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In the following string how to get the id after the directory media and after getting the id ignore the rest of the string to read only the id numbers

id_arr= ["/opt/media/12/htmls","/opt/media/24/htmls","/opt/media/26/htmls","/opt/media/56/htmls"]

The output should be 12 24 26 56

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5 Answers 5

up vote 3 down vote accepted

If the strings always look the way you said, try

ids = [int(s.split("/")[3]) for s in id_arr]
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1  
Maybe use os.path.sep instead of a plain /, just in case? –  Frédéric Hamidi Dec 9 '10 at 9:09
    
Not sure if these are paths or parts of URLs. –  Sven Marnach Dec 9 '10 at 9:13
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parts = "/opt/media/12/htmls","/opt/media/24/htmls","/opt/media/26/htmls","/opt/media/56/htmls"
for str in parts:
    print str.split("/")[3]

EDIT: unuseful rpartition() removed

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The correct way probably involves some clever use of the os.path module, but for the input given, just use a regex for media\/([0-9]+) and extract the first group.

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>>> import re
>>> myre = re.compile("^.*/media/(\d+)")
>>> for item in id_arr:
...     print (myre.search(item).group(1))
...
12
24
26
56
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2  
Why the downvote? Yeah, regexes are bit overkill, but they satisfy the requirement that we're extracting the numerical ID after the media directory. No other solution considers the possibility that it might not be the third field (not even Puller's, since it assumes the prefix is /opt/media). –  Wang Dec 9 '10 at 9:19
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[x.split('/')[3] for x in id_arr]

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