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I have a dictionary say..

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

In php I would to something like implode ( ',', $dict ) and get the output 'a,b,c,d' How do I do that in python?

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1  
Dictionaries in Python are unordered. Just thought you'd want to know. –  Ignacio Vazquez-Abrams Apr 29 '11 at 4:46
3  
And for the record, I don't understand the downvotes. This is a legitimate question with a fascinating answer. –  Ignacio Vazquez-Abrams Apr 29 '11 at 4:55
1  
@Ignacio - I wonder too. My motivation to answer below was to answer the question. I'd understand downvotes if my (identified as inelegant) answer was wrong. sigh –  mishaF Apr 29 '11 at 4:57

9 Answers 9

up vote 5 down vote accepted

This seems to be easiest way:

>>> from itertools import chain
>>> a = dict(a='b', c='d')
>>> ','.join(chain(*a.items()))
'a,b,c,d'
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you don't need the list() in there –  gnibbler Apr 29 '11 at 4:57
    
@gnibbler, indeed, fixed. –  Daniel Kluev Apr 29 '11 at 4:59
    
thx mate. all i needed :) –  Rob P. Apr 29 '11 at 6:36
3  
to avoid creating intermediate lists: ','.join(chain.from_iterable(a.iteritems())) –  J.F. Sebastian Apr 29 '11 at 6:46

First, the wrong answer:

','.join('%s,%s' % i for i in D.iteritems())

This answer is wrong because, while associative arrays in PHP do have a given order, dictionaries in Python don't. The way to compensate for that is to either use an ordered mapping type (such as OrderedDict), or to force an explicit order:

','.join('%s,%s' % (k, D[k]) for k in ('a', 'c'))
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Use string join on a flattened list of dictionary items like this:

",".join(i for p in dict.items() for i in p)

Also, you probably want to use OrderedDict.

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+1 - like your solution. –  manojlds Apr 29 '11 at 5:01

This has quadratic performance, but if the dictionary is always small, that may not matter to you

>>> sum({'a':'b','c':'d'}.items(), ())
('a', 'b', 'c', 'd')

note that the dict.items() does not preserve the order, so ('c', 'd', 'a', 'b') would also be a possible output

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a=[]
[ a.extend([i,j]) for i,j in dict.items() ]
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Either

[value for pair in {"a": "b", "c" : "d"}.iteritems() for value in pair]

or

(lambda mydict: [value for pair in mydict.iteritems() for value in pair])({"a": "b", "c" : "d"}) 

Explanation:

Simplified this example is return each value from each pair in the mydict

Edit: Also put a ",".join() around these. I didn't read your question properly

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I know this is an old question but it is also good to note.

The original question is misleading. implode() does not flatten an associative array in PHP, it joins the values

echo implode(",", array("a" => "b", "c" => "d"))
// outputs b,d

implode() would be the same as

",".join(dict.values())
# outputs b,d
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This is not very elegant, but works:

result=list()
for ind in g:
   result.append(ind)
   for cval in g[ind]:
       result.append(cval)
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dictList = dict.items()

This will return a list of all the items.

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this will return pairs of values (tuples or whatever) –  James Khoury Apr 29 '11 at 5:03

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