1 | /* This file contains the main program of the process manager and some related
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2 | * procedures. When MINIX starts up, the kernel runs for a little while,
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3 | * initializing itself and its tasks, and then it runs PM and FS. Both PM
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4 | * and FS initialize themselves as far as they can. PM asks the kernel for
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5 | * all free memory and starts serving requests.
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6 | *
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7 | * The entry points into this file are:
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8 | * main: starts PM running
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9 | * setreply: set the reply to be sent to process making an PM system call
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10 | */
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11 |
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12 | #include "pm.h"
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13 | #include <minix/keymap.h>
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14 | #include <minix/callnr.h>
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15 | #include <minix/com.h>
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16 | #include <minix/endpoint.h>
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17 | #include <signal.h>
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18 | #include <stdlib.h>
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19 | #include <fcntl.h>
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20 | #include <sys/resource.h>
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21 | #include <string.h>
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22 | #include "mproc.h"
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23 | #include "param.h"
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24 |
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25 | #include "../../kernel/const.h"
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26 | #include "../../kernel/config.h"
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27 | #include "../../kernel/type.h"
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28 | #include "../../kernel/proc.h"
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29 |
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30 | FORWARD _PROTOTYPE( void get_work, (void) );
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31 | FORWARD _PROTOTYPE( void pm_init, (void) );
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32 | FORWARD _PROTOTYPE( int get_nice_value, (int queue) );
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33 | FORWARD _PROTOTYPE( void get_mem_chunks, (struct memory *mem_chunks) );
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34 | FORWARD _PROTOTYPE( void patch_mem_chunks, (struct memory *mem_chunks,
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35 | struct mem_map *map_ptr) );
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36 | FORWARD _PROTOTYPE( void do_x86_vm, (struct memory mem_chunks[NR_MEMS]) );
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37 |
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38 | #define click_to_round_k(n) \
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39 | ((unsigned) ((((unsigned long) (n) << CLICK_SHIFT) + 512) / 1024))
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40 |
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41 | /*===========================================================================*
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42 | * main *
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43 | *===========================================================================*/
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44 | PUBLIC int main()
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45 | {
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46 | /* Main routine of the process manager. */
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47 | int result, s, proc_nr;
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48 | struct mproc *rmp;
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49 | sigset_t sigset;
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50 |
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51 | pm_init(); /* initialize process manager tables */
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52 |
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53 | /* This is PM's main loop- get work and do it, forever and forever. */
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54 | while (TRUE) {
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55 | get_work(); /* wait for an PM system call */
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56 |
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57 | /* Check for system notifications first. Special cases. */
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58 | if (call_nr == SYN_ALARM) {
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59 | pm_expire_timers(m_in.NOTIFY_TIMESTAMP);
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60 | result = SUSPEND; /* don't reply */
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61 | } else if (call_nr == SYS_SIG) { /* signals pending */
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62 | sigset = m_in.NOTIFY_ARG;
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63 | if (sigismember(&sigset, SIGKSIG)) {
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64 | (void) ksig_pending();
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65 | }
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66 | result = SUSPEND; /* don't reply */
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67 | }
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68 | /* Else, if the system call number is valid, perform the call. */
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69 | else if ((unsigned) call_nr >= NCALLS) {
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70 | result = ENOSYS;
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71 | } else {
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72 | result = (*call_vec[call_nr])();
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73 | }
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74 |
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75 | /* Send the results back to the user to indicate completion. */
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76 | if (result != SUSPEND) setreply(who_p, result);
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77 |
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78 | swap_in(); /* maybe a process can be swapped in? */
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79 |
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80 | /* Send out all pending reply messages, including the answer to
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81 | * the call just made above. The processes must not be swapped out.
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82 | */
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83 | for (proc_nr=0, rmp=mproc; proc_nr < NR_PROCS; proc_nr++, rmp++) {
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84 | /* In the meantime, the process may have been killed by a
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85 | * signal (e.g. if a lethal pending signal was unblocked)
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86 | * without the PM realizing it. If the slot is no longer in
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87 | * use or just a zombie, don't try to reply.
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88 | */
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89 | if ((rmp->mp_flags & (REPLY | ONSWAP | IN_USE | ZOMBIE)) ==
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90 | (REPLY | IN_USE)) {
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91 | if ((s=send(rmp->mp_endpoint, &rmp->mp_reply)) != OK) {
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92 | printf("PM can't reply to %d (%s)\n",
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93 | rmp->mp_endpoint, rmp->mp_name);
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94 | panic(__FILE__, "PM can't reply", NO_NUM);
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95 | }
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96 | rmp->mp_flags &= ~REPLY;
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97 | }
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98 | }
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99 | }
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100 | return(OK);
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101 | }
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102 |
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103 | /*===========================================================================*
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104 | * get_work *
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105 | *===========================================================================*/
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106 | PRIVATE void get_work()
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107 | {
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108 | /* Wait for the next message and extract useful information from it. */
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109 | if (receive(ANY, &m_in) != OK)
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110 | panic(__FILE__,"PM receive error", NO_NUM);
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111 | who_e = m_in.m_source; /* who sent the message */
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112 | if(pm_isokendpt(who_e, &who_p) != OK)
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113 | panic(__FILE__, "PM got message from invalid endpoint", who_e);
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114 | call_nr = m_in.m_type; /* system call number */
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115 |
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116 | /* Process slot of caller. Misuse PM's own process slot if the kernel is
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117 | * calling. This can happen in case of synchronous alarms (CLOCK) or or
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118 | * event like pending kernel signals (SYSTEM).
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119 | */
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120 | mp = &mproc[who_p < 0 ? PM_PROC_NR : who_p];
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121 | if(who_p >= 0 && mp->mp_endpoint != who_e) {
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122 | panic(__FILE__, "PM endpoint number out of sync with source",
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123 | mp->mp_endpoint);
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124 | }
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125 | }
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126 |
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127 | /*===========================================================================*
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128 | * setreply *
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129 | *===========================================================================*/
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130 | PUBLIC void setreply(proc_nr, result)
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131 | int proc_nr; /* process to reply to */
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132 | int result; /* result of call (usually OK or error #) */
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133 | {
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134 | /* Fill in a reply message to be sent later to a user process. System calls
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135 | * may occasionally fill in other fields, this is only for the main return
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136 | * value, and for setting the "must send reply" flag.
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137 | */
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138 | register struct mproc *rmp = &mproc[proc_nr];
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139 |
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140 | if(proc_nr < 0 || proc_nr >= NR_PROCS)
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141 | panic(__FILE__,"setreply arg out of range", proc_nr);
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142 |
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143 | rmp->mp_reply.reply_res = result;
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144 | rmp->mp_flags |= REPLY; /* reply pending */
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145 |
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146 | if (rmp->mp_flags & ONSWAP)
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147 | swap_inqueue(rmp); /* must swap this process back in */
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148 | }
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149 |
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150 | /*===========================================================================*
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151 | * pm_init *
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152 | *===========================================================================*/
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153 | PRIVATE void pm_init()
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154 | {
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155 | /* Initialize the process manager.
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156 | * Memory use info is collected from the boot monitor, the kernel, and
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157 | * all processes compiled into the system image. Initially this information
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158 | * is put into an array mem_chunks. Elements of mem_chunks are struct memory,
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159 | * and hold base, size pairs in units of clicks. This array is small, there
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160 | * should be no more than 8 chunks. After the array of chunks has been built
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161 | * the contents are used to initialize the hole list. Space for the hole list
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162 | * is reserved as an array with twice as many elements as the maximum number
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163 | * of processes allowed. It is managed as a linked list, and elements of the
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164 | * array are struct hole, which, in addition to storage for a base and size in
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165 | * click units also contain space for a link, a pointer to another element.
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166 | */
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167 | int s;
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168 | static struct boot_image image[NR_BOOT_PROCS];
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169 | register struct boot_image *ip;
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170 | static char core_sigs[] = { SIGQUIT, SIGILL, SIGTRAP, SIGABRT,
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171 | SIGEMT, SIGFPE, SIGUSR1, SIGSEGV, SIGUSR2 };
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172 | static char ign_sigs[] = { SIGCHLD, SIGWINCH, SIGCONT };
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173 | static char mess_sigs[] = { SIGTERM, SIGHUP, SIGABRT, SIGQUIT };
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174 | register struct mproc *rmp;
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175 | register int i;
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176 | register char *sig_ptr;
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177 | phys_clicks total_clicks, minix_clicks, free_clicks;
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178 | message mess;
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179 | struct mem_map mem_map[NR_LOCAL_SEGS];
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180 | struct memory mem_chunks[NR_MEMS];
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181 |
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182 | /* Initialize process table, including timers. */
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183 | for (rmp=&mproc[0]; rmp<&mproc[NR_PROCS]; rmp++) {
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184 | tmr_inittimer(&rmp->mp_timer);
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185 | }
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186 |
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187 | /* Build the set of signals which cause core dumps, and the set of signals
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188 | * that are by default ignored.
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189 | */
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190 | sigemptyset(&core_sset);
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191 | for (sig_ptr = core_sigs; sig_ptr < core_sigs+sizeof(core_sigs); sig_ptr++)
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192 | sigaddset(&core_sset, *sig_ptr);
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193 | sigemptyset(&ign_sset);
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194 | for (sig_ptr = ign_sigs; sig_ptr < ign_sigs+sizeof(ign_sigs); sig_ptr++)
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195 | sigaddset(&ign_sset, *sig_ptr);
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196 |
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197 | /* Obtain a copy of the boot monitor parameters and the kernel info struct.
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198 | * Parse the list of free memory chunks. This list is what the boot monitor
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199 | * reported, but it must be corrected for the kernel and system processes.
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200 | */
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201 | if ((s=sys_getmonparams(monitor_params, sizeof(monitor_params))) != OK)
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202 | panic(__FILE__,"get monitor params failed",s);
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203 | get_mem_chunks(mem_chunks);
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204 | if ((s=sys_getkinfo(&kinfo)) != OK)
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205 | panic(__FILE__,"get kernel info failed",s);
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206 |
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207 | /* Get the memory map of the kernel to see how much memory it uses. */
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208 | if ((s=get_mem_map(SYSTASK, mem_map)) != OK)
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209 | panic(__FILE__,"couldn't get memory map of SYSTASK",s);
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210 | minix_clicks = (mem_map[S].mem_phys+mem_map[S].mem_len)-mem_map[T].mem_phys;
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211 | patch_mem_chunks(mem_chunks, mem_map);
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212 |
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213 | /* Initialize PM's process table. Request a copy of the system image table
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214 | * that is defined at the kernel level to see which slots to fill in.
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215 | */
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216 | if (OK != (s=sys_getimage(image)))
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217 | panic(__FILE__,"couldn't get image table: %d\n", s);
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218 | procs_in_use = 0; /* start populating table */
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219 | printf("Building process table:"); /* show what's happening */
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220 | for (ip = &image[0]; ip < &image[NR_BOOT_PROCS]; ip++) {
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221 | if (ip->proc_nr >= 0) { /* task have negative nrs */
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222 | procs_in_use += 1; /* found user process */
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223 |
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224 | /* Set process details found in the image table. */
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225 | rmp = &mproc[ip->proc_nr];
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226 | strncpy(rmp->mp_name, ip->proc_name, PROC_NAME_LEN);
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227 | rmp->mp_parent = RS_PROC_NR;
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228 | rmp->mp_nice = get_nice_value(ip->priority);
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229 | sigemptyset(&rmp->mp_sig2mess);
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230 | sigemptyset(&rmp->mp_ignore);
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231 | sigemptyset(&rmp->mp_sigmask);
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232 | sigemptyset(&rmp->mp_catch);
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233 | if (ip->proc_nr == INIT_PROC_NR) { /* user process */
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234 | rmp->mp_procgrp = rmp->mp_pid = INIT_PID;
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235 | rmp->mp_flags |= IN_USE;
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236 | }
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237 | else { /* system process */
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238 | rmp->mp_pid = get_free_pid();
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239 | rmp->mp_flags |= IN_USE | DONT_SWAP | PRIV_PROC;
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240 | for (sig_ptr = mess_sigs;
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241 | sig_ptr < mess_sigs+sizeof(mess_sigs);
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242 | sig_ptr++)
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243 | sigaddset(&rmp->mp_sig2mess, *sig_ptr);
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244 | }
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245 |
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246 | /* Get kernel endpoint identifier. */
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247 | rmp->mp_endpoint = ip->endpoint;
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248 |
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249 | /* Get memory map for this process from the kernel. */
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250 | if ((s=get_mem_map(ip->proc_nr, rmp->mp_seg)) != OK)
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251 | panic(__FILE__,"couldn't get process entry",s);
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252 | if (rmp->mp_seg[T].mem_len != 0) rmp->mp_flags |= SEPARATE;
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253 | minix_clicks += rmp->mp_seg[S].mem_phys +
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254 | rmp->mp_seg[S].mem_len - rmp->mp_seg[T].mem_phys;
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255 | patch_mem_chunks(mem_chunks, rmp->mp_seg);
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256 |
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257 | /* Tell FS about this system process. */
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258 | mess.PR_SLOT = ip->proc_nr;
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259 | mess.PR_PID = rmp->mp_pid;
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260 | mess.PR_ENDPT = rmp->mp_endpoint;
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261 | if (OK != (s=send(FS_PROC_NR, &mess)))
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262 | panic(__FILE__,"can't sync up with FS", s);
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263 | printf(" %s", ip->proc_name); /* display process name */
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264 | }
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265 | }
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266 | printf(".\n"); /* last process done */
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267 |
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268 | /* Override some details. INIT, PM, FS and RS are somewhat special. */
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269 | mproc[PM_PROC_NR].mp_pid = PM_PID; /* PM has magic pid */
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270 | mproc[RS_PROC_NR].mp_parent = INIT_PROC_NR; /* INIT is root */
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271 | sigfillset(&mproc[PM_PROC_NR].mp_ignore); /* guard against signals */
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272 |
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273 | /* Tell FS that no more system processes follow and synchronize. */
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274 | mess.PR_ENDPT = NONE;
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275 | if (sendrec(FS_PROC_NR, &mess) != OK || mess.m_type != OK)
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276 | panic(__FILE__,"can't sync up with FS", NO_NUM);
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277 |
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278 | #if ENABLE_BOOTDEV
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279 | /* Possibly we must correct the memory chunks for the boot device. */
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280 | if (kinfo.bootdev_size > 0) {
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281 | mem_map[T].mem_phys = kinfo.bootdev_base >> CLICK_SHIFT;
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282 | mem_map[T].mem_len = 0;
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283 | mem_map[D].mem_len = (kinfo.bootdev_size+CLICK_SIZE-1) >> CLICK_SHIFT;
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284 | patch_mem_chunks(mem_chunks, mem_map);
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285 | }
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286 | #endif /* ENABLE_BOOTDEV */
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287 |
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288 | /* Withhold some memory from x86 VM */
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289 | do_x86_vm(mem_chunks);
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290 |
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291 | /* Initialize tables to all physical memory and print memory information. */
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292 | printf("Physical memory:");
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293 | mem_init(mem_chunks, &free_clicks);
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294 | total_clicks = minix_clicks + free_clicks;
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295 | printf(" total %u KB,", click_to_round_k(total_clicks));
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296 | printf(" system %u KB,", click_to_round_k(minix_clicks));
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297 | printf(" free %u KB.\n", click_to_round_k(free_clicks));
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298 | }
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299 |
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300 | /*===========================================================================*
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301 | * get_nice_value *
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302 | *===========================================================================*/
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303 | PRIVATE int get_nice_value(queue)
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304 | int queue; /* store mem chunks here */
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305 | {
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306 | /* Processes in the boot image have a priority assigned. The PM doesn't know
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307 | * about priorities, but uses 'nice' values instead. The priority is between
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308 | * MIN_USER_Q and MAX_USER_Q. We have to scale between PRIO_MIN and PRIO_MAX.
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309 | */
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310 | int nice_val = (queue - USER_Q) * (PRIO_MAX-PRIO_MIN+1) /
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311 | (MIN_USER_Q-MAX_USER_Q+1);
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312 | if (nice_val > PRIO_MAX) nice_val = PRIO_MAX; /* shouldn't happen */
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313 | if (nice_val < PRIO_MIN) nice_val = PRIO_MIN; /* shouldn't happen */
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314 | return nice_val;
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315 | }
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316 |
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317 | #if _WORD_SIZE == 2
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318 | /* In real mode only 1M can be addressed, and in 16-bit protected we can go
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319 | * no further than we can count in clicks. (The 286 is further limited by
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320 | * its 24 bit address bus, but we can assume in that case that no more than
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321 | * 16M memory is reported by the BIOS.)
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322 | */
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323 | #define MAX_REAL 0x00100000L
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324 | #define MAX_16BIT (0xFFF0L << CLICK_SHIFT)
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325 | #endif
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326 |
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327 | /*===========================================================================*
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328 | * get_mem_chunks *
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329 | *===========================================================================*/
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330 | PRIVATE void get_mem_chunks(mem_chunks)
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331 | struct memory *mem_chunks; /* store mem chunks here */
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332 | {
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333 | /* Initialize the free memory list from the 'memory' boot variable. Translate
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334 | * the byte offsets and sizes in this list to clicks, properly truncated. Also
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335 | * make sure that we don't exceed the maximum address space of the 286 or the
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336 | * 8086, i.e. when running in 16-bit protected mode or real mode.
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337 | */
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338 | long base, size, limit;
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339 | char *s, *end; /* use to parse boot variable */
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340 | int i, done = 0;
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341 | struct memory *memp;
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342 | #if _WORD_SIZE == 2
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343 | unsigned long max_address;
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344 | struct machine machine;
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345 | if (OK != (i=sys_getmachine(&machine)))
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346 | panic(__FILE__, "sys_getmachine failed", i);
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347 | #endif
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348 |
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349 | /* Initialize everything to zero. */
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350 | for (i = 0; i < NR_MEMS; i++) {
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351 | memp = &mem_chunks[i]; /* next mem chunk is stored here */
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352 | memp->base = memp->size = 0;
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353 | }
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354 |
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355 | /* The available memory is determined by MINIX' boot loader as a list of
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356 | * (base:size)-pairs in boothead.s. The 'memory' boot variable is set in
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357 | * in boot.s. The format is "b0:s0,b1:s1,b2:s2", where b0:s0 is low mem,
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358 | * b1:s1 is mem between 1M and 16M, b2:s2 is mem above 16M. Pairs b1:s1
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359 | * and b2:s2 are combined if the memory is adjacent.
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360 | */
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361 | s = find_param("memory"); /* get memory boot variable */
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362 | for (i = 0; i < NR_MEMS && !done; i++) {
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363 | memp = &mem_chunks[i]; /* next mem chunk is stored here */
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364 | base = size = 0; /* initialize next base:size pair */
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365 | if (*s != 0) { /* get fresh data, unless at end */
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366 |
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367 | /* Read fresh base and expect colon as next char. */
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368 | base = strtoul(s, &end, 0x10); /* get number */
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369 | if (end != s && *end == ':') s = ++end; /* skip ':' */
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370 | else *s=0; /* terminate, should not happen */
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371 |
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372 | /* Read fresh size and expect comma or assume end. */
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373 | size = strtoul(s, &end, 0x10); /* get number */
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374 | if (end != s && *end == ',') s = ++end; /* skip ',' */
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375 | else done = 1;
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376 | }
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377 | limit = base + size;
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378 | #if _WORD_SIZE == 2
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379 | max_address = machine.protected ? MAX_16BIT : MAX_REAL;
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380 | if (limit > max_address) limit = max_address;
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381 | #endif
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382 | base = (base + CLICK_SIZE-1) & ~(long)(CLICK_SIZE-1);
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383 | limit &= ~(long)(CLICK_SIZE-1);
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384 | if (limit <= base) continue;
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385 | memp->base = base >> CLICK_SHIFT;
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386 | memp->size = (limit - base) >> CLICK_SHIFT;
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387 | }
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388 | }
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389 |
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390 | /*===========================================================================*
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391 | * patch_mem_chunks *
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392 | *===========================================================================*/
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393 | PRIVATE void patch_mem_chunks(mem_chunks, map_ptr)
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394 | struct memory *mem_chunks; /* store mem chunks here */
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395 | struct mem_map *map_ptr; /* memory to remove */
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396 | {
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397 | /* Remove server memory from the free memory list. The boot monitor
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398 | * promises to put processes at the start of memory chunks. The
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399 | * tasks all use same base address, so only the first task changes
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400 | * the memory lists. The servers and init have their own memory
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401 | * spaces and their memory will be removed from the list.
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402 | */
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403 | struct memory *memp;
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404 | for (memp = mem_chunks; memp < &mem_chunks[NR_MEMS]; memp++) {
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405 | if (memp->base == map_ptr[T].mem_phys) {
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406 | memp->base += map_ptr[T].mem_len + map_ptr[D].mem_len;
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407 | memp->size -= map_ptr[T].mem_len + map_ptr[D].mem_len;
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408 | }
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409 | }
|
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410 | }
|
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411 |
|
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412 | #define PAGE_SIZE 4096
|
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413 | #define PAGE_TABLE_COVER (1024*PAGE_SIZE)
|
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414 | /*=========================================================================*
|
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415 | * do_x86_vm *
|
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416 | *=========================================================================*/
|
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417 | PRIVATE void do_x86_vm(mem_chunks)
|
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418 | struct memory mem_chunks[NR_MEMS];
|
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419 | {
|
---|
420 | phys_bytes high, bytes;
|
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421 | phys_clicks clicks, base_click;
|
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422 | unsigned pages;
|
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423 | int i, r;
|
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424 |
|
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425 | /* Compute the highest memory location */
|
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426 | high= 0;
|
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427 | for (i= 0; i<NR_MEMS; i++)
|
---|
428 | {
|
---|
429 | if (mem_chunks[i].size == 0)
|
---|
430 | continue;
|
---|
431 | if (mem_chunks[i].base + mem_chunks[i].size > high)
|
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432 | high= mem_chunks[i].base + mem_chunks[i].size;
|
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433 | }
|
---|
434 |
|
---|
435 | high <<= CLICK_SHIFT;
|
---|
436 | #if VERBOSE_VM
|
---|
437 | printf("do_x86_vm: found high 0x%x\n", high);
|
---|
438 | #endif
|
---|
439 |
|
---|
440 | /* The number of pages we need is one for the page directory, enough
|
---|
441 | * page tables to cover the memory, and one page for alignement.
|
---|
442 | */
|
---|
443 | pages= 1 + (high + PAGE_TABLE_COVER-1)/PAGE_TABLE_COVER + 1;
|
---|
444 | bytes= pages*PAGE_SIZE;
|
---|
445 | clicks= (bytes + CLICK_SIZE-1) >> CLICK_SHIFT;
|
---|
446 |
|
---|
447 | #if VERBOSE_VM
|
---|
448 | printf("do_x86_vm: need %d pages\n", pages);
|
---|
449 | printf("do_x86_vm: need %d bytes\n", bytes);
|
---|
450 | printf("do_x86_vm: need %d clicks\n", clicks);
|
---|
451 | #endif
|
---|
452 |
|
---|
453 | for (i= 0; i<NR_MEMS; i++)
|
---|
454 | {
|
---|
455 | if (mem_chunks[i].size <= clicks)
|
---|
456 | continue;
|
---|
457 | break;
|
---|
458 | }
|
---|
459 | if (i >= NR_MEMS)
|
---|
460 | panic("PM", "not enough memory for VM page tables?", NO_NUM);
|
---|
461 | base_click= mem_chunks[i].base;
|
---|
462 | mem_chunks[i].base += clicks;
|
---|
463 | mem_chunks[i].size -= clicks;
|
---|
464 |
|
---|
465 | #if VERBOSE_VM
|
---|
466 | printf("do_x86_vm: using 0x%x clicks @ 0x%x\n", clicks, base_click);
|
---|
467 | #endif
|
---|
468 | r= sys_vm_setbuf(base_click << CLICK_SHIFT, clicks << CLICK_SHIFT,
|
---|
469 | high);
|
---|
470 | if (r != 0)
|
---|
471 | printf("do_x86_vm: sys_vm_setbuf failed: %d\n", r);
|
---|
472 | }
|
---|