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I have list of values:

md5 = ['1111', '3333', '44444', '555555', '56632423', '23423514', '2342352323']

I want to concatenate them into a Query String:

'md5=1111&md5=3333&md5=44444&md5=555555&md5=56632423&md5=23423514&md5=2342352323'

What is the best way to do that?

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marked as duplicate by Matt Ball, Leigh, plaes, Tim Bish, nickhar May 11 '13 at 12:47

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

1  
You might first want to try looking at some of the related questions, such as this one. :) –  summea May 10 '13 at 23:04
3  
In the future, you should give higher-level information. Are you building a query string to use in a URL? If so, tell us that, then give us the example, instead of starting at the lowest level. See What is the XY problem? for why you'll generally get better answers that way (although this time, you got lucky and Zero Piraeus guessed for you). –  abarnert May 10 '13 at 23:13
    
Reopening because this is not a duplicate of the linked question, as demonstrated by @ZeroPiraeus. –  davidism Jun 20 at 19:13

3 Answers 3

You can use join():

md5=['1111','3333','44444','555555','56632423','23423514','2342352323']
print 'md5=' + '&md5='.join(md5)
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That doesn't give him the output he asked for. –  abarnert May 10 '13 at 23:05
    
I need to add & mark between each index –  SooIn Nam May 10 '13 at 23:06
    
@abarnert: I have updated my answer. –  Simeon Visser May 10 '13 at 23:06
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OK, now it works, but… it's a little odd. If you use join for the part that joins up elements, everything makes sense. If you try to use it for additional string processing, you end up with fencepost problems where you need to add an extra md5= at the beginning (your answer) or remove a & at the end (ljlozano's answer), which makes it a lot easier to get something wrong. –  abarnert May 10 '13 at 23:08
md5s = '&'.join('md5='+m for m in md5)

The part inside the parentheses is a generator expression, which gives you 'md5='+m for each m in the original list.

The join function takes that expression and links it into one big string, putting an & between each pair.

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Since you're building a query string, it's better to use a function from the standard library that's specifically designed to do so than to muck around with str.join():

>>> from urllib import urlencode # Python 2
>>> from urllib.parse import urlencode # Python 3
>>> md5 = ['1111', '3333', '44444', '555555', '56632423', '23423514', '2342352323']
>>> urlencode([("md5", x) for x in md5])
'md5=1111&md5=3333&md5=44444&md5=555555&md5=56632423&md5=23423514&md5=2342352323'
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1  
Yeah, if he's building a query string (very likely), this is definitely the best way to do it. You might want to add the fact that it's urllib.parse.urlencode instead of urllib.urlencode in Python 3.x. –  abarnert May 10 '13 at 23:12
    
@abarnert Done :-) –  Zero Piraeus May 10 '13 at 23:12

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