1 | /* This file contains a collection of miscellaneous procedures. Some of them
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2 | * perform simple system calls. Some others do a little part of system calls
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3 | * that are mostly performed by the Memory Manager.
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4 | *
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5 | * The entry points into this file are
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6 | * do_dup: perform the DUP system call
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7 | * do_fcntl: perform the FCNTL system call
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8 | * do_sync: perform the SYNC system call
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9 | * do_fsync: perform the FSYNC system call
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10 | * do_reboot: sync disks and prepare for shutdown
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11 | * do_fork: adjust the tables after MM has performed a FORK system call
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12 | * do_exec: handle files with FD_CLOEXEC on after MM has done an EXEC
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13 | * do_exit: a process has exited; note that in the tables
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14 | * do_set: set uid or gid for some process
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15 | * do_revive: revive a process that was waiting for something (e.g. TTY)
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16 | * do_svrctl: file system control
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17 | * do_getsysinfo: request copy of FS data structure
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18 | */
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19 |
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20 | #include "fs.h"
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21 | #include <fcntl.h>
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22 | #include <unistd.h> /* cc runs out of memory with unistd.h :-( */
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23 | #include <minix/callnr.h>
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24 | #include <minix/com.h>
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25 | #include <sys/svrctl.h>
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26 | #include "buf.h"
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27 | #include "file.h"
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28 | #include "fproc.h"
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29 | #include "inode.h"
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30 | #include "param.h"
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31 | #include "super.h"
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32 |
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33 | /*===========================================================================*
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34 | * do_getsysinfo *
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35 | *===========================================================================*/
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36 | PUBLIC int do_getsysinfo()
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37 | {
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38 | struct fproc *proc_addr;
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39 | vir_bytes src_addr, dst_addr;
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40 | size_t len;
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41 | int s;
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42 |
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43 | switch(m_in.info_what) {
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44 | case SI_PROC_ADDR:
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45 | proc_addr = &fproc[0];
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46 | src_addr = (vir_bytes) &proc_addr;
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47 | len = sizeof(struct fproc *);
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48 | break;
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49 | case SI_PROC_TAB:
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50 | src_addr = (vir_bytes) fproc;
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51 | len = sizeof(struct fproc) * NR_PROCS;
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52 | break;
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53 | case SI_DMAP_TAB:
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54 | src_addr = (vir_bytes) dmap;
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55 | len = sizeof(struct dmap) * NR_DEVICES;
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56 | break;
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57 | default:
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58 | return(EINVAL);
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59 | }
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60 |
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61 | dst_addr = (vir_bytes) m_in.info_where;
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62 | if (OK != (s=sys_datacopy(SELF, src_addr, who, dst_addr, len)))
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63 | return(s);
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64 | return(OK);
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65 |
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66 | }
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67 |
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68 | /*===========================================================================*
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69 | * do_dup *
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70 | *===========================================================================*/
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71 | PUBLIC int do_dup()
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72 | {
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73 | /* Perform the dup(fd) or dup2(fd,fd2) system call. These system calls are
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74 | * obsolete. In fact, it is not even possible to invoke them using the
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75 | * current library because the library routines call fcntl(). They are
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76 | * provided to permit old binary programs to continue to run.
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77 | */
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78 |
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79 | register int rfd;
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80 | register struct filp *f;
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81 | struct filp *dummy;
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82 | int r;
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83 |
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84 | /* Is the file descriptor valid? */
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85 | rfd = m_in.fd & ~DUP_MASK; /* kill off dup2 bit, if on */
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86 | if ((f = get_filp(rfd)) == NIL_FILP) return(err_code);
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87 |
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88 | /* Distinguish between dup and dup2. */
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89 | if (m_in.fd == rfd) { /* bit not on */
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90 | /* dup(fd) */
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91 | if ( (r = get_fd(0, 0, &m_in.fd2, &dummy)) != OK) return(r);
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92 | } else {
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93 | /* dup2(fd, fd2) */
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94 | if (m_in.fd2 < 0 || m_in.fd2 >= OPEN_MAX) return(EBADF);
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95 | if (rfd == m_in.fd2) return(m_in.fd2); /* ignore the call: dup2(x, x) */
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96 | m_in.fd = m_in.fd2; /* prepare to close fd2 */
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97 | (void) do_close(); /* cannot fail */
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98 | }
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99 |
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100 | /* Success. Set up new file descriptors. */
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101 | f->filp_count++;
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102 | fp->fp_filp[m_in.fd2] = f;
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103 | return(m_in.fd2);
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104 | }
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105 |
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106 | /*===========================================================================*
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107 | * do_fcntl *
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108 | *===========================================================================*/
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109 | PUBLIC int do_fcntl()
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110 | {
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111 | /* Perform the fcntl(fd, request, ...) system call. */
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112 |
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113 | register struct filp *f;
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114 | int new_fd, r, fl;
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115 | long cloexec_mask; /* bit map for the FD_CLOEXEC flag */
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116 | long clo_value; /* FD_CLOEXEC flag in proper position */
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117 | struct filp *dummy;
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118 |
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119 | /* Is the file descriptor valid? */
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120 | if ((f = get_filp(m_in.fd)) == NIL_FILP) return(err_code);
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121 |
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122 | switch (m_in.request) {
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123 | case F_DUPFD:
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124 | /* This replaces the old dup() system call. */
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125 | if (m_in.addr < 0 || m_in.addr >= OPEN_MAX) return(EINVAL);
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126 | if ((r = get_fd(m_in.addr, 0, &new_fd, &dummy)) != OK) return(r);
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127 | f->filp_count++;
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128 | fp->fp_filp[new_fd] = f;
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129 | return(new_fd);
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130 |
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131 | case F_GETFD:
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132 | /* Get close-on-exec flag (FD_CLOEXEC in POSIX Table 6-2). */
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133 | return( ((fp->fp_cloexec >> m_in.fd) & 01) ? FD_CLOEXEC : 0);
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134 |
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135 | case F_SETFD:
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136 | /* Set close-on-exec flag (FD_CLOEXEC in POSIX Table 6-2). */
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137 | cloexec_mask = 1L << m_in.fd; /* singleton set position ok */
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138 | clo_value = (m_in.addr & FD_CLOEXEC ? cloexec_mask : 0L);
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139 | fp->fp_cloexec = (fp->fp_cloexec & ~cloexec_mask) | clo_value;
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140 | return(OK);
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141 |
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142 | case F_GETFL:
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143 | /* Get file status flags (O_NONBLOCK and O_APPEND). */
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144 | fl = f->filp_flags & (O_NONBLOCK | O_APPEND | O_ACCMODE);
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145 | return(fl);
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146 |
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147 | case F_SETFL:
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148 | /* Set file status flags (O_NONBLOCK and O_APPEND). */
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149 | fl = O_NONBLOCK | O_APPEND;
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150 | f->filp_flags = (f->filp_flags & ~fl) | (m_in.addr & fl);
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151 | return(OK);
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152 |
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153 | case F_GETLK:
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154 | case F_SETLK:
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155 | case F_SETLKW:
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156 | /* Set or clear a file lock. */
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157 | r = lock_op(f, m_in.request);
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158 | return(r);
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159 | default:
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160 | return(EINVAL);
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161 | }
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162 | }
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163 |
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164 | /*===========================================================================*
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165 | * do_sync *
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166 | *===========================================================================*/
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167 | PUBLIC int do_sync()
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168 | {
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169 | /* Perform the sync() system call. Flush all the tables.
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170 | * The order in which the various tables are flushed is critical. The
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171 | * blocks must be flushed last, since rw_inode() leaves its results in
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172 | * the block cache.
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173 | */
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174 | register struct inode *rip;
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175 | register struct buf *bp;
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176 |
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177 | /* Write all the dirty inodes to the disk. */
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178 | for (rip = &inode[0]; rip < &inode[NR_INODES]; rip++)
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179 | if (rip->i_count > 0 && rip->i_dirt == DIRTY) rw_inode(rip, WRITING);
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180 |
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181 | /* Write all the dirty blocks to the disk, one drive at a time. */
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182 | for (bp = &buf[0]; bp < &buf[NR_BUFS]; bp++)
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183 | if (bp->b_dev != NO_DEV && bp->b_dirt == DIRTY) flushall(bp->b_dev);
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184 |
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185 | return(OK); /* sync() can't fail */
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186 | }
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187 |
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188 | /*===========================================================================*
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189 | * do_fsync *
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190 | *===========================================================================*/
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191 | PUBLIC int do_fsync()
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192 | {
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193 | /* Perform the fsync() system call. For now, don't be unnecessarily smart. */
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194 |
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195 | do_sync();
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196 |
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197 | return(OK);
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198 | }
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199 |
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200 | /*===========================================================================*
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201 | * do_reboot *
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202 | *===========================================================================*/
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203 | PUBLIC int do_reboot()
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204 | {
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205 | /* Perform the FS side of the reboot call. */
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206 | int i;
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207 | struct super_block *sp;
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208 | struct inode dummy;
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209 |
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210 | /* Only PM may make this call directly. */
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211 | if (who != PM_PROC_NR) return(EGENERIC);
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212 |
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213 | /* Do exit processing for all leftover processes and servers. */
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214 | for (i = 0; i < NR_PROCS; i++) { m_in.slot1 = i; do_exit(); }
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215 |
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216 | /* The root file system is mounted onto itself, which keeps it from being
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217 | * unmounted. Pull an inode out of thin air and put the root on it.
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218 | */
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219 | put_inode(super_block[0].s_imount);
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220 | super_block[0].s_imount= &dummy;
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221 | dummy.i_count = 2; /* expect one "put" */
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222 |
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223 | /* Unmount all filesystems. File systems are mounted on other file systems,
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224 | * so you have to pull off the loose bits repeatedly to get it all undone.
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225 | */
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226 | for (i= 0; i < NR_SUPERS; i++) {
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227 | /* Unmount at least one. */
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228 | for (sp= &super_block[0]; sp < &super_block[NR_SUPERS]; sp++) {
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229 | if (sp->s_dev != NO_DEV) (void) unmount(sp->s_dev);
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230 | }
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231 | }
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232 |
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233 | return(OK);
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234 | }
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235 |
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236 | /*===========================================================================*
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237 | * do_fork *
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238 | *===========================================================================*/
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239 | PUBLIC int do_fork()
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240 | {
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241 | /* Perform those aspects of the fork() system call that relate to files.
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242 | * In particular, let the child inherit its parent's file descriptors.
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243 | * The parent and child parameters tell who forked off whom. The file
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244 | * system uses the same slot numbers as the kernel. Only MM makes this call.
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245 | */
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246 |
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247 | register struct fproc *cp;
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248 | int i;
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249 |
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250 | /* Only PM may make this call directly. */
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251 | if (who != PM_PROC_NR) return(EGENERIC);
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252 |
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253 | /* Copy the parent's fproc struct to the child. */
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254 | fproc[m_in.child] = fproc[m_in.parent];
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255 |
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256 | /* Increase the counters in the 'filp' table. */
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257 | cp = &fproc[m_in.child];
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258 | for (i = 0; i < OPEN_MAX; i++)
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259 | if (cp->fp_filp[i] != NIL_FILP) cp->fp_filp[i]->filp_count++;
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260 |
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261 | /* Fill in new process id. */
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262 | cp->fp_pid = m_in.pid;
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263 |
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264 | /* A child is not a process leader. */
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265 | cp->fp_sesldr = 0;
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266 |
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267 | /* Record the fact that both root and working dir have another user. */
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268 | dup_inode(cp->fp_rootdir);
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269 | dup_inode(cp->fp_workdir);
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270 | return(OK);
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271 | }
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272 |
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273 | /*===========================================================================*
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274 | * do_exec *
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275 | *===========================================================================*/
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276 | PUBLIC int do_exec()
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277 | {
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278 | /* Files can be marked with the FD_CLOEXEC bit (in fp->fp_cloexec). When
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279 | * MM does an EXEC, it calls FS to allow FS to find these files and close them.
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280 | */
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281 |
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282 | register int i;
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283 | long bitmap;
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284 |
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285 | /* Only PM may make this call directly. */
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286 | if (who != PM_PROC_NR) return(EGENERIC);
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287 |
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288 | /* The array of FD_CLOEXEC bits is in the fp_cloexec bit map. */
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289 | fp = &fproc[m_in.slot1]; /* get_filp() needs 'fp' */
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290 | bitmap = fp->fp_cloexec;
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291 | if (bitmap == 0) return(OK); /* normal case, no FD_CLOEXECs */
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292 |
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293 | /* Check the file desriptors one by one for presence of FD_CLOEXEC. */
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294 | for (i = 0; i < OPEN_MAX; i++) {
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295 | m_in.fd = i;
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296 | if ( (bitmap >> i) & 01) (void) do_close();
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297 | }
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298 |
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299 | return(OK);
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300 | }
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301 |
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302 | /*===========================================================================*
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303 | * do_exit *
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304 | *===========================================================================*/
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305 | PUBLIC int do_exit()
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306 | {
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307 | /* Perform the file system portion of the exit(status) system call. */
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308 |
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309 | register int i, exitee, task;
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310 | register struct fproc *rfp;
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311 | register struct filp *rfilp;
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312 | register struct inode *rip;
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313 | dev_t dev;
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314 |
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315 | /* Only PM may do the EXIT call directly. */
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316 | if (who != PM_PROC_NR) return(EGENERIC);
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317 |
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318 | /* Nevertheless, pretend that the call came from the user. */
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319 | fp = &fproc[m_in.slot1]; /* get_filp() needs 'fp' */
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320 | exitee = m_in.slot1;
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321 |
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322 | if (fp->fp_suspended == SUSPENDED) {
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323 | task = -fp->fp_task;
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324 | if (task == XPIPE || task == XPOPEN) susp_count--;
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325 | m_in.pro = exitee;
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326 | (void) do_unpause(); /* this always succeeds for MM */
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327 | fp->fp_suspended = NOT_SUSPENDED;
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328 | }
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329 |
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330 | /* Loop on file descriptors, closing any that are open. */
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331 | for (i = 0; i < OPEN_MAX; i++) {
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332 | m_in.fd = i;
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333 | (void) do_close();
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334 | }
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335 |
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336 | /* Release root and working directories. */
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337 | put_inode(fp->fp_rootdir);
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338 | put_inode(fp->fp_workdir);
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339 | fp->fp_rootdir = NIL_INODE;
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340 | fp->fp_workdir = NIL_INODE;
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341 |
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342 | /* If a session leader exits then revoke access to its controlling tty from
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343 | * all other processes using it.
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344 | */
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345 | if (!fp->fp_sesldr) {
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346 | fp->fp_pid = PID_FREE;
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347 | return(OK); /* not a session leader */
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348 | }
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349 | fp->fp_sesldr = FALSE;
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350 | if (fp->fp_tty == 0) {
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351 | fp->fp_pid = PID_FREE;
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352 | return(OK); /* no controlling tty */
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353 | }
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354 | dev = fp->fp_tty;
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355 |
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356 | for (rfp = &fproc[0]; rfp < &fproc[NR_PROCS]; rfp++) {
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357 | if (rfp->fp_tty == dev) rfp->fp_tty = 0;
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358 |
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359 | for (i = 0; i < OPEN_MAX; i++) {
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360 | if ((rfilp = rfp->fp_filp[i]) == NIL_FILP) continue;
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361 | if (rfilp->filp_mode == FILP_CLOSED) continue;
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362 | rip = rfilp->filp_ino;
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363 | if ((rip->i_mode & I_TYPE) != I_CHAR_SPECIAL) continue;
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364 | if ((dev_t) rip->i_zone[0] != dev) continue;
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365 | dev_close(dev);
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366 | rfilp->filp_mode = FILP_CLOSED;
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367 | }
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368 | }
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369 |
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370 | /* Mark slot as free. */
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371 | fp->fp_pid = PID_FREE;
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372 | return(OK);
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373 | }
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374 |
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375 | /*===========================================================================*
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376 | * do_set *
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377 | *===========================================================================*/
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378 | PUBLIC int do_set()
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379 | {
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380 | /* Set uid_t or gid_t field. */
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381 |
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382 | register struct fproc *tfp;
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383 |
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384 | /* Only PM may make this call directly. */
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385 | if (who != PM_PROC_NR) return(EGENERIC);
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386 |
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387 | tfp = &fproc[m_in.slot1];
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388 | if (call_nr == SETUID) {
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389 | tfp->fp_realuid = (uid_t) m_in.real_user_id;
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390 | tfp->fp_effuid = (uid_t) m_in.eff_user_id;
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391 | }
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392 | if (call_nr == SETGID) {
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393 | tfp->fp_effgid = (gid_t) m_in.eff_grp_id;
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394 | tfp->fp_realgid = (gid_t) m_in.real_grp_id;
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395 | }
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396 | return(OK);
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397 | }
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398 |
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399 | /*===========================================================================*
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400 | * do_revive *
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401 | *===========================================================================*/
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402 | PUBLIC int do_revive()
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403 | {
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404 | /* A driver, typically TTY, has now gotten the characters that were needed for
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405 | * a previous read. The process did not get a reply when it made the call.
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406 | * Instead it was suspended. Now we can send the reply to wake it up. This
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407 | * business has to be done carefully, since the incoming message is from
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408 | * a driver (to which no reply can be sent), and the reply must go to a process
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409 | * that blocked earlier. The reply to the caller is inhibited by returning the
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410 | * 'SUSPEND' pseudo error, and the reply to the blocked process is done
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411 | * explicitly in revive().
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412 | */
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413 |
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414 | revive(m_in.REP_PROC_NR, m_in.REP_STATUS);
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415 | return(SUSPEND); /* don't reply to the TTY task */
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416 | }
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417 |
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418 | /*===========================================================================*
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419 | * do_svrctl *
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420 | *===========================================================================*/
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421 | PUBLIC int do_svrctl()
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422 | {
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423 | switch (m_in.svrctl_req) {
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424 | case FSSIGNON: {
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425 | /* A server in user space calls in to manage a device. */
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426 | struct fssignon device;
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427 | int r, major;
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428 |
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429 | if (fp->fp_effuid != SU_UID) return(EPERM);
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430 |
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431 | /* Try to copy request structure to FS. */
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432 | if ((r = sys_datacopy(who, (vir_bytes) m_in.svrctl_argp,
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433 | FS_PROC_NR, (vir_bytes) &device,
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434 | (phys_bytes) sizeof(device))) != OK)
|
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435 | return(r);
|
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436 |
|
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437 | /* Try to update device mapping. */
|
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438 | major = (device.dev >> MAJOR) & BYTE;
|
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439 | r=map_driver(major, who, device.style);
|
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440 | return(r);
|
---|
441 | }
|
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442 | default:
|
---|
443 | return(EINVAL);
|
---|
444 | }
|
---|
445 | }
|
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