source: libcfa/src/concurrency/kernel.cfa @ 09d4b22

ADTarm-ehast-experimentalenumforall-pointer-decayjacob/cs343-translationjenkins-sandboxnew-astnew-ast-unique-exprpthread-emulationqualifiedEnum
Last change on this file since 09d4b22 was 09d4b22, checked in by Peter A. Buhr <pabuhr@…>, 4 years ago

move stack for preemptive pthread from TLS to static variable

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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
[09d4b22]12// Last Modified On : Thu Dec  5 16:25:52 2019
13// Update Count     : 52
[8118303]14//
15
[2026bb6]16#define __cforall_thread__
17
[8118303]18//C Includes
[c84e80a]19#include <stddef.h>
[214e8da]20#include <errno.h>
[ea8b2f7]21#include <string.h>
[eb2e723]22extern "C" {
[9d944b2]23#include <stdio.h>
[8fcbb4c]24#include <fenv.h>
[eb2e723]25#include <sys/resource.h>
[58b6d1b]26#include <signal.h>
[9d944b2]27#include <unistd.h>
[27f5f71]28#include <limits.h>                                                                             // PTHREAD_STACK_MIN
[1a3040c]29#include <sys/mman.h>                                                                   // mprotect
[eb2e723]30}
[8118303]31
32//CFA Includes
[58b6d1b]33#include "time.hfa"
[73abe95]34#include "kernel_private.hfa"
35#include "preemption.hfa"
36#include "startup.hfa"
[8118303]37
38//Private includes
39#define __CFA_INVOKE_PRIVATE__
40#include "invoke.h"
41
[deca0f5]42//-----------------------------------------------------------------------------
43// Some assembly required
[1805b1b]44#if defined( __i386 )
[deca0f5]45        #define CtxGet( ctx )        \
46                __asm__ volatile (     \
47                        "movl %%esp,%0\n"\
48                        "movl %%ebp,%1\n"\
49                        : "=rm" (ctx.SP),\
50                                "=rm" (ctx.FP) \
51                )
52
53        // mxcr : SSE Status and Control bits (control bits are preserved across function calls)
54        // fcw  : X87 FPU control word (preserved across function calls)
55        #define __x87_store         \
56                uint32_t __mxcr;      \
57                uint16_t __fcw;       \
58                __asm__ volatile (    \
59                        "stmxcsr %0\n"  \
60                        "fnstcw  %1\n"  \
61                        : "=m" (__mxcr),\
62                                "=m" (__fcw)  \
63                )
64
65        #define __x87_load         \
66                __asm__ volatile (   \
67                        "fldcw  %1\n"  \
68                        "ldmxcsr %0\n" \
69                        ::"m" (__mxcr),\
70                                "m" (__fcw)  \
71                )
72
73#elif defined( __x86_64 )
74        #define CtxGet( ctx )        \
75                __asm__ volatile (     \
76                        "movq %%rsp,%0\n"\
77                        "movq %%rbp,%1\n"\
78                        : "=rm" (ctx.SP),\
79                                "=rm" (ctx.FP) \
80                )
81
82        #define __x87_store         \
83                uint32_t __mxcr;      \
84                uint16_t __fcw;       \
85                __asm__ volatile (    \
86                        "stmxcsr %0\n"  \
87                        "fnstcw  %1\n"  \
88                        : "=m" (__mxcr),\
89                                "=m" (__fcw)  \
90                )
91
92        #define __x87_load          \
93                __asm__ volatile (    \
94                        "fldcw  %1\n"   \
95                        "ldmxcsr %0\n"  \
96                        :: "m" (__mxcr),\
97                                "m" (__fcw)  \
98                )
99
100
101#elif defined( __ARM_ARCH )
102#define CtxGet( ctx ) __asm__ ( \
103                "mov %0,%%sp\n"   \
104                "mov %1,%%r11\n"   \
105        : "=rm" (ctx.SP), "=rm" (ctx.FP) )
106#else
107        #error unknown hardware architecture
108#endif
109
110//-----------------------------------------------------------------------------
[2ac095d]111//Start and stop routine for the kernel, declared first to make sure they run first
[c29c342]112static void kernel_startup(void)  __attribute__(( constructor( STARTUP_PRIORITY_KERNEL ) ));
113static void kernel_shutdown(void) __attribute__(( destructor ( STARTUP_PRIORITY_KERNEL ) ));
[2ac095d]114
[8def349]115//-----------------------------------------------------------------------------
116// Kernel storage
[b2f6113]117KERNEL_STORAGE(cluster,         mainCluster);
118KERNEL_STORAGE(processor,       mainProcessor);
119KERNEL_STORAGE(thread_desc,     mainThread);
120KERNEL_STORAGE(__stack_t,       mainThreadCtx);
[8def349]121
[de6319f]122cluster     * mainCluster;
123processor   * mainProcessor;
[348006f]124thread_desc * mainThread;
[eb2e723]125
[ea8b2f7]126extern "C" {
[1805b1b]127        struct { __dllist_t(cluster) list; __spinlock_t lock; } __cfa_dbg_global_clusters;
[ea8b2f7]128}
[de94a60]129
[b2f6113]130size_t __page_size = 0;
131
[bd98b58]132//-----------------------------------------------------------------------------
133// Global state
[afc2427]134thread_local struct KernelThreadData kernelTLS __attribute__ ((tls_model ( "initial-exec" ))) = {
[1805b1b]135        NULL,                                                                                           // cannot use 0p
[b10affd]136        NULL,
[09d4b22]137        { 1, false, false },
[21184e3]138        6u //this should be seeded better but due to a bug calling rdtsc doesn't work
[b10affd]139};
[c84e80a]140
141//-----------------------------------------------------------------------------
[de6319f]142// Struct to steal stack
[8def349]143struct current_stack_info_t {
[1805b1b]144        __stack_t * storage;                                                            // pointer to stack object
145        void * base;                                                                            // base of stack
146        void * limit;                                                                           // stack grows towards stack limit
147        void * context;                                                                         // address of cfa_context_t
[c84e80a]148};
149
[242a902]150void ?{}( current_stack_info_t & this ) {
[b2f6113]151        __stack_context_t ctx;
152        CtxGet( ctx );
153        this.base = ctx.FP;
[8def349]154
155        rlimit r;
[132fad4]156        getrlimit( RLIMIT_STACK, &r);
[69a61d2]157        size_t size = r.rlim_cur;
[8def349]158
[69a61d2]159        this.limit = (void *)(((intptr_t)this.base) - size);
[9236060]160        this.context = &storage_mainThreadCtx;
[8def349]161}
162
[de6319f]163//-----------------------------------------------------------------------------
164// Main thread construction
[8def349]165
[65deb18]166void ?{}( coroutine_desc & this, current_stack_info_t * info) with( this ) {
[b2f6113]167        stack.storage = info->storage;
168        with(*stack.storage) {
169                limit     = info->limit;
170                base      = info->base;
171        }
[ffe2fad]172        __attribute__((may_alias)) intptr_t * istorage = (intptr_t*) &stack.storage;
173        *istorage |= 0x1;
[65deb18]174        name = "Main Thread";
175        state = Start;
[1805b1b]176        starter = 0p;
177        last = 0p;
178        cancellation = 0p;
[8def349]179}
180
[65deb18]181void ?{}( thread_desc & this, current_stack_info_t * info) with( this ) {
[e8e457e]182        state = Start;
[65deb18]183        self_cor{ info };
[82c948c]184        curr_cor = &self_cor;
[de6319f]185        curr_cluster = mainCluster;
[82c948c]186        self_mon.owner = &this;
187        self_mon.recursion = 1;
188        self_mon_p = &self_mon;
[1805b1b]189        next = 0p;
[de94a60]190
[1805b1b]191        node.next = 0p;
192        node.prev = 0p;
[a1a17a7]193        doregister(curr_cluster, this);
[82c948c]194
195        monitors{ &self_mon_p, 1, (fptr_t)0 };
[8def349]196}
[c84e80a]197
[8def349]198//-----------------------------------------------------------------------------
199// Processor coroutine
[de6319f]200void ?{}(processorCtx_t & this) {
[39fea2f]201
[8def349]202}
203
[39fea2f]204// Construct the processor context of non-main processors
[c29c342]205static void ?{}(processorCtx_t & this, processor * proc, current_stack_info_t * info) {
[242a902]206        (this.__cor){ info };
207        this.proc = proc;
[8def349]208}
209
[c29c342]210static void start(processor * this);
[de6319f]211void ?{}(processor & this, const char * name, cluster & cltr) with( this ) {
212        this.name = name;
213        this.cltr = &cltr;
[c40e7c5]214        terminated{ 0 };
215        do_terminate = false;
[1805b1b]216        preemption_alarm = 0p;
[c40e7c5]217        pending_preemption = false;
[094476d]218        runner.proc = &this;
[8def349]219
[85b1deb]220        idleLock{};
[6b4cdd3]221
[242a902]222        start( &this );
[c84e80a]223}
224
[65deb18]225void ^?{}(processor & this) with( this ){
[ea8b2f7]226        if( ! __atomic_load_n(&do_terminate, __ATOMIC_ACQUIRE) ) {
[36982fc]227                __cfaabi_dbg_print_safe("Kernel : core %p signaling termination\n", &this);
[85b1deb]228
229                __atomic_store_n(&do_terminate, true, __ATOMIC_RELAXED);
230                wake( &this );
231
[65deb18]232                P( terminated );
[14a61b5]233                verify( kernelTLS.this_processor != &this);
[8def349]234        }
[6b4cdd3]235
[1805b1b]236        pthread_join( kernel_thread, 0p );
[27f5f71]237        free( this.stack );
[8def349]238}
239
[de6319f]240void ?{}(cluster & this, const char * name, Duration preemption_rate) with( this ) {
241        this.name = name;
242        this.preemption_rate = preemption_rate;
[65deb18]243        ready_queue{};
244        ready_queue_lock{};
[de94a60]245
246        procs{ __get };
247        idles{ __get };
[a1a17a7]248        threads{ __get };
[de94a60]249
250        doregister(this);
[8def349]251}
252
[242a902]253void ^?{}(cluster & this) {
[de94a60]254        unregister(this);
[c84e80a]255}
256
[75f3522]257//=============================================================================================
258// Kernel Scheduling logic
259//=============================================================================================
[c29c342]260static void runThread(processor * this, thread_desc * dst);
261static void finishRunning(processor * this);
262static void halt(processor * this);
263
[8fcbb4c]264//Main of the processor contexts
[83a071f9]265void main(processorCtx_t & runner) {
[21184e3]266        // Because of a bug, we couldn't initialized the seed on construction
267        // Do it here
[57c764c]268        kernelTLS.rand_seed ^= rdtscl();
[21184e3]269
[83a071f9]270        processor * this = runner.proc;
[094476d]271        verify(this);
[c81ebf9]272
[36982fc]273        __cfaabi_dbg_print_safe("Kernel : core %p starting\n", this);
[8118303]274
[de94a60]275        doregister(this->cltr, this);
276
[75f3522]277        {
[c81ebf9]278                // Setup preemption data
279                preemption_scope scope = { this };
280
[36982fc]281                __cfaabi_dbg_print_safe("Kernel : core %p started\n", this);
[8118303]282
[1805b1b]283                thread_desc * readyThread = 0p;
[1a3040c]284                for( unsigned int spin_count = 0; ! __atomic_load_n(&this->do_terminate, __ATOMIC_SEQ_CST); spin_count++ ) {
[c81ebf9]285                        readyThread = nextThread( this->cltr );
[75f3522]286
[1a3040c]287                        if(readyThread) {
[14a61b5]288                                verify( ! kernelTLS.preemption_state.enabled );
[4e6fb8e]289
[c81ebf9]290                                runThread(this, readyThread);
[75f3522]291
[14a61b5]292                                verify( ! kernelTLS.preemption_state.enabled );
[4e6fb8e]293
[c81ebf9]294                                //Some actions need to be taken from the kernel
295                                finishRunning(this);
296
297                                spin_count = 0;
[1a3040c]298                        } else {
[ea8b2f7]299                                // spin(this, &spin_count);
300                                halt(this);
[c81ebf9]301                        }
302                }
303
[36982fc]304                __cfaabi_dbg_print_safe("Kernel : core %p stopping\n", this);
[c84e80a]305        }
[8118303]306
[de94a60]307        unregister(this->cltr, this);
308
[4cedd9f]309        V( this->terminated );
[bdeba0b]310
[36982fc]311        __cfaabi_dbg_print_safe("Kernel : core %p terminated\n", this);
[c84e80a]312}
313
[5c1a531]314static int * __volatile_errno() __attribute__((noinline));
315static int * __volatile_errno() { asm(""); return &errno; }
316
[14a61b5]317// KERNEL ONLY
[1c273d0]318// runThread runs a thread by context switching
319// from the processor coroutine to the target thread
[e8e457e]320static void runThread(processor * this, thread_desc * thrd_dst) {
[094476d]321        coroutine_desc * proc_cor = get_coroutine(this->runner);
[1c273d0]322
[14a61b5]323        // Reset the terminating actions here
[db6f06a]324        this->finish.action_code = No_Action;
[8fcbb4c]325
[14a61b5]326        // Update global state
[e8e457e]327        kernelTLS.this_thread = thrd_dst;
328
329        // set state of processor coroutine to inactive and the thread to active
330        proc_cor->state = proc_cor->state == Halted ? Halted : Inactive;
331        thrd_dst->state = Active;
332
333        // set context switch to the thread that the processor is executing
334        verify( thrd_dst->context.SP );
335        CtxSwitch( &proc_cor->context, &thrd_dst->context );
336        // when CtxSwitch returns we are back in the processor coroutine
[75f3522]337
[e8e457e]338        // set state of processor coroutine to active and the thread to inactive
339        thrd_dst->state = thrd_dst->state == Halted ? Halted : Inactive;
340        proc_cor->state = Active;
[75f3522]341}
342
[14a61b5]343// KERNEL_ONLY
[c29c342]344static void returnToKernel() {
[14a61b5]345        coroutine_desc * proc_cor = get_coroutine(kernelTLS.this_processor->runner);
[e8e457e]346        thread_desc * thrd_src = kernelTLS.this_thread;
347
348        // set state of current coroutine to inactive
349        thrd_src->state = thrd_src->state == Halted ? Halted : Inactive;
350        proc_cor->state = Active;
[5c1a531]351        int local_errno = *__volatile_errno();
[deca0f5]352        #if defined( __i386 ) || defined( __x86_64 )
353                __x87_store;
354        #endif
[e8e457e]355
356        // set new coroutine that the processor is executing
357        // and context switch to it
358        verify( proc_cor->context.SP );
359        CtxSwitch( &thrd_src->context, &proc_cor->context );
360
361        // set state of new coroutine to active
362        proc_cor->state = proc_cor->state == Halted ? Halted : Inactive;
363        thrd_src->state = Active;
[deca0f5]364
365        #if defined( __i386 ) || defined( __x86_64 )
366                __x87_load;
367        #endif
[5c1a531]368        *__volatile_errno() = local_errno;
[82c948c]369}
370
[14a61b5]371// KERNEL_ONLY
[1c273d0]372// Once a thread has finished running, some of
[75f3522]373// its final actions must be executed from the kernel
[c29c342]374static void finishRunning(processor * this) with( this->finish ) {
[09800e9]375        verify( ! kernelTLS.preemption_state.enabled );
376        choose( action_code ) {
377        case No_Action:
378                break;
379        case Release:
[65deb18]380                unlock( *lock );
[09800e9]381        case Schedule:
[65deb18]382                ScheduleThread( thrd );
[09800e9]383        case Release_Schedule:
[65deb18]384                unlock( *lock );
385                ScheduleThread( thrd );
[09800e9]386        case Release_Multi:
[65deb18]387                for(int i = 0; i < lock_count; i++) {
388                        unlock( *locks[i] );
[0c78741]389                }
[09800e9]390        case Release_Multi_Schedule:
[65deb18]391                for(int i = 0; i < lock_count; i++) {
392                        unlock( *locks[i] );
[0c78741]393                }
[65deb18]394                for(int i = 0; i < thrd_count; i++) {
395                        ScheduleThread( thrds[i] );
[0c78741]396                }
[09800e9]397        case Callback:
398                callback();
399        default:
400                abort("KERNEL ERROR: Unexpected action to run after thread");
[8fcbb4c]401        }
[c84e80a]402}
403
[14a61b5]404// KERNEL_ONLY
[0c92c9f]405// Context invoker for processors
406// This is the entry point for processors (kernel threads)
407// It effectively constructs a coroutine by stealing the pthread stack
[c29c342]408static void * CtxInvokeProcessor(void * arg) {
[8def349]409        processor * proc = (processor *) arg;
[14a61b5]410        kernelTLS.this_processor = proc;
[1805b1b]411        kernelTLS.this_thread    = 0p;
[14a61b5]412        kernelTLS.preemption_state.[enabled, disable_count] = [false, 1];
[8def349]413        // SKULLDUGGERY: We want to create a context for the processor coroutine
414        // which is needed for the 2-step context switch. However, there is no reason
[1c273d0]415        // to waste the perfectly valid stack create by pthread.
[8def349]416        current_stack_info_t info;
[b2f6113]417        __stack_t ctx;
418        info.storage = &ctx;
[094476d]419        (proc->runner){ proc, &info };
[8def349]420
[b2f6113]421        __cfaabi_dbg_print_safe("Coroutine : created stack %p\n", get_coroutine(proc->runner)->stack.storage);
[8fcbb4c]422
[0c92c9f]423        //Set global state
[1805b1b]424        kernelTLS.this_thread = 0p;
[8def349]425
426        //We now have a proper context from which to schedule threads
[094476d]427        __cfaabi_dbg_print_safe("Kernel : core %p created (%p, %p)\n", proc, &proc->runner, &ctx);
[8def349]428
[1c273d0]429        // SKULLDUGGERY: Since the coroutine doesn't have its own stack, we can't
430        // resume it to start it like it normally would, it will just context switch
431        // back to here. Instead directly call the main since we already are on the
[8def349]432        // appropriate stack.
[094476d]433        get_coroutine(proc->runner)->state = Active;
434        main( proc->runner );
435        get_coroutine(proc->runner)->state = Halted;
[8def349]436
[0c92c9f]437        // Main routine of the core returned, the core is now fully terminated
[094476d]438        __cfaabi_dbg_print_safe("Kernel : core %p main ended (%p)\n", proc, &proc->runner);
[8def349]439
[1805b1b]440        return 0p;
[c84e80a]441}
442
[1805b1b]443static void Abort( int ret, const char * func ) {
[1a3040c]444        if ( ret ) {                                                                            // pthread routines return errno values
[1805b1b]445                abort( "%s : internal error, error(%d) %s.", func, ret, strerror( ret ) );
[27f5f71]446        } // if
[1805b1b]447} // Abort
448
449void * create_pthread( pthread_t * pthread, void * (*start)(void *), void * arg ) {
450        pthread_attr_t attr;
451
452        Abort( pthread_attr_init( &attr ), "pthread_attr_init" ); // initialize attribute
453
[27f5f71]454        size_t stacksize;
[09d4b22]455        // default stack size, normally defined by shell limit
[1a3040c]456        Abort( pthread_attr_getstacksize( &attr, &stacksize ), "pthread_attr_getstacksize" );
[27f5f71]457        assert( stacksize >= PTHREAD_STACK_MIN );
[1a3040c]458
[09d4b22]459        void * stack;
460        __cfaabi_dbg_debug_do(
461                stack = memalign( __page_size, stacksize + __page_size );
462                // pthread has no mechanism to create the guard page in user supplied stack.
463                if ( mprotect( stack, __page_size, PROT_NONE ) == -1 ) {
464                        abort( "mprotect : internal error, mprotect failure, error(%d) %s.", errno, strerror( errno ) );
465                } // if
466        );
467        __cfaabi_dbg_no_debug_do(
468                stack = malloc( stacksize );
469        );
[1a3040c]470
[1805b1b]471        Abort( pthread_attr_setstack( &attr, stack, stacksize ), "pthread_attr_setstack" );
[27f5f71]472
[1805b1b]473        Abort( pthread_create( pthread, &attr, start, arg ), "pthread_create" );
474        return stack;
475}
[27f5f71]476
[1805b1b]477static void start(processor * this) {
478        __cfaabi_dbg_print_safe("Kernel : Starting core %p\n", this);
479
480        this->stack = create_pthread( &this->kernel_thread, CtxInvokeProcessor, (void *)this );
[eb2e723]481
[36982fc]482        __cfaabi_dbg_print_safe("Kernel : core %p started\n", this);
[eb2e723]483}
484
[14a61b5]485// KERNEL_ONLY
[e8e457e]486void kernel_first_resume( processor * this ) {
487        thread_desc * src = mainThread;
[094476d]488        coroutine_desc * dst = get_coroutine(this->runner);
[b69ea6b]489
[14a61b5]490        verify( ! kernelTLS.preemption_state.enabled );
[b69ea6b]491
[b2f6113]492        __stack_prepare( &dst->stack, 65000 );
[094476d]493        CtxStart(&this->runner, CtxInvokeCoroutine);
[b69ea6b]494
[14a61b5]495        verify( ! kernelTLS.preemption_state.enabled );
[b69ea6b]496
[e8e457e]497        dst->last = &src->self_cor;
498        dst->starter = dst->starter ? dst->starter : &src->self_cor;
[b69ea6b]499
500        // set state of current coroutine to inactive
501        src->state = src->state == Halted ? Halted : Inactive;
502
503        // context switch to specified coroutine
[69a61d2]504        verify( dst->context.SP );
[b2f6113]505        CtxSwitch( &src->context, &dst->context );
[b69ea6b]506        // when CtxSwitch returns we are back in the src coroutine
507
508        // set state of new coroutine to active
509        src->state = Active;
510
[14a61b5]511        verify( ! kernelTLS.preemption_state.enabled );
[b69ea6b]512}
513
[e8e457e]514// KERNEL_ONLY
515void kernel_last_resume( processor * this ) {
516        coroutine_desc * src = &mainThread->self_cor;
517        coroutine_desc * dst = get_coroutine(this->runner);
518
519        verify( ! kernelTLS.preemption_state.enabled );
520        verify( dst->starter == src );
521        verify( dst->context.SP );
522
523        // context switch to the processor
524        CtxSwitch( &src->context, &dst->context );
525}
526
[8def349]527//-----------------------------------------------------------------------------
528// Scheduler routines
[14a61b5]529
530// KERNEL ONLY
[348006f]531void ScheduleThread( thread_desc * thrd ) {
[135b431]532        verify( thrd );
[e8e457e]533        verify( thrd->state != Halted );
[1c273d0]534
[14a61b5]535        verify( ! kernelTLS.preemption_state.enabled );
[690f13c]536
[1805b1b]537        verifyf( thrd->next == 0p, "Expected null got %p", thrd->next );
[1c273d0]538
[de6319f]539        with( *thrd->curr_cluster ) {
[65deb18]540                lock  ( ready_queue_lock __cfaabi_dbg_ctx2 );
[6b4cdd3]541                bool was_empty = !(ready_queue != 0);
[65deb18]542                append( ready_queue, thrd );
543                unlock( ready_queue_lock );
[6b4cdd3]544
[85b1deb]545                if(was_empty) {
[6b4cdd3]546                        lock      (proc_list_lock __cfaabi_dbg_ctx2);
547                        if(idles) {
[85b1deb]548                                wake_fast(idles.head);
[6b4cdd3]549                        }
550                        unlock    (proc_list_lock);
551                }
[85b1deb]552                else if( struct processor * idle = idles.head ) {
553                        wake_fast(idle);
554                }
555
[65deb18]556        }
[1c273d0]557
[14a61b5]558        verify( ! kernelTLS.preemption_state.enabled );
[db6f06a]559}
560
[14a61b5]561// KERNEL ONLY
[65deb18]562thread_desc * nextThread(cluster * this) with( *this ) {
[14a61b5]563        verify( ! kernelTLS.preemption_state.enabled );
[65deb18]564        lock( ready_queue_lock __cfaabi_dbg_ctx2 );
565        thread_desc * head = pop_head( ready_queue );
566        unlock( ready_queue_lock );
[14a61b5]567        verify( ! kernelTLS.preemption_state.enabled );
[db6f06a]568        return head;
[eb2e723]569}
570
[82ff5845]571void BlockInternal() {
572        disable_interrupts();
[14a61b5]573        verify( ! kernelTLS.preemption_state.enabled );
[82c948c]574        returnToKernel();
[14a61b5]575        verify( ! kernelTLS.preemption_state.enabled );
[36982fc]576        enable_interrupts( __cfaabi_dbg_ctx );
[75f3522]577}
578
[ea7d2b0]579void BlockInternal( __spinlock_t * lock ) {
[82ff5845]580        disable_interrupts();
[14a61b5]581        with( *kernelTLS.this_processor ) {
[de6319f]582                finish.action_code = Release;
583                finish.lock        = lock;
584        }
[0b33412]585
[afd550c]586        verify( ! kernelTLS.preemption_state.enabled );
[82c948c]587        returnToKernel();
[afd550c]588        verify( ! kernelTLS.preemption_state.enabled );
[0b33412]589
[36982fc]590        enable_interrupts( __cfaabi_dbg_ctx );
[db6f06a]591}
592
[82ff5845]593void BlockInternal( thread_desc * thrd ) {
594        disable_interrupts();
[14a61b5]595        with( * kernelTLS.this_processor ) {
[de6319f]596                finish.action_code = Schedule;
597                finish.thrd        = thrd;
598        }
[0b33412]599
[14a61b5]600        verify( ! kernelTLS.preemption_state.enabled );
[82c948c]601        returnToKernel();
[14a61b5]602        verify( ! kernelTLS.preemption_state.enabled );
[0b33412]603
[36982fc]604        enable_interrupts( __cfaabi_dbg_ctx );
[db6f06a]605}
606
[ea7d2b0]607void BlockInternal( __spinlock_t * lock, thread_desc * thrd ) {
[97e3296]608        assert(thrd);
[82ff5845]609        disable_interrupts();
[14a61b5]610        with( * kernelTLS.this_processor ) {
[de6319f]611                finish.action_code = Release_Schedule;
612                finish.lock        = lock;
613                finish.thrd        = thrd;
614        }
[0b33412]615
[14a61b5]616        verify( ! kernelTLS.preemption_state.enabled );
[82c948c]617        returnToKernel();
[14a61b5]618        verify( ! kernelTLS.preemption_state.enabled );
[0b33412]619
[36982fc]620        enable_interrupts( __cfaabi_dbg_ctx );
[eb2e723]621}
622
[ea7d2b0]623void BlockInternal(__spinlock_t * locks [], unsigned short count) {
[82ff5845]624        disable_interrupts();
[14a61b5]625        with( * kernelTLS.this_processor ) {
[de6319f]626                finish.action_code = Release_Multi;
627                finish.locks       = locks;
628                finish.lock_count  = count;
629        }
[0b33412]630
[14a61b5]631        verify( ! kernelTLS.preemption_state.enabled );
[82c948c]632        returnToKernel();
[14a61b5]633        verify( ! kernelTLS.preemption_state.enabled );
[0b33412]634
[36982fc]635        enable_interrupts( __cfaabi_dbg_ctx );
[0c78741]636}
637
[ea7d2b0]638void BlockInternal(__spinlock_t * locks [], unsigned short lock_count, thread_desc * thrds [], unsigned short thrd_count) {
[82ff5845]639        disable_interrupts();
[14a61b5]640        with( *kernelTLS.this_processor ) {
[de6319f]641                finish.action_code = Release_Multi_Schedule;
642                finish.locks       = locks;
643                finish.lock_count  = lock_count;
644                finish.thrds       = thrds;
645                finish.thrd_count  = thrd_count;
646        }
[0b33412]647
[14a61b5]648        verify( ! kernelTLS.preemption_state.enabled );
[82c948c]649        returnToKernel();
[14a61b5]650        verify( ! kernelTLS.preemption_state.enabled );
[0b33412]651
[36982fc]652        enable_interrupts( __cfaabi_dbg_ctx );
[0c78741]653}
654
[09800e9]655void BlockInternal(__finish_callback_fptr_t callback) {
656        disable_interrupts();
657        with( *kernelTLS.this_processor ) {
658                finish.action_code = Callback;
659                finish.callback    = callback;
660        }
661
662        verify( ! kernelTLS.preemption_state.enabled );
663        returnToKernel();
664        verify( ! kernelTLS.preemption_state.enabled );
665
666        enable_interrupts( __cfaabi_dbg_ctx );
667}
668
[14a61b5]669// KERNEL ONLY
[ea7d2b0]670void LeaveThread(__spinlock_t * lock, thread_desc * thrd) {
[14a61b5]671        verify( ! kernelTLS.preemption_state.enabled );
672        with( * kernelTLS.this_processor ) {
[de6319f]673                finish.action_code = thrd ? Release_Schedule : Release;
674                finish.lock        = lock;
675                finish.thrd        = thrd;
676        }
[f2b12406]677
[82c948c]678        returnToKernel();
[f2b12406]679}
680
[fa21ac9]681//=============================================================================================
682// Kernel Setup logic
683//=============================================================================================
[eb2e723]684//-----------------------------------------------------------------------------
685// Kernel boot procedures
[c29c342]686static void kernel_startup(void) {
[14a61b5]687        verify( ! kernelTLS.preemption_state.enabled );
[36982fc]688        __cfaabi_dbg_print_safe("Kernel : Starting\n");
[eb2e723]689
[b2f6113]690        __page_size = sysconf( _SC_PAGESIZE );
691
[ea8b2f7]692        __cfa_dbg_global_clusters.list{ __get };
693        __cfa_dbg_global_clusters.lock{};
[de94a60]694
[de6319f]695        // Initialize the main cluster
696        mainCluster = (cluster *)&storage_mainCluster;
697        (*mainCluster){"Main Cluster"};
698
699        __cfaabi_dbg_print_safe("Kernel : Main cluster ready\n");
700
[eb2e723]701        // Start by initializing the main thread
[1c273d0]702        // SKULLDUGGERY: the mainThread steals the process main thread
[969b3fe]703        // which will then be scheduled by the mainProcessor normally
704        mainThread = (thread_desc *)&storage_mainThread;
[8fcbb4c]705        current_stack_info_t info;
[b2f6113]706        info.storage = (__stack_t*)&storage_mainThreadCtx;
[83a071f9]707        (*mainThread){ &info };
[eb2e723]708
[36982fc]709        __cfaabi_dbg_print_safe("Kernel : Main thread ready\n");
[fa21ac9]710
[bd98b58]711
[de6319f]712
713        // Construct the processor context of the main processor
714        void ?{}(processorCtx_t & this, processor * proc) {
715                (this.__cor){ "Processor" };
[1805b1b]716                this.__cor.starter = 0p;
[de6319f]717                this.proc = proc;
718        }
719
720        void ?{}(processor & this) with( this ) {
721                name = "Main Processor";
722                cltr = mainCluster;
723                terminated{ 0 };
724                do_terminate = false;
[1805b1b]725                preemption_alarm = 0p;
[de6319f]726                pending_preemption = false;
727                kernel_thread = pthread_self();
728
729                runner{ &this };
730                __cfaabi_dbg_print_safe("Kernel : constructed main processor context %p\n", &runner);
731        }
[fa21ac9]732
[969b3fe]733        // Initialize the main processor and the main processor ctx
[eb2e723]734        // (the coroutine that contains the processing control flow)
[969b3fe]735        mainProcessor = (processor *)&storage_mainProcessor;
[de6319f]736        (*mainProcessor){};
[eb2e723]737
[dcb42b8]738        //initialize the global state variables
[14a61b5]739        kernelTLS.this_processor = mainProcessor;
740        kernelTLS.this_thread    = mainThread;
[eb2e723]741
[82ff5845]742        // Enable preemption
743        kernel_start_preemption();
744
[969b3fe]745        // Add the main thread to the ready queue
746        // once resume is called on mainProcessor->runner the mainThread needs to be scheduled like any normal thread
747        ScheduleThread(mainThread);
748
749        // SKULLDUGGERY: Force a context switch to the main processor to set the main thread's context to the current UNIX
[dcb42b8]750        // context. Hence, the main thread does not begin through CtxInvokeThread, like all other threads. The trick here is that
[1c273d0]751        // mainThread is on the ready queue when this call is made.
[14a61b5]752        kernel_first_resume( kernelTLS.this_processor );
[eb2e723]753
[dcb42b8]754
755
756        // THE SYSTEM IS NOW COMPLETELY RUNNING
[36982fc]757        __cfaabi_dbg_print_safe("Kernel : Started\n--------------------------------------------------\n\n");
[82ff5845]758
[14a61b5]759        verify( ! kernelTLS.preemption_state.enabled );
[36982fc]760        enable_interrupts( __cfaabi_dbg_ctx );
[afd550c]761        verify( TL_GET( preemption_state.enabled ) );
[eb2e723]762}
763
[c29c342]764static void kernel_shutdown(void) {
[36982fc]765        __cfaabi_dbg_print_safe("\n--------------------------------------------------\nKernel : Shutting down\n");
[eb2e723]766
[afd550c]767        verify( TL_GET( preemption_state.enabled ) );
[4e6fb8e]768        disable_interrupts();
[14a61b5]769        verify( ! kernelTLS.preemption_state.enabled );
[4e6fb8e]770
[969b3fe]771        // SKULLDUGGERY: Notify the mainProcessor it needs to terminates.
[dcb42b8]772        // When its coroutine terminates, it return control to the mainThread
773        // which is currently here
[ea8b2f7]774        __atomic_store_n(&mainProcessor->do_terminate, true, __ATOMIC_RELEASE);
[e8e457e]775        kernel_last_resume( kernelTLS.this_processor );
[ea8b2f7]776        mainThread->self_cor.state = Halted;
[eb2e723]777
[dcb42b8]778        // THE SYSTEM IS NOW COMPLETELY STOPPED
[eb2e723]779
[82ff5845]780        // Disable preemption
781        kernel_stop_preemption();
782
[969b3fe]783        // Destroy the main processor and its context in reverse order of construction
[dcb42b8]784        // These were manually constructed so we need manually destroy them
[094476d]785        ^(mainProcessor->runner){};
[969b3fe]786        ^(mainProcessor){};
[eb2e723]787
[dcb42b8]788        // Final step, destroy the main thread since it is no longer needed
789        // Since we provided a stack to this taxk it will not destroy anything
[eb2e723]790        ^(mainThread){};
791
[ea8b2f7]792        ^(__cfa_dbg_global_clusters.list){};
793        ^(__cfa_dbg_global_clusters.lock){};
[a1a17a7]794
[36982fc]795        __cfaabi_dbg_print_safe("Kernel : Shutdown complete\n");
[9d944b2]796}
797
[14a61b5]798//=============================================================================================
799// Kernel Quiescing
800//=============================================================================================
[c29c342]801static void halt(processor * this) with( *this ) {
[85b1deb]802        // verify( ! __atomic_load_n(&do_terminate, __ATOMIC_SEQ_CST) );
[ea8b2f7]803
[6b4cdd3]804        with( *cltr ) {
805                lock      (proc_list_lock __cfaabi_dbg_ctx2);
806                remove    (procs, *this);
807                push_front(idles, *this);
808                unlock    (proc_list_lock);
809        }
[14a61b5]810
[6b4cdd3]811        __cfaabi_dbg_print_safe("Kernel : Processor %p ready to sleep\n", this);
[14a61b5]812
[85b1deb]813        wait( idleLock );
[14a61b5]814
[6b4cdd3]815        __cfaabi_dbg_print_safe("Kernel : Processor %p woke up and ready to run\n", this);
[14a61b5]816
[6b4cdd3]817        with( *cltr ) {
818                lock      (proc_list_lock __cfaabi_dbg_ctx2);
819                remove    (idles, *this);
820                push_front(procs, *this);
821                unlock    (proc_list_lock);
822        }
823}
824
[dbe9b08]825//=============================================================================================
826// Unexpected Terminating logic
827//=============================================================================================
[ea7d2b0]828static __spinlock_t kernel_abort_lock;
[9d944b2]829static bool kernel_abort_called = false;
830
[afd550c]831void * kernel_abort(void) __attribute__ ((__nothrow__)) {
[9d944b2]832        // abort cannot be recursively entered by the same or different processors because all signal handlers return when
833        // the globalAbort flag is true.
[36982fc]834        lock( kernel_abort_lock __cfaabi_dbg_ctx2 );
[9d944b2]835
836        // first task to abort ?
[de94a60]837        if ( kernel_abort_called ) {                    // not first task to abort ?
[ea7d2b0]838                unlock( kernel_abort_lock );
[1c273d0]839
[9d944b2]840                sigset_t mask;
841                sigemptyset( &mask );
[de94a60]842                sigaddset( &mask, SIGALRM );            // block SIGALRM signals
843                sigsuspend( &mask );                    // block the processor to prevent further damage during abort
844                _exit( EXIT_FAILURE );                  // if processor unblocks before it is killed, terminate it
845        }
846        else {
847                kernel_abort_called = true;
848                unlock( kernel_abort_lock );
[9d944b2]849        }
850
[14a61b5]851        return kernelTLS.this_thread;
[9d944b2]852}
853
854void kernel_abort_msg( void * kernel_data, char * abort_text, int abort_text_size ) {
855        thread_desc * thrd = kernel_data;
856
[de94a60]857        if(thrd) {
858                int len = snprintf( abort_text, abort_text_size, "Error occurred while executing thread %.256s (%p)", thrd->self_cor.name, thrd );
[1c40091]859                __cfaabi_bits_write( STDERR_FILENO, abort_text, len );
[de94a60]860
[212c2187]861                if ( &thrd->self_cor != thrd->curr_cor ) {
862                        len = snprintf( abort_text, abort_text_size, " in coroutine %.256s (%p).\n", thrd->curr_cor->name, thrd->curr_cor );
[1c40091]863                        __cfaabi_bits_write( STDERR_FILENO, abort_text, len );
[de94a60]864                }
865                else {
[1c40091]866                        __cfaabi_bits_write( STDERR_FILENO, ".\n", 2 );
[de94a60]867                }
[1c273d0]868        }
[9d944b2]869        else {
[de94a60]870                int len = snprintf( abort_text, abort_text_size, "Error occurred outside of any thread.\n" );
[1c40091]871                __cfaabi_bits_write( STDERR_FILENO, abort_text, len );
[9d944b2]872        }
873}
874
[2b8bc41]875int kernel_abort_lastframe( void ) __attribute__ ((__nothrow__)) {
[14a61b5]876        return get_coroutine(kernelTLS.this_thread) == get_coroutine(mainThread) ? 4 : 2;
[2b8bc41]877}
878
[de94a60]879static __spinlock_t kernel_debug_lock;
880
[9d944b2]881extern "C" {
[1c40091]882        void __cfaabi_bits_acquire() {
[36982fc]883                lock( kernel_debug_lock __cfaabi_dbg_ctx2 );
[9d944b2]884        }
885
[1c40091]886        void __cfaabi_bits_release() {
[ea7d2b0]887                unlock( kernel_debug_lock );
[9d944b2]888        }
[8118303]889}
890
[fa21ac9]891//=============================================================================================
892// Kernel Utilities
893//=============================================================================================
[bd98b58]894//-----------------------------------------------------------------------------
895// Locks
[242a902]896void  ?{}( semaphore & this, int count = 1 ) {
897        (this.lock){};
898        this.count = count;
899        (this.waiting){};
[db6f06a]900}
[242a902]901void ^?{}(semaphore & this) {}
[db6f06a]902
[65deb18]903void P(semaphore & this) with( this ){
904        lock( lock __cfaabi_dbg_ctx2 );
905        count -= 1;
906        if ( count < 0 ) {
[bdeba0b]907                // queue current task
[14a61b5]908                append( waiting, kernelTLS.this_thread );
[bdeba0b]909
910                // atomically release spin lock and block
[65deb18]911                BlockInternal( &lock );
[8def349]912        }
[4e6fb8e]913        else {
[65deb18]914            unlock( lock );
[4e6fb8e]915        }
[bd98b58]916}
917
[65deb18]918void V(semaphore & this) with( this ) {
[1805b1b]919        thread_desc * thrd = 0p;
[65deb18]920        lock( lock __cfaabi_dbg_ctx2 );
921        count += 1;
922        if ( count <= 0 ) {
[bdeba0b]923                // remove task at head of waiting list
[65deb18]924                thrd = pop_head( waiting );
[bd98b58]925        }
[bdeba0b]926
[65deb18]927        unlock( lock );
[bdeba0b]928
929        // make new owner
930        WakeThread( thrd );
[bd98b58]931}
932
[f7d6bb0]933//-----------------------------------------------------------------------------
[de94a60]934// Global Queues
935void doregister( cluster     & cltr ) {
[ea8b2f7]936        lock      ( __cfa_dbg_global_clusters.lock __cfaabi_dbg_ctx2);
937        push_front( __cfa_dbg_global_clusters.list, cltr );
938        unlock    ( __cfa_dbg_global_clusters.lock );
[de94a60]939}
[f7d6bb0]940
[de94a60]941void unregister( cluster     & cltr ) {
[ea8b2f7]942        lock  ( __cfa_dbg_global_clusters.lock __cfaabi_dbg_ctx2);
943        remove( __cfa_dbg_global_clusters.list, cltr );
944        unlock( __cfa_dbg_global_clusters.lock );
[de94a60]945}
[f7d6bb0]946
[a1a17a7]947void doregister( cluster * cltr, thread_desc & thrd ) {
948        lock      (cltr->thread_list_lock __cfaabi_dbg_ctx2);
[d4e68a6]949        cltr->nthreads += 1;
[a1a17a7]950        push_front(cltr->threads, thrd);
951        unlock    (cltr->thread_list_lock);
952}
953
954void unregister( cluster * cltr, thread_desc & thrd ) {
955        lock  (cltr->thread_list_lock __cfaabi_dbg_ctx2);
956        remove(cltr->threads, thrd );
[d4e68a6]957        cltr->nthreads -= 1;
[a1a17a7]958        unlock(cltr->thread_list_lock);
959}
[9181f1d]960
[de94a60]961void doregister( cluster * cltr, processor * proc ) {
[639991a]962        lock      (cltr->proc_list_lock __cfaabi_dbg_ctx2);
[d4e68a6]963        cltr->nprocessors += 1;
[639991a]964        push_front(cltr->procs, *proc);
965        unlock    (cltr->proc_list_lock);
[de94a60]966}
967
968void unregister( cluster * cltr, processor * proc ) {
[639991a]969        lock  (cltr->proc_list_lock __cfaabi_dbg_ctx2);
970        remove(cltr->procs, *proc );
[d4e68a6]971        cltr->nprocessors -= 1;
[639991a]972        unlock(cltr->proc_list_lock);
[de94a60]973}
974
975//-----------------------------------------------------------------------------
976// Debug
977__cfaabi_dbg_debug_do(
[1997b4e]978        extern "C" {
979                void __cfaabi_dbg_record(__spinlock_t & this, const char * prev_name) {
980                        this.prev_name = prev_name;
981                        this.prev_thrd = kernelTLS.this_thread;
982                }
[9181f1d]983        }
[f7d6bb0]984)
[2026bb6]985
986//-----------------------------------------------------------------------------
987// Debug
988bool threading_enabled(void) {
989        return true;
990}
[8118303]991// Local Variables: //
992// mode: c //
993// tab-width: 4 //
994// End: //
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