Simply, are these two functions functionally exactly the same?

async Task SomeFuncAsync()
{
  await Task.Delay(1000);
}

async Task Foo1()
{
  await BarAsync();
  return SomeFuncAsync();
}

async Task Foo2()
{
  await BarAsync();
  await SomeFuncAsync();
}

If not, what is the difference?

(Note this is slightly different than this and this because I'm not considering removing async from my function signature. If this is a duplicate, please link and I'll delete.)

  • 2
    In the second version you are not returning the results of SomeFuncAsyn(), so the first instance would return a Task where as the second version would return a Task<T> where T = the return type of SomeFuncAsync() – Ryan Wilson Sep 14 at 16:13
  • Ah, I actually meant Task with no return value Task rather than Task<>. I guess I should have specified that. – Rollie Sep 14 at 16:15
  • I'd think the exception propagation would differ. – schar Sep 14 at 16:16
  • 1
    The first Foo1 returns a task wrapped in a task. That is because async Task signature will wrap the result in a Task as the return value. – Igor Sep 14 at 16:20
  • 2
    Your edit wont compile… Since 'Program.Foo1()' is an async method that returns 'Task', a return keyword must not be followed by an object expression. Did you intend to return 'Task<T>' – Rand Random Sep 14 at 16:22
up vote 1 down vote accepted

The first Foo1 returns a task wrapped in a task.

async Task Foo1()
{
  await BarAsync();
  return SomeFuncAsync();
}

That is because async Task signature will wrap the result in a Task as the return value. This happens because you are not awaiting the result. The proper return type in the signature though should be Task<Task>, not Task> because the code is returning something (in this case a Task).

async Task<Task> Foo1()
{
  await BarAsync();
  return SomeFuncAsync();
}

Once you correct the return type on this method the difference between it and the next method becomes more obvious. The first one returns a Task wrapped in a Task and the next one just returns a Task.

  • actually, the code doesn't compile. saying "return type is void" – Selman Genç Sep 14 at 16:24
  • I never wana see that thing… consuming it is ugyl var taskOfFoo1 = await Foo1(); await taskOfFoo1; – Rand Random Sep 14 at 16:27
  • @RandRandom - maybe there is use case for it but I have not run across one yet. – Igor Sep 14 at 16:27
  • how does this answer "what is the difference?" ? – Selman Genç Sep 14 at 16:34
  • The question doesn't really make sense if it doesn't compile :P I'd delete it if I could, but SO wants me to keep it around to educate the masses, apparently. – Rollie Sep 14 at 16:37

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