1 | // -*- Mode: CFA -*-
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2 | //
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3 | // Cforall Version 1.0.0 Copyright (C) 2016 University of Waterloo
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4 | //
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5 | // The contents of this file are covered under the licence agreement in the
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6 | // file "LICENCE" distributed with Cforall.
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7 | //
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8 | // kernel.c --
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9 | //
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10 | // Author : Thierry Delisle
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11 | // Created On : Tue Jan 17 12:27:26 2017
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12 | // Last Modified By : Thierry Delisle
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13 | // Last Modified On : --
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14 | // Update Count : 0
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15 | //
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16 |
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17 | #include "startup.h"
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18 |
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19 | //Start and stop routine for the kernel, declared first to make sure they run first
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20 | void kernel_startup(void) __attribute__(( constructor( STARTUP_PRIORITY_KERNEL ) ));
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21 | void kernel_shutdown(void) __attribute__(( destructor ( STARTUP_PRIORITY_KERNEL ) ));
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22 |
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23 | //Header
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24 | #include "kernel_private.h"
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25 |
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26 | //C Includes
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27 | #include <stddef.h>
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28 | extern "C" {
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29 | #include <stdio.h>
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30 | #include <fenv.h>
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31 | #include <sys/resource.h>
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32 | #include <signal.h>
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33 | #include <unistd.h>
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34 | }
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35 |
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36 | //CFA Includes
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37 | #include "libhdr.h"
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38 |
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39 | //Private includes
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40 | #define __CFA_INVOKE_PRIVATE__
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41 | #include "invoke.h"
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42 |
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43 | //-----------------------------------------------------------------------------
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44 | // Kernel storage
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45 | #define KERNEL_STORAGE(T,X) static char X##_storage[sizeof(T)]
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46 |
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47 | KERNEL_STORAGE(processorCtx_t, systemProcessorCtx);
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48 | KERNEL_STORAGE(cluster, systemCluster);
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49 | KERNEL_STORAGE(processor, systemProcessor);
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50 | KERNEL_STORAGE(thread_desc, mainThread);
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51 | KERNEL_STORAGE(machine_context_t, mainThread_context);
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52 |
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53 | cluster * systemCluster;
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54 | processor * systemProcessor;
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55 | thread_desc * mainThread;
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56 |
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57 | //-----------------------------------------------------------------------------
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58 | // Global state
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59 |
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60 | thread_local processor * this_processor;
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61 |
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62 | coroutine_desc * this_coroutine(void) {
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63 | return this_processor->current_coroutine;
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64 | }
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65 |
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66 | thread_desc * this_thread(void) {
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67 | return this_processor->current_thread;
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68 | }
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69 |
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70 | //-----------------------------------------------------------------------------
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71 | // Main thread construction
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72 | struct current_stack_info_t {
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73 | machine_context_t ctx;
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74 | unsigned int size; // size of stack
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75 | void *base; // base of stack
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76 | void *storage; // pointer to stack
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77 | void *limit; // stack grows towards stack limit
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78 | void *context; // address of cfa_context_t
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79 | void *top; // address of top of storage
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80 | };
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81 |
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82 | void ?{}( current_stack_info_t * this ) {
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83 | CtxGet( &this->ctx );
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84 | this->base = this->ctx.FP;
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85 | this->storage = this->ctx.SP;
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86 |
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87 | rlimit r;
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88 | getrlimit( RLIMIT_STACK, &r);
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89 | this->size = r.rlim_cur;
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90 |
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91 | this->limit = (void *)(((intptr_t)this->base) - this->size);
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92 | this->context = &mainThread_context_storage;
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93 | this->top = this->base;
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94 | }
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95 |
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96 | void ?{}( coStack_t * this, current_stack_info_t * info) {
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97 | this->size = info->size;
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98 | this->storage = info->storage;
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99 | this->limit = info->limit;
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100 | this->base = info->base;
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101 | this->context = info->context;
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102 | this->top = info->top;
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103 | this->userStack = true;
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104 | }
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105 |
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106 | void ?{}( coroutine_desc * this, current_stack_info_t * info) {
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107 | (&this->stack){ info };
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108 | this->name = "Main Thread";
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109 | this->errno_ = 0;
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110 | this->state = Start;
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111 | }
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112 |
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113 | void ?{}( thread_desc * this, current_stack_info_t * info) {
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114 | (&this->cor){ info };
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115 | }
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116 |
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117 | //-----------------------------------------------------------------------------
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118 | // Processor coroutine
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119 | void ?{}(processorCtx_t * this, processor * proc) {
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120 | (&this->__cor){};
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121 | this->proc = proc;
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122 | proc->runner = this;
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123 | }
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124 |
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125 | void ?{}(processorCtx_t * this, processor * proc, current_stack_info_t * info) {
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126 | (&this->__cor){ info };
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127 | this->proc = proc;
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128 | proc->runner = this;
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129 | }
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130 |
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131 | void ?{}(processor * this) {
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132 | this{ systemCluster };
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133 | }
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134 |
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135 | void ?{}(processor * this, cluster * cltr) {
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136 | this->cltr = cltr;
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137 | this->current_coroutine = NULL;
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138 | this->current_thread = NULL;
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139 | (&this->terminated){};
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140 | this->is_terminated = false;
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141 |
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142 | start( this );
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143 | }
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144 |
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145 | void ?{}(processor * this, cluster * cltr, processorCtx_t * runner) {
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146 | this->cltr = cltr;
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147 | this->current_coroutine = NULL;
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148 | this->current_thread = NULL;
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149 | (&this->terminated){};
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150 | this->is_terminated = false;
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151 |
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152 | this->runner = runner;
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153 | LIB_DEBUG_PRINT_SAFE("Kernel : constructing processor context %p\n", runner);
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154 | runner{ this };
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155 | }
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156 |
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157 | void ^?{}(processor * this) {
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158 | if( ! this->is_terminated ) {
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159 | LIB_DEBUG_PRINT_SAFE("Kernel : core %p signaling termination\n", this);
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160 | this->is_terminated = true;
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161 | wait( &this->terminated );
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162 | }
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163 | }
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164 |
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165 | void ?{}(cluster * this) {
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166 | ( &this->ready_queue ){};
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167 | ( &this->lock ){};
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168 | }
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169 |
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170 | void ^?{}(cluster * this) {
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171 |
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172 | }
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173 |
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174 | //=============================================================================================
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175 | // Kernel Scheduling logic
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176 | //=============================================================================================
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177 | //Main of the processor contexts
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178 | void main(processorCtx_t * runner) {
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179 | processor * this = runner->proc;
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180 | LIB_DEBUG_PRINT_SAFE("Kernel : core %p starting\n", this);
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181 |
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182 | thread_desc * readyThread = NULL;
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183 | for( unsigned int spin_count = 0; ! this->is_terminated; spin_count++ )
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184 | {
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185 | readyThread = nextThread( this->cltr );
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186 |
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187 | if(readyThread)
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188 | {
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189 | runThread(this, readyThread);
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190 |
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191 | //Some actions need to be taken from the kernel
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192 | finishRunning(this);
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193 |
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194 | spin_count = 0;
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195 | }
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196 | else
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197 | {
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198 | spin(this, &spin_count);
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199 | }
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200 | }
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201 |
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202 | LIB_DEBUG_PRINT_SAFE("Kernel : core %p unlocking thread\n", this);
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203 | signal( &this->terminated );
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204 | LIB_DEBUG_PRINT_SAFE("Kernel : core %p terminated\n", this);
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205 | }
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206 |
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207 | // runThread runs a thread by context switching
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208 | // from the processor coroutine to the target thread
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209 | void runThread(processor * this, thread_desc * dst) {
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210 | coroutine_desc * proc_cor = get_coroutine(this->runner);
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211 | coroutine_desc * thrd_cor = get_coroutine(dst);
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212 |
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213 | //Reset the terminating actions here
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214 | this->finish.action_code = No_Action;
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215 |
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216 | //Update global state
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217 | this->current_thread = dst;
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218 |
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219 | // Context Switch to the thread
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220 | ThreadCtxSwitch(proc_cor, thrd_cor);
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221 | // when ThreadCtxSwitch returns we are back in the processor coroutine
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222 | }
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223 |
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224 | // Once a thread has finished running, some of
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225 | // its final actions must be executed from the kernel
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226 | void finishRunning(processor * this) {
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227 | if( this->finish.action_code == Release ) {
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228 | unlock( this->finish.lock );
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229 | }
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230 | else if( this->finish.action_code == Schedule ) {
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231 | ScheduleThread( this->finish.thrd );
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232 | }
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233 | else if( this->finish.action_code == Release_Schedule ) {
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234 | unlock( this->finish.lock );
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235 | ScheduleThread( this->finish.thrd );
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236 | }
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237 | else {
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238 | assert(this->finish.action_code == No_Action);
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239 | }
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240 | }
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241 |
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242 | // Handles spinning logic
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243 | // TODO : find some strategy to put cores to sleep after some time
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244 | void spin(processor * this, unsigned int * spin_count) {
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245 | (*spin_count)++;
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246 | }
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247 |
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248 | // Context invoker for processors
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249 | // This is the entry point for processors (kernel threads)
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250 | // It effectively constructs a coroutine by stealing the pthread stack
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251 | void * CtxInvokeProcessor(void * arg) {
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252 | processor * proc = (processor *) arg;
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253 | this_processor = proc;
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254 | // SKULLDUGGERY: We want to create a context for the processor coroutine
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255 | // which is needed for the 2-step context switch. However, there is no reason
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256 | // to waste the perfectly valid stack create by pthread.
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257 | current_stack_info_t info;
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258 | machine_context_t ctx;
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259 | info.context = &ctx;
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260 | processorCtx_t proc_cor_storage = { proc, &info };
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261 |
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262 | LIB_DEBUG_PRINT_SAFE("Coroutine : created stack %p\n", proc_cor_storage.__cor.stack.base);
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263 |
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264 | //Set global state
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265 | proc->current_coroutine = &proc->runner->__cor;
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266 | proc->current_thread = NULL;
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267 |
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268 | //We now have a proper context from which to schedule threads
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269 | LIB_DEBUG_PRINT_SAFE("Kernel : core %p created (%p, %p)\n", proc, proc->runner, &ctx);
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270 |
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271 | // SKULLDUGGERY: Since the coroutine doesn't have its own stack, we can't
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272 | // resume it to start it like it normally would, it will just context switch
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273 | // back to here. Instead directly call the main since we already are on the
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274 | // appropriate stack.
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275 | proc_cor_storage.__cor.state = Active;
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276 | main( &proc_cor_storage );
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277 | proc_cor_storage.__cor.state = Halted;
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278 |
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279 | // Main routine of the core returned, the core is now fully terminated
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280 | LIB_DEBUG_PRINT_SAFE("Kernel : core %p main ended (%p)\n", proc, proc->runner);
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281 |
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282 | return NULL;
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283 | }
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284 |
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285 | void start(processor * this) {
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286 | LIB_DEBUG_PRINT_SAFE("Kernel : Starting core %p\n", this);
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287 |
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288 | // pthread_attr_t attributes;
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289 | // pthread_attr_init( &attributes );
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290 |
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291 | pthread_create( &this->kernel_thread, NULL, CtxInvokeProcessor, (void*)this );
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292 |
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293 | // pthread_attr_destroy( &attributes );
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294 |
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295 | LIB_DEBUG_PRINT_SAFE("Kernel : core %p started\n", this);
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296 | }
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297 |
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298 | //-----------------------------------------------------------------------------
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299 | // Scheduler routines
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300 | void ScheduleThread( thread_desc * thrd ) {
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301 | assertf( thrd->next == NULL, "Expected null got %p", thrd->next );
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302 |
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303 | lock( &systemProcessor->cltr->lock );
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304 | append( &systemProcessor->cltr->ready_queue, thrd );
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305 | unlock( &systemProcessor->cltr->lock );
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306 | }
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307 |
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308 | thread_desc * nextThread(cluster * this) {
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309 | lock( &this->lock );
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310 | thread_desc * head = pop_head( &this->ready_queue );
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311 | unlock( &this->lock );
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312 | return head;
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313 | }
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314 |
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315 | void ScheduleInternal() {
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316 | suspend();
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317 | }
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318 |
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319 | void ScheduleInternal( spinlock * lock ) {
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320 | this_processor->finish.action_code = Release;
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321 | this_processor->finish.lock = lock;
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322 | suspend();
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323 | }
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324 |
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325 | void ScheduleInternal( thread_desc * thrd ) {
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326 | this_processor->finish.action_code = Schedule;
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327 | this_processor->finish.thrd = thrd;
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328 | suspend();
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329 | }
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330 |
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331 | void ScheduleInternal( spinlock * lock, thread_desc * thrd ) {
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332 | this_processor->finish.action_code = Release_Schedule;
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333 | this_processor->finish.lock = lock;
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334 | this_processor->finish.thrd = thrd;
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335 | suspend();
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336 | }
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337 |
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338 | //-----------------------------------------------------------------------------
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339 | // Kernel boot procedures
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340 | void kernel_startup(void) {
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341 | LIB_DEBUG_PRINT_SAFE("Kernel : Starting\n");
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342 |
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343 | // Start by initializing the main thread
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344 | // SKULLDUGGERY: the mainThread steals the process main thread
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345 | // which will then be scheduled by the systemProcessor normally
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346 | mainThread = (thread_desc *)&mainThread_storage;
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347 | current_stack_info_t info;
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348 | mainThread{ &info };
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349 |
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350 | // Initialize the system cluster
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351 | systemCluster = (cluster *)&systemCluster_storage;
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352 | systemCluster{};
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353 |
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354 | // Initialize the system processor and the system processor ctx
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355 | // (the coroutine that contains the processing control flow)
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356 | systemProcessor = (processor *)&systemProcessor_storage;
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357 | systemProcessor{ systemCluster, (processorCtx_t *)&systemProcessorCtx_storage };
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358 |
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359 | // Add the main thread to the ready queue
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360 | // once resume is called on systemProcessor->ctx the mainThread needs to be scheduled like any normal thread
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361 | ScheduleThread(mainThread);
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362 |
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363 | //initialize the global state variables
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364 | this_processor = systemProcessor;
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365 | this_processor->current_thread = mainThread;
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366 | this_processor->current_coroutine = &mainThread->cor;
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367 |
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368 | // SKULLDUGGERY: Force a context switch to the system processor to set the main thread's context to the current UNIX
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369 | // context. Hence, the main thread does not begin through CtxInvokeThread, like all other threads. The trick here is that
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370 | // mainThread is on the ready queue when this call is made.
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371 | resume(systemProcessor->runner);
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372 |
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373 |
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374 |
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375 | // THE SYSTEM IS NOW COMPLETELY RUNNING
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376 | LIB_DEBUG_PRINT_SAFE("Kernel : Started\n--------------------------------------------------\n\n");
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377 | }
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378 |
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379 | void kernel_shutdown(void) {
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380 | LIB_DEBUG_PRINT_SAFE("\n--------------------------------------------------\nKernel : Shutting down\n");
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381 |
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382 | // SKULLDUGGERY: Notify the systemProcessor it needs to terminates.
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383 | // When its coroutine terminates, it return control to the mainThread
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384 | // which is currently here
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385 | systemProcessor->is_terminated = true;
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386 | suspend();
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387 |
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388 | // THE SYSTEM IS NOW COMPLETELY STOPPED
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389 |
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390 | // Destroy the system processor and its context in reverse order of construction
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391 | // These were manually constructed so we need manually destroy them
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392 | ^(systemProcessor->runner){};
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393 | ^(systemProcessor){};
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394 |
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395 | // Final step, destroy the main thread since it is no longer needed
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396 | // Since we provided a stack to this taxk it will not destroy anything
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397 | ^(mainThread){};
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398 |
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399 | LIB_DEBUG_PRINT_SAFE("Kernel : Shutdown complete\n");
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400 | }
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401 |
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402 | static spinlock kernel_abort_lock;
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403 | static spinlock kernel_debug_lock;
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404 | static bool kernel_abort_called = false;
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405 |
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406 | void * kernel_abort (void) __attribute__ ((__nothrow__)) {
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407 | // abort cannot be recursively entered by the same or different processors because all signal handlers return when
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408 | // the globalAbort flag is true.
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409 | lock( &kernel_abort_lock );
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410 |
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411 | // first task to abort ?
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412 | if ( !kernel_abort_called ) { // not first task to abort ?
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413 | kernel_abort_called = true;
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414 | unlock( &kernel_abort_lock );
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415 | }
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416 | else {
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417 | unlock( &kernel_abort_lock );
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418 |
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419 | sigset_t mask;
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420 | sigemptyset( &mask );
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421 | sigaddset( &mask, SIGALRM ); // block SIGALRM signals
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422 | sigaddset( &mask, SIGUSR1 ); // block SIGUSR1 signals
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423 | sigsuspend( &mask ); // block the processor to prevent further damage during abort
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424 | _exit( EXIT_FAILURE ); // if processor unblocks before it is killed, terminate it
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425 | }
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426 |
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427 | return this_thread();
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428 | }
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429 |
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430 | void kernel_abort_msg( void * kernel_data, char * abort_text, int abort_text_size ) {
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431 | thread_desc * thrd = kernel_data;
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432 |
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433 | int len = snprintf( abort_text, abort_text_size, "Error occurred while executing task %.256s (%p)", thrd->cor.name, thrd );
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434 | __lib_debug_write( STDERR_FILENO, abort_text, len );
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435 |
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436 | if ( thrd != this_coroutine() ) {
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437 | len = snprintf( abort_text, abort_text_size, " in coroutine %.256s (%p).\n", this_coroutine()->name, this_coroutine() );
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438 | __lib_debug_write( STDERR_FILENO, abort_text, len );
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439 | }
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440 | else {
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441 | __lib_debug_write( STDERR_FILENO, ".\n", 2 );
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442 | }
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443 | }
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444 |
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445 | extern "C" {
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446 | void __lib_debug_acquire() {
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447 | lock(&kernel_debug_lock);
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448 | }
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449 |
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450 | void __lib_debug_release() {
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451 | unlock(&kernel_debug_lock);
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452 | }
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453 | }
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454 |
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455 | //-----------------------------------------------------------------------------
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456 | // Locks
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457 | void ?{}( spinlock * this ) {
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458 | this->lock = 0;
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459 | }
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460 | void ^?{}( spinlock * this ) {
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461 |
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462 | }
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463 |
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464 | void lock( spinlock * this ) {
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465 | for ( unsigned int i = 1;; i += 1 ) {
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466 | if ( this->lock == 0 && __sync_lock_test_and_set_4( &this->lock, 1 ) == 0 ) break;
|
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467 | }
|
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468 | }
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469 |
|
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470 | void unlock( spinlock * this ) {
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471 | __sync_lock_release_4( &this->lock );
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472 | }
|
---|
473 |
|
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474 | void ?{}( signal_once * this ) {
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475 | this->condition = false;
|
---|
476 | }
|
---|
477 | void ^?{}( signal_once * this ) {
|
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478 |
|
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479 | }
|
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480 |
|
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481 | void wait( signal_once * this ) {
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482 | lock( &this->lock );
|
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483 | if( !this->condition ) {
|
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484 | append( &this->blocked, this_thread() );
|
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485 | ScheduleInternal( &this->lock );
|
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486 | lock( &this->lock );
|
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487 | }
|
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488 | unlock( &this->lock );
|
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489 | }
|
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490 |
|
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491 | void signal( signal_once * this ) {
|
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492 | lock( &this->lock );
|
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493 | {
|
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494 | this->condition = true;
|
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495 |
|
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496 | thread_desc * it;
|
---|
497 | while( it = pop_head( &this->blocked) ) {
|
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498 | ScheduleThread( it );
|
---|
499 | }
|
---|
500 | }
|
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501 | unlock( &this->lock );
|
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502 | }
|
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503 |
|
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504 | //-----------------------------------------------------------------------------
|
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505 | // Queues
|
---|
506 | void ?{}( simple_thread_list * this ) {
|
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507 | this->head = NULL;
|
---|
508 | this->tail = &this->head;
|
---|
509 | }
|
---|
510 |
|
---|
511 | void append( simple_thread_list * this, thread_desc * t ) {
|
---|
512 | assert(this->tail != NULL);
|
---|
513 | *this->tail = t;
|
---|
514 | this->tail = &t->next;
|
---|
515 | }
|
---|
516 |
|
---|
517 | thread_desc * pop_head( simple_thread_list * this ) {
|
---|
518 | thread_desc * head = this->head;
|
---|
519 | if( head ) {
|
---|
520 | this->head = head->next;
|
---|
521 | if( !head->next ) {
|
---|
522 | this->tail = &this->head;
|
---|
523 | }
|
---|
524 | head->next = NULL;
|
---|
525 | }
|
---|
526 | return head;
|
---|
527 | }
|
---|
528 | // Local Variables: //
|
---|
529 | // mode: c //
|
---|
530 | // tab-width: 4 //
|
---|
531 | // End: //
|
---|