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I have a list of tuples that looks like this:

[('this', 'is'), ('is', 'the'), ('the', 'first'), ('first', 'document'), ('document', '.')]

What is the most pythonic and efficient way to convert into this where each token is separated by a space:

['this is', 'is the', 'the first', 'first document', 'document .']
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3 Answers 3

up vote 10 down vote accepted

Very simple:

[ "%s %s" % x for x in l ]
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1  
Or, "{0} {1}".format(*x) –  Joel Cornett Jul 27 '12 at 21:52
3  
[("%s "*len(x)%x).strip() for x in l] if you dont know how long each tuple is ... in the example its 2...but if one had 3 entries or someat this would account for that –  Joran Beasley Jul 27 '12 at 21:52
    
@JoranBeasley no, you'd just use " ".join for that. –  Julian Jul 27 '12 at 21:54
    
@Julian yeah your right ... brain fart [" ".join(x) for x in l] –  Joran Beasley Jul 27 '12 at 21:55
2  
This works only for 2-tuples. It'll be difficult to extend this to n-tuples for large n. ' '.join(tup) would be the best way to do it –  inspectorG4dget Jul 27 '12 at 22:08

Using map() and join():

tuple_list = [('this', 'is'), ('is', 'the'), ('the', 'first'), ('first', 'document'), ('document', '.')]

string_list = map(' '.join, tuple_list) 

As inspectorG4dget pointed out, list comprehensions are the most pythonic way of doing this:

string_list = [' '.join(item) for item in tuple_list]
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This does it:

>>> l=[('this', 'is'), ('is', 'the'), ('the', 'first'), 
('first', 'document'), ('document', '.')]
>>> ['{} {}'.format(x,y) for x,y in l]
['this is', 'is the', 'the first', 'first document', 'document .']

If your tuples are variable length (or not even), you can also do this:

>>> [('{} '*len(t)).format(*t).strip() for t in [('1',),('1','2'),('1','2','3')]]
['1', '1 2', '1 2 3']   #etc

Or, probably best still:

>>> [' '.join(t) for t in [('1',),('1','2'),('1','2','3'),('1','2','3','4')]]
['1', '1 2', '1 2 3', '1 2 3 4']
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