source: benchmark/readyQ/churn.go@ ffc1689

ADT ast-experimental pthread-emulation qualifiedEnum
Last change on this file since ffc1689 was 62402e2, checked in by Thierry Delisle <tdelisle@…>, 4 years ago

Implemented churn benchmark in go using Weighted semaphore.
Performance is disappointing and it seems to be because of these semaphores.

  • Property mode set to 100644
File size: 2.5 KB
Line 
1package main
2
3import (
4 "context"
5 "flag"
6 "fmt"
7 "math/rand"
8 "sync"
9 "sync/atomic"
10 "time"
11 "golang.org/x/sync/semaphore"
12 "golang.org/x/text/language"
13 "golang.org/x/text/message"
14)
15
16func churner(result chan uint64, start *sync.WaitGroup, skip bool, spots [] * semaphore.Weighted) {
17 ctx := context.TODO()
18 s := rand.NewSource(time.Now().UnixNano())
19 rng := rand.New(s)
20
21 count := uint64(0)
22 start.Wait()
23 for true {
24
25 sem := spots[ rng.Intn(100) % len(spots) ];
26 if !skip { sem.Release(1); };
27 sem.Acquire(ctx,1);
28 skip = false;
29
30 count += 1
31 if clock_mode && atomic.LoadInt32(&stop) == 1 { break }
32 if !clock_mode && count >= stop_count { break }
33 }
34
35 atomic.AddInt64(&threads_left, -1);
36 result <- count
37}
38
39func main() {
40 var spot_cnt int
41
42 spot_cntOpt := flag.Int("s", 1, "Number of spots in the system")
43
44 bench_init()
45
46 spot_cnt = *spot_cntOpt
47
48 threads_left = int64(nthreads)
49
50 result := make(chan uint64)
51 var wg sync.WaitGroup
52 wg.Add(1)
53
54 spots := make([] * semaphore.Weighted, spot_cnt)
55 for i := range spots {
56 ctx := context.TODO()
57 spots[i] = semaphore.NewWeighted(20000)
58 spots[i].Acquire(ctx, 20000)
59 }
60
61 for i := 0; i < nthreads; i++ {
62 go churner(result, &wg, i < len(spots), spots)
63 }
64 fmt.Printf("Starting\n");
65 atomic.StoreInt32(&stop, 0)
66 start := time.Now()
67 wg.Done();
68 wait(start, true);
69
70 atomic.StoreInt32(&stop, 1)
71 end := time.Now()
72 duration := end.Sub(start)
73
74 fmt.Printf("\nDone\n")
75
76 for i := range spots {
77 spots[i].Release(10000)
78 }
79
80 global_counter := uint64(0)
81 for i := 0; i < nthreads; i++ {
82 global_counter += <- result
83 }
84
85 p := message.NewPrinter(language.English)
86 p.Printf("Duration (ms) : %d\n", duration.Milliseconds())
87 p.Printf("Number of processors : %d\n", nprocs);
88 p.Printf("Number of threads : %d\n", nthreads);
89 p.Printf("Number of spots : %d\n", spot_cnt);
90 p.Printf("Total Operations(ops): %15d\n", global_counter);
91 // p.Printf("Total blocks : %15d\n", global_blocks);
92 p.Printf("Ops per second : %18.2f\n", float64(global_counter) / duration.Seconds());
93 p.Printf("ns per ops : %18.2f\n", float64(duration.Nanoseconds()) / float64(global_counter))
94 p.Printf("Ops per threads : %15d\n", global_counter / uint64(nthreads))
95 p.Printf("Ops per procs : %15d\n", global_counter / uint64(nprocs))
96 p.Printf("Ops/sec/procs : %18.2f\n", (float64(global_counter) / float64(nprocs)) / duration.Seconds())
97 p.Printf("ns per ops/procs : %18.2f\n", float64(duration.Nanoseconds()) / (float64(global_counter) / float64(nprocs)))
98}
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