Commit 132e8167 authored by Russ Cox's avatar Russ Cox

doc: allow buffered channel as semaphore without initialization

This rule not existing has been the source of many discussions
on golang-dev and on issues. We have stated publicly that it is
true, but we have never written it down. Write it down.

Fixes #6242.

LGTM=r, dan.kortschak, iant, dvyukov
R=golang-codereviews, r, dominik.honnef, dvyukov, dan.kortschak, iant, 0xjnml
CC=golang-codereviews
https://golang.org/cl/75130045
parent 833dae6d
......@@ -2942,26 +2942,19 @@ means waiting until some receiver has retrieved a value.
<p>
A buffered channel can be used like a semaphore, for instance to
limit throughput. In this example, incoming requests are passed
to <code>handle</code>, which receives a value from the channel, processes
the request, and then sends a value back to the channel
to ready the "semaphore" for the next consumer.
to <code>handle</code>, which sends a value into the channel, processes
the request, and then receives a value from the channel
to ready the &ldquo;semaphore&rdquo; for the next consumer.
The capacity of the channel buffer limits the number of
simultaneous calls to <code>process</code>,
so during initialization we prime the channel by filling it to capacity.
simultaneous calls to <code>process</code>.
</p>
<pre>
var sem = make(chan int, MaxOutstanding)
func handle(r *Request) {
&lt;-sem // Wait for active queue to drain.
process(r) // May take a long time.
sem &lt;- 1 // Done; enable next request to run.
}
func init() {
for i := 0; i &lt; MaxOutstanding; i++ {
sem &lt;- 1
}
sem &lt;- 1 // Wait for active queue to drain.
process(r) // May take a long time.
&lt;-sem // Done; enable next request to run.
}
func Serve(queue chan *Request) {
......@@ -2973,10 +2966,9 @@ func Serve(queue chan *Request) {
</pre>
<p>
Because data synchronization occurs on a receive from a channel
(that is, the send "happens before" the receive; see
<a href="/ref/mem">The Go Memory Model</a>),
acquisition of the semaphore must be on a channel receive, not a send.
Once <code>MaxOutstanding</code> handlers are executing <code>process</code>,
any more will block trying to send into the filled channel buffer,
until one of the existing handlers finishes and receives from the buffer.
</p>
<p>
......@@ -2993,10 +2985,10 @@ Here's an obvious solution, but beware it has a bug we'll fix subsequently:
<pre>
func Serve(queue chan *Request) {
for req := range queue {
&lt;-sem
sem &lt;- 1
go func() {
process(req) // Buggy; see explanation below.
sem &lt;- 1
&lt;-sem
}()
}
}</pre>
......@@ -3014,10 +3006,10 @@ to the closure in the goroutine:
<pre>
func Serve(queue chan *Request) {
for req := range queue {
&lt;-sem
sem &lt;- 1
go func(req *Request) {
process(req)
sem &lt;- 1
&lt;-sem
}(req)
}
}</pre>
......@@ -3032,11 +3024,11 @@ name, as in this example:
<pre>
func Serve(queue chan *Request) {
for req := range queue {
&lt;-sem
req := req // Create new instance of req for the goroutine.
sem &lt;- 1
go func() {
process(req)
sem &lt;- 1
&lt;-sem
}()
}
}</pre>
......
......@@ -274,6 +274,41 @@ then the program would not be guaranteed to print
crash, or do something else.)
</p>
<p class="rule">
The <i>k</i>th send on a channel with capacity <i>C</i> happens before the <i>k</i>+<i>C</i>th receive from that channel completes.
</p>
<p>
This rule generalizes the previous rule to buffered channels.
It allows a counting semaphore to be modeled by a buffered channel:
the number of items in the channel corresponds to the semaphore count,
the capacity of the channel corresponds to the semaphore maximum,
sending an item acquires the semaphore, and receiving an item releases
the semaphore.
This is a common idiom for rate-limiting work.
</p>
<p>
This program starts a goroutine for every entry in the work list, but the
goroutines coordinate using the <code>limit</code> channel to ensure
that at most three are running work functions at a time.
</p>
<pre>
var limit = make(chan int, 3)
func main() {
for _, w := range work {
go func() {
limit <- 1
w()
<-limit
}()
}
select{}
}
</pre>
<h3>Locks</h3>
<p>
......
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