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I'm trying to create a function:

filter(delete,lst) 

When someone inputs:

filter(1,[1,2,1]) 

returns [2]

What I have come up with was to use the list.remove function but it only deletes the first instance of delete.

def filter(delete, lst):

"""

Removes the value or string of delete from the list lst

"""

   list(lst)

   lst.remove(delete)

   print lst

My result:

filter(1,[1,2,1])

returns [2,1]

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I'd suggest choosing a different name for your function. There is a built-in filter function and you'll be masking it. –  Avaris Nov 18 '11 at 2:00
    
the reason i called my function "filter" was at the request of the instructor in this assignment –  HighAllegiant Nov 18 '11 at 2:06
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2 Answers 2

up vote 8 down vote accepted

Try with list comprehensions:

def filt(delete, lst):
    return [x for x in lst if x != delete]

Or alternatively, with the built-in filter function:

def filt(delete, lst):
    return filter(lambda x: x != delete, lst)

And it's better not to use the name filter for your function, since that's the same name as the built-in function used above

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+1. I'd only add that it's good not to use filter as a name, since it's already a built-in. –  Michael Hoffman Nov 18 '11 at 2:01
    
Thanks for the answers. And the reason I called my function "filter" was at the request of my instructor in this assignment. –  HighAllegiant Nov 18 '11 at 2:08
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HighAllegiant : In those cases, please add the Homework tag to your question. Giving the answer to you in absolutely unhelpful. –  Vincent Savard Nov 18 '11 at 2:38
    
Between this and your other question, it looks to me like your instructor is hell-bent on making people do easy problems the hard way for no reason. :( –  Karl Knechtel Nov 18 '11 at 3:51
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I like the answer from Óscar López but you should also learn to use the existing Python filter function:

>>> def myfilter(tgt, seq):
        return filter(lambda x: x!=tgt, seq)

>>> myfilter(1, [1,2,1])
[2]
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