0

I wonder what will happen if the interruptable_call is uninterruptable and return after the context is done. The call stack would have been already destroyed. What would the return action perform? How would select perform when one case return while another case is still running. Would that case function call be terminated? in what way?

package main

import (
    "context"
    "fmt"
    "time"
)

func interruptable_call() <-chan time.Time {
    return time.After(1 * time.Second)
}

func A(ctx context.Context) int {
    for {
        select {
        case <-ctx.Done():
            fmt.Println("func done")
            return 1
        case <-interruptable_call():
            fmt.Println("blocking")
        }
    }
    return 0
}

func main() {
    ctx, cancel := context.WithTimeout(context.Background(), 5*time.Second)
    defer cancel()
    fmt.Println("go A")
    go A(ctx)
    fmt.Println("go A done")
    select {
    case <-ctx.Done():
        fmt.Println("main done")
        break
    }
}
1

I am not sure what you mean by "synchronisation problem", since there is no synchronization here.. You need to synchronise your goroutines using channels, waitgroups or any other means if you want to be sure that your spawned goroutines performed their task.

It doesn't really matter what happens in the goroutine - if it's not synchronised with main gouroutine it will cease to exist after main exits.

Return value from function called asynchronously in goroutine won't be available to you anyway.

You can check out how blocking calls work for yourself:

package main

import (
    "context"
    "fmt"
    "time"
)

func interruptable_call(sleep time.Duration) <-chan time.Time {
    fmt.Println("sleeping for ", sleep*time.Second)
    time.Sleep(sleep * time.Second)
    return time.After(0 * time.Second)
}

func A(ctx context.Context) int {
    for {
        select {
        case <-ctx.Done():
            fmt.Println("func done")
            return 1
        case <-interruptable_call(2):
            fmt.Println("blocking")
        case <-interruptable_call(3):
            fmt.Println("blocking")
        case <-interruptable_call(4):
            fmt.Println("blocking")
        case <-interruptable_call(5):
            fmt.Println("blocking")
        }
    }
    return 0
}

func main() {
    ctx, cancel := context.WithTimeout(context.Background(), 2*time.Second)
    defer cancel()
    fmt.Println("go A")
    go A(ctx)
    fmt.Println("go A done")
    select {
    case <-ctx.Done():
        fmt.Println("main done")
        break
    }
}
  • How would select perform when one case return while another case is still running. Would that case function call be terminated? in what way? – Liu Weibo Aug 2 '17 at 2:36
  • Select runs cases sequentially to have "ready" channels waiting for messages, but if the channel which is already returned gets the message select statement selects this case and runs it. I am not sure how this works internally, but my guess is that any already running cases are finished and any further ones are not run because the select statement is already finished. – Nebril Aug 2 '17 at 10:08

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