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I have a django celery view which do the certain task and after the task has been completed successfully write that in database.

I am doing this:

result = file.delay(password, source12, destination)

And,

 if result.successful() is True:
      #writes into database

But after the task has finished execution it doesn't enter into the if condition.I tried with result.ready() but no luck.

Edit: Those above lines are in the same view:

def sync(request):
    """Sync the files into the server with the progress bar"""
    choice = request.POST.getlist('choice_transfer')
    for i in choice:
        source12 = source + '/' + i 
        start_date1 = datetime.datetime.utcnow().replace(tzinfo=utc)
        start_date = start_date1.strftime("%B %d, %Y, %H:%M%p")

        basename = os.path.basename(source12) #Get file_name
        extension = basename.split('.')[1] #Get the file_extension
        fullname = os.path.join(destination, i) #Get the file_full_size to calculate size

        result = file.delay(password, source12, destination)

        if result.successful() is True:
             #Write into database

e: #Writes to database

share|improve this question
    
Where do those two lines live in relation to one another? – Jack Shedd Feb 25 '13 at 8:52
    
They both fall under the same view. – pynovice Feb 25 '13 at 8:54
up vote 1 down vote accepted
  1. When you call file.delay, celery queues up the task to run in the background, at some later point.

  2. If you immediately check result.successful(), it'll be false, as the task hasn't run yet.

If you need to chain tasks (one firing after another) use Celery's workflow solutions (in this case chain):

def do_this(password, source12, destination):
    chain = file.s(password, source12, destination) | save_to_database.s()
    chain()


@celery.task()
def file(password, source12, destination):
    foo = password
    return foo


@celery.task()
def save_to_database(foo):
    Foo.objects.create(result=foo)
share|improve this answer
    
So what I want to do is: After the task completed, I want to write some information into the database. How can I do that? – pynovice Feb 25 '13 at 8:56
    
Either add code directly to the task which writes the information to the database, or call the task directly, and block until it is complete. – Jack Shedd Feb 25 '13 at 8:58
    
The first one I did that! But I don't want to show queued task to the user. If I wanted to use the second one, I would never have gone to django celery. – pynovice Feb 25 '13 at 9:01
    
You can use the chaining functionality of celery then. Basically, you write another celery task which just writes the information to the database, then ask celery to fire one after another. See this page, where it talks about "Avoid launching synchronous callbacks". It gives a solid example: docs.celeryproject.org/en/latest/userguide/tasks.html – Jack Shedd Feb 25 '13 at 9:04
    
Or I can get the task_id and check the status of that task from the task_id. The information about task is stored in celery_taskmeta. So I can get the status! Is that can be done? – pynovice Feb 25 '13 at 9:08

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