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I'm new to python, and have a list of longs which I want to join together into a comma separated string.

In PHP I'd do something like this:

$output = implode(",", $array)

In Python, I'm not sure how to do this. I've tried using join, but this doesn't work since the elements are the wrong type (i.e., not strings). Do I need to create a copy of the list and convert each element in the copy from a long into a string? Or is there a simpler way to do it?

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up vote 21 down vote accepted

You have to convert the ints to strings and then you can join them:

','.join([str(i) for i in list_of_ints])
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Perfect! Thanks. – Ben Jan 13 '09 at 11:31
3  
Non-beginner note: In Python 2.4+ you don't need the [ ] around the generator expression -- it'll be more efficient if you leave it off. – cdleary Jan 13 '09 at 20:45
    
@cdleary: I realize this is 4 years late, but… it will usually be a bit less efficient if you use a genexp instead of a listcomp here. At least some implementations of str.join iterate the sequence twice, meaning they have to turn it your generator into a list anyway. In particular, CPython 2.4-3.3 uses the PySequence_FAST protocol, and PyPy 2.0.0 creates a listview. – abarnert May 12 '13 at 10:01
    
That being said, if efficiency isn't an issue (and it usually won't be), I'd probably use the genexp anyway. There's no conceptual reason to build an explicit list here when all you really care about is building an iterable. – abarnert May 12 '13 at 10:05
    
Why didn't Python join method do the str conversion itself? The code would have then simply read ",".join(list_of_ints) which is much more cleaner and easier to understand. – arun Oct 31 '13 at 23:09

You can use map to transform a list, then join them up.

",".join( map( str, list_of_things ) )

BTW, this works for any objects (not just longs).

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as for the Weeble comment, maybe it's better to use itertools.imap() if list_of_things is very big – ZeD Jan 13 '09 at 12:11
    
Few things are big enough or time-critical enough to justify itertools over built-in map. However, if benchmarking reveals that this is the bottleneck, you've got a way to speed things up. – S.Lott Jan 13 '09 at 12:29

You can omit the square brackets from heikogerlach's answer since Python 2.5, I think:

','.join(str(i) for i in list_of_ints)

This is extremely similar, but instead of building a (potentially large) temporary list of all the strings, it will generate them one at a time, as needed by the join function.

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Python 2.4 added Generator Expressions, bounded by parens, generating values one at a time, unlike the square-bracketed list comprehensions which generate the entire list. Dropping the square brackets becomes a Generator Expression due to a shortcut for single-param function calls. – Andy Dent Jan 13 '09 at 12:20
    
… except that the join function will build the list anyway, so you don't gain anything (and it may be a bit slower to build a list from a genexp than to just use a listcomp). See my comment to unbeknown's answers for details. – abarnert May 12 '13 at 10:03

Just for the sake of it, you can also use string formatting:

",".join("%s" % i for i in list_of_things)
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and yet another version more (pretty cool, eh?)

str(list_of_numbers)[1:-1]
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