318

Is there any scenario where writing method like this:

public async Task<SomeResult> DoSomethingAsync()
{
    // Some synchronous code might or might not be here... //
    return await DoAnotherThingAsync();
}

instead of this:

public Task<SomeResult> DoSomethingAsync()
{
    // Some synchronous code might or might not be here... //
    return DoAnotherThingAsync();
}

would make sense?

Why use return await construct when you can directly return Task<T> from the inner DoAnotherThingAsync() invocation?

I see code with return await in so many places, I think I might have missed something. But as far as I understand, not using async/await keywords in this case and directly returning the Task would be functionally equivalent. Why add additional overhead of additional await layer?

5
  • 6
    I think the only reason why you see this is because people learn by imitation and generally (if they don't need) they use the most simple solution they can find. So people see that code, use that code, they see it works and from now on, for them, that's the right way to do it... It's no use to await in that case Sep 30, 2013 at 15:41
  • 14
    There's at least one important difference: exception propagation.
    – noseratio
    Jan 13, 2014 at 1:43
  • 1
    I dont understand it either, cant comprehend this entire concept at all, doesnt make any sense. From what I learned if a method has a return type, IT MUST have a return keyword, isnt it the rules of C# language?
    – monstro
    Mar 29, 2018 at 15:57
  • 1
    @monstro the OP's question does have the return statement though? Dec 11, 2019 at 9:20

8 Answers 8

231

There is one sneaky case when return in normal method and return await in async method behave differently: when combined with using (or, more generally, any return await in a try block).

Consider these two versions of a method:

Task<SomeResult> DoSomethingAsync()
{
    using (var foo = new Foo())
    {
        return foo.DoAnotherThingAsync();
    }
}

async Task<SomeResult> DoSomethingAsync()
{
    using (var foo = new Foo())
    {
        return await foo.DoAnotherThingAsync();
    }
}

The first method will Dispose() the Foo object as soon as the DoAnotherThingAsync() method returns, which is likely long before it actually completes. This means the first version is probably buggy (because Foo is disposed too soon), while the second version will work fine.

12
  • 5
    For completeness, in first case you should return foo.DoAnotherThingAsync().ContinueWith(_ => foo.Dispose());
    – ghord
    Sep 23, 2014 at 8:58
  • 8
    @ghord That wouldn't work, Dispose() returns void. You would need something like return foo.DoAnotherThingAsync().ContinueWith(t -> { foo.Dispose(); return t.Result; });. But I don't know why would you do that when you can use the second option.
    – svick
    Sep 23, 2014 at 9:05
  • 1
    @svick You're right, it should be more along the lines of { var task = DoAnotherThingAsync(); task.ContinueWith(_ => foo.Dispose()); return task; }. The use case is pretty simple: if you are on .NET 4.0 (like most), you can still write async code this way which will work nicely called from 4.5 apps.
    – ghord
    Sep 23, 2014 at 11:38
  • 2
    @ghord If you are on .Net 4.0 and you want to write asynchronous code, you should probably use Microsoft.Bcl.Async. And your code disposes of Foo only after the returned Task completes, which I don't like, because it unnecessarily introduces concurrency.
    – svick
    Sep 23, 2014 at 12:47
  • 1
    @svick Your code waits until the task is finished too. Also, Microsoft.Bcl.Async is unusable for me due to dependency on KB2468871 and conflicts when using .NET 4.0 async codebase with proper 4.5 async code.
    – ghord
    Sep 23, 2014 at 15:06
126

If you don't need async (i.e., you can return the Task directly), then don't use async.

There are some situations where return await is useful, like if you have two asynchronous operations to do:

var intermediate = await FirstAsync();
return await SecondAwait(intermediate);

For more on async performance, see Stephen Toub's MSDN article and video on the topic.

Update: I've written a blog post that goes into much more detail.

8
  • 17
    Could you add an explanation as to why the await is useful in the second case? Why not do return SecondAwait(intermediate); ?
    – Matt Smith
    Sep 30, 2013 at 16:15
  • 2
    I have same question as Matt, wouldn't return SecondAwait(intermediate); achieve the goal in that case as well? I think return await is redundant here as well...
    – TX_
    Sep 30, 2013 at 16:31
  • 30
    @MattSmith That wouldn't compile. If you want to use await in the first line, you have to use it in the second one too.
    – svick
    Sep 30, 2013 at 20:29
  • 2
    @svick as they just run sequentially, should they be changed to normal calls like var intermediate = First(); return Second(intermediate) to avoid the overhead introduced by paralleling then. The async calls aren't necessary in this case, are they?
    – cateyes
    Jul 17, 2014 at 4:39
  • 7
    @TomLint It really doesn't compile. Assuming the return type of SecondAwait is `string, the error message is: "CS4016: Since this is an async method, the return expression must be of type 'string' rather than 'Task<string>'".
    – svick
    Nov 23, 2016 at 12:17
26

The only reason you'd want to do it is if there is some other await in the earlier code, or if you're in some way manipulating the result before returning it. Another way in which that might be happening is through a try/catch that changes how exceptions are handled. If you aren't doing any of that then you're right, there's no reason to add the overhead of making the method async.

7
  • 4
    As with Stephen's answer, I don't understand why would return await be necessary (instead of just returning the task of child invocation) even if there is some other await in the earlier code. Could you please provide explanation?
    – TX_
    Sep 30, 2013 at 16:33
  • 12
    @TX_ If you would want to remove async then how would you await the first task? You need to mark the method as async if you want to use any awaits. If the method is marked as async and you have an await earlier in code, then you need to await the second async operation for it to be of the proper type. If you just removed await then it wouldn't compile as the return value wouldn't be of the proper type. Since the method is async the result is always wrapped in a task.
    – Servy
    Sep 30, 2013 at 16:38
  • 13
    @Noseratio Try the two. The first compiles. The second doesn't. The error message will tell you the problem. You won't be returning the proper type. When in an async method you don't return a task, you return the result of the task which will then be wrapped.
    – Servy
    Sep 30, 2013 at 19:21
  • 3
    @Servy, of course - you're right. In the latter case we would return Task<Type> explicitly, while async dictates to return Type (which the compiler itself would turn into Task<Type>).
    – noseratio
    Sep 30, 2013 at 19:33
  • 3
    @Itsik Well sure, async is just syntactic sugar for explicitly wiring up continuations. You don't need async to do anything, but when doing just about any non-trivial asynchronous operation it's dramatically easier to work with. For example, the code you provided doesn't actually propagate errors as you'd want it to, and doing so properly in even more complex situations starts to become quite a lot harder. While you never need async, the situations I describe are where it's adding value to use it.
    – Servy
    Feb 26, 2016 at 2:33
21

Another case you may need to await the result is this one:

async Task<IFoo> GetIFooAsync()
{
    return await GetFooAsync();
}

async Task<Foo> GetFooAsync()
{
    var foo = await CreateFooAsync();
    await foo.InitializeAsync();
    return foo;
}

In this case, GetIFooAsync() must await the result of GetFooAsync because the type of T is different between the two methods and Task<Foo> is not directly assignable to Task<IFoo>. But if you await the result, it just becomes Foo which is directly assignable to IFoo. Then the async method just repackages the result inside Task<IFoo> and away you go.

1
  • 1
    Agree, this is really annoying - I believe the underlying cause is that Task<> is invariant.
    – StuartLC
    Apr 12, 2019 at 9:02
15

If you won't use return await you could ruin your stack trace while debugging or when it's printed in the logs on exceptions.

When you return the task, the method fulfilled its purpose and it's out of the call stack. When you use return await you're leaving it in the call stack.

For example:

Call stack when using await: A awaiting the task from B => B awaiting the task from C

Call stack when not using await: A awaiting the task from C, which B has returned.

1
9

Making the otherwise simple "thunk" method async creates an async state machine in memory whereas the non-async one doesn't. While that can often point folks at using the non-async version because it's more efficient (which is true) it also means that in the event of a hang, you have no evidence that that method is involved in the "return/continuation stack" which sometimes makes it more difficult to understand the hang.

So yes, when perf isn't critical (and it usually isn't) I'll throw async on all these thunk methods so that I have the async state machine to help me diagnose hangs later, and also to help ensure that if those thunk methods ever evolve over time, they'll be sure to return faulted tasks instead of throw.

5

This also confuses me and I feel that the previous answers overlooked your actual question:

Why use return await construct when you can directly return Task from the inner DoAnotherThingAsync() invocation?

Well sometimes you actually want a Task<SomeType>, but most time you actually want an instance of SomeType, that is, the result from the task.

From your code:

async Task<SomeResult> DoSomethingAsync()
{
    using (var foo = new Foo())
    {
        return await foo.DoAnotherThingAsync();
    }
}

A person unfamiliar with the syntax (me, for example) might think that this method should return a Task<SomeResult>, but since it is marked with async, it means that its actual return type is SomeResult. If you just use return foo.DoAnotherThingAsync(), you'd be returning a Task, which wouldn't compile. The correct way is to return the result of the task, so the return await.

2
  • 1
    "actual return type". Eh? async/await isn't changing return types. In your example var task = DoSomethingAsync(); would give you a task, not T Jan 5, 2017 at 17:50
  • 5
    @Shoe I am not sure I understood well the async/await thing. To my understanding, Task task = DoSomethingAsync(), while Something something = await DoSomethingAsync() both work. The first gives you the task proper, while the second, due to the await keyword, gives you the result from the task after it completes. I could, for example, have Task task = DoSomethingAsync(); Something something = await task;. Jan 5, 2017 at 18:51
1

Another reason for why you may want to return await: The await syntax supports automatic conversion between Task<T> and ValueTask<T> return types. For example, the code below works even though SubTask method returns Task<T> but its caller returns ValueTask<T>.

async Task<T> SubTask()
{
...
}

async ValueTask<T> DoSomething()
{
  await UnimportantTask();
  return await SubTask();
}

If you skip await on the DoSomething() line, you'll get a compiler error CS0029:

Cannot implicitly convert type 'System.Threading.Tasks.Task<BlaBla>' to 'System.Threading.Tasks.ValueTask<BlaBla>'.

You'll get CS0030 if you try to explicitly typecast it. Don't bother.

This is .NET Framework, by the way. I can totally foresee a comment saying "that's fixed in .NET hypothetical_version", I haven't tested it. :)

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