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I've returned a list of href values from a HTML document. I want to go though every link within this list and test to see if they contain any of the values within my IMAGE_FORMAT tuple.

IMAGE_FORMAT = (
    '.png',
    '.jpg',
    '.jpeg',
    '.gif',
)

At present I am simply testing for '.jpg' e.g if '.jpg' in link.get('href'):

I'd like to extend this code to something along the lines of if [any value inside IMAGEFORMAT] in link.get('href'):

What would be the most efficient or cleanest way or doing so?

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2 Answers 2

up vote 6 down vote accepted

If you really want in, then maybe

href = link.get('href')
if any(end in href for end in IMAGE_FORMAT):
    # do something
    pass

but if you actually want ends with, then use .endswith:

>>> IMAGE_FORMAT = ('.png','.gif','.jpg','.jpeg')
>>> 'fred.gif'.endswith(IMAGE_FORMAT)
True

Depends on how you want to treat 'fred.gif.gz', etc. Also note you might want to work with href.lower() if you don't care about case.

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1  
I always find myself tempted to write any('fred.gif'.endswith(ending) for ending in IMAGE_FORMAT), neglecting that .endswith already accepts *args to do what I want. x.x –  Karl Knechtel May 31 '12 at 4:00
    
You mention If you really want in, then maybe... would there be a nicer way of writing the same code? –  Kristian Roebuck May 31 '12 at 6:23
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Try any against list comprehension.

any(e in href for e in IMAGE_FORMAT)

Or, in English, "are any of the items in my image formats in my URI?" Bare in mind how in functions with strings, though.

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No need for the list. any(e in href for e in IMAGE_FORMAT) will do fine. –  kindall May 30 '12 at 23:58
    
@kindall Good point - amended post. –  cheeken May 31 '12 at 2:01
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