295

What is the pythonic way of writing the following code?

extensions = ['.mp3','.avi']
file_name = 'test.mp3'

for extension in extensions:
    if file_name.endswith(extension):
        #do stuff

I have a vague memory that the explicit declaration of the for loop can be avoided and be written in the if condition. Is this true?

1
  • 4
    Though this question is well answered, perhaps the author originally thought of if any((file_name.endswith(ext) for ext in extensions)).
    – sapht
    Mar 2, 2017 at 9:37

7 Answers 7

592

Though not widely known, str.endswith also accepts a tuple. You don't need to loop.

>>> 'test.mp3'.endswith(('.mp3', '.avi'))
True
6
  • 11
    do you know why it won't accept a list but does a tuple? just curious
    – ilyail3
    Jul 13, 2016 at 17:49
  • 2
    @falsetru The link in the answer does not explicitly answer that question. It only mentions that it can accept tuples, but not why it cannot accept lists. Since they are both sequences, the only difference I can potentially see is that lists are mutable, while tuples are immutable. I may be wrong, but I can't see any other reason why that is explicitly stated.
    – KymikoLoco
    Jan 31, 2017 at 18:40
  • 6
    If you want to check if a string ends with a letter: import string; str.endswith(tuple(string.ascii_lowercase)) May 16, 2017 at 13:43
  • 3
    just a note, endswith accepts tuple only for python 2.5 and above Dec 31, 2018 at 9:32
  • 2
    @ilyail3: I suspect the goal is to push people towards efficient constructs. 99% of the time, the suffixes to test are constant string literals. If you put them in a list, the CPython optimizer (not knowing endswith won't store/mutate them) has to rebuild the list on every call. Put them in a tuple, and the optimizer can store off the tuple at compile time and just load it from the array of constants cheaply on each call. Similar sort of nudge to the one you get from using sum on an iterable of strings; it would work either way, but the code would be slower the wrong way. Dec 8, 2020 at 16:20
60

Just use:

if file_name.endswith(tuple(extensions)):
1
  • Simple and effective!
    – Ced
    Feb 19, 2020 at 12:34
6

There is two ways: regular expressions and string (str) methods.

String methods are usually faster ( ~2x ).

import re, timeit
p = re.compile('.*(.mp3|.avi)$', re.IGNORECASE)
file_name = 'test.mp3'
print(bool(t.match(file_name))
%timeit bool(t.match(file_name)

792 ns ± 1.83 ns per loop (mean ± std. dev. of 7 runs, 1000000 loops each)

file_name = 'test.mp3'
extensions = ('.mp3','.avi')
print(file_name.lower().endswith(extensions))
%timeit file_name.lower().endswith(extensions)

274 ns ± 4.22 ns per loop (mean ± std. dev. of 7 runs, 1000000 loops each)

6

another way which can return the list of matching strings is

sample = "alexis has the control"
matched_strings = filter(sample.endswith, ["trol", "ol", "troll"])
print matched_strings
['trol', 'ol']
2

I just came across this, while looking for something else.

I would recommend to go with the methods in the os package. This is because you can make it more general, compensating for any weird case.

You can do something like:

import os

the_file = 'aaaa/bbbb/ccc.ddd'

extensions_list = ['ddd', 'eee', 'fff']

if os.path.splitext(the_file)[-1] in extensions_list:
    # Do your thing.
1

I have this:

def has_extension(filename, extension):

    ext = "." + extension
    if filename.endswith(ext):
        return True
    else:
        return False
1
  • 3
    You mean return filename.endswith(ext) ? :P May 8, 2017 at 17:33
0

Another possibility could be to make use of IN statement:

extensions = ['.mp3','.avi']
file_name  = 'test.mp3'
if "." in file_name and file_name[file_name.rindex("."):] in extensions:
    print(True)
1
  • @Rainald62, index should be rindex in that case. Jul 2, 2018 at 5:06

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