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Reading this page http://flask.pocoo.org/docs/patterns/streaming/ it seems like I might be able to do what I want, I have a simple url route that sends the output to json but I rather is stream the output:

@app.route('/')
def aws_api_route_puppet_apply(ip=None):
    output = somemethod(var1,var2,var3)
    return Response(json.dumps(output), mimetype='application/json') 

Is there a way to stream the somemethod to the browser using just flask and HTML or do I need to use javascript?

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BTW the output = somemethod(var1,var2,var3) sends output to the flask log, so there is output, I just want it to send it to the browser and the log. –  Brian Carpio Dec 18 '12 at 21:59
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1 Answer

up vote 2 down vote accepted

Just like the documentation says, simply create a generator and yield each line you want to return to the client.

If output is 10 lines long, then the following will print each of the ten lines (as they're available) to the client:

@app.route('/')
def aws_api_route_puppet_apply(ip=None):
    def generate():
        for row in somemethod(var1,var2,var3):
            yield row + '\n'
    return Response(generate(),  mimetype='application/json')
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@Brian Just two notes: a) Ideally you want somemethod to return a generator itself (lazy evaluation). b) It's easier to stream newline delimited formats like CSV than JSON. –  miku Dec 18 '12 at 22:12
    
So I actually tried that but it waited for the method to complete and then promoted me to download the csv file. I rather have it display the output on the screen line by line, is that possible? Maybe I am misunderstanding the idea here.. –  Brian Carpio Dec 18 '12 at 23:18
    
@BrianCarpio - simply remove the mimetype argument (or change it to text/html) –  Sean Vieira Dec 19 '12 at 0:11
    
I think my problem is that somemethod(var1,var2,var3) doesn't return until it's complete. I did change it to text/plan, but like you said I need somemethod to return a generator itself. Thanks. –  Brian Carpio Dec 19 '12 at 2:13
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