source: src/libcfa/concurrency/kernel.c @ b462670

ADTaaron-thesisarm-ehast-experimentalcleanup-dtorsdeferred_resndemanglerenumforall-pointer-decayjacob/cs343-translationjenkins-sandboxnew-astnew-ast-unique-exprnew-envno_listpersistent-indexerpthread-emulationqualifiedEnumresolv-newwith_gc
Last change on this file since b462670 was b462670, checked in by Thierry Delisle <tdelisle@…>, 7 years ago

Coroutines should now properly use the first resumner as their starter

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[8118303]1//
2// Cforall Version 1.0.0 Copyright (C) 2016 University of Waterloo
3//
4// The contents of this file are covered under the licence agreement in the
5// file "LICENCE" distributed with Cforall.
6//
7// kernel.c --
8//
9// Author           : Thierry Delisle
[75f3522]10// Created On       : Tue Jan 17 12:27:26 2017
[6b0b624]11// Last Modified By : Peter A. Buhr
12// Last Modified On : Fri Jul 21 22:33:18 2017
13// Update Count     : 2
[8118303]14//
15
[2ac095d]16#include "libhdr.h"
[8118303]17
18//C Includes
[c84e80a]19#include <stddef.h>
[eb2e723]20extern "C" {
[9d944b2]21#include <stdio.h>
[8fcbb4c]22#include <fenv.h>
[eb2e723]23#include <sys/resource.h>
[9d944b2]24#include <signal.h>
25#include <unistd.h>
[eb2e723]26}
[8118303]27
28//CFA Includes
[2ac095d]29#include "kernel_private.h"
[c81ebf9]30#include "preemption.h"
[2ac095d]31#include "startup.h"
[8118303]32
33//Private includes
34#define __CFA_INVOKE_PRIVATE__
35#include "invoke.h"
36
[2ac095d]37//Start and stop routine for the kernel, declared first to make sure they run first
38void kernel_startup(void)  __attribute__(( constructor( STARTUP_PRIORITY_KERNEL ) ));
39void kernel_shutdown(void) __attribute__(( destructor ( STARTUP_PRIORITY_KERNEL ) ));
40
[8def349]41//-----------------------------------------------------------------------------
42// Kernel storage
[969b3fe]43KERNEL_STORAGE(cluster,           mainCluster);
44KERNEL_STORAGE(processor,         mainProcessor);
45KERNEL_STORAGE(processorCtx_t,    mainProcessorCtx);
46KERNEL_STORAGE(thread_desc,       mainThread);
[f2b12406]47KERNEL_STORAGE(machine_context_t, mainThreadCtx);
[8def349]48
[969b3fe]49cluster *     mainCluster;
50processor *   mainProcessor;
[348006f]51thread_desc * mainThread;
[eb2e723]52
[bd98b58]53//-----------------------------------------------------------------------------
54// Global state
55
[9cc0472]56thread_local coroutine_desc * volatile this_coroutine;
57thread_local thread_desc *    volatile this_thread;
58thread_local processor *      volatile this_processor;
[969b3fe]59
[d6ff3ff]60volatile thread_local bool preemption_in_progress = 0;
[1c273d0]61volatile thread_local unsigned short disable_preempt_count = 1;
[c84e80a]62
63//-----------------------------------------------------------------------------
[8def349]64// Main thread construction
65struct current_stack_info_t {
[1c273d0]66        machine_context_t ctx;
[8def349]67        unsigned int size;              // size of stack
68        void *base;                             // base of stack
69        void *storage;                  // pointer to stack
70        void *limit;                    // stack grows towards stack limit
71        void *context;                  // address of cfa_context_t
72        void *top;                              // address of top of storage
[c84e80a]73};
74
[242a902]75void ?{}( current_stack_info_t & this ) {
76        CtxGet( this.ctx );
77        this.base = this.ctx.FP;
78        this.storage = this.ctx.SP;
[8def349]79
80        rlimit r;
[132fad4]81        getrlimit( RLIMIT_STACK, &r);
[242a902]82        this.size = r.rlim_cur;
[8def349]83
[242a902]84        this.limit = (void *)(((intptr_t)this.base) - this.size);
[9236060]85        this.context = &storage_mainThreadCtx;
[242a902]86        this.top = this.base;
[8def349]87}
88
[242a902]89void ?{}( coStack_t & this, current_stack_info_t * info) {
90        this.size = info->size;
91        this.storage = info->storage;
92        this.limit = info->limit;
93        this.base = info->base;
94        this.context = info->context;
95        this.top = info->top;
96        this.userStack = true;
[8def349]97}
98
[242a902]99void ?{}( coroutine_desc & this, current_stack_info_t * info) {
100        (this.stack){ info };
101        this.name = "Main Thread";
102        this.errno_ = 0;
103        this.state = Start;
[39fea2f]104        this.starter = NULL;
[8def349]105}
106
[242a902]107void ?{}( thread_desc & this, current_stack_info_t * info) {
108        (this.cor){ info };
[8def349]109}
[c84e80a]110
[8def349]111//-----------------------------------------------------------------------------
112// Processor coroutine
[39fea2f]113
114// Construct the processor context of the main processor
[242a902]115void ?{}(processorCtx_t & this, processor * proc) {
116        (this.__cor){ "Processor" };
[b462670]117        this.__cor.starter = NULL;
[242a902]118        this.proc = proc;
119        proc->runner = &this;
[8def349]120}
121
[39fea2f]122// Construct the processor context of non-main processors
[242a902]123void ?{}(processorCtx_t & this, processor * proc, current_stack_info_t * info) {
124        (this.__cor){ info };
125        this.proc = proc;
126        proc->runner = &this;
[8def349]127}
128
[242a902]129void ?{}(processor & this) {
[969b3fe]130        this{ mainCluster };
[8def349]131}
132
[242a902]133void ?{}(processor & this, cluster * cltr) {
134        this.cltr = cltr;
135        (this.terminated){ 0 };
[9236060]136        this.do_terminate = false;
[242a902]137        this.preemption_alarm = NULL;
138        this.pending_preemption = false;
[8def349]139
[242a902]140        start( &this );
[c84e80a]141}
142
[83a071f9]143void ?{}(processor & this, cluster * cltr, processorCtx_t & runner) {
[242a902]144        this.cltr = cltr;
145        (this.terminated){ 0 };
[9236060]146        this.do_terminate = false;
[242a902]147        this.preemption_alarm = NULL;
148        this.pending_preemption = false;
149        this.kernel_thread = pthread_self();
[8def349]150
[83a071f9]151        this.runner = &runner;
[9236060]152        LIB_DEBUG_PRINT_SAFE("Kernel : constructing main processor context %p\n", &runner);
[83a071f9]153        runner{ &this };
[8def349]154}
155
[242a902]156void ^?{}(processor & this) {
[9236060]157        if( ! this.do_terminate ) {
[242a902]158                LIB_DEBUG_PRINT_SAFE("Kernel : core %p signaling termination\n", &this);
[9236060]159                this.do_terminate = true;
[53a8e68]160                P( &this.terminated );
[242a902]161                pthread_join( this.kernel_thread, NULL );
[8def349]162        }
163}
164
[242a902]165void ?{}(cluster & this) {
166        ( this.ready_queue ){};
[9236060]167        ( this.ready_queue_lock ){};
[e60e0dc]168
[9236060]169        this.preemption = default_preemption();
[8def349]170}
171
[242a902]172void ^?{}(cluster & this) {
[1c273d0]173
[c84e80a]174}
175
[75f3522]176//=============================================================================================
177// Kernel Scheduling logic
178//=============================================================================================
[8fcbb4c]179//Main of the processor contexts
[83a071f9]180void main(processorCtx_t & runner) {
181        processor * this = runner.proc;
[c81ebf9]182
[9d944b2]183        LIB_DEBUG_PRINT_SAFE("Kernel : core %p starting\n", this);
[8118303]184
[75f3522]185        {
[c81ebf9]186                // Setup preemption data
187                preemption_scope scope = { this };
188
189                LIB_DEBUG_PRINT_SAFE("Kernel : core %p started\n", this);
[8118303]190
[c81ebf9]191                thread_desc * readyThread = NULL;
[e60e0dc]192                for( unsigned int spin_count = 0; ! this->do_terminate; spin_count++ )
[75f3522]193                {
[c81ebf9]194                        readyThread = nextThread( this->cltr );
[75f3522]195
[c81ebf9]196                        if(readyThread)
197                        {
[0b33412]198                                verify( disable_preempt_count > 0 );
[4e6fb8e]199
[c81ebf9]200                                runThread(this, readyThread);
[75f3522]201
[0b33412]202                                verify( disable_preempt_count > 0 );
[4e6fb8e]203
[c81ebf9]204                                //Some actions need to be taken from the kernel
205                                finishRunning(this);
206
207                                spin_count = 0;
208                        }
209                        else
210                        {
211                                spin(this, &spin_count);
212                        }
213                }
214
215                LIB_DEBUG_PRINT_SAFE("Kernel : core %p stopping\n", this);
[c84e80a]216        }
[8118303]217
[bdeba0b]218        V( &this->terminated );
219
[9d944b2]220        LIB_DEBUG_PRINT_SAFE("Kernel : core %p terminated\n", this);
[c84e80a]221}
222
[1c273d0]223// runThread runs a thread by context switching
224// from the processor coroutine to the target thread
[348006f]225void runThread(processor * this, thread_desc * dst) {
[83a071f9]226        coroutine_desc * proc_cor = get_coroutine(*this->runner);
[c3acb841]227        coroutine_desc * thrd_cor = get_coroutine(dst);
[1c273d0]228
[75f3522]229        //Reset the terminating actions here
[db6f06a]230        this->finish.action_code = No_Action;
[8fcbb4c]231
[75f3522]232        //Update global state
[1c273d0]233        this_thread = dst;
[75f3522]234
235        // Context Switch to the thread
236        ThreadCtxSwitch(proc_cor, thrd_cor);
237        // when ThreadCtxSwitch returns we are back in the processor coroutine
238}
239
[1c273d0]240// Once a thread has finished running, some of
[75f3522]241// its final actions must be executed from the kernel
[db6f06a]242void finishRunning(processor * this) {
243        if( this->finish.action_code == Release ) {
244                unlock( this->finish.lock );
245        }
246        else if( this->finish.action_code == Schedule ) {
247                ScheduleThread( this->finish.thrd );
248        }
249        else if( this->finish.action_code == Release_Schedule ) {
[1c273d0]250                unlock( this->finish.lock );
[db6f06a]251                ScheduleThread( this->finish.thrd );
252        }
[0c78741]253        else if( this->finish.action_code == Release_Multi ) {
254                for(int i = 0; i < this->finish.lock_count; i++) {
255                        unlock( this->finish.locks[i] );
256                }
257        }
258        else if( this->finish.action_code == Release_Multi_Schedule ) {
259                for(int i = 0; i < this->finish.lock_count; i++) {
260                        unlock( this->finish.locks[i] );
261                }
262                for(int i = 0; i < this->finish.thrd_count; i++) {
263                        ScheduleThread( this->finish.thrds[i] );
264                }
265        }
[db6f06a]266        else {
267                assert(this->finish.action_code == No_Action);
[8fcbb4c]268        }
[c84e80a]269}
270
[0c92c9f]271// Handles spinning logic
272// TODO : find some strategy to put cores to sleep after some time
[c84e80a]273void spin(processor * this, unsigned int * spin_count) {
274        (*spin_count)++;
275}
276
[0c92c9f]277// Context invoker for processors
278// This is the entry point for processors (kernel threads)
279// It effectively constructs a coroutine by stealing the pthread stack
[8def349]280void * CtxInvokeProcessor(void * arg) {
281        processor * proc = (processor *) arg;
282        this_processor = proc;
[1c273d0]283        this_coroutine = NULL;
284        this_thread = NULL;
[4e6fb8e]285        disable_preempt_count = 1;
[8def349]286        // SKULLDUGGERY: We want to create a context for the processor coroutine
287        // which is needed for the 2-step context switch. However, there is no reason
[1c273d0]288        // to waste the perfectly valid stack create by pthread.
[8def349]289        current_stack_info_t info;
290        machine_context_t ctx;
291        info.context = &ctx;
292        processorCtx_t proc_cor_storage = { proc, &info };
293
[9d944b2]294        LIB_DEBUG_PRINT_SAFE("Coroutine : created stack %p\n", proc_cor_storage.__cor.stack.base);
[8fcbb4c]295
[0c92c9f]296        //Set global state
[1c273d0]297        this_coroutine = &proc->runner->__cor;
298        this_thread = NULL;
[8def349]299
300        //We now have a proper context from which to schedule threads
[9d944b2]301        LIB_DEBUG_PRINT_SAFE("Kernel : core %p created (%p, %p)\n", proc, proc->runner, &ctx);
[8def349]302
[1c273d0]303        // SKULLDUGGERY: Since the coroutine doesn't have its own stack, we can't
304        // resume it to start it like it normally would, it will just context switch
305        // back to here. Instead directly call the main since we already are on the
[8def349]306        // appropriate stack.
[17af7d1]307        proc_cor_storage.__cor.state = Active;
[83a071f9]308        main( proc_cor_storage );
[4aa2fb2]309        proc_cor_storage.__cor.state = Halted;
[8def349]310
[0c92c9f]311        // Main routine of the core returned, the core is now fully terminated
[1c273d0]312        LIB_DEBUG_PRINT_SAFE("Kernel : core %p main ended (%p)\n", proc, proc->runner);
[8def349]313
314        return NULL;
[c84e80a]315}
316
[8def349]317void start(processor * this) {
[9d944b2]318        LIB_DEBUG_PRINT_SAFE("Kernel : Starting core %p\n", this);
[82ff5845]319
[8fcbb4c]320        pthread_create( &this->kernel_thread, NULL, CtxInvokeProcessor, (void*)this );
[eb2e723]321
[1c273d0]322        LIB_DEBUG_PRINT_SAFE("Kernel : core %p started\n", this);
[eb2e723]323}
324
[8def349]325//-----------------------------------------------------------------------------
326// Scheduler routines
[348006f]327void ScheduleThread( thread_desc * thrd ) {
[1c273d0]328        // if( !thrd ) return;
[135b431]329        verify( thrd );
330        verify( thrd->cor.state != Halted );
[1c273d0]331
332        verify( disable_preempt_count > 0 );
[690f13c]333
[4aa2fb2]334        verifyf( thrd->next == NULL, "Expected null got %p", thrd->next );
[1c273d0]335
[969b3fe]336        lock(   &this_processor->cltr->ready_queue_lock DEBUG_CTX2 );
337        append( &this_processor->cltr->ready_queue, thrd );
338        unlock( &this_processor->cltr->ready_queue_lock );
[1c273d0]339
340        verify( disable_preempt_count > 0 );
[db6f06a]341}
342
[348006f]343thread_desc * nextThread(cluster * this) {
[1c273d0]344        verify( disable_preempt_count > 0 );
[e60e0dc]345        lock( &this->ready_queue_lock DEBUG_CTX2 );
[348006f]346        thread_desc * head = pop_head( &this->ready_queue );
[e60e0dc]347        unlock( &this->ready_queue_lock );
[1c273d0]348        verify( disable_preempt_count > 0 );
[db6f06a]349        return head;
[eb2e723]350}
351
[82ff5845]352void BlockInternal() {
353        disable_interrupts();
[0b33412]354        verify( disable_preempt_count > 0 );
[75f3522]355        suspend();
[0b33412]356        verify( disable_preempt_count > 0 );
[2ac095d]357        enable_interrupts( DEBUG_CTX );
[75f3522]358}
359
[82ff5845]360void BlockInternal( spinlock * lock ) {
361        disable_interrupts();
[89a3df5]362        this_processor->finish.action_code = Release;
363        this_processor->finish.lock = lock;
[0b33412]364
365        verify( disable_preempt_count > 0 );
[db6f06a]366        suspend();
[0b33412]367        verify( disable_preempt_count > 0 );
368
[2ac095d]369        enable_interrupts( DEBUG_CTX );
[db6f06a]370}
371
[82ff5845]372void BlockInternal( thread_desc * thrd ) {
[97e3296]373        assert(thrd);
[82ff5845]374        disable_interrupts();
[1c273d0]375        assert( thrd->cor.state != Halted );
[89a3df5]376        this_processor->finish.action_code = Schedule;
377        this_processor->finish.thrd = thrd;
[0b33412]378
379        verify( disable_preempt_count > 0 );
[db6f06a]380        suspend();
[0b33412]381        verify( disable_preempt_count > 0 );
382
[2ac095d]383        enable_interrupts( DEBUG_CTX );
[db6f06a]384}
385
[82ff5845]386void BlockInternal( spinlock * lock, thread_desc * thrd ) {
[97e3296]387        assert(thrd);
[82ff5845]388        disable_interrupts();
[89a3df5]389        this_processor->finish.action_code = Release_Schedule;
390        this_processor->finish.lock = lock;
391        this_processor->finish.thrd = thrd;
[0b33412]392
393        verify( disable_preempt_count > 0 );
[db6f06a]394        suspend();
[0b33412]395        verify( disable_preempt_count > 0 );
396
[2ac095d]397        enable_interrupts( DEBUG_CTX );
[eb2e723]398}
399
[82ff5845]400void BlockInternal(spinlock ** locks, unsigned short count) {
401        disable_interrupts();
[0c78741]402        this_processor->finish.action_code = Release_Multi;
403        this_processor->finish.locks = locks;
404        this_processor->finish.lock_count = count;
[0b33412]405
406        verify( disable_preempt_count > 0 );
[0c78741]407        suspend();
[0b33412]408        verify( disable_preempt_count > 0 );
409
[2ac095d]410        enable_interrupts( DEBUG_CTX );
[0c78741]411}
412
[82ff5845]413void BlockInternal(spinlock ** locks, unsigned short lock_count, thread_desc ** thrds, unsigned short thrd_count) {
414        disable_interrupts();
[0c78741]415        this_processor->finish.action_code = Release_Multi_Schedule;
416        this_processor->finish.locks = locks;
417        this_processor->finish.lock_count = lock_count;
418        this_processor->finish.thrds = thrds;
419        this_processor->finish.thrd_count = thrd_count;
[0b33412]420
421        verify( disable_preempt_count > 0 );
[0c78741]422        suspend();
[0b33412]423        verify( disable_preempt_count > 0 );
424
[2ac095d]425        enable_interrupts( DEBUG_CTX );
[0c78741]426}
427
[f2b12406]428void LeaveThread(spinlock * lock, thread_desc * thrd) {
429        verify( disable_preempt_count > 0 );
430        this_processor->finish.action_code = thrd ? Release_Schedule : Release;
431        this_processor->finish.lock = lock;
432        this_processor->finish.thrd = thrd;
433
434        suspend();
435}
436
[fa21ac9]437//=============================================================================================
438// Kernel Setup logic
439//=============================================================================================
[eb2e723]440//-----------------------------------------------------------------------------
441// Kernel boot procedures
442void kernel_startup(void) {
[1c273d0]443        LIB_DEBUG_PRINT_SAFE("Kernel : Starting\n");
[eb2e723]444
445        // Start by initializing the main thread
[1c273d0]446        // SKULLDUGGERY: the mainThread steals the process main thread
[969b3fe]447        // which will then be scheduled by the mainProcessor normally
448        mainThread = (thread_desc *)&storage_mainThread;
[8fcbb4c]449        current_stack_info_t info;
[83a071f9]450        (*mainThread){ &info };
[eb2e723]451
[fa21ac9]452        LIB_DEBUG_PRINT_SAFE("Kernel : Main thread ready\n");
453
[969b3fe]454        // Initialize the main cluster
455        mainCluster = (cluster *)&storage_mainCluster;
[9236060]456        (*mainCluster){};
[bd98b58]457
[969b3fe]458        LIB_DEBUG_PRINT_SAFE("Kernel : main cluster ready\n");
[fa21ac9]459
[969b3fe]460        // Initialize the main processor and the main processor ctx
[eb2e723]461        // (the coroutine that contains the processing control flow)
[969b3fe]462        mainProcessor = (processor *)&storage_mainProcessor;
[9236060]463        (*mainProcessor){ mainCluster, *(processorCtx_t *)&storage_mainProcessorCtx };
[eb2e723]464
[dcb42b8]465        //initialize the global state variables
[969b3fe]466        this_processor = mainProcessor;
[1c273d0]467        this_thread = mainThread;
468        this_coroutine = &mainThread->cor;
[eb2e723]469
[82ff5845]470        // Enable preemption
471        kernel_start_preemption();
472
[969b3fe]473        // Add the main thread to the ready queue
474        // once resume is called on mainProcessor->runner the mainThread needs to be scheduled like any normal thread
475        ScheduleThread(mainThread);
476
477        // SKULLDUGGERY: Force a context switch to the main processor to set the main thread's context to the current UNIX
[dcb42b8]478        // context. Hence, the main thread does not begin through CtxInvokeThread, like all other threads. The trick here is that
[1c273d0]479        // mainThread is on the ready queue when this call is made.
[9236060]480        resume( *mainProcessor->runner );
[eb2e723]481
[dcb42b8]482
483
484        // THE SYSTEM IS NOW COMPLETELY RUNNING
[9d944b2]485        LIB_DEBUG_PRINT_SAFE("Kernel : Started\n--------------------------------------------------\n\n");
[82ff5845]486
[2ac095d]487        enable_interrupts( DEBUG_CTX );
[eb2e723]488}
489
[dcb42b8]490void kernel_shutdown(void) {
[9d944b2]491        LIB_DEBUG_PRINT_SAFE("\n--------------------------------------------------\nKernel : Shutting down\n");
[eb2e723]492
[4e6fb8e]493        disable_interrupts();
494
[969b3fe]495        // SKULLDUGGERY: Notify the mainProcessor it needs to terminates.
[dcb42b8]496        // When its coroutine terminates, it return control to the mainThread
497        // which is currently here
[969b3fe]498        mainProcessor->do_terminate = true;
[eb2e723]499        suspend();
500
[dcb42b8]501        // THE SYSTEM IS NOW COMPLETELY STOPPED
[eb2e723]502
[82ff5845]503        // Disable preemption
504        kernel_stop_preemption();
505
[969b3fe]506        // Destroy the main processor and its context in reverse order of construction
[dcb42b8]507        // These were manually constructed so we need manually destroy them
[9236060]508        ^(*mainProcessor->runner){};
[969b3fe]509        ^(mainProcessor){};
[eb2e723]510
[dcb42b8]511        // Final step, destroy the main thread since it is no longer needed
512        // Since we provided a stack to this taxk it will not destroy anything
[eb2e723]513        ^(mainThread){};
514
[1c273d0]515        LIB_DEBUG_PRINT_SAFE("Kernel : Shutdown complete\n");
[9d944b2]516}
517
518static spinlock kernel_abort_lock;
519static spinlock kernel_debug_lock;
520static bool kernel_abort_called = false;
521
522void * kernel_abort    (void) __attribute__ ((__nothrow__)) {
523        // abort cannot be recursively entered by the same or different processors because all signal handlers return when
524        // the globalAbort flag is true.
[2ac095d]525        lock( &kernel_abort_lock DEBUG_CTX2 );
[9d944b2]526
527        // first task to abort ?
528        if ( !kernel_abort_called ) {                   // not first task to abort ?
529                kernel_abort_called = true;
530                unlock( &kernel_abort_lock );
[1c273d0]531        }
[9d944b2]532        else {
533                unlock( &kernel_abort_lock );
[1c273d0]534
[9d944b2]535                sigset_t mask;
536                sigemptyset( &mask );
537                sigaddset( &mask, SIGALRM );                    // block SIGALRM signals
538                sigaddset( &mask, SIGUSR1 );                    // block SIGUSR1 signals
539                sigsuspend( &mask );                            // block the processor to prevent further damage during abort
[1c273d0]540                _exit( EXIT_FAILURE );                          // if processor unblocks before it is killed, terminate it
[9d944b2]541        }
542
[1c273d0]543        return this_thread;
[9d944b2]544}
545
546void kernel_abort_msg( void * kernel_data, char * abort_text, int abort_text_size ) {
547        thread_desc * thrd = kernel_data;
548
549        int len = snprintf( abort_text, abort_text_size, "Error occurred while executing task %.256s (%p)", thrd->cor.name, thrd );
550        __lib_debug_write( STDERR_FILENO, abort_text, len );
551
[1c273d0]552        if ( thrd != this_coroutine ) {
553                len = snprintf( abort_text, abort_text_size, " in coroutine %.256s (%p).\n", this_coroutine->name, this_coroutine );
[9d944b2]554                __lib_debug_write( STDERR_FILENO, abort_text, len );
[1c273d0]555        }
[9d944b2]556        else {
557                __lib_debug_write( STDERR_FILENO, ".\n", 2 );
558        }
559}
560
561extern "C" {
562        void __lib_debug_acquire() {
[2ac095d]563                lock( &kernel_debug_lock DEBUG_CTX2 );
[9d944b2]564        }
565
566        void __lib_debug_release() {
[2ac095d]567                unlock( &kernel_debug_lock );
[9d944b2]568        }
[8118303]569}
570
[fa21ac9]571//=============================================================================================
572// Kernel Utilities
573//=============================================================================================
[bd98b58]574//-----------------------------------------------------------------------------
575// Locks
[242a902]576void ?{}( spinlock & this ) {
577        this.lock = 0;
[bd98b58]578}
[242a902]579void ^?{}( spinlock & this ) {
[bd98b58]580
[db6f06a]581}
582
[2ac095d]583bool try_lock( spinlock * this DEBUG_CTX_PARAM2 ) {
[b227f68]584        return this->lock == 0 && __sync_lock_test_and_set_4( &this->lock, 1 ) == 0;
[c81ebf9]585}
586
[2ac095d]587void lock( spinlock * this DEBUG_CTX_PARAM2 ) {
[db6f06a]588        for ( unsigned int i = 1;; i += 1 ) {
[b227f68]589                if ( this->lock == 0 && __sync_lock_test_and_set_4( &this->lock, 1 ) == 0 ) { break; }
[db6f06a]590        }
[b227f68]591        LIB_DEBUG_DO(
592                this->prev_name = caller;
593                this->prev_thrd = this_thread;
594        )
[db6f06a]595}
[bd98b58]596
[b227f68]597void lock_yield( spinlock * this DEBUG_CTX_PARAM2 ) {
598        for ( unsigned int i = 1;; i += 1 ) {
599                if ( this->lock == 0 && __sync_lock_test_and_set_4( &this->lock, 1 ) == 0 ) { break; }
600                yield();
601        }
602        LIB_DEBUG_DO(
603                this->prev_name = caller;
604                this->prev_thrd = this_thread;
605        )
606}
607
608
[db6f06a]609void unlock( spinlock * this ) {
610        __sync_lock_release_4( &this->lock );
[bd98b58]611}
612
[242a902]613void  ?{}( semaphore & this, int count = 1 ) {
614        (this.lock){};
615        this.count = count;
616        (this.waiting){};
[db6f06a]617}
[242a902]618void ^?{}(semaphore & this) {}
[db6f06a]619
[bdeba0b]620void P(semaphore * this) {
[2ac095d]621        lock( &this->lock DEBUG_CTX2 );
[bdeba0b]622        this->count -= 1;
623        if ( this->count < 0 ) {
624                // queue current task
625                append( &this->waiting, (thread_desc *)this_thread );
626
627                // atomically release spin lock and block
[82ff5845]628                BlockInternal( &this->lock );
[8def349]629        }
[4e6fb8e]630        else {
[bdeba0b]631            unlock( &this->lock );
[4e6fb8e]632        }
[bd98b58]633}
634
[bdeba0b]635void V(semaphore * this) {
636        thread_desc * thrd = NULL;
[2ac095d]637        lock( &this->lock DEBUG_CTX2 );
[bdeba0b]638        this->count += 1;
639        if ( this->count <= 0 ) {
640                // remove task at head of waiting list
641                thrd = pop_head( &this->waiting );
[bd98b58]642        }
[bdeba0b]643
[db6f06a]644        unlock( &this->lock );
[bdeba0b]645
646        // make new owner
647        WakeThread( thrd );
[bd98b58]648}
649
650//-----------------------------------------------------------------------------
651// Queues
[242a902]652void ?{}( __thread_queue_t & this ) {
653        this.head = NULL;
654        this.tail = &this.head;
[bd98b58]655}
656
[5ea06d6]657void append( __thread_queue_t * this, thread_desc * t ) {
[4aa2fb2]658        verify(this->tail != NULL);
[bd98b58]659        *this->tail = t;
660        this->tail = &t->next;
661}
662
[5ea06d6]663thread_desc * pop_head( __thread_queue_t * this ) {
[348006f]664        thread_desc * head = this->head;
[bd98b58]665        if( head ) {
666                this->head = head->next;
667                if( !head->next ) {
668                        this->tail = &this->head;
669                }
670                head->next = NULL;
[1c273d0]671        }
[bd98b58]672        return head;
673}
[690f13c]674
[90c4df0]675thread_desc * remove( __thread_queue_t * this, thread_desc ** it ) {
676        thread_desc * thrd = *it;
677        verify( thrd );
678
679        (*it) = thrd->next;
680
681        if( this->tail == &thrd->next ) {
682                this->tail = it;
683        }
684
685        thrd->next = NULL;
686
687        verify( (this->head == NULL) == (&this->head == this->tail) );
688        verify( *this->tail == NULL );
689        return thrd;
690}
691
[242a902]692void ?{}( __condition_stack_t & this ) {
693        this.top = NULL;
[690f13c]694}
695
[0c78741]696void push( __condition_stack_t * this, __condition_criterion_t * t ) {
[4aa2fb2]697        verify( !t->next );
[690f13c]698        t->next = this->top;
699        this->top = t;
700}
701
[0c78741]702__condition_criterion_t * pop( __condition_stack_t * this ) {
703        __condition_criterion_t * top = this->top;
[690f13c]704        if( top ) {
705                this->top = top->next;
706                top->next = NULL;
[1c273d0]707        }
[690f13c]708        return top;
709}
[6b0b624]710
[8118303]711// Local Variables: //
712// mode: c //
713// tab-width: 4 //
714// End: //
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