我正在阅读/工作Go Concurrency Patterns: Pipelines and cancel，但我无法理解停止短部分。我们有以下功能：

func sq(in <-chan int) <-chan int {

    out := make(chan int)

    go func() {

        for n := range in {

            out <- n * n

        }

        close(out)

    }()

    return out

}

func gen(nums ...int) <-chan int {

    out := make(chan int)

    go func() {

        for _, n := range nums {

            out <- n

        }

        close(out)

    }()

    return out

}

func merge(cs ...<-chan int) <-chan int {

    var wg sync.WaitGroup

    out := make(chan int, 1) // enough space for the unread inputs

    // Start an output goroutine for each input channel in cs.  output

    // copies values from c to out until c is closed, then calls wg.Done.

    output := func(c <-chan int) {

        for n := range c {

            out <- n

        }

        wg.Done()

    }

    wg.Add(len(cs))

    for _, c := range cs {

        go output(c)

    }

    // Start a goroutine to close out once all the output goroutines are

    // done.  This must start after the wg.Add call.

    go func() {

        wg.Wait()

        close(out)

    }()

    return out

}

func main() {

    in := gen(2, 3)

    // Distribute the sq work across two goroutines that both read from in.

    c1 := sq(in)

    c2 := sq(in)

    // Consume the first value from output.

    out := merge(c1, c2)

    fmt.Println(<-out) // 4 or 9

    return

    // Apparently if we had not set the merge out buffer size to 1

    // then we would have a hanging go routine. 

}

现在，如果您注意到 line 2in merge，它表示我们chan使用buffer大小为 1的 out ，因为这是未读输入的足够空间。不过，我几乎可以肯定，我们应该分配chan与buffer大小2.根据此代码示例：

c := make(chan int, 2) // buffer size 2

c <- 1  // succeeds immediately

c <- 2  // succeeds immediately

c <- 3  // blocks until another goroutine does <-c and receives 1 

由于本节意味着一个chan的buffer大小3将不会阻止。任何人都可以澄清/帮助我理解吗？