[7768b8d] | 1 | //
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| 2 | // Cforall Version 1.0.0 Copyright (C) 2019 University of Waterloo
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| 3 | //
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| 4 | // The contents of this file are covered under the licence agreement in the
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| 5 | // file "LICENCE" distributed with Cforall.
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| 6 | //
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| 7 | // ready_queue.cfa --
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| 8 | //
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| 9 | // Author : Thierry Delisle
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| 10 | // Created On : Mon Nov dd 16:29:18 2019
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| 11 | // Last Modified By :
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| 12 | // Last Modified On :
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| 13 | // Update Count :
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| 14 | //
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| 15 |
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| 16 | #define __cforall_thread__
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[1b143de] | 17 | // #define __CFA_DEBUG_PRINT_READY_QUEUE__
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[7768b8d] | 18 |
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[7a2972b9] | 19 | // #define USE_MPSC
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[1eb239e4] | 20 |
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[9cc3a18] | 21 | #define USE_RELAXED_FIFO
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| 22 | // #define USE_WORK_STEALING
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| 23 |
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[7768b8d] | 24 | #include "bits/defs.hfa"
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| 25 | #include "kernel_private.hfa"
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| 26 |
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| 27 | #define _GNU_SOURCE
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| 28 | #include "stdlib.hfa"
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[61d7bec] | 29 | #include "math.hfa"
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[7768b8d] | 30 |
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[04b5cef] | 31 | #include <unistd.h>
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| 32 |
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[13c5e19] | 33 | #include "ready_subqueue.hfa"
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| 34 |
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[7768b8d] | 35 | static const size_t cache_line_size = 64;
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| 36 |
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[d2fadeb] | 37 | #if !defined(__CFA_NO_STATISTICS__)
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| 38 | #define __STATS(...) __VA_ARGS__
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| 39 | #else
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| 40 | #define __STATS(...)
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| 41 | #endif
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| 42 |
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[dca5802] | 43 | // No overriden function, no environment variable, no define
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| 44 | // fall back to a magic number
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| 45 | #ifndef __CFA_MAX_PROCESSORS__
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[b388ee81] | 46 | #define __CFA_MAX_PROCESSORS__ 1024
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[dca5802] | 47 | #endif
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[7768b8d] | 48 |
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[9cc3a18] | 49 | #if defined(USE_RELAXED_FIFO)
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| 50 | #define BIAS 4
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| 51 | #define READYQ_SHARD_FACTOR 4
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[5f6a172] | 52 | #define SEQUENTIAL_SHARD 1
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[9cc3a18] | 53 | #elif defined(USE_WORK_STEALING)
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| 54 | #define READYQ_SHARD_FACTOR 2
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[5f6a172] | 55 | #define SEQUENTIAL_SHARD 2
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[9cc3a18] | 56 | #else
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| 57 | #error no scheduling strategy selected
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| 58 | #endif
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| 59 |
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[d2fadeb] | 60 | static inline struct $thread * try_pop(struct cluster * cltr, unsigned w __STATS(, __stats_readyQ_pop_t & stats));
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| 61 | static inline struct $thread * try_pop(struct cluster * cltr, unsigned i, unsigned j __STATS(, __stats_readyQ_pop_t & stats));
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[431cd4f] | 62 | static inline struct $thread * search(struct cluster * cltr);
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[d2fadeb] | 63 | static inline [unsigned, bool] idx_from_r(unsigned r, unsigned preferred);
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[9cc3a18] | 64 |
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[04b5cef] | 65 |
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[dca5802] | 66 | // returns the maximum number of processors the RWLock support
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[7768b8d] | 67 | __attribute__((weak)) unsigned __max_processors() {
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| 68 | const char * max_cores_s = getenv("CFA_MAX_PROCESSORS");
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| 69 | if(!max_cores_s) {
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[504a7dc] | 70 | __cfadbg_print_nolock(ready_queue, "No CFA_MAX_PROCESSORS in ENV\n");
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[dca5802] | 71 | return __CFA_MAX_PROCESSORS__;
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[7768b8d] | 72 | }
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| 73 |
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| 74 | char * endptr = 0p;
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| 75 | long int max_cores_l = strtol(max_cores_s, &endptr, 10);
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| 76 | if(max_cores_l < 1 || max_cores_l > 65535) {
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[504a7dc] | 77 | __cfadbg_print_nolock(ready_queue, "CFA_MAX_PROCESSORS out of range : %ld\n", max_cores_l);
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[dca5802] | 78 | return __CFA_MAX_PROCESSORS__;
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[7768b8d] | 79 | }
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| 80 | if('\0' != *endptr) {
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[504a7dc] | 81 | __cfadbg_print_nolock(ready_queue, "CFA_MAX_PROCESSORS not a decimal number : %s\n", max_cores_s);
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[dca5802] | 82 | return __CFA_MAX_PROCESSORS__;
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[7768b8d] | 83 | }
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| 84 |
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| 85 | return max_cores_l;
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| 86 | }
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| 87 |
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| 88 | //=======================================================================
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| 89 | // Cluster wide reader-writer lock
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| 90 | //=======================================================================
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[b388ee81] | 91 | void ?{}(__scheduler_RWLock_t & this) {
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[7768b8d] | 92 | this.max = __max_processors();
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| 93 | this.alloc = 0;
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| 94 | this.ready = 0;
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| 95 | this.lock = false;
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| 96 | this.data = alloc(this.max);
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| 97 |
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| 98 | /*paranoid*/ verify( 0 == (((uintptr_t)(this.data )) % 64) );
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| 99 | /*paranoid*/ verify( 0 == (((uintptr_t)(this.data + 1)) % 64) );
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| 100 | /*paranoid*/ verify(__atomic_is_lock_free(sizeof(this.alloc), &this.alloc));
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| 101 | /*paranoid*/ verify(__atomic_is_lock_free(sizeof(this.ready), &this.ready));
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| 102 |
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| 103 | }
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[b388ee81] | 104 | void ^?{}(__scheduler_RWLock_t & this) {
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[7768b8d] | 105 | free(this.data);
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| 106 | }
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| 107 |
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[9b1dcc2] | 108 | void ?{}( __scheduler_lock_id_t & this, __processor_id_t * proc ) {
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[7768b8d] | 109 | this.handle = proc;
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| 110 | this.lock = false;
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[64a7146] | 111 | #ifdef __CFA_WITH_VERIFY__
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| 112 | this.owned = false;
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| 113 | #endif
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[7768b8d] | 114 | }
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| 115 |
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| 116 | //=======================================================================
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| 117 | // Lock-Free registering/unregistering of threads
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[a33c113] | 118 | void register_proc_id( struct __processor_id_t * proc ) with(*__scheduler_lock) {
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[b388ee81] | 119 | __cfadbg_print_safe(ready_queue, "Kernel : Registering proc %p for RW-Lock\n", proc);
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[504a7dc] | 120 |
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[7768b8d] | 121 | // Step - 1 : check if there is already space in the data
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| 122 | uint_fast32_t s = ready;
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| 123 |
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| 124 | // Check among all the ready
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| 125 | for(uint_fast32_t i = 0; i < s; i++) {
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[9b1dcc2] | 126 | __processor_id_t * null = 0p; // Re-write every loop since compare thrashes it
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[7768b8d] | 127 | if( __atomic_load_n(&data[i].handle, (int)__ATOMIC_RELAXED) == null
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| 128 | && __atomic_compare_exchange_n( &data[i].handle, &null, proc, false, __ATOMIC_SEQ_CST, __ATOMIC_SEQ_CST)) {
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| 129 | /*paranoid*/ verify(i < ready);
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[64a7146] | 130 | /*paranoid*/ verify(0 == (__alignof__(data[i]) % cache_line_size));
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[7768b8d] | 131 | /*paranoid*/ verify((((uintptr_t)&data[i]) % cache_line_size) == 0);
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[a33c113] | 132 | proc->id = i;
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[7768b8d] | 133 | }
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| 134 | }
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| 135 |
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[b388ee81] | 136 | if(max <= alloc) abort("Trying to create more than %ud processors", __scheduler_lock->max);
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[7768b8d] | 137 |
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| 138 | // Step - 2 : F&A to get a new spot in the array.
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| 139 | uint_fast32_t n = __atomic_fetch_add(&alloc, 1, __ATOMIC_SEQ_CST);
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[b388ee81] | 140 | if(max <= n) abort("Trying to create more than %ud processors", __scheduler_lock->max);
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[7768b8d] | 141 |
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| 142 | // Step - 3 : Mark space as used and then publish it.
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[9b1dcc2] | 143 | __scheduler_lock_id_t * storage = (__scheduler_lock_id_t *)&data[n];
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[7768b8d] | 144 | (*storage){ proc };
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[fd9b524] | 145 | while() {
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[7768b8d] | 146 | unsigned copy = n;
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| 147 | if( __atomic_load_n(&ready, __ATOMIC_RELAXED) == n
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| 148 | && __atomic_compare_exchange_n(&ready, ©, n + 1, true, __ATOMIC_SEQ_CST, __ATOMIC_SEQ_CST))
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| 149 | break;
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[fd9b524] | 150 | Pause();
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[7768b8d] | 151 | }
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| 152 |
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[1b143de] | 153 | __cfadbg_print_safe(ready_queue, "Kernel : Registering proc %p done, id %lu\n", proc, n);
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[504a7dc] | 154 |
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[7768b8d] | 155 | // Return new spot.
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| 156 | /*paranoid*/ verify(n < ready);
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[37ba662] | 157 | /*paranoid*/ verify(__alignof__(data[n]) == (2 * cache_line_size));
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[7768b8d] | 158 | /*paranoid*/ verify((((uintptr_t)&data[n]) % cache_line_size) == 0);
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[a33c113] | 159 | proc->id = n;
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[7768b8d] | 160 | }
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| 161 |
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[a33c113] | 162 | void unregister_proc_id( struct __processor_id_t * proc ) with(*__scheduler_lock) {
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[7768b8d] | 163 | unsigned id = proc->id;
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| 164 | /*paranoid*/ verify(id < ready);
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| 165 | /*paranoid*/ verify(proc == __atomic_load_n(&data[id].handle, __ATOMIC_RELAXED));
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| 166 | __atomic_store_n(&data[id].handle, 0p, __ATOMIC_RELEASE);
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[504a7dc] | 167 |
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| 168 | __cfadbg_print_safe(ready_queue, "Kernel : Unregister proc %p\n", proc);
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[7768b8d] | 169 | }
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| 170 |
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| 171 | //-----------------------------------------------------------------------
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| 172 | // Writer side : acquire when changing the ready queue, e.g. adding more
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| 173 | // queues or removing them.
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[b388ee81] | 174 | uint_fast32_t ready_mutate_lock( void ) with(*__scheduler_lock) {
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[8fc652e0] | 175 | /* paranoid */ verify( ! __preemption_enabled() );
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[62502cc4] | 176 |
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[7768b8d] | 177 | // Step 1 : lock global lock
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| 178 | // It is needed to avoid processors that register mid Critical-Section
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| 179 | // to simply lock their own lock and enter.
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| 180 | __atomic_acquire( &lock );
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| 181 |
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| 182 | // Step 2 : lock per-proc lock
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| 183 | // Processors that are currently being registered aren't counted
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| 184 | // but can't be in read_lock or in the critical section.
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| 185 | // All other processors are counted
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| 186 | uint_fast32_t s = ready;
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| 187 | for(uint_fast32_t i = 0; i < s; i++) {
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| 188 | __atomic_acquire( &data[i].lock );
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| 189 | }
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| 190 |
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[8fc652e0] | 191 | /* paranoid */ verify( ! __preemption_enabled() );
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[7768b8d] | 192 | return s;
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| 193 | }
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| 194 |
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[b388ee81] | 195 | void ready_mutate_unlock( uint_fast32_t last_s ) with(*__scheduler_lock) {
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[8fc652e0] | 196 | /* paranoid */ verify( ! __preemption_enabled() );
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[62502cc4] | 197 |
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[7768b8d] | 198 | // Step 1 : release local locks
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| 199 | // This must be done while the global lock is held to avoid
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| 200 | // threads that where created mid critical section
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| 201 | // to race to lock their local locks and have the writer
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| 202 | // immidiately unlock them
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| 203 | // Alternative solution : return s in write_lock and pass it to write_unlock
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| 204 | for(uint_fast32_t i = 0; i < last_s; i++) {
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| 205 | verify(data[i].lock);
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| 206 | __atomic_store_n(&data[i].lock, (bool)false, __ATOMIC_RELEASE);
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| 207 | }
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| 208 |
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| 209 | // Step 2 : release global lock
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| 210 | /*paranoid*/ assert(true == lock);
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| 211 | __atomic_store_n(&lock, (bool)false, __ATOMIC_RELEASE);
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[62502cc4] | 212 |
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[8fc652e0] | 213 | /* paranoid */ verify( ! __preemption_enabled() );
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[7768b8d] | 214 | }
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| 215 |
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| 216 | //=======================================================================
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[9cc3a18] | 217 | // Cforall Ready Queue used for scheduling
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[b798713] | 218 | //=======================================================================
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| 219 | void ?{}(__ready_queue_t & this) with (this) {
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[28d73c1] | 220 | lanes.data = 0p;
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[9cc3a18] | 221 | lanes.tscs = 0p;
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[28d73c1] | 222 | lanes.count = 0;
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[b798713] | 223 | }
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| 224 |
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| 225 | void ^?{}(__ready_queue_t & this) with (this) {
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[5f6a172] | 226 | verify( SEQUENTIAL_SHARD == lanes.count );
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[dca5802] | 227 | free(lanes.data);
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[9cc3a18] | 228 | free(lanes.tscs);
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[dca5802] | 229 | }
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| 230 |
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[64a7146] | 231 | //-----------------------------------------------------------------------
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[431cd4f] | 232 | #if defined(USE_RELAXED_FIFO)
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| 233 | //-----------------------------------------------------------------------
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| 234 | // get index from random number with or without bias towards queues
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| 235 | static inline [unsigned, bool] idx_from_r(unsigned r, unsigned preferred) {
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| 236 | unsigned i;
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| 237 | bool local;
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| 238 | unsigned rlow = r % BIAS;
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| 239 | unsigned rhigh = r / BIAS;
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| 240 | if((0 != rlow) && preferred >= 0) {
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| 241 | // (BIAS - 1) out of BIAS chances
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| 242 | // Use perferred queues
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| 243 | i = preferred + (rhigh % READYQ_SHARD_FACTOR);
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| 244 | local = true;
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| 245 | }
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| 246 | else {
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| 247 | // 1 out of BIAS chances
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| 248 | // Use all queues
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| 249 | i = rhigh;
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| 250 | local = false;
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| 251 | }
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| 252 | return [i, local];
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| 253 | }
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| 254 |
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| 255 | __attribute__((hot)) void push(struct cluster * cltr, struct $thread * thrd) with (cltr->ready_queue) {
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| 256 | __cfadbg_print_safe(ready_queue, "Kernel : Pushing %p on cluster %p\n", thrd, cltr);
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[1b143de] | 257 |
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[431cd4f] | 258 | const bool external = (!kernelTLS().this_processor) || (cltr != kernelTLS().this_processor->cltr);
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| 259 | /* paranoid */ verify(external || kernelTLS().this_processor->rdq.id < lanes.count );
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[fd1f65e] | 260 |
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[431cd4f] | 261 | // write timestamp
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| 262 | thrd->link.ts = rdtscl();
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[b798713] | 263 |
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[431cd4f] | 264 | bool local;
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| 265 | int preferred = external ? -1 : kernelTLS().this_processor->rdq.id;
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[52769ba] | 266 |
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[431cd4f] | 267 | // Try to pick a lane and lock it
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| 268 | unsigned i;
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| 269 | do {
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| 270 | // Pick the index of a lane
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| 271 | unsigned r = __tls_rand_fwd();
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| 272 | [i, local] = idx_from_r(r, preferred);
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[772411a] | 273 |
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[431cd4f] | 274 | i %= __atomic_load_n( &lanes.count, __ATOMIC_RELAXED );
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| 275 |
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| 276 | #if !defined(__CFA_NO_STATISTICS__)
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[d2fadeb] | 277 | if(unlikely(external)) __atomic_fetch_add(&cltr->stats->ready.push.extrn.attempt, 1, __ATOMIC_RELAXED);
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| 278 | else if(local) __tls_stats()->ready.push.local.attempt++;
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| 279 | else __tls_stats()->ready.push.share.attempt++;
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[431cd4f] | 280 | #endif
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[b798713] | 281 |
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[431cd4f] | 282 | #if defined(USE_MPSC)
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| 283 | // mpsc always succeeds
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| 284 | } while( false );
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| 285 | #else
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| 286 | // If we can't lock it retry
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| 287 | } while( !__atomic_try_acquire( &lanes.data[i].lock ) );
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| 288 | #endif
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| 289 |
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| 290 | // Actually push it
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| 291 | push(lanes.data[i], thrd);
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| 292 |
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| 293 | #if !defined(USE_MPSC)
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| 294 | // Unlock and return
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| 295 | __atomic_unlock( &lanes.data[i].lock );
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| 296 | #endif
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| 297 |
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| 298 | // Mark the current index in the tls rng instance as having an item
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| 299 | __tls_rand_advance_bck();
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| 300 |
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| 301 | __cfadbg_print_safe(ready_queue, "Kernel : Pushed %p on cluster %p (idx: %u, mask %llu, first %d)\n", thrd, cltr, i, used.mask[0], lane_first);
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| 302 |
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| 303 | // Update statistics
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[b798713] | 304 | #if !defined(__CFA_NO_STATISTICS__)
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[d2fadeb] | 305 | if(unlikely(external)) __atomic_fetch_add(&cltr->stats->ready.push.extrn.success, 1, __ATOMIC_RELAXED);
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| 306 | else if(local) __tls_stats()->ready.push.local.success++;
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| 307 | else __tls_stats()->ready.push.share.success++;
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[b798713] | 308 | #endif
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[431cd4f] | 309 | }
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[b798713] | 310 |
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[431cd4f] | 311 | // Pop from the ready queue from a given cluster
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| 312 | __attribute__((hot)) $thread * pop_fast(struct cluster * cltr) with (cltr->ready_queue) {
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| 313 | /* paranoid */ verify( lanes.count > 0 );
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| 314 | /* paranoid */ verify( kernelTLS().this_processor );
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| 315 | /* paranoid */ verify( kernelTLS().this_processor->rdq.id < lanes.count );
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[b798713] | 316 |
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[431cd4f] | 317 | unsigned count = __atomic_load_n( &lanes.count, __ATOMIC_RELAXED );
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| 318 | int preferred = kernelTLS().this_processor->rdq.id;
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[dca5802] | 319 |
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| 320 |
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[431cd4f] | 321 | // As long as the list is not empty, try finding a lane that isn't empty and pop from it
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| 322 | for(25) {
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| 323 | // Pick two lists at random
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| 324 | unsigned ri = __tls_rand_bck();
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| 325 | unsigned rj = __tls_rand_bck();
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[c426b03] | 326 |
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[431cd4f] | 327 | unsigned i, j;
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| 328 | __attribute__((unused)) bool locali, localj;
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| 329 | [i, locali] = idx_from_r(ri, preferred);
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| 330 | [j, localj] = idx_from_r(rj, preferred);
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[1b143de] | 331 |
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[431cd4f] | 332 | i %= count;
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| 333 | j %= count;
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[9cc3a18] | 334 |
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[431cd4f] | 335 | // try popping from the 2 picked lists
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[d2fadeb] | 336 | struct $thread * thrd = try_pop(cltr, i, j __STATS(, *(locali || localj ? &__tls_stats()->ready.pop.local : &__tls_stats()->ready.pop.help)));
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[431cd4f] | 337 | if(thrd) {
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| 338 | return thrd;
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| 339 | }
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| 340 | }
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[13c5e19] | 341 |
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[431cd4f] | 342 | // All lanes where empty return 0p
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| 343 | return 0p;
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| 344 | }
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[772411a] | 345 |
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[431cd4f] | 346 | __attribute__((hot)) struct $thread * pop_slow(struct cluster * cltr) {
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| 347 | return search(cltr);
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| 348 | }
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| 349 | #endif
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| 350 | #if defined(USE_WORK_STEALING)
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| 351 | __attribute__((hot)) void push(struct cluster * cltr, struct $thread * thrd) with (cltr->ready_queue) {
|
---|
| 352 | __cfadbg_print_safe(ready_queue, "Kernel : Pushing %p on cluster %p\n", thrd, cltr);
|
---|
[772411a] | 353 |
|
---|
[431cd4f] | 354 | const bool external = (!kernelTLS().this_processor) || (cltr != kernelTLS().this_processor->cltr);
|
---|
| 355 | /* paranoid */ verify(external || kernelTLS().this_processor->rdq.id < lanes.count );
|
---|
[772411a] | 356 |
|
---|
[431cd4f] | 357 | // write timestamp
|
---|
| 358 | thrd->link.ts = rdtscl();
|
---|
| 359 |
|
---|
| 360 | // Try to pick a lane and lock it
|
---|
| 361 | unsigned i;
|
---|
| 362 | do {
|
---|
[d2fadeb] | 363 | #if !defined(__CFA_NO_STATISTICS__)
|
---|
| 364 | if(unlikely(external)) __atomic_fetch_add(&cltr->stats->ready.push.extrn.attempt, 1, __ATOMIC_RELAXED);
|
---|
| 365 | else __tls_stats()->ready.push.local.attempt++;
|
---|
| 366 | #endif
|
---|
| 367 |
|
---|
[431cd4f] | 368 | if(unlikely(external)) {
|
---|
| 369 | i = __tls_rand() % lanes.count;
|
---|
| 370 | }
|
---|
| 371 | else {
|
---|
| 372 | processor * proc = kernelTLS().this_processor;
|
---|
| 373 | unsigned r = proc->rdq.its++;
|
---|
| 374 | i = proc->rdq.id + (r % READYQ_SHARD_FACTOR);
|
---|
[13c5e19] | 375 | }
|
---|
[431cd4f] | 376 |
|
---|
| 377 |
|
---|
| 378 | #if defined(USE_MPSC)
|
---|
| 379 | // mpsc always succeeds
|
---|
| 380 | } while( false );
|
---|
| 381 | #else
|
---|
| 382 | // If we can't lock it retry
|
---|
| 383 | } while( !__atomic_try_acquire( &lanes.data[i].lock ) );
|
---|
[13c5e19] | 384 | #endif
|
---|
| 385 |
|
---|
[431cd4f] | 386 | // Actually push it
|
---|
| 387 | push(lanes.data[i], thrd);
|
---|
[13c5e19] | 388 |
|
---|
[431cd4f] | 389 | #if !defined(USE_MPSC)
|
---|
| 390 | // Unlock and return
|
---|
| 391 | __atomic_unlock( &lanes.data[i].lock );
|
---|
| 392 | #endif
|
---|
| 393 |
|
---|
[d2fadeb] | 394 | #if !defined(__CFA_NO_STATISTICS__)
|
---|
| 395 | if(unlikely(external)) __atomic_fetch_add(&cltr->stats->ready.push.extrn.success, 1, __ATOMIC_RELAXED);
|
---|
| 396 | else __tls_stats()->ready.push.local.success++;
|
---|
| 397 | #endif
|
---|
| 398 |
|
---|
[431cd4f] | 399 | __cfadbg_print_safe(ready_queue, "Kernel : Pushed %p on cluster %p (idx: %u, mask %llu, first %d)\n", thrd, cltr, i, used.mask[0], lane_first);
|
---|
[13c5e19] | 400 | }
|
---|
| 401 |
|
---|
[431cd4f] | 402 | // Pop from the ready queue from a given cluster
|
---|
| 403 | __attribute__((hot)) $thread * pop_fast(struct cluster * cltr) with (cltr->ready_queue) {
|
---|
| 404 | /* paranoid */ verify( lanes.count > 0 );
|
---|
| 405 | /* paranoid */ verify( kernelTLS().this_processor );
|
---|
| 406 | /* paranoid */ verify( kernelTLS().this_processor->rdq.id < lanes.count );
|
---|
| 407 |
|
---|
| 408 | processor * proc = kernelTLS().this_processor;
|
---|
| 409 |
|
---|
| 410 | if(proc->rdq.target == -1u) {
|
---|
| 411 | proc->rdq.target = __tls_rand() % lanes.count;
|
---|
| 412 | unsigned it1 = proc->rdq.itr;
|
---|
| 413 | unsigned it2 = proc->rdq.itr + 1;
|
---|
| 414 | unsigned idx1 = proc->rdq.id + (it1 % READYQ_SHARD_FACTOR);
|
---|
[ddd473f] | 415 | unsigned idx2 = proc->rdq.id + (it2 % READYQ_SHARD_FACTOR);
|
---|
[431cd4f] | 416 | unsigned long long tsc1 = ts(lanes.data[idx1]);
|
---|
| 417 | unsigned long long tsc2 = ts(lanes.data[idx2]);
|
---|
| 418 | proc->rdq.cutoff = min(tsc1, tsc2);
|
---|
[341aa39] | 419 | if(proc->rdq.cutoff == 0) proc->rdq.cutoff = -1ull;
|
---|
[431cd4f] | 420 | }
|
---|
[341aa39] | 421 | else {
|
---|
| 422 | unsigned target = proc->rdq.target;
|
---|
[431cd4f] | 423 | proc->rdq.target = -1u;
|
---|
[341aa39] | 424 | if(lanes.tscs[target].tv < proc->rdq.cutoff) {
|
---|
| 425 | $thread * t = try_pop(cltr, target __STATS(, __tls_stats()->ready.pop.help));
|
---|
| 426 | if(t) return t;
|
---|
| 427 | }
|
---|
[431cd4f] | 428 | }
|
---|
[13c5e19] | 429 |
|
---|
[431cd4f] | 430 | for(READYQ_SHARD_FACTOR) {
|
---|
| 431 | unsigned i = proc->rdq.id + (--proc->rdq.itr % READYQ_SHARD_FACTOR);
|
---|
[d2fadeb] | 432 | if($thread * t = try_pop(cltr, i __STATS(, __tls_stats()->ready.pop.local))) return t;
|
---|
[431cd4f] | 433 | }
|
---|
| 434 | return 0p;
|
---|
[1eb239e4] | 435 | }
|
---|
| 436 |
|
---|
[431cd4f] | 437 | __attribute__((hot)) struct $thread * pop_slow(struct cluster * cltr) with (cltr->ready_queue) {
|
---|
| 438 | for(25) {
|
---|
| 439 | unsigned i = __tls_rand() % lanes.count;
|
---|
[d2fadeb] | 440 | $thread * t = try_pop(cltr, i __STATS(, __tls_stats()->ready.pop.steal));
|
---|
[431cd4f] | 441 | if(t) return t;
|
---|
| 442 | }
|
---|
| 443 |
|
---|
| 444 | return search(cltr);
|
---|
| 445 | }
|
---|
| 446 | #endif
|
---|
[1eb239e4] | 447 |
|
---|
[9cc3a18] | 448 | //=======================================================================
|
---|
| 449 | // Various Ready Queue utilities
|
---|
| 450 | //=======================================================================
|
---|
| 451 | // these function work the same or almost the same
|
---|
| 452 | // whether they are using work-stealing or relaxed fifo scheduling
|
---|
[1eb239e4] | 453 |
|
---|
[9cc3a18] | 454 | //-----------------------------------------------------------------------
|
---|
| 455 | // try to pop from a lane given by index w
|
---|
[d2fadeb] | 456 | static inline struct $thread * try_pop(struct cluster * cltr, unsigned w __STATS(, __stats_readyQ_pop_t & stats)) with (cltr->ready_queue) {
|
---|
| 457 | __STATS( stats.attempt++; )
|
---|
| 458 |
|
---|
[dca5802] | 459 | // Get relevant elements locally
|
---|
| 460 | __intrusive_lane_t & lane = lanes.data[w];
|
---|
| 461 |
|
---|
[b798713] | 462 | // If list looks empty retry
|
---|
[d2fadeb] | 463 | if( is_empty(lane) ) {
|
---|
| 464 | __STATS( stats.espec++; )
|
---|
| 465 | return 0p;
|
---|
| 466 | }
|
---|
[b798713] | 467 |
|
---|
| 468 | // If we can't get the lock retry
|
---|
[d2fadeb] | 469 | if( !__atomic_try_acquire(&lane.lock) ) {
|
---|
| 470 | __STATS( stats.elock++; )
|
---|
| 471 | return 0p;
|
---|
| 472 | }
|
---|
[b798713] | 473 |
|
---|
| 474 | // If list is empty, unlock and retry
|
---|
[dca5802] | 475 | if( is_empty(lane) ) {
|
---|
| 476 | __atomic_unlock(&lane.lock);
|
---|
[d2fadeb] | 477 | __STATS( stats.eempty++; )
|
---|
[b798713] | 478 | return 0p;
|
---|
| 479 | }
|
---|
| 480 |
|
---|
| 481 | // Actually pop the list
|
---|
[504a7dc] | 482 | struct $thread * thrd;
|
---|
[343d10e] | 483 | thrd = pop(lane);
|
---|
[b798713] | 484 |
|
---|
[dca5802] | 485 | /* paranoid */ verify(thrd);
|
---|
| 486 | /* paranoid */ verify(lane.lock);
|
---|
[b798713] | 487 |
|
---|
| 488 | // Unlock and return
|
---|
[dca5802] | 489 | __atomic_unlock(&lane.lock);
|
---|
[b798713] | 490 |
|
---|
[dca5802] | 491 | // Update statistics
|
---|
[d2fadeb] | 492 | __STATS( stats.success++; )
|
---|
[b798713] | 493 |
|
---|
[431cd4f] | 494 | #if defined(USE_WORK_STEALING)
|
---|
| 495 | lanes.tscs[w].tv = thrd->link.ts;
|
---|
[9cc3a18] | 496 | #endif
|
---|
[d72c074] | 497 |
|
---|
[dca5802] | 498 | // return the popped thread
|
---|
[b798713] | 499 | return thrd;
|
---|
| 500 | }
|
---|
[04b5cef] | 501 |
|
---|
[9cc3a18] | 502 | //-----------------------------------------------------------------------
|
---|
| 503 | // try to pop from any lanes making sure you don't miss any threads push
|
---|
| 504 | // before the start of the function
|
---|
[431cd4f] | 505 | static inline struct $thread * search(struct cluster * cltr) with (cltr->ready_queue) {
|
---|
[9cc3a18] | 506 | /* paranoid */ verify( lanes.count > 0 );
|
---|
| 507 | unsigned count = __atomic_load_n( &lanes.count, __ATOMIC_RELAXED );
|
---|
| 508 | unsigned offset = __tls_rand();
|
---|
| 509 | for(i; count) {
|
---|
| 510 | unsigned idx = (offset + i) % count;
|
---|
[d2fadeb] | 511 | struct $thread * thrd = try_pop(cltr, idx __STATS(, __tls_stats()->ready.pop.search));
|
---|
[9cc3a18] | 512 | if(thrd) {
|
---|
| 513 | return thrd;
|
---|
| 514 | }
|
---|
[13c5e19] | 515 | }
|
---|
[9cc3a18] | 516 |
|
---|
| 517 | // All lanes where empty return 0p
|
---|
| 518 | return 0p;
|
---|
[b798713] | 519 | }
|
---|
| 520 |
|
---|
| 521 | //-----------------------------------------------------------------------
|
---|
[9cc3a18] | 522 | // Check that all the intrusive queues in the data structure are still consistent
|
---|
[b798713] | 523 | static void check( __ready_queue_t & q ) with (q) {
|
---|
[7a2972b9] | 524 | #if defined(__CFA_WITH_VERIFY__) && !defined(USE_MPSC)
|
---|
[b798713] | 525 | {
|
---|
[dca5802] | 526 | for( idx ; lanes.count ) {
|
---|
| 527 | __intrusive_lane_t & sl = lanes.data[idx];
|
---|
| 528 | assert(!lanes.data[idx].lock);
|
---|
[b798713] | 529 |
|
---|
| 530 | assert(head(sl)->link.prev == 0p );
|
---|
| 531 | assert(head(sl)->link.next->link.prev == head(sl) );
|
---|
| 532 | assert(tail(sl)->link.next == 0p );
|
---|
| 533 | assert(tail(sl)->link.prev->link.next == tail(sl) );
|
---|
| 534 |
|
---|
[7a2972b9] | 535 | if(is_empty(sl)) {
|
---|
[b798713] | 536 | assert(tail(sl)->link.prev == head(sl));
|
---|
| 537 | assert(head(sl)->link.next == tail(sl));
|
---|
[1b143de] | 538 | } else {
|
---|
| 539 | assert(tail(sl)->link.prev != head(sl));
|
---|
| 540 | assert(head(sl)->link.next != tail(sl));
|
---|
[b798713] | 541 | }
|
---|
| 542 | }
|
---|
| 543 | }
|
---|
| 544 | #endif
|
---|
| 545 | }
|
---|
| 546 |
|
---|
[9cc3a18] | 547 | //-----------------------------------------------------------------------
|
---|
| 548 | // Given 2 indexes, pick the list with the oldest push an try to pop from it
|
---|
[d2fadeb] | 549 | static inline struct $thread * try_pop(struct cluster * cltr, unsigned i, unsigned j __STATS(, __stats_readyQ_pop_t & stats)) with (cltr->ready_queue) {
|
---|
[9cc3a18] | 550 | // Pick the bet list
|
---|
| 551 | int w = i;
|
---|
| 552 | if( __builtin_expect(!is_empty(lanes.data[j]), true) ) {
|
---|
| 553 | w = (ts(lanes.data[i]) < ts(lanes.data[j])) ? i : j;
|
---|
| 554 | }
|
---|
| 555 |
|
---|
[d2fadeb] | 556 | return try_pop(cltr, w __STATS(, stats));
|
---|
[9cc3a18] | 557 | }
|
---|
| 558 |
|
---|
[b798713] | 559 | // Call this function of the intrusive list was moved using memcpy
|
---|
[dca5802] | 560 | // fixes the list so that the pointers back to anchors aren't left dangling
|
---|
| 561 | static inline void fix(__intrusive_lane_t & ll) {
|
---|
[7a2972b9] | 562 | #if !defined(USE_MPSC)
|
---|
| 563 | // if the list is not empty then follow he pointer and fix its reverse
|
---|
| 564 | if(!is_empty(ll)) {
|
---|
| 565 | head(ll)->link.next->link.prev = head(ll);
|
---|
| 566 | tail(ll)->link.prev->link.next = tail(ll);
|
---|
| 567 | }
|
---|
| 568 | // Otherwise just reset the list
|
---|
| 569 | else {
|
---|
| 570 | verify(tail(ll)->link.next == 0p);
|
---|
| 571 | tail(ll)->link.prev = head(ll);
|
---|
| 572 | head(ll)->link.next = tail(ll);
|
---|
| 573 | verify(head(ll)->link.prev == 0p);
|
---|
| 574 | }
|
---|
| 575 | #endif
|
---|
[b798713] | 576 | }
|
---|
| 577 |
|
---|
[9cc3a18] | 578 | static void assign_list(unsigned & value, dlist(processor, processor) & list, unsigned count) {
|
---|
[a017ee7] | 579 | processor * it = &list`first;
|
---|
| 580 | for(unsigned i = 0; i < count; i++) {
|
---|
| 581 | /* paranoid */ verifyf( it, "Unexpected null iterator, at index %u of %u\n", i, count);
|
---|
[431cd4f] | 582 | it->rdq.id = value;
|
---|
| 583 | it->rdq.target = -1u;
|
---|
[9cc3a18] | 584 | value += READYQ_SHARD_FACTOR;
|
---|
[a017ee7] | 585 | it = &(*it)`next;
|
---|
| 586 | }
|
---|
| 587 | }
|
---|
| 588 |
|
---|
[9cc3a18] | 589 | static void reassign_cltr_id(struct cluster * cltr) {
|
---|
[a017ee7] | 590 | unsigned preferred = 0;
|
---|
[9cc3a18] | 591 | assign_list(preferred, cltr->procs.actives, cltr->procs.total - cltr->procs.idle);
|
---|
| 592 | assign_list(preferred, cltr->procs.idles , cltr->procs.idle );
|
---|
[a017ee7] | 593 | }
|
---|
| 594 |
|
---|
[431cd4f] | 595 | static void fix_times( struct cluster * cltr ) with( cltr->ready_queue ) {
|
---|
| 596 | #if defined(USE_WORK_STEALING)
|
---|
| 597 | lanes.tscs = alloc(lanes.count, lanes.tscs`realloc);
|
---|
| 598 | for(i; lanes.count) {
|
---|
| 599 | lanes.tscs[i].tv = ts(lanes.data[i]);
|
---|
| 600 | }
|
---|
| 601 | #endif
|
---|
| 602 | }
|
---|
| 603 |
|
---|
[dca5802] | 604 | // Grow the ready queue
|
---|
[a017ee7] | 605 | void ready_queue_grow(struct cluster * cltr) {
|
---|
[bd0bdd37] | 606 | size_t ncount;
|
---|
[a017ee7] | 607 | int target = cltr->procs.total;
|
---|
[bd0bdd37] | 608 |
|
---|
[64a7146] | 609 | /* paranoid */ verify( ready_mutate_islocked() );
|
---|
[504a7dc] | 610 | __cfadbg_print_safe(ready_queue, "Kernel : Growing ready queue\n");
|
---|
[b798713] | 611 |
|
---|
[dca5802] | 612 | // Make sure that everything is consistent
|
---|
| 613 | /* paranoid */ check( cltr->ready_queue );
|
---|
| 614 |
|
---|
| 615 | // grow the ready queue
|
---|
[b798713] | 616 | with( cltr->ready_queue ) {
|
---|
[39fc03e] | 617 | // Find new count
|
---|
| 618 | // Make sure we always have atleast 1 list
|
---|
[bd0bdd37] | 619 | if(target >= 2) {
|
---|
[9cc3a18] | 620 | ncount = target * READYQ_SHARD_FACTOR;
|
---|
[bd0bdd37] | 621 | } else {
|
---|
[5f6a172] | 622 | ncount = SEQUENTIAL_SHARD;
|
---|
[bd0bdd37] | 623 | }
|
---|
[b798713] | 624 |
|
---|
[dca5802] | 625 | // Allocate new array (uses realloc and memcpies the data)
|
---|
[ceb7db8] | 626 | lanes.data = alloc( ncount, lanes.data`realloc );
|
---|
[b798713] | 627 |
|
---|
| 628 | // Fix the moved data
|
---|
[dca5802] | 629 | for( idx; (size_t)lanes.count ) {
|
---|
| 630 | fix(lanes.data[idx]);
|
---|
[b798713] | 631 | }
|
---|
| 632 |
|
---|
| 633 | // Construct new data
|
---|
[dca5802] | 634 | for( idx; (size_t)lanes.count ~ ncount) {
|
---|
| 635 | (lanes.data[idx]){};
|
---|
[b798713] | 636 | }
|
---|
| 637 |
|
---|
| 638 | // Update original
|
---|
[dca5802] | 639 | lanes.count = ncount;
|
---|
[b798713] | 640 | }
|
---|
| 641 |
|
---|
[9cc3a18] | 642 | fix_times(cltr);
|
---|
| 643 |
|
---|
| 644 | reassign_cltr_id(cltr);
|
---|
[a017ee7] | 645 |
|
---|
[b798713] | 646 | // Make sure that everything is consistent
|
---|
[dca5802] | 647 | /* paranoid */ check( cltr->ready_queue );
|
---|
| 648 |
|
---|
[504a7dc] | 649 | __cfadbg_print_safe(ready_queue, "Kernel : Growing ready queue done\n");
|
---|
[dca5802] | 650 |
|
---|
[64a7146] | 651 | /* paranoid */ verify( ready_mutate_islocked() );
|
---|
[b798713] | 652 | }
|
---|
| 653 |
|
---|
[dca5802] | 654 | // Shrink the ready queue
|
---|
[a017ee7] | 655 | void ready_queue_shrink(struct cluster * cltr) {
|
---|
[64a7146] | 656 | /* paranoid */ verify( ready_mutate_islocked() );
|
---|
[504a7dc] | 657 | __cfadbg_print_safe(ready_queue, "Kernel : Shrinking ready queue\n");
|
---|
[dca5802] | 658 |
|
---|
| 659 | // Make sure that everything is consistent
|
---|
| 660 | /* paranoid */ check( cltr->ready_queue );
|
---|
| 661 |
|
---|
[a017ee7] | 662 | int target = cltr->procs.total;
|
---|
| 663 |
|
---|
[b798713] | 664 | with( cltr->ready_queue ) {
|
---|
[39fc03e] | 665 | // Remember old count
|
---|
[dca5802] | 666 | size_t ocount = lanes.count;
|
---|
[b798713] | 667 |
|
---|
[39fc03e] | 668 | // Find new count
|
---|
| 669 | // Make sure we always have atleast 1 list
|
---|
[5f6a172] | 670 | lanes.count = target >= 2 ? target * READYQ_SHARD_FACTOR: SEQUENTIAL_SHARD;
|
---|
[39fc03e] | 671 | /* paranoid */ verify( ocount >= lanes.count );
|
---|
[9cc3a18] | 672 | /* paranoid */ verify( lanes.count == target * READYQ_SHARD_FACTOR || target < 2 );
|
---|
[dca5802] | 673 |
|
---|
| 674 | // for printing count the number of displaced threads
|
---|
[504a7dc] | 675 | #if defined(__CFA_DEBUG_PRINT__) || defined(__CFA_DEBUG_PRINT_READY_QUEUE__)
|
---|
[dca5802] | 676 | __attribute__((unused)) size_t displaced = 0;
|
---|
| 677 | #endif
|
---|
[b798713] | 678 |
|
---|
| 679 | // redistribute old data
|
---|
[dca5802] | 680 | for( idx; (size_t)lanes.count ~ ocount) {
|
---|
| 681 | // Lock is not strictly needed but makes checking invariants much easier
|
---|
[1b143de] | 682 | __attribute__((unused)) bool locked = __atomic_try_acquire(&lanes.data[idx].lock);
|
---|
[b798713] | 683 | verify(locked);
|
---|
[dca5802] | 684 |
|
---|
| 685 | // As long as we can pop from this lane to push the threads somewhere else in the queue
|
---|
| 686 | while(!is_empty(lanes.data[idx])) {
|
---|
[504a7dc] | 687 | struct $thread * thrd;
|
---|
[343d10e] | 688 | thrd = pop(lanes.data[idx]);
|
---|
[dca5802] | 689 |
|
---|
[b798713] | 690 | push(cltr, thrd);
|
---|
[dca5802] | 691 |
|
---|
| 692 | // for printing count the number of displaced threads
|
---|
[504a7dc] | 693 | #if defined(__CFA_DEBUG_PRINT__) || defined(__CFA_DEBUG_PRINT_READY_QUEUE__)
|
---|
[dca5802] | 694 | displaced++;
|
---|
| 695 | #endif
|
---|
[b798713] | 696 | }
|
---|
| 697 |
|
---|
[dca5802] | 698 | // Unlock the lane
|
---|
| 699 | __atomic_unlock(&lanes.data[idx].lock);
|
---|
[b798713] | 700 |
|
---|
| 701 | // TODO print the queue statistics here
|
---|
| 702 |
|
---|
[dca5802] | 703 | ^(lanes.data[idx]){};
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[b798713] | 704 | }
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| 705 |
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[504a7dc] | 706 | __cfadbg_print_safe(ready_queue, "Kernel : Shrinking ready queue displaced %zu threads\n", displaced);
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[c84b4be] | 707 |
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[dca5802] | 708 | // Allocate new array (uses realloc and memcpies the data)
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[ceb7db8] | 709 | lanes.data = alloc( lanes.count, lanes.data`realloc );
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[b798713] | 710 |
|
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| 711 | // Fix the moved data
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[dca5802] | 712 | for( idx; (size_t)lanes.count ) {
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| 713 | fix(lanes.data[idx]);
|
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[b798713] | 714 | }
|
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| 715 | }
|
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| 716 |
|
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[9cc3a18] | 717 | fix_times(cltr);
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| 718 |
|
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| 719 | reassign_cltr_id(cltr);
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[a017ee7] | 720 |
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[b798713] | 721 | // Make sure that everything is consistent
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[dca5802] | 722 | /* paranoid */ check( cltr->ready_queue );
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| 723 |
|
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[504a7dc] | 724 | __cfadbg_print_safe(ready_queue, "Kernel : Shrinking ready queue done\n");
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[64a7146] | 725 | /* paranoid */ verify( ready_mutate_islocked() );
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[fd9b524] | 726 | }
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