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I'm reading the documentation for asynchronous fetch requests in GAE. Python isn't my first language, so I'm having trouble finding out what would be best for my case. I don't really need or care about the response for the request, I just need it to send the request and forget about it and move on to other tasks.

So I tried code like in the documentation:

from google.appengine.api import urlfetch

rpc = urlfetch.create_rpc()
urlfetch.make_fetch_call(rpc, "http://www.google.com/")

# ... do other things ...

try:
    result = rpc.get_result()
    if result.status_code == 200:
        text = result.content
        # ...
except urlfetch.DownloadError:
    # Request timed out or failed.
    # ...

But this code doesn't work unless I include try: and except, which I really don't care for. Omitting that part makes the request not go through though.

What is the best option for creating fetch requests where I don't care for the response, so that it just begins the request, and moves on to whatever other tasks there are, and never looks back?

share|improve this question
    
What happens when you omit the try/except? Do you get a traceback? Is the DownloadError always raised? – tesdal Jun 19 '12 at 19:25
    
Is this on the production server, or dev_appserver that you're noticing the requests not getting sent? – Wooble Jun 19 '12 at 19:37
    
It's on the dev server, but Moishie below says that it's the get_result() that's making the fetch go through, which I was omitting hoping that way I wouldn't have to wait for a response – moby Jun 19 '12 at 19:38
    
The dev server is single-threaded; it doesn't do asynchronous requests at all; the request is actually made when you call get_result() or wait(). – Wooble Jun 19 '12 at 19:42
    
I don't get it..what's all this talk about rpc and async requests in the documentation then? – moby Jun 19 '12 at 19:45
up vote 4 down vote accepted

Just do your tasks where the

# ... do other things ...

comment is. When you are otherwise finished, then call rpc.wait(). Note that it's not the try/except that's making it work, it's the get_result() call. That can be replaced with wait().

So your code would look like this:

from google.appengine.api import urlfetch

rpc = urlfetch.create_rpc()
urlfetch.make_fetch_call(rpc, "http://www.google.com/")

# ... do other things ... << YOUR CODE HERE

rpc.wait()
share|improve this answer
    
Well the thing is, the "do other things" part, I want to send out a server response with some data, so that won't be sent out until the rpc urlfetch is finished, no? And what if the urlfetch is in a separate function? So I would call do_async_request(), then how could I do things after that function call? – moby Jun 19 '12 at 19:37
    
If you want to respond, then set up your urlfetch in a task queue instead. – Moishe Lettvin Jun 19 '12 at 20:23
1  
(a) I think Moishe meant "rpc.wait()"; (b) there is no way to return a response to the user before all your RPCs (synchronous or async) have run till completion or timed out. So yes, if you are making a urlfetch call that you think is slow and you don't want th euser to have to wait for it, put it in the task queue. The deferred module might be handy for this simple case. In the taks, don't bother to use the async API. – Guido van Rossum Jun 20 '12 at 14:50
    
Guido's right; I fixed the code. This is why I like getting Guido as a code reviewer when I can :) – Moishe Lettvin Jun 20 '12 at 15:32

If you don't care about the response, the response may take a while, and you don't want your handler to wait for it to complete before returning a response to the user, you may want to consider firing off a task queue task that makes the request rather than doing it within your user-facing handler.

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