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I have a file called something like FILE-1.txt or FILE-340.txt. I want to be able to get the number from the file name. I've found that I can use

numbers = re.findall(r'\d+', '%s' %(filename))

to get a list containing the number, and use numbers[0] to get the number itself as a string... But if I know it is just one number, it seems roundabout and unnecessary making a list to get it. Is there another way to do this?


Edit: Thanks! I guess now I have another question. Rather than getting a string, how do I get the integer?

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2  
Do I understand it correctly, that by '%s' %(filename) you are converting a string to string? If filename is a string, then just replace '%s' %(filename) with filename. –  Tadeck Nov 22 '11 at 22:21
    
Adding to Tadeck's comment, if filename is not a string then str(filename) is equivalent to '%s' % filename. –  Andrew Clark Nov 22 '11 at 22:23

5 Answers 5

up vote 16 down vote accepted

Use search instead of findall:

number = re.search(r'\d+', filename).group()

Alternatively:

number = filter(str.isdigit, filename)
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1  
Although filter is more similar to re.findall in cases where there are multiple groups of numbers e.g. using "FILE-340-1.txt" filter produces "3401" while re.search only returns the first group "340". –  Matthew Wilcoxson Jul 18 '13 at 11:45

Adding to F.J's comment, if you want an int, you can use:

numbers = int(re.search(r'\d+', filename).group())
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Another way just for fun:

In [1]: fn = 'file-340.txt'

In [2]: ''.join(x for x in fn if x.isdigit())
Out[2]: '340'
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If you want your program to be effective

use this:

num = filename.split("-")[1][:-4]

this will work only to the example that you showed

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What does [1][:-4] do? –  user1058492 Nov 22 '11 at 22:34
1  
It is take the second part from the splitting and than cut the last 4 chars[".txt"] –  Davido Nov 22 '11 at 22:47

In response to your new question you can cast the string to an int:

>>>int('123')
123
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