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Our app is hosted on heroku and we use delayed job when sending info to a remote system (via a GET to a url with some url params)

the remote system returns a success code usually, but it it;s real busy it returns a tryagain code.

suppose the our method is

def send_info
   the_url = "http://mydomain.com/dosomething?arg=#{self.someval}"
   the_result = open(the_url).read
   successflag = get_success_flag_from(the_result)
end

and so somewhere in our code we do

@widget.delay.send_info

and that all works fine.

Except it does not automatically handle the case where the remote said to try back later.

Is there any way for the send_info method (which is what delayed job will execute) to "tell" delayed_job "retry me again"? Do we need to throw some custom exception or something?

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1 Answer 1

up vote 1 down vote accepted

Raising any kind of exception ought to cause delayed_job to requeue it (subject to only-trying-so-many-times); if you don't especially need a custom exception you can just raise a RuntimeError.

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1  
interesting, thanks! does our method have access to the number of tries that have been attempted already? I know that # is in the delayed_job table, but it's not clear to me how a method/instance could determine WHICH entry in the table is associated with that method/instance. –  jpwynn Mar 11 '11 at 17:39

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