source: libcfa/src/concurrency/kernel/startup.cfa @ 639e4fc

ADTast-experimental
Last change on this file since 639e4fc was 639e4fc, checked in by Thierry Delisle <tdelisle@…>, 18 months ago

Changed cluster link to use explicit type to avoid anonymous names in symbols gdb cares about

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File size: 27.3 KB
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1//
2// Cforall Version 1.0.0 Copyright (C) 2020 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/startup.cfa --
8//
9// Author           : Thierry Delisle
10// Created On       : Thu Jul 30 15:12:54 2020
11// Last Modified By :
12// Last Modified On :
13// Update Count     :
14//
15
16#define __cforall_thread__
17#define _GNU_SOURCE
18
19// #define __CFA_DEBUG_PRINT_RUNTIME_CORE__
20
21// C Includes
22#include <errno.h>                                      // errno
23#include <signal.h>
24#include <string.h>                                     // strerror
25#include <unistd.h>                                     // sysconf
26
27extern "C" {
28        #include <limits.h>                             // PTHREAD_STACK_MIN
29        #include <unistd.h>                             // syscall
30        #include <sys/eventfd.h>                        // eventfd
31        #include <sys/mman.h>                           // mprotect
32        #include <sys/resource.h>                       // getrlimit
33}
34
35// CFA Includes
36#include "kernel/private.hfa"
37#include "iofwd.hfa"
38#include "startup.hfa"                                  // STARTUP_PRIORITY_XXX
39#include "limits.hfa"
40#include "math.hfa"
41
42#define CFA_PROCESSOR_USE_MMAP 0
43
44//-----------------------------------------------------------------------------
45// Some assembly required
46#if defined( __i386 )
47        #define CtxGet( ctx ) __asm__ volatile ( \
48                "movl %%esp,%0\n" \
49                "movl %%ebp,%1\n" \
50                : "=rm" (ctx.SP), \
51                  "=rm" (ctx.FP) \
52        )
53#elif defined( __x86_64 )
54        #define CtxGet( ctx ) __asm__ volatile ( \
55                "movq %%rsp,%0\n" \
56                "movq %%rbp,%1\n" \
57                : "=rm" (ctx.SP), \
58                  "=rm" (ctx.FP) \
59        )
60#elif defined( __aarch64__ )
61        #define CtxGet( ctx ) __asm__ volatile ( \
62                "mov %0, sp\n" \
63                "mov %1, fp\n" \
64                : "=rm" (ctx.SP), \
65                  "=rm" (ctx.FP) \
66        )
67#else
68        #error unknown hardware architecture
69#endif
70
71//-----------------------------------------------------------------------------
72// Start and stop routine for the kernel, declared first to make sure they run first
73static void __kernel_startup (void) __attribute__(( constructor( STARTUP_PRIORITY_KERNEL ) ));
74static void __kernel_shutdown(void) __attribute__(( destructor ( STARTUP_PRIORITY_KERNEL ) ));
75
76//-----------------------------------------------------------------------------
77// Static Forward Declarations
78struct current_stack_info_t;
79
80static void * __invoke_processor(void * arg);
81static void __kernel_first_resume( processor * this );
82static void __kernel_last_resume ( processor * this );
83static void init(processor & this, const char name[], cluster & _cltr, thread$ * initT);
84static void deinit(processor & this);
85static void doregister( struct cluster & cltr );
86static void unregister( struct cluster & cltr );
87static void register_tls( processor * this );
88static void unregister_tls( processor * this );
89static void ?{}( coroutine$ & this, current_stack_info_t * info);
90static void ?{}( thread$ & this, current_stack_info_t * info);
91static void ?{}(processorCtx_t & this) {}
92static void ?{}(processorCtx_t & this, processor * proc, current_stack_info_t * info);
93
94#if defined(__CFA_WITH_VERIFY__)
95        static bool verify_fwd_bck_rng(void);
96#endif
97
98//-----------------------------------------------------------------------------
99// Forward Declarations for other modules
100extern void __kernel_alarm_startup(void);
101extern void __kernel_alarm_shutdown(void);
102extern void __cfa_io_start( processor * );
103extern void __cfa_io_stop ( processor * );
104
105//-----------------------------------------------------------------------------
106// Other Forward Declarations
107extern void __wake_proc(processor *);
108extern int cfa_main_returned;                                                   // from interpose.cfa
109uint32_t __global_random_prime = 4_294_967_291u, __global_random_mask = false;
110
111//-----------------------------------------------------------------------------
112// Kernel storage
113KERNEL_STORAGE(cluster,              mainCluster);
114KERNEL_STORAGE(processor,            mainProcessor);
115KERNEL_STORAGE(thread$,              mainThread);
116KERNEL_STORAGE(__stack_t,            mainThreadCtx);
117#if !defined(__CFA_NO_STATISTICS__)
118KERNEL_STORAGE(__stats_t, mainProcStats);
119#endif
120
121cluster              * mainCluster libcfa_public;
122processor            * mainProcessor;
123thread$              * mainThread;
124
125extern "C" {
126        struct { __dllist_t(cluster) list; __spinlock_t lock; } __cfa_dbg_global_clusters;
127}
128
129extern size_t __page_size;
130extern int __map_prot;
131
132//-----------------------------------------------------------------------------
133// Global state
134__thread struct KernelThreadData __cfaabi_tls __attribute__ ((tls_model ( "initial-exec" ))) @= {
135        NULL,                                                                                           // cannot use 0p
136        NULL,
137        false,
138        { 1, false, false },
139        0,
140        { 0, 0 },
141        NULL,
142        #ifdef __CFA_WITH_VERIFY__
143                false,
144                0,
145        #endif
146};
147
148__scheduler_RWLock_t __scheduler_lock @= { 0 };
149
150#if   defined(CFA_HAVE_LINUX_LIBRSEQ)
151        // No data needed
152#elif defined(CFA_HAVE_LINUX_RSEQ_H)
153        extern "Cforall" {
154                __attribute__((aligned(64))) __thread volatile struct rseq __cfaabi_rseq @= {
155                        .cpu_id : RSEQ_CPU_ID_UNINITIALIZED,
156                };
157        }
158#else
159        // No data needed
160#endif
161
162//-----------------------------------------------------------------------------
163// Struct to steal stack
164struct current_stack_info_t {
165        __stack_t * storage;  // pointer to stack object
166        void * base;          // base of stack
167        void * limit;         // stack grows towards stack limit
168        void * context;       // address of cfa_context_t
169};
170
171static void ?{}( current_stack_info_t & this ) {
172        __stack_context_t ctx;
173        CtxGet( ctx );
174        this.base = ctx.FP;
175
176        rlimit r;
177        getrlimit( RLIMIT_STACK, &r);
178        size_t size = r.rlim_cur;
179
180        this.limit = (void *)(((intptr_t)this.base) - size);
181        this.context = &storage_mainThreadCtx;
182}
183
184
185extern void heapManagerCtor();
186extern void heapManagerDtor();
187
188//=============================================================================================
189// Kernel Setup logic
190//=============================================================================================
191//-----------------------------------------------------------------------------
192// Kernel boot procedures
193static void __kernel_startup(void) {
194        /* paranoid */ verify( ! __preemption_enabled() );
195        __cfadbg_print_safe(runtime_core, "Kernel : Starting\n");
196
197        __cfa_dbg_global_clusters.list{ __get };
198        __cfa_dbg_global_clusters.lock{};
199
200        /* paranoid */ verify( verify_fwd_bck_rng() );
201
202        // Initialize the global scheduler lock
203        // __scheduler_lock = (__scheduler_RWLock_t*)&storage___scheduler_lock;
204        (__scheduler_lock){};
205
206        // Initialize the main cluster
207        mainCluster = (cluster *)&storage_mainCluster;
208        (*mainCluster){"Main Cluster", 0};
209
210        __cfadbg_print_safe(runtime_core, "Kernel : Main cluster ready\n");
211
212        // Construct the processor context of the main processor
213        void ?{}(processorCtx_t & this, processor * proc) {
214                (this.self){ "Processor" };
215                this.self.starter = 0p;
216                this.proc = proc;
217        }
218
219        void ?{}(processor & this) with( this ) {
220                ( this.terminated ){};
221                ( this.runner ){};
222                init( this, "Main Processor", *mainCluster, 0p );
223                kernel_thread = __cfaabi_pthread_self();
224
225                runner{ &this };
226                __cfadbg_print_safe(runtime_core, "Kernel : constructed main processor context %p\n", &runner);
227        }
228
229        // Initialize the main processor and the main processor ctx
230        // (the coroutine that contains the processing control flow)
231        mainProcessor = (processor *)&storage_mainProcessor;
232        (*mainProcessor){};
233
234        __cfa_io_start( mainProcessor );
235        register_tls( mainProcessor );
236
237        // Start by initializing the main thread
238        // SKULLDUGGERY: the mainThread steals the process main thread
239        // which will then be scheduled by the mainProcessor normally
240        mainThread = (thread$ *)&storage_mainThread;
241        current_stack_info_t info;
242        info.storage = (__stack_t*)&storage_mainThreadCtx;
243        (*mainThread){ &info };
244
245        __cfadbg_print_safe(runtime_core, "Kernel : Main thread ready\n");
246
247        //initialize the global state variables
248        __cfaabi_tls.this_processor = mainProcessor;
249        __cfaabi_tls.this_thread    = mainThread;
250
251        #if !defined( __CFA_NO_STATISTICS__ )
252                __cfaabi_tls.this_stats = (__stats_t *)& storage_mainProcStats;
253                __init_stats( __cfaabi_tls.this_stats );
254        #endif
255        mainProcessor->local_data = &__cfaabi_tls;
256
257        // Enable preemption
258        __kernel_alarm_startup();
259
260        // Add the main thread to the ready queue
261        // once resume is called on mainProcessor->runner the mainThread needs to be scheduled like any normal thread
262        schedule_thread$(mainThread, UNPARK_LOCAL);
263
264        // SKULLDUGGERY: Force a context switch to the main processor to set the main thread's context to the current UNIX
265        // context. Hence, the main thread does not begin through __cfactx_invoke_thread, like all other threads. The trick here is that
266        // mainThread is on the ready queue when this call is made.
267        __kernel_first_resume( __cfaabi_tls.this_processor );
268
269
270        // THE SYSTEM IS NOW COMPLETELY RUNNING
271
272        __cfadbg_print_safe(runtime_core, "Kernel : Started\n--------------------------------------------------\n\n");
273
274        /* paranoid */ verify( ! __preemption_enabled() );
275        enable_interrupts();
276        /* paranoid */ verify( __preemption_enabled() );
277
278}
279
280extern "C"{
281        void pthread_delete_kernel_threads_();
282}
283
284
285static void __kernel_shutdown(void) {
286        if(!cfa_main_returned) return;
287
288        //delete kernel threads for pthread_concurrency
289        pthread_delete_kernel_threads_();
290
291        /* paranoid */ verify( __preemption_enabled() );
292        disable_interrupts();
293        /* paranoid */ verify( ! __preemption_enabled() );
294
295        __cfadbg_print_safe(runtime_core, "\n--------------------------------------------------\nKernel : Shutting down\n");
296
297        // SKULLDUGGERY: Notify the mainProcessor it needs to terminates.
298        // When its coroutine terminates, it return control to the mainThread
299        // which is currently here
300        /* paranoid */ verify( !__atomic_load_n(&mainProcessor->do_terminate, __ATOMIC_ACQUIRE) );
301        __atomic_store_n(&mainProcessor->do_terminate, true, __ATOMIC_RELEASE);
302        __wake_proc( mainProcessor );
303        __kernel_last_resume( __cfaabi_tls.this_processor );
304        mainThread->self_cor.state = Halted;
305
306        // THE SYSTEM IS NOW COMPLETELY STOPPED
307
308        // Disable preemption
309        __kernel_alarm_shutdown();
310
311        #if !defined( __CFA_NO_STATISTICS__ )
312                __stats_t * st = (__stats_t *)& storage_mainProcStats;
313                __tally_stats(mainCluster->stats, st);
314                if( 0 != mainProcessor->print_stats ) {
315                        __print_stats( st, mainProcessor->print_stats, "Processor ", mainProcessor->name, (void*)mainProcessor );
316                }
317                #if defined(CFA_STATS_ARRAY)
318                        __flush_stat( st, "Processor", mainProcessor );
319                #endif
320        #endif
321
322        mainProcessor->local_data = 0p;
323
324        unregister_tls( mainProcessor );
325        __cfa_io_stop( mainProcessor );
326
327        // Destroy the main processor and its context in reverse order of construction
328        // These were manually constructed so we need manually destroy them
329        void ^?{}(processor & this) with( this ){
330                deinit( this );
331
332                /* paranoid */ verify( this.do_terminate == true );
333                __cfadbg_print_safe(runtime_core, "Kernel : destroyed main processor context %p\n", &runner);
334        }
335
336        ^(*mainProcessor){};
337
338        // Final step, destroy the main thread since it is no longer needed
339
340        // Since we provided a stack to this taxk it will not destroy anything
341        /* paranoid */ verify(mainThread->self_cor.stack.storage == (__stack_t*)(((uintptr_t)&storage_mainThreadCtx)| 0x1));
342        ^(*mainThread){};
343
344        ^(*mainCluster){};
345
346        ^(__scheduler_lock){};
347
348        ^(__cfa_dbg_global_clusters.list){};
349        ^(__cfa_dbg_global_clusters.lock){};
350
351        __cfadbg_print_safe(runtime_core, "Kernel : Shutdown complete\n");
352}
353
354//=============================================================================================
355// Kernel Initial Scheduling logic
356//=============================================================================================
357
358// Context invoker for processors
359// This is the entry point for processors (kernel threads) *except* for the main processor
360// It effectively constructs a coroutine by stealing the pthread stack
361static void * __invoke_processor(void * arg) {
362        #if !defined( __CFA_NO_STATISTICS__ )
363                __stats_t local_stats;
364                __init_stats( &local_stats );
365                __cfaabi_tls.this_stats = &local_stats;
366        #endif
367
368        processor * proc = (processor *) arg;
369        __cfaabi_tls.this_processor = proc;
370        __cfaabi_tls.this_thread    = 0p;
371        __cfaabi_tls.preemption_state.[enabled, disable_count] = [false, 1];
372        proc->local_data = &__cfaabi_tls;
373
374        heapManagerCtor();                                                                      // initialize heap
375
376        __cfa_io_start( proc );
377        register_tls( proc );
378
379        // SKULLDUGGERY: We want to create a context for the processor coroutine
380        // which is needed for the 2-step context switch. However, there is no reason
381        // to waste the perfectly valid stack create by pthread.
382        current_stack_info_t info;
383        __stack_t ctx;
384        info.storage = &ctx;
385        (proc->runner){ proc, &info };
386
387        __cfadbg_print_safe(runtime_core, "Coroutine : created stack %p\n", get_coroutine(proc->runner)->stack.storage);
388
389        //Set global state
390        __cfaabi_tls.this_thread = 0p;
391
392        //We now have a proper context from which to schedule threads
393        __cfadbg_print_safe(runtime_core, "Kernel : core %p created (%p, %p)\n", proc, &proc->runner, &ctx);
394
395        // SKULLDUGGERY: Since the coroutine doesn't have its own stack, we can't
396        // resume it to start it like it normally would, it will just context switch
397        // back to here. Instead directly call the main since we already are on the
398        // appropriate stack.
399        get_coroutine(proc->runner)->state = Active;
400        main( proc->runner );
401        get_coroutine(proc->runner)->state = Halted;
402
403        // Main routine of the core returned, the core is now fully terminated
404        __cfadbg_print_safe(runtime_core, "Kernel : core %p main ended (%p)\n", proc, &proc->runner);
405
406        #if !defined(__CFA_NO_STATISTICS__)
407                __tally_stats(proc->cltr->stats, &local_stats);
408                if( 0 != proc->print_stats ) {
409                        __print_stats( &local_stats, proc->print_stats, "Processor ", proc->name, (void*)proc );
410                }
411                #if defined(CFA_STATS_ARRAY)
412                        __flush_stat( &local_stats, "Processor", proc );
413                #endif
414        #endif
415
416        proc->local_data = 0p;
417
418        unregister_tls( proc );
419        __cfa_io_stop( proc );
420
421        heapManagerDtor();                                                                      // de-initialize heap
422
423        return 0p;
424}
425
426static void __kernel_first_resume( processor * this ) {
427        thread$ * src = mainThread;
428        coroutine$ * dst = get_coroutine(this->runner);
429
430        /* paranoid */ verify( ! __preemption_enabled() );
431
432        __cfaabi_tls.this_thread->curr_cor = dst;
433        __stack_prepare( &dst->stack, DEFAULT_STACK_SIZE );
434        __cfactx_start(main, dst, this->runner, __cfactx_invoke_coroutine);
435
436        /* paranoid */ verify( ! __preemption_enabled() );
437
438        dst->last = &src->self_cor;
439        dst->starter = dst->starter ? dst->starter : &src->self_cor;
440
441        // make sure the current state is still correct
442        /* paranoid */ verify(src->state == Ready);
443        src->corctx_flag = true;
444
445        // context switch to specified coroutine
446        verify( dst->context.SP );
447        __cfactx_switch( &src->context, &dst->context );
448        // when __cfactx_switch returns we are back in the src coroutine
449
450        mainThread->curr_cor = &mainThread->self_cor;
451
452        // make sure the current state has been update
453        /* paranoid */ verify(src->state == Active);
454
455        /* paranoid */ verify( ! __preemption_enabled() );
456}
457
458// KERNEL_ONLY
459static void __kernel_last_resume( processor * this ) {
460        coroutine$ * src = &mainThread->self_cor;
461        coroutine$ * dst = get_coroutine(this->runner);
462
463        /* paranoid */ verify( ! __preemption_enabled() );
464        /* paranoid */ verify( dst->starter == src );
465        /* paranoid */ verify( dst->context.SP );
466
467        // SKULLDUGGERY in debug the processors check that the
468        // stack is still within the limit of the stack limits after running a thread.
469        // that check doesn't make sense if we context switch to the processor using the
470        // coroutine semantics. Since this is a special case, use the current context
471        // info to populate these fields.
472        __cfaabi_dbg_debug_do(
473                __stack_context_t ctx;
474                CtxGet( ctx );
475                mainThread->context.SP = ctx.SP;
476                mainThread->context.FP = ctx.FP;
477        )
478
479        // context switch to the processor
480        __cfactx_switch( &src->context, &dst->context );
481}
482
483
484//=============================================================================================
485// Kernel Object Constructors logic
486//=============================================================================================
487//-----------------------------------------------------------------------------
488// Main thread construction
489static void ?{}( coroutine$ & this, current_stack_info_t * info) with( this ) {
490        stack.storage = info->storage;
491        with(*stack.storage) {
492                limit     = info->limit;
493                base      = info->base;
494        }
495        __attribute__((may_alias)) intptr_t * istorage = (intptr_t*) &stack.storage;
496        *istorage |= 0x1;
497        name = "Main Thread";
498        state = Start;
499        starter = 0p;
500        last = 0p;
501        cancellation = 0p;
502}
503
504static void ?{}( thread$ & this, current_stack_info_t * info) with( this ) {
505        ticket = TICKET_RUNNING;
506        state = Start;
507        self_cor{ info };
508        curr_cor = &self_cor;
509        curr_cluster = mainCluster;
510        self_mon.owner = &this;
511        self_mon.recursion = 1;
512        self_mon_p = &self_mon;
513        rdy_link.next = 0p;
514        rdy_link.ts   = MAX;
515        preferred = ready_queue_new_preferred();
516        last_proc = 0p;
517        random_state = __global_random_mask ? __global_random_prime : __global_random_prime ^ rdtscl();
518        #if defined( __CFA_WITH_VERIFY__ )
519                executing = 0p;
520                canary = 0x0D15EA5E0D15EA5Ep;
521        #endif
522
523        doregister(curr_cluster, this);
524
525        monitors{ &self_mon_p, 1, (fptr_t)0 };
526}
527
528//-----------------------------------------------------------------------------
529// Processor
530// Construct the processor context of non-main processors
531static void ?{}(processorCtx_t & this, processor * proc, current_stack_info_t * info) {
532        (this.self){ info };
533        this.proc = proc;
534}
535
536static void init(processor & this, const char name[], cluster & _cltr, thread$ * initT) with( this ) {
537        this.name = name;
538        this.cltr = &_cltr;
539        this.rdq.its = 0;
540        this.rdq.itr = 0;
541        this.rdq.id  = 0;
542        this.rdq.target = MAX;
543        this.rdq.last = MAX;
544        this.rdq.cpu = 0;
545        // this.rdq.cutoff = 0ull;
546        do_terminate = false;
547        preemption_alarm = 0p;
548        pending_preemption = false;
549
550        this.io.ctx = 0p;
551        this.io.pending = false;
552        this.io.dirty   = false;
553
554        this.init.thrd = initT;
555
556        this.local_data = 0p;
557
558        idle_wctx.evfd = eventfd(0, 0);
559        if (idle_wctx.evfd < 0) {
560                abort("KERNEL ERROR: PROCESSOR EVENTFD - %s\n", strerror(errno));
561        }
562
563        idle_wctx.sem = 0;
564        idle_wctx.wake__time = 0;
565
566        // I'm assuming these two are reserved for standard input and output
567        // so I'm using them as sentinels with idle_wctx.
568        /* paranoid */ verify( idle_wctx.evfd != 0 );
569        /* paranoid */ verify( idle_wctx.evfd != 1 );
570
571        #if !defined(__CFA_NO_STATISTICS__)
572                print_stats = 0;
573                print_halts = false;
574        #endif
575
576        __cfadbg_print_safe(runtime_core, "Kernel : core %p created\n", &this);
577}
578
579// Not a ctor, it just preps the destruction but should not destroy members
580static void deinit(processor & this) {
581        close(this.idle_wctx.evfd);
582}
583
584void ?{}(processor & this, const char name[], cluster & _cltr, thread$ * initT) libcfa_public {
585        ( this.terminated ){};
586        ( this.runner ){};
587
588        disable_interrupts();
589                init( this, name, _cltr, initT );
590        enable_interrupts();
591
592        __cfadbg_print_safe(runtime_core, "Kernel : Starting core %p\n", &this);
593
594        this.stack = __create_pthread( &this.kernel_thread, __invoke_processor, (void *)&this );
595}
596
597void ?{}(processor & this, const char name[], cluster & _cltr) libcfa_public {
598        (this){name, _cltr, 0p};
599}
600
601extern size_t __page_size;
602void ^?{}(processor & this) libcfa_public with( this ) {
603        /* paranoid */ verify( !__atomic_load_n(&do_terminate, __ATOMIC_ACQUIRE) );
604        __cfadbg_print_safe(runtime_core, "Kernel : core %p signaling termination\n", &this);
605
606        __atomic_store_n(&do_terminate, true, __ATOMIC_RELAXED);
607        __disable_interrupts_checked();
608                __wake_proc( &this );
609        __enable_interrupts_checked();
610
611        wait( terminated );
612        /* paranoid */ verify( active_processor() != &this);
613
614        __destroy_pthread( kernel_thread, this.stack, 0p );
615
616        disable_interrupts();
617                deinit( this );
618        enable_interrupts();
619}
620
621//-----------------------------------------------------------------------------
622// Cluster
623static void ?{}(__cluster_proc_list & this) {
624        this.fdw   = 0p;
625        this.idle  = 0;
626        this.total = 0;
627}
628
629void ?{}(cluster & this, const char name[], Duration preemption_rate, unsigned num_io, const io_context_params & io_params) libcfa_public with( this ) {
630        this.name = name;
631        this.preemption_rate = preemption_rate;
632        this.sched.readyQ.data = 0p;
633        this.sched.readyQ.tscs = 0p;
634        this.sched.readyQ.count = 0;
635        this.sched.io.tscs = 0p;
636        this.sched.io.data = 0p;
637        this.sched.caches = 0p;
638
639        #if !defined(__CFA_NO_STATISTICS__)
640                print_stats = 0;
641                stats = alloc();
642                __init_stats( stats );
643        #endif
644
645        threads{};
646
647        io.arbiter = create();
648        io.params = io_params;
649
650        managed.procs = 0p;
651        managed.cnt = 0;
652
653        doregister(this);
654
655        // Lock the RWlock so no-one pushes/pops while we are changing the queue
656        disable_interrupts();
657        uint_fast32_t last_size = ready_mutate_lock();
658
659                // Adjust the ready queue size
660                ready_queue_grow( &this );
661
662        // Unlock the RWlock
663        ready_mutate_unlock( last_size );
664        enable_interrupts( false ); // Don't poll, could be in main cluster
665}
666
667void ^?{}(cluster & this) libcfa_public {
668        set_concurrency( this, 0 );
669
670        destroy(this.io.arbiter);
671
672        // Lock the RWlock so no-one pushes/pops while we are changing the queue
673        disable_interrupts();
674        uint_fast32_t last_size = ready_mutate_lock();
675
676                // Adjust the ready queue size
677                ready_queue_shrink( &this );
678
679        // Unlock the RWlock
680        ready_mutate_unlock( last_size );
681
682        ready_queue_close( &this );
683        /* paranoid */ verify( this.sched.readyQ.data == 0p );
684        /* paranoid */ verify( this.sched.readyQ.tscs == 0p );
685        /* paranoid */ verify( this.sched.readyQ.count == 0 );
686        /* paranoid */ verify( this.sched.io.tscs == 0p );
687        /* paranoid */ verify( this.sched.caches == 0p );
688
689        enable_interrupts( false ); // Don't poll, could be in main cluster
690
691
692        #if !defined(__CFA_NO_STATISTICS__)
693                if( 0 != this.print_stats ) {
694                        __print_stats( this.stats, this.print_stats, "Cluster", this.name, (void*)&this );
695                }
696                #if defined(CFA_STATS_ARRAY)
697                        __flush_stat( this.stats, "Cluster", &this );
698                #endif
699                free( this.stats );
700        #endif
701
702        unregister(this);
703}
704
705//=============================================================================================
706// Miscellaneous Initialization
707//=============================================================================================
708//-----------------------------------------------------------------------------
709// Global Queues
710static void doregister( cluster     & cltr ) {
711        lock      ( __cfa_dbg_global_clusters.lock __cfaabi_dbg_ctx2);
712        push_front( __cfa_dbg_global_clusters.list, cltr );
713        unlock    ( __cfa_dbg_global_clusters.lock );
714}
715
716static void unregister( cluster     & cltr ) {
717        lock  ( __cfa_dbg_global_clusters.lock __cfaabi_dbg_ctx2);
718        remove( __cfa_dbg_global_clusters.list, cltr );
719        unlock( __cfa_dbg_global_clusters.lock );
720}
721
722void doregister( cluster * cltr, thread$ & thrd ) {
723        lock      (cltr->thread_list_lock __cfaabi_dbg_ctx2);
724        cltr->nthreads += 1;
725        insert_first(cltr->threads, thrd);
726        unlock    (cltr->thread_list_lock);
727}
728
729void unregister( cluster * cltr, thread$ & thrd ) {
730        lock  (cltr->thread_list_lock __cfaabi_dbg_ctx2);
731        {
732                tytagref( dlink(thread$), dlink(thread$) ) ?`inner( thread$ & this ) = void;
733                with( DLINK_VIA( thread$, struct __thread_user_link ) )
734                        remove( thrd );
735                cltr->nthreads -= 1;
736        }
737        unlock(cltr->thread_list_lock);
738}
739
740static void register_tls( processor * this ) {
741        // Register and Lock the RWlock so no-one pushes/pops while we are changing the queue
742        uint_fast32_t last_size;
743        [this->unique_id, last_size] = ready_mutate_register();
744
745                this->rdq.cpu = __kernel_getcpu();
746
747                this->cltr->procs.total += 1u;
748                insert_last(this->cltr->procs.actives, *this);
749
750                // Adjust the ready queue size
751                ready_queue_grow( this->cltr );
752
753        // Unlock the RWlock
754        ready_mutate_unlock( last_size );
755}
756
757
758static void unregister_tls( processor * this ) {
759        // Lock the RWlock so no-one pushes/pops while we are changing the queue
760        uint_fast32_t last_size = ready_mutate_lock();
761                this->cltr->procs.total -= 1u;
762                remove(*this);
763
764                // clear the cluster so nothing gets pushed to local queues
765                cluster * cltr = this->cltr;
766                this->cltr = 0p;
767
768                // Adjust the ready queue size
769                ready_queue_shrink( cltr );
770
771        // Unlock the RWlock and unregister: we don't need the read_lock any more
772        ready_mutate_unregister( this->unique_id, last_size );
773}
774
775static void check( int ret, const char func[] ) {
776        if ( ret ) {                                                                            // pthread routines return errno values
777                abort( "%s : internal error, error(%d) %s.", func, ret, strerror( ret ) );
778        } // if
779} // Abort
780
781void * __create_pthread( pthread_t * pthread, void * (*start)(void *), void * arg ) {
782        pthread_attr_t attr;
783
784        check( __cfaabi_pthread_attr_init( &attr ), "pthread_attr_init" ); // initialize attribute
785
786        size_t stacksize = max( PTHREAD_STACK_MIN, DEFAULT_STACK_SIZE );
787
788        void * stack;
789        #if CFA_PROCESSOR_USE_MMAP
790                stacksize = ceiling( stacksize, __page_size ) + __page_size;
791                stack = mmap(0p, stacksize, __map_prot, MAP_PRIVATE | MAP_ANONYMOUS, 0, 0);
792                if(stack == ((void*)-1)) {
793                        abort( "pthread stack creation : internal error, mmap failure, error(%d) %s.", errno, strerror( errno ) );
794                }
795                if ( mprotect( stack, __page_size, PROT_NONE ) == -1 ) {
796                        abort( "pthread stack creation : internal error, mprotect failure, error(%d) %s.", errno, strerror( errno ) );
797                } // if
798        #else
799                __cfaabi_dbg_debug_do(
800                        stack = memalign( __page_size, stacksize + __page_size );
801                        // pthread has no mechanism to create the guard page in user supplied stack.
802                        if ( mprotect( stack, __page_size, PROT_NONE ) == -1 ) {
803                                abort( "mprotect : internal error, mprotect failure, error(%d) %s.", errno, strerror( errno ) );
804                        } // if
805                );
806                __cfaabi_dbg_no_debug_do(
807                        stack = malloc( stacksize );
808                );
809        #endif
810
811        check( __cfaabi_pthread_attr_setstack( &attr, stack, stacksize ), "pthread_attr_setstack" );
812        check( __cfaabi_pthread_create( pthread, &attr, start, arg ), "pthread_create" );
813        return stack;
814}
815
816void __destroy_pthread( pthread_t pthread, void * stack, void ** retval ) {
817        int err = __cfaabi_pthread_join( pthread, retval );
818        if( err != 0 ) abort("KERNEL ERROR: joining pthread %p caused error %s\n", (void*)pthread, strerror(err));
819
820        #if CFA_PROCESSOR_USE_MMAP
821                pthread_attr_t attr;
822
823                check( __cfaabi_pthread_attr_init( &attr ), "pthread_attr_init" ); // initialize attribute
824
825                size_t stacksize;
826                // default stack size, normally defined by shell limit
827                check( __cfaabi_pthread_attr_getstacksize( &attr, &stacksize ), "pthread_attr_getstacksize" );
828                assert( stacksize >= PTHREAD_STACK_MIN );
829                stacksize += __page_size;
830
831                if(munmap(stack, stacksize) == -1) {
832                        abort( "pthread stack destruction : internal error, munmap failure, error(%d) %s.", errno, strerror( errno ) );
833                }
834        #else
835                __cfaabi_dbg_debug_do(
836                        // pthread has no mechanism to create the guard page in user supplied stack.
837                        if ( mprotect( stack, __page_size, __map_prot ) == -1 ) {
838                                abort( "mprotect : internal error, mprotect failure, error(%d) %s.", errno, strerror( errno ) );
839                        } // if
840                );
841                free( stack );
842        #endif
843}
844
845unsigned set_concurrency( cluster & this, unsigned new ) libcfa_public {
846        unsigned old = this.managed.cnt;
847
848        __cfadbg_print_safe(runtime_core, "Kernel : resizing cluster from %u to %u\n", old, (unsigned)new);
849
850        // Delete all the old unneeded procs
851        if(old > new) for(i; (unsigned)new ~ old) {
852                __cfadbg_print_safe(runtime_core, "Kernel : destroying %u\n", i);
853                delete( this.managed.procs[i] );
854        }
855
856        // Allocate new array (uses realloc and memcpies the data)
857        this.managed.procs = alloc( new, this.managed.procs`realloc );
858        this.managed.cnt = new;
859
860        // Create the desired new procs
861        if(old < new) for(i; old ~ new) {
862                __cfadbg_print_safe(runtime_core, "Kernel : constructing %u\n", i);
863                (*(this.managed.procs[i] = alloc())){ this };
864        }
865
866        // return the old count
867        return old;
868}
869
870#if defined(__CFA_WITH_VERIFY__)
871static bool verify_fwd_bck_rng(void) {
872        __cfaabi_tls.ready_rng.fwd_seed = 25214903917_l64u * (rdtscl() ^ (uintptr_t)&verify_fwd_bck_rng);
873
874        unsigned values[10];
875        for(i; 10) {
876                values[i] = __tls_rand_fwd();
877        }
878
879        __tls_rand_advance_bck();
880
881        for ( i; 9 -~= 0 ) {
882                if(values[i] != __tls_rand_bck()) {
883                        return false;
884                }
885        }
886
887        return true;
888}
889#endif
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