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How can I get a URL-encoded version of a multidimensional dictionary in Python? Unfortunately, urllib.urlencode() only works in a single dimension. I would need a version capable of recursively encoding the dictionary.

For example, if I have the following dictionary:

{'a': 'b', 'c': {'d': 'e'}}

I want to obtain the following string:

a=b&c[d]=e
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5 Answers

up vote 5 down vote accepted

OK people. I implemented it myself:

import urllib

def recursive_urlencode(d):
    """URL-encode a multidimensional dictionary.

    >>> data = {'a': 'b&c', 'd': {'e': {'f&g': 'h*i'}}, 'j': 'k'}
    >>> recursive_urlencode(data)
    u'a=b%26c&j=k&d[e][f%26g]=h%2Ai'
    """
    def recursion(d, base=[]):
        pairs = []

        for key, value in d.items():
            new_base = base + [key]
            if hasattr(value, 'values'):
                pairs += recursion(value, new_base)
            else:
                new_pair = None
                if len(new_base) > 1:
                    first = urllib.quote(new_base.pop(0))
                    rest = map(lambda x: urllib.quote(x), new_base)
                    new_pair = "%s[%s]=%s" % (first, ']['.join(rest), urllib.quote(unicode(value)))
                else:
                    new_pair = "%s=%s" % (urllib.quote(unicode(key)), urllib.quote(unicode(value)))
                pairs.append(new_pair)
        return pairs

    return '&'.join(recursion(d))

if __name__ == "__main__":
    import doctest
    doctest.testmod()

Still, I'd be interested to know if there's a better way to do this. I can't believe Python's standard library doesn't implement this.

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6  
Why should it? This is not in any way a standard format. The thing with the square brackets is a PHP-specific peculiarity not present in most other languages/frameworks or any web standard. –  bobince Oct 25 '10 at 11:40
1  
It may not be a pure-blood RFC-described IETF/W3C-backed holy-macaroni standard, but it's so commonly used nowadays that its not being included in Python's standard library does defy my comprehension. I have developed web applications in a number of platforms and languages, and this has always been the convention. And this includes Python-based environments such as Django: so no, it's not a PHP-only thing anymore. –  pablobm Oct 25 '10 at 13:03
    
Just so people who come here later are aware, this code comes close to working but doesn't work for objects with > 1 nesting level. So objects with > 1 nesting level get booted back to the top of the hash. –  Eric Lubow May 9 '12 at 19:41
    
Eric Lubow: thanks for the bug report. I just corrected it and should be ok now. –  pablobm Sep 21 '13 at 15:32
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Something like this?

a = {'a': 'b', 'c': {'d': 'e'}}

url = urllib.urlencode([('%s[%s]'%(k,v.keys()[0]), v.values()[0] ) if type(v)==dict else (k,v) for k,v in a.iteritems()])

url = 'a=b&c%5Bd%5D=e'
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1  
Afraid not. Please notice the difference between 'a=b&c[d]=e' and your proposed 'a=b&c%5Bd%5D=e'. That escaping should not be there. –  pablobm Oct 25 '10 at 11:10
    
Then you will have to iterate over the dictionary like I did and urlencode each item separately... –  eumiro Oct 25 '10 at 11:32
    
This only takes the first inner value in a dict but I like the way you did it so +1 for you hehe –  Hassek Sep 22 '11 at 18:03
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The above solution only works for arrays with depth < 2. The code below will properly urlencode a multidimensional array of any depth.

#!/usr/bin/env python

import sys
import urllib

def recursive_urlencode(data):
    def r_urlencode(data, parent=None, pairs=None):
        if pairs is None:
            pairs = {}
        if parent is None:
            parents = []
        else:
            parents = parent

        for key, value in data.items():
            if hasattr(value, 'values'):
                parents.append(key)
                r_urlencode(value, parents, pairs)
                parents.pop()
            else:
                pairs[renderKey(parents + [key])] = renderVal(value)

        return pairs
    return urllib.urlencode(r_urlencode(data))


def renderKey(parents):
    depth, outStr = 0, ''
    for x in parents:
        str = "[%s]" if depth > 0 else "%s"
        outStr += str % renderVal(x)
        depth += 1
    return outStr


def renderVal(val):
    return urllib.quote(unicode(val))


def main():
    print recursive_urlencode(payload)


if __name__ == '__main__':
    sys.exit(main())
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This function seems to pass the string through unicode twice. So a '!' turns into '%25%21' not simply '%21' –  deweydb Jun 11 '13 at 10:30
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what about json.dumps and json.loads?

d = {'a': 'b', 'c': {'d': 'e'}}
s = json.dumps(d)  # s: '{"a": "b", "c": {"d": "e"}}'
json.loads(s)  # -> d
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No. What I want is to URL-encode. No more, no less –  pablobm Oct 25 '10 at 11:29
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what about this simplified version:

def _clean(value):
    return urllib.quote(unicode(value))

'&'.join([ v for val in [[ "%s[%s]=%s"%(k,ik, _(iv)) 
    for ik, iv in v.items()] if type(v)==dict else ["%s=%s"%(k,_(v))] 
    for k,v in data.items() ] 
    for v in val ])

I agree is not readable, maybe flattening the list can be better done with itertools.chain instead of another list comprehension.

This only goes 1 level deeper, yours can go N levels deeper if you would add some logic to manage N numbers of "[%s]" depending on the level, but I guess is not that necesary

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