
|   /* Round *stk_bytes up to the size of a pointer for alignment contraints. */
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|   *stk_bytes= ((*stk_bytes + PTRSIZE - 1) / PTRSIZE) * PTRSIZE;
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| 
 | |
|   if (interp != user_fullpath)
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| 	memmove(user_fullpath, interp, strlen(interp)+1);
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|   return(OK);
 | |
| }
 | |
| 
 | |
| /*===========================================================================*
 | |
|  *				insert_arg				     *
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|  *===========================================================================*/
 | |
| PRIVATE int insert_arg(stack, stk_bytes, arg, replace)
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| char stack[ARG_MAX];		/* pointer to stack image within PM */
 | |
| vir_bytes *stk_bytes;		/* size of initial stack */
 | |
| char *arg;			/* argument to prepend/replace as new argv[0] */
 | |
| int replace;
 | |
| {
 | |
| /* Patch the stack so that arg will become argv[0].  Be careful, the stack may
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|  * be filled with garbage, although it normally looks like this:
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|  *	nargs argv[0] ... argv[nargs-1] NULL envp[0] ... NULL
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|  * followed by the strings "pointed" to by the argv[i] and the envp[i].  The
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|  * pointers are really offsets from the start of stack.
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|  * Return true iff the operation succeeded.
 | |
|  */
 | |
|   int offset, a0, a1, old_bytes = *stk_bytes;
 | |
| 
 | |
|   /* Prepending arg adds at least one string and a zero byte. */
 | |
|   offset = strlen(arg) + 1;
 | |
| 
 | |
|   a0 = (int) ((char **) stack)[1];	/* argv[0] */
 | |
|   if (a0 < 4 * PTRSIZE || a0 >= old_bytes) return(FALSE);
 | |
| 
 | |
|   a1 = a0;			/* a1 will point to the strings to be moved */
 | |
|   if (replace) {
 | |
| 	/* Move a1 to the end of argv[0][] (argv[1] if nargs > 1). */
 | |
| 	do {
 | |
| 		if (a1 == old_bytes) return(FALSE);
 | |
| 		--offset;
 | |
| 	} while (stack[a1++] != 0);
 | |
|   } else {
 | |
| 	offset += PTRSIZE;	/* new argv[0] needs new pointer in argv[] */
 | |
| 	a0 += PTRSIZE;		/* location of new argv[0][]. */
 | |
|   }
 | |
| 
 | |
|   /* stack will grow by offset bytes (or shrink by -offset bytes) */
 | |
|   if ((*stk_bytes += offset) > ARG_MAX) return(FALSE);
 | |
| 
 | |
|   /* Reposition the strings by offset bytes */
 | |
|   memmove(stack + a1 + offset, stack + a1, old_bytes - a1);
 | |
| 
 | |
|   strcpy(stack + a0, arg);	/* Put arg in the new space. */
 | |
| 
 | |
|   if (!replace) {
 | |
| 	/* Make space for a new argv[0]. */
 | |
| 	memmove(stack + 2 * PTRSIZE, stack + 1 * PTRSIZE, a0 - 2 * PTRSIZE);
 | |
| 
 | |
| 	((char **) stack)[0]++;	/* nargs++; */
 | |
|   }
 | |
|   /* Now patch up argv[] and envp[] by offset. */
 | |
|   patch_ptr(stack, (vir_bytes) offset);
 | |
|   ((char **) stack)[1] = (char *) a0;	/* set argv[0] correctly */
 | |
|   return(TRUE);
 | |
| }
 | |
| 
 | |
| 
 | |
| /*===========================================================================*
 | |
|  *				patch_ptr				     *
 | |
|  *===========================================================================*/
 | |
| PRIVATE void patch_ptr(stack, base)
 | |
| char stack[ARG_MAX];		/* pointer to stack image within PM */
 | |
| vir_bytes base;			/* virtual address of stack base inside user */
 | |
| {
 | |
| /* When doing an exec(name, argv, envp) call, the user builds up a stack
 | |
|  * image with arg and env pointers relative to the start of the stack.  Now
 | |
|  * these pointers must be relocated, since the stack is not positioned at
 | |
|  * address 0 in the user's address space.
 | |
|  */
 | |
| 
 | |
|   char **ap, flag;
 | |
|   vir_bytes v;
 | |
| 
 | |
|   flag = 0;			/* counts number of 0-pointers seen */
 | |
|   ap = (char **) stack;		/* points initially to 'nargs' */
 | |
|   ap++;				/* now points to argv[0] */
 | |
|   while (flag < 2) {
 | |
| 	if (ap >= (char **) &stack[ARG_MAX]) return;	/* too bad */
 | |
| 	if (*ap != NULL) {
 | |
| 		v = (vir_bytes) *ap;	/* v is relative pointer */
 | |
| 		v += base;		/* relocate it */
 | |
| 		*ap = (char *) v;	/* put it back */
 | |
| 	} else {
 | |
| 		flag++;
 | |
| 	}
 | |
| 	ap++;
 | |
|   }
 | |
| }
 | |
| 
 | |
| 
 | |
| /*===========================================================================*
 | |
|  *				read_seg				     *
 | |
|  *===========================================================================*/
 | |
| PRIVATE int read_seg(vp, off, proc_e, seg, seg_bytes)
 | |
| struct vnode *vp; 		/* inode descriptor to read from */
 | |
| off_t off;			/* offset in file */
 | |
| int proc_e;			/* process number (endpoint) */
 | |
| int seg;			/* T, D, or S */
 | |
| phys_bytes seg_bytes;		/* how much is to be transferred? */
 | |
| {
 | |
| /*
 | |
|  * The byte count on read is usually smaller than the segment count, because
 | |
|  * a segment is padded out to a click multiple, and the data segment is only
 | |
|  * partially initialized.
 | |
|  */
 | |
|   int r;
 | |
|   unsigned n, o;
 | |
|   u64_t new_pos;
 | |
|   unsigned int cum_io;
 | |
|   char buf[1024];
 | |
| 
 | |
|   /* Make sure that the file is big enough */
 | |
|   if (vp->v_size < off+seg_bytes) return(EIO);
 | |
| 
 | |
|   if (seg != D) {
 | |
| 	/* We have to use a copy loop until safecopies support segments */
 | |
| 	o = 0;
 | |
| 	while (o < seg_bytes) {
 | |
| 		n = seg_bytes - o;
 | |
| 		if (n > sizeof(buf))
 | |
| 			n = sizeof(buf);
 | |
| 
 | |
| 		if ((r = req_readwrite(vp->v_fs_e,vp->v_inode_nr,cvul64(off+o), READING, VFS_PROC_NR, buf,
 | |
| 				       n, &new_pos, &cum_io)) != OK) {
 | |
| 			printf("VFS: read_seg: req_readwrite failed (text)\n");
 | |
| 			return(r);
 | |
| 		}
 | |
| 
 | |
| 		if (cum_io != n) {
 | |
| 			printf(
 | |
| 		"VFSread_seg segment has not been read properly by exec() \n");
 | |
| 			return(EIO);
 | |
| 		}
 | |
| 
 | |
| 		if ((r = sys_vircopy(VFS_PROC_NR, D, (vir_bytes)buf, proc_e,
 | |
| 				     seg, o, n)) != OK) {
 | |
| 			printf("VFS: read_seg: copy failed (text)\n");
 | |
| 			return(r);
 | |
| 		}
 | |
| 
 | |
| 		o += n;
 | |
| 	}
 | |
| 	return(OK);
 | |
|   }
 | |
|   
 | |
|   if ((r = req_readwrite(vp->v_fs_e, vp->v_inode_nr, cvul64(off), READING,
 | |
|   			 proc_e, 0, seg_bytes, &new_pos, &cum_io)) != OK) {
 | |
| 	printf("VFS: read_seg: req_readwrite failed (data)\n");
 | |
| 	return(r);
 | |
|   }
 | |
|   
 | |
|   if (r == OK && cum_io != seg_bytes)
 | |
| 	printf("VFSread_seg segment has not been read properly by exec()\n");
 | |
| 
 | |
|   return(r); 
 | |
| }
 | |
| 
 | |
| 
 | |
| /*===========================================================================*
 | |
|  *				clo_exec				     *
 | |
|  *===========================================================================*/
 | |
| PRIVATE void clo_exec(rfp)
 | |
| struct fproc *rfp;
 | |
| {
 | |
| /* Files can be marked with the FD_CLOEXEC bit (in fp->fp_cloexec).  
 | |
|  */
 | |
|   int i;
 | |
| 
 | |
|   /* Check the file desriptors one by one for presence of FD_CLOEXEC. */
 | |
|   for (i = 0; i < OPEN_MAX; i++)
 | |
| 	if ( FD_ISSET(i, &rfp->fp_cloexec_set))
 | |
| 		(void) close_fd(rfp, i);
 | |
| }
 | |
| 
 | 
