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I have a simple code to fetch users from db using sqlalchemy and return them as json. My problem is how to format the output to get something like this:

{"results": [{"id":1, "username":"john"},{"id":2,"username":"doe"}]}

my code outputs an error which I cant seem to fix being a newbie in python:

d = []

for user in Users.query.all():
    v = {}
    for columnName in Users.__table__.columns.keys():
        v[columnName] = getattr( user, columnName )

    d.append( v )

return jsonify( d )

The code says:

ValueError: dictionary update sequence element #0 has length 11; 2 is required

Thanks.

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1  
In which line do you get this error? –  sth May 30 '11 at 19:20
3  
Could you paste the whole stacktrace? –  senderle May 30 '11 at 19:20
1  
Not the reason for your error, but if you want to have that data structure, you need to change the return line to: return jsonify( {"results": d} ) –  Baltasarq May 30 '11 at 19:27
1  
Full stack trace at: paste.pocoo.org/show/397870 Full code at: paste.pocoo.org/show/397871 –  Rob P. May 30 '11 at 19:32
1  
Also, you're using a property that's supposed to be private (__table__), there are other ways to get that metadata, using the API plus some helpers. –  Keith May 30 '11 at 19:43

4 Answers 4

up vote 5 down vote accepted

Ah, now that your code has been pasted, I can see that the fundamental problem is indeed coming from jsonify. The below workaround should be satisfactory.

>>> import json
>>> json.dumps({"results": [{"id":1, "username":"john"},{"id":2,"username":"doe"}]})
'{"results": [{"username": "john", "id": 1}, {"username": "doe", "id": 2}]}'

Replace jsonify with json.dumps, and let me know if that doesn't fix the problem.

But if you'd prefer to use flask.jsonify, then you should take a look at the flask documentation. The argument to jsonify should be the same as the argument to any dict constructor -- i.e. a dict or an iterable of tuples. So that's the problem.

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jsonify was the issue, thanks alot –  Rob P. May 30 '11 at 19:39
    
BTW, simplejson lets you register additional encoders with it so you can extend it with more complex objects. –  Keith May 30 '11 at 20:00

I solved this error by simply saying

return jsonify( results = d )

instead of

return jsonify( d )
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Nice. The reason behind this is that the jsonify in flask will not encode a raw array (in square brackets) at the top level. I don't know exactly why, but that is considered unsafe. –  bsa Nov 18 '13 at 9:38

You're calling dict() with *args, which is going to expand args to positional parameters. That is a typical cause of that error you are seeing. Leave that out.

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But he's not calling dict. –  senderle May 30 '11 at 19:55
    
He is somewhere, or is being called with some parameters he provided. –  Keith May 30 '11 at 19:58

The error is what you'd expect when creating a dict incorrectly - see Python dictionary creation error

Edited: See answer from senderle that identifies the root cause...

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