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I have a concatenated string like this:

my_str = 'str1;str2;str3;'

and I would like to apply split function to it and then convert the resulted list to a tuple, and get rid of any empty string resulted from the split (notice the last ';' in the end)

So far, I am doing this:

tuple(filter(None, my_str.split(';')))

Is there any more efficient (in terms of speed and space) way to do it?

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@Levon, point taken, sorry, i just picked an example variable name in a hurry. thanks. –  MLister Jun 12 '12 at 16:59
1  
Please explain what exactly you mean by "better". –  NPE Jun 12 '12 at 16:59
    
1. Can empty segments only occur due to an additional ; at the end, or might there be empty strings in the middle of the list? 2. Why do you want to convert the result to a tuple? Usually, simply using the list returned by str.split() should do fine. –  Sven Marnach Jun 12 '12 at 17:00
    
@robert, what is the faster way? –  MLister Jun 12 '12 at 17:00
3  
Depending on what datasets you're applying this to, it's entirely likely that you'll spend more time on this question -- writing it, reading the replies, and so on -- than you will save in runtime on the difference between the fastest and the slowest methods. This is true of at least half of the "fastest way" Python questions that get asked 'round here. –  DSM Jun 12 '12 at 17:04

6 Answers 6

up vote 5 down vote accepted

That is a very reasonable way to do it. Some alternatives:

  • foo.strip(";").split(";") (if there won't be any empty slices inside the string)
  • [ x.strip() for x in foo.split(";") if x.strip() ] (to strip whitespace from each slice)

The "fastest" way to do this will depend on a lot of things… but you can easily experiment with ipython's %timeit:

In [1]: foo = "1;2;3;4;"

In [2]: %timeit foo.strip(";").split(";")
1000000 loops, best of 3: 1.03 us per loop

In [3]: %timeit filter(None, foo.split(';'))
1000000 loops, best of 3: 1.55 us per loop
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If this is only about trailing ;, you can also use str.rstrip(). –  Sven Marnach Jun 12 '12 at 17:02
    
Yup, definitely. strip will remove them from both ends. –  David Wolever Jun 12 '12 at 17:28

How about this?

    tuple(my_str.split(';')[:-1])
    ('str1', 'str2', 'str3')

You split the string at the ; character, and pass all off the substrings (except the last one, the empty string) to tuple to create the result tuple.

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If you only expect an empty string at the end, you can do:

a = 'str1;str2;str3;'
tuple(a.split(';')[:-1])

or

tuple(a[:-1].split(';'))
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Try tuple(my_str.split(';')[:-1])

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use split and then slicing:

 my_str.split(';')[:-1]

or :

lis=[x for x in my_str.split(';') if x]
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I think OP wants a tuple as result, not a list –  Levon Jun 12 '12 at 17:37

Yes, that is quite a Pythonic way to do it. If you have a love for generator expressions, you could also replace the filter() with:

tuple(part for part in my_str.split(';') if part)

This has the benefit of allowing further processing on each part in-line.

It's interesting to note that the documentation for str.split() says:

... If sep is not specified or is None, any whitespace string is a separator and empty strings are removed from the result.

I wonder why this special case was done, without allowing it for other separators...

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