source: src/libcfa/concurrency/kernel.c@ cb91437

ADT aaron-thesis arm-eh ast-experimental cleanup-dtors deferred_resn demangler enum forall-pointer-decay jacob/cs343-translation jenkins-sandbox new-ast new-ast-unique-expr new-env no_list persistent-indexer pthread-emulation qualifiedEnum resolv-new with_gc
Last change on this file since cb91437 was 17af7d1, checked in by Thierry Delisle <tdelisle@…>, 9 years ago

Some clean-up of runtime code

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File size: 12.9 KB
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[8118303]1// -*- Mode: CFA -*-
2//
3// Cforall Version 1.0.0 Copyright (C) 2016 University of Waterloo
4//
5// The contents of this file are covered under the licence agreement in the
6// file "LICENCE" distributed with Cforall.
7//
8// kernel.c --
9//
10// Author : Thierry Delisle
[75f3522]11// Created On : Tue Jan 17 12:27:26 2017
[8118303]12// Last Modified By : Thierry Delisle
13// Last Modified On : --
14// Update Count : 0
15//
16
[0c92c9f]17//Start and stop routine for the kernel, declared first to make sure they run first
18void kernel_startup(void) __attribute__((constructor(101)));
19void kernel_shutdown(void) __attribute__((destructor(101)));
20
[8118303]21//Header
[75f3522]22#include "kernel_private.h"
[8118303]23
24//C Includes
[c84e80a]25#include <stddef.h>
[eb2e723]26extern "C" {
[8fcbb4c]27#include <fenv.h>
[eb2e723]28#include <sys/resource.h>
29}
[8118303]30
31//CFA Includes
32#include "libhdr.h"
33
34//Private includes
35#define __CFA_INVOKE_PRIVATE__
36#include "invoke.h"
37
[8def349]38//-----------------------------------------------------------------------------
39// Kernel storage
40#define KERNEL_STORAGE(T,X) static char X##_storage[sizeof(T)]
41
42KERNEL_STORAGE(processorCtx_t, systemProcessorCtx);
43KERNEL_STORAGE(cluster, systemCluster);
44KERNEL_STORAGE(processor, systemProcessor);
[348006f]45KERNEL_STORAGE(thread_desc, mainThread);
[8def349]46KERNEL_STORAGE(machine_context_t, mainThread_context);
47
[bd98b58]48cluster * systemCluster;
[eb2e723]49processor * systemProcessor;
[348006f]50thread_desc * mainThread;
[eb2e723]51
[bd98b58]52//-----------------------------------------------------------------------------
53// Global state
54
[8def349]55thread_local processor * this_processor;
56
[c3acb841]57coroutine_desc * this_coroutine(void) {
[bd98b58]58 return this_processor->current_coroutine;
59}
60
[348006f]61thread_desc * this_thread(void) {
[bd98b58]62 return this_processor->current_thread;
[c84e80a]63}
64
65//-----------------------------------------------------------------------------
[8def349]66// Main thread construction
67struct current_stack_info_t {
68 machine_context_t ctx;
69 unsigned int size; // size of stack
70 void *base; // base of stack
71 void *storage; // pointer to stack
72 void *limit; // stack grows towards stack limit
73 void *context; // address of cfa_context_t
74 void *top; // address of top of storage
[c84e80a]75};
76
[8def349]77void ?{}( current_stack_info_t * this ) {
78 CtxGet( &this->ctx );
79 this->base = this->ctx.FP;
80 this->storage = this->ctx.SP;
81
82 rlimit r;
[132fad4]83 getrlimit( RLIMIT_STACK, &r);
[8def349]84 this->size = r.rlim_cur;
85
86 this->limit = (void *)(((intptr_t)this->base) - this->size);
87 this->context = &mainThread_context_storage;
88 this->top = this->base;
89}
90
91void ?{}( coStack_t * this, current_stack_info_t * info) {
92 this->size = info->size;
93 this->storage = info->storage;
94 this->limit = info->limit;
95 this->base = info->base;
96 this->context = info->context;
97 this->top = info->top;
98 this->userStack = true;
99}
100
[c3acb841]101void ?{}( coroutine_desc * this, current_stack_info_t * info) {
[8def349]102 (&this->stack){ info };
103 this->name = "Main Thread";
104 this->errno_ = 0;
[ee897e4b]105 this->state = Start;
[8def349]106}
107
[348006f]108void ?{}( thread_desc * this, current_stack_info_t * info) {
[17af7d1]109 (&this->cor){ info };
[8def349]110}
[c84e80a]111
[8def349]112//-----------------------------------------------------------------------------
113// Processor coroutine
[eb2e723]114void ?{}(processorCtx_t * this, processor * proc) {
[17af7d1]115 (&this->__cor){};
[c84e80a]116 this->proc = proc;
[8fcbb4c]117 proc->runner = this;
[8def349]118}
119
120void ?{}(processorCtx_t * this, processor * proc, current_stack_info_t * info) {
[17af7d1]121 (&this->__cor){ info };
[8def349]122 this->proc = proc;
[8fcbb4c]123 proc->runner = this;
[8def349]124}
125
126void ?{}(processor * this) {
127 this{ systemCluster };
128}
129
130void ?{}(processor * this, cluster * cltr) {
131 this->cltr = cltr;
132 this->current_coroutine = NULL;
133 this->current_thread = NULL;
[db6f06a]134 (&this->terminated){};
135 this->is_terminated = false;
[8def349]136
137 start( this );
[c84e80a]138}
139
[8fcbb4c]140void ?{}(processor * this, cluster * cltr, processorCtx_t * runner) {
[8def349]141 this->cltr = cltr;
142 this->current_coroutine = NULL;
143 this->current_thread = NULL;
[db6f06a]144 (&this->terminated){};
145 this->is_terminated = false;
[8def349]146
[8fcbb4c]147 this->runner = runner;
148 LIB_DEBUG_PRINTF("Kernel : constructing processor context %p\n", runner);
149 runner{ this };
[8def349]150}
151
152void ^?{}(processor * this) {
[db6f06a]153 if( ! this->is_terminated ) {
[8def349]154 LIB_DEBUG_PRINTF("Kernel : core %p signaling termination\n", this);
[db6f06a]155 this->is_terminated = true;
156 wait( &this->terminated );
[8def349]157 }
158}
159
160void ?{}(cluster * this) {
161 ( &this->ready_queue ){};
[eafb094]162 ( &this->lock ){};
[8def349]163}
164
165void ^?{}(cluster * this) {
[8fcbb4c]166
[c84e80a]167}
168
[75f3522]169//=============================================================================================
170// Kernel Scheduling logic
171//=============================================================================================
[8fcbb4c]172//Main of the processor contexts
173void main(processorCtx_t * runner) {
174 processor * this = runner->proc;
[eb2e723]175 LIB_DEBUG_PRINTF("Kernel : core %p starting\n", this);
[8118303]176
[348006f]177 thread_desc * readyThread = NULL;
[db6f06a]178 for( unsigned int spin_count = 0; ! this->is_terminated; spin_count++ )
[75f3522]179 {
[bd98b58]180 readyThread = nextThread( this->cltr );
[8118303]181
[75f3522]182 if(readyThread)
183 {
184 runThread(this, readyThread);
185
186 //Some actions need to be taken from the kernel
[db6f06a]187 finishRunning(this);
[75f3522]188
[c84e80a]189 spin_count = 0;
[75f3522]190 }
191 else
192 {
[c84e80a]193 spin(this, &spin_count);
194 }
195 }
[8118303]196
[8def349]197 LIB_DEBUG_PRINTF("Kernel : core %p unlocking thread\n", this);
[db6f06a]198 signal( &this->terminated );
[c84e80a]199 LIB_DEBUG_PRINTF("Kernel : core %p terminated\n", this);
200}
201
[75f3522]202// runThread runs a thread by context switching
[0c92c9f]203// from the processor coroutine to the target thread
[348006f]204void runThread(processor * this, thread_desc * dst) {
[c3acb841]205 coroutine_desc * proc_cor = get_coroutine(this->runner);
206 coroutine_desc * thrd_cor = get_coroutine(dst);
[75f3522]207
208 //Reset the terminating actions here
[db6f06a]209 this->finish.action_code = No_Action;
[8fcbb4c]210
[75f3522]211 //Update global state
212 this->current_thread = dst;
213
214 // Context Switch to the thread
215 ThreadCtxSwitch(proc_cor, thrd_cor);
216 // when ThreadCtxSwitch returns we are back in the processor coroutine
217}
218
219// Once a thread has finished running, some of
220// its final actions must be executed from the kernel
[db6f06a]221void finishRunning(processor * this) {
222 if( this->finish.action_code == Release ) {
223 unlock( this->finish.lock );
224 }
225 else if( this->finish.action_code == Schedule ) {
226 ScheduleThread( this->finish.thrd );
227 }
228 else if( this->finish.action_code == Release_Schedule ) {
229 unlock( this->finish.lock );
230 ScheduleThread( this->finish.thrd );
231 }
232 else {
233 assert(this->finish.action_code == No_Action);
[8fcbb4c]234 }
[c84e80a]235}
236
[0c92c9f]237// Handles spinning logic
238// TODO : find some strategy to put cores to sleep after some time
[c84e80a]239void spin(processor * this, unsigned int * spin_count) {
240 (*spin_count)++;
241}
242
[0c92c9f]243// Context invoker for processors
244// This is the entry point for processors (kernel threads)
245// It effectively constructs a coroutine by stealing the pthread stack
[8def349]246void * CtxInvokeProcessor(void * arg) {
247 processor * proc = (processor *) arg;
248 this_processor = proc;
249 // SKULLDUGGERY: We want to create a context for the processor coroutine
250 // which is needed for the 2-step context switch. However, there is no reason
251 // to waste the perfectly valid stack create by pthread.
252 current_stack_info_t info;
253 machine_context_t ctx;
254 info.context = &ctx;
255 processorCtx_t proc_cor_storage = { proc, &info };
256
[17af7d1]257 LIB_DEBUG_PRINTF("Coroutine : created stack %p\n", proc_cor_storage.__cor.stack.base);
[8fcbb4c]258
[0c92c9f]259 //Set global state
[17af7d1]260 proc->current_coroutine = &proc->runner->__cor;
[8def349]261 proc->current_thread = NULL;
262
263 //We now have a proper context from which to schedule threads
[8fcbb4c]264 LIB_DEBUG_PRINTF("Kernel : core %p created (%p, %p)\n", proc, proc->runner, &ctx);
[8def349]265
266 // SKULLDUGGERY: Since the coroutine doesn't have its own stack, we can't
267 // resume it to start it like it normally would, it will just context switch
268 // back to here. Instead directly call the main since we already are on the
269 // appropriate stack.
[17af7d1]270 proc_cor_storage.__cor.state = Active;
[8def349]271 main( &proc_cor_storage );
[17af7d1]272 proc_cor_storage.__cor.state = Halted;
[8def349]273
[0c92c9f]274 // Main routine of the core returned, the core is now fully terminated
[8fcbb4c]275 LIB_DEBUG_PRINTF("Kernel : core %p main ended (%p)\n", proc, proc->runner);
[8def349]276
277 return NULL;
[c84e80a]278}
279
[8def349]280void start(processor * this) {
281 LIB_DEBUG_PRINTF("Kernel : Starting core %p\n", this);
282
[8fcbb4c]283 // pthread_attr_t attributes;
284 // pthread_attr_init( &attributes );
[eb2e723]285
[8fcbb4c]286 pthread_create( &this->kernel_thread, NULL, CtxInvokeProcessor, (void*)this );
[eb2e723]287
[8fcbb4c]288 // pthread_attr_destroy( &attributes );
[eb2e723]289
[8def349]290 LIB_DEBUG_PRINTF("Kernel : core %p started\n", this);
[eb2e723]291}
292
[8def349]293//-----------------------------------------------------------------------------
294// Scheduler routines
[348006f]295void ScheduleThread( thread_desc * thrd ) {
[8def349]296 assertf( thrd->next == NULL, "Expected null got %p", thrd->next );
297
[db6f06a]298 lock( &systemProcessor->cltr->lock );
[8def349]299 append( &systemProcessor->cltr->ready_queue, thrd );
[db6f06a]300 unlock( &systemProcessor->cltr->lock );
301}
302
[348006f]303thread_desc * nextThread(cluster * this) {
[db6f06a]304 lock( &this->lock );
[348006f]305 thread_desc * head = pop_head( &this->ready_queue );
[db6f06a]306 unlock( &this->lock );
307 return head;
[eb2e723]308}
309
[75f3522]310void ScheduleInternal() {
311 suspend();
312}
313
[db6f06a]314void ScheduleInternal( spinlock * lock ) {
[89a3df5]315 this_processor->finish.action_code = Release;
316 this_processor->finish.lock = lock;
[db6f06a]317 suspend();
318}
319
[348006f]320void ScheduleInternal( thread_desc * thrd ) {
[89a3df5]321 this_processor->finish.action_code = Schedule;
322 this_processor->finish.thrd = thrd;
[db6f06a]323 suspend();
324}
325
[348006f]326void ScheduleInternal( spinlock * lock, thread_desc * thrd ) {
[89a3df5]327 this_processor->finish.action_code = Release_Schedule;
328 this_processor->finish.lock = lock;
329 this_processor->finish.thrd = thrd;
[db6f06a]330 suspend();
[eb2e723]331}
332
333//-----------------------------------------------------------------------------
334// Kernel boot procedures
335void kernel_startup(void) {
336 LIB_DEBUG_PRINTF("Kernel : Starting\n");
337
338 // Start by initializing the main thread
[8fcbb4c]339 // SKULLDUGGERY: the mainThread steals the process main thread
340 // which will then be scheduled by the systemProcessor normally
[348006f]341 mainThread = (thread_desc *)&mainThread_storage;
[8fcbb4c]342 current_stack_info_t info;
[8def349]343 mainThread{ &info };
[eb2e723]344
[bd98b58]345 // Initialize the system cluster
346 systemCluster = (cluster *)&systemCluster_storage;
347 systemCluster{};
348
[8def349]349 // Initialize the system processor and the system processor ctx
[eb2e723]350 // (the coroutine that contains the processing control flow)
[8def349]351 systemProcessor = (processor *)&systemProcessor_storage;
352 systemProcessor{ systemCluster, (processorCtx_t *)&systemProcessorCtx_storage };
[eb2e723]353
[dcb42b8]354 // Add the main thread to the ready queue
355 // once resume is called on systemProcessor->ctx the mainThread needs to be scheduled like any normal thread
[75f3522]356 ScheduleThread(mainThread);
[eb2e723]357
[dcb42b8]358 //initialize the global state variables
[bd98b58]359 this_processor = systemProcessor;
360 this_processor->current_thread = mainThread;
[17af7d1]361 this_processor->current_coroutine = &mainThread->cor;
[eb2e723]362
[dcb42b8]363 // SKULLDUGGERY: Force a context switch to the system processor to set the main thread's context to the current UNIX
364 // context. Hence, the main thread does not begin through CtxInvokeThread, like all other threads. The trick here is that
365 // mainThread is on the ready queue when this call is made.
[8fcbb4c]366 resume(systemProcessor->runner);
[eb2e723]367
[dcb42b8]368
369
370 // THE SYSTEM IS NOW COMPLETELY RUNNING
[eb2e723]371 LIB_DEBUG_PRINTF("Kernel : Started\n--------------------------------------------------\n\n");
372}
373
[dcb42b8]374void kernel_shutdown(void) {
375 LIB_DEBUG_PRINTF("\n--------------------------------------------------\nKernel : Shutting down\n");
[eb2e723]376
[dcb42b8]377 // SKULLDUGGERY: Notify the systemProcessor it needs to terminates.
378 // When its coroutine terminates, it return control to the mainThread
379 // which is currently here
[db6f06a]380 systemProcessor->is_terminated = true;
[eb2e723]381 suspend();
382
[dcb42b8]383 // THE SYSTEM IS NOW COMPLETELY STOPPED
[eb2e723]384
[dcb42b8]385 // Destroy the system processor and its context in reverse order of construction
386 // These were manually constructed so we need manually destroy them
[8fcbb4c]387 ^(systemProcessor->runner){};
[eb2e723]388 ^(systemProcessor){};
389
[dcb42b8]390 // Final step, destroy the main thread since it is no longer needed
391 // Since we provided a stack to this taxk it will not destroy anything
[eb2e723]392 ^(mainThread){};
393
394 LIB_DEBUG_PRINTF("Kernel : Shutdown complete\n");
[8118303]395}
396
[bd98b58]397//-----------------------------------------------------------------------------
398// Locks
[db6f06a]399void ?{}( spinlock * this ) {
400 this->lock = 0;
[bd98b58]401}
[db6f06a]402void ^?{}( spinlock * this ) {
[bd98b58]403
[db6f06a]404}
405
406void lock( spinlock * this ) {
407 for ( unsigned int i = 1;; i += 1 ) {
408 if ( this->lock == 0 && __sync_lock_test_and_set_4( &this->lock, 1 ) == 0 ) break;
409 }
410}
[bd98b58]411
[db6f06a]412void unlock( spinlock * this ) {
413 __sync_lock_release_4( &this->lock );
[bd98b58]414}
415
[db6f06a]416void ?{}( signal_once * this ) {
417 this->condition = false;
418}
419void ^?{}( signal_once * this ) {
420
421}
422
423void wait( signal_once * this ) {
424 lock( &this->lock );
425 if( !this->condition ) {
[8def349]426 append( &this->blocked, this_thread() );
[db6f06a]427 ScheduleInternal( &this->lock );
428 lock( &this->lock );
[8def349]429 }
[db6f06a]430 unlock( &this->lock );
[bd98b58]431}
432
[db6f06a]433void signal( signal_once * this ) {
434 lock( &this->lock );
435 {
436 this->condition = true;
437
[348006f]438 thread_desc * it;
[db6f06a]439 while( it = pop_head( &this->blocked) ) {
440 ScheduleThread( it );
441 }
[bd98b58]442 }
[db6f06a]443 unlock( &this->lock );
[bd98b58]444}
445
446//-----------------------------------------------------------------------------
447// Queues
448void ?{}( simple_thread_list * this ) {
449 this->head = NULL;
450 this->tail = &this->head;
451}
452
[348006f]453void append( simple_thread_list * this, thread_desc * t ) {
[f07e037]454 assert(this->tail != NULL);
[bd98b58]455 *this->tail = t;
456 this->tail = &t->next;
457}
458
[348006f]459thread_desc * pop_head( simple_thread_list * this ) {
460 thread_desc * head = this->head;
[bd98b58]461 if( head ) {
462 this->head = head->next;
463 if( !head->next ) {
464 this->tail = &this->head;
465 }
466 head->next = NULL;
467 }
468 return head;
469}
[8118303]470// Local Variables: //
471// mode: c //
472// tab-width: 4 //
473// End: //
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