source: doc/theses/thierry_delisle_PhD/code/readyQ_proto/utils.hpp@ d23c0b2

ADT arm-eh ast-experimental enum forall-pointer-decay jacob/cs343-translation new-ast-unique-expr pthread-emulation qualifiedEnum
Last change on this file since d23c0b2 was f9f3775, checked in by Thierry Delisle <tdelisle@…>, 5 years ago

Moved phd code for the readQ prototype to it's own folder

  • Property mode set to 100644
File size: 6.1 KB
Line 
1#pragma once
2
3#include <cassert>
4#include <cstddef>
5#include <atomic>
6#include <chrono>
7#include <fstream>
8#include <iostream>
9
10#include <unistd.h>
11#include <sys/sysinfo.h>
12
13#include <x86intrin.h>
14
15// Barrier from
16class barrier_t {
17public:
18 barrier_t(size_t total)
19 : waiting(0)
20 , total(total)
21 {}
22
23 void wait(unsigned) {
24 size_t target = waiting++;
25 target = (target - (target % total)) + total;
26 while(waiting < target)
27 asm volatile("pause");
28
29 assert(waiting < (1ul << 60));
30 }
31
32private:
33 std::atomic<size_t> waiting;
34 size_t total;
35};
36
37// class Random {
38// private:
39// unsigned int seed;
40// public:
41// Random(int seed) {
42// this->seed = seed;
43// }
44
45// /** returns pseudorandom x satisfying 0 <= x < n. **/
46// unsigned int next() {
47// seed ^= seed << 6;
48// seed ^= seed >> 21;
49// seed ^= seed << 7;
50// return seed;
51// }
52// };
53
54constexpr uint64_t extendedEuclidY(uint64_t a, uint64_t b);
55constexpr uint64_t extendedEuclidX(uint64_t a, uint64_t b){
56 return (b==0) ? 1 : extendedEuclidY(b, a - b * (a / b));
57}
58constexpr uint64_t extendedEuclidY(uint64_t a, uint64_t b){
59 return (b==0) ? 0 : extendedEuclidX(b, a - b * (a / b)) - (a / b) * extendedEuclidY(b, a - b * (a / b));
60}
61
62class Random {
63private:
64 uint64_t x;
65
66 static constexpr const uint64_t M = 1ul << 48ul;
67 static constexpr const uint64_t A = 25214903917;
68 static constexpr const uint64_t C = 11;
69 static constexpr const uint64_t D = 16;
70
71public:
72 static constexpr const uint64_t m = M;
73 static constexpr const uint64_t a = A;
74 static constexpr const uint64_t c = C;
75 static constexpr const uint64_t d = D;
76 static constexpr const uint64_t ai = extendedEuclidX(A, M);
77public:
78 Random(unsigned int seed) {
79 this->x = seed * a;
80 }
81
82 /** returns pseudorandom x satisfying 0 <= x < n. **/
83 unsigned int next() {
84 //nextx = (a * x + c) % m;
85 x = (A * x + C) & (M - 1);
86 return x >> D;
87 }
88 unsigned int prev() {
89 //prevx = (ainverse * (x - c)) mod m
90 unsigned int r = x >> D;
91 x = ai * (x - C) & (M - 1);
92 return r;
93 }
94
95 void set_raw_state(uint64_t _x) {
96 this->x = _x;
97 }
98
99 uint64_t get_raw_state() {
100 return this->x;
101 }
102};
103
104static inline long long rdtscl(void) {
105 unsigned int lo, hi;
106 __asm__ __volatile__ ("rdtsc" : "=a"(lo), "=d"(hi));
107 return ( (unsigned long long)lo)|( ((unsigned long long)hi)<<32 );
108}
109
110static inline void affinity(int tid) {
111 static int cpus = get_nprocs();
112
113 cpu_set_t mask;
114 CPU_ZERO(&mask);
115 int cpu = cpus - tid; // Set CPU affinity to tid, starting from the end
116 CPU_SET(cpu, &mask);
117 auto result = sched_setaffinity(0, sizeof(mask), &mask);
118 if(result != 0) {
119 std::cerr << "Affinity set failed with " << result<< ", wanted " << cpu << std::endl;
120 }
121}
122
123static const constexpr std::size_t cache_line_size = 64;
124static inline void check_cache_line_size() {
125 std::cout << "Checking cache line size" << std::endl;
126 const std::string cache_file = "/sys/devices/system/cpu/cpu0/cache/index0/coherency_line_size";
127
128 std::ifstream ifs (cache_file, std::ifstream::in);
129
130 if(!ifs.good()) {
131 std::cerr << "Could not open file to check cache line size" << std::endl;
132 std::cerr << "Looking for: " << cache_file << std::endl;
133 std::exit(2);
134 }
135
136 size_t got;
137 ifs >> got;
138
139 ifs.close();
140
141 if(cache_line_size != got) {
142 std::cerr << "Cache line has incorrect size : " << got << std::endl;
143 std::exit(1);
144 }
145
146 std::cout << "Done" << std::endl;
147}
148
149using Clock = std::chrono::high_resolution_clock;
150using duration_t = std::chrono::duration<double>;
151using std::chrono::nanoseconds;
152
153template<typename Ratio, typename T>
154T duration_cast(T seconds) {
155 return std::chrono::duration_cast<std::chrono::duration<T, Ratio>>(std::chrono::duration<T>(seconds)).count();
156}
157
158static inline unsigned rand_bit(unsigned rnum, size_t mask) __attribute__((artificial));
159static inline unsigned rand_bit(unsigned rnum, size_t mask) {
160 unsigned bit = mask ? rnum % __builtin_popcountl(mask) : 0;
161#if !defined(__BMI2__)
162 uint64_t v = mask; // Input value to find position with rank r.
163 unsigned int r = bit + 1;// Input: bit's desired rank [1-64].
164 unsigned int s; // Output: Resulting position of bit with rank r [1-64]
165 uint64_t a, b, c, d; // Intermediate temporaries for bit count.
166 unsigned int t; // Bit count temporary.
167
168 // Do a normal parallel bit count for a 64-bit integer,
169 // but store all intermediate steps.
170 a = v - ((v >> 1) & ~0UL/3);
171 b = (a & ~0UL/5) + ((a >> 2) & ~0UL/5);
172 c = (b + (b >> 4)) & ~0UL/0x11;
173 d = (c + (c >> 8)) & ~0UL/0x101;
174
175
176 t = (d >> 32) + (d >> 48);
177 // Now do branchless select!
178 s = 64;
179 s -= ((t - r) & 256) >> 3; r -= (t & ((t - r) >> 8));
180 t = (d >> (s - 16)) & 0xff;
181 s -= ((t - r) & 256) >> 4; r -= (t & ((t - r) >> 8));
182 t = (c >> (s - 8)) & 0xf;
183 s -= ((t - r) & 256) >> 5; r -= (t & ((t - r) >> 8));
184 t = (b >> (s - 4)) & 0x7;
185 s -= ((t - r) & 256) >> 6; r -= (t & ((t - r) >> 8));
186 t = (a >> (s - 2)) & 0x3;
187 s -= ((t - r) & 256) >> 7; r -= (t & ((t - r) >> 8));
188 t = (v >> (s - 1)) & 0x1;
189 s -= ((t - r) & 256) >> 8;
190 return s - 1;
191#else
192 uint64_t picked = _pdep_u64(1ul << bit, mask);
193 return picked ? __builtin_ctzl(picked) : 0;
194#endif
195}
196
197struct spinlock_t {
198 std::atomic_bool ll = { false };
199
200 inline void lock() {
201 while( __builtin_expect(ll.exchange(true),false) ) {
202 while(ll.load(std::memory_order_relaxed))
203 asm volatile("pause");
204 }
205 }
206
207 inline bool try_lock() {
208 return false == ll.exchange(true);
209 }
210
211 inline void unlock() {
212 ll.store(false, std::memory_order_release);
213 }
214
215 inline explicit operator bool() {
216 return ll.load(std::memory_order_relaxed);
217 }
218};
219
220static inline bool bts(std::atomic_size_t & target, size_t bit ) {
221 //*
222 int result = 0;
223 asm volatile(
224 "LOCK btsq %[bit], %[target]\n\t"
225 :"=@ccc" (result)
226 : [target] "m" (target), [bit] "r" (bit)
227 );
228 return result != 0;
229 /*/
230 size_t mask = 1ul << bit;
231 size_t ret = target.fetch_or(mask, std::memory_order_relaxed);
232 return (ret & mask) != 0;
233 //*/
234}
235
236static inline bool btr(std::atomic_size_t & target, size_t bit ) {
237 //*
238 int result = 0;
239 asm volatile(
240 "LOCK btrq %[bit], %[target]\n\t"
241 :"=@ccc" (result)
242 : [target] "m" (target), [bit] "r" (bit)
243 );
244 return result != 0;
245 /*/
246 size_t mask = 1ul << bit;
247 size_t ret = target.fetch_and(~mask, std::memory_order_relaxed);
248 return (ret & mask) != 0;
249 //*/
250}
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