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How do i remove an element from a list if it matches a substring?

I have tried removing an element from a list using the pop() and enumerate method but seems like i'm missing a few contiguous items that needs to be removed:

sents = ['@$\tthis sentences needs to be removed', 'this doesnt',
     '@$\tthis sentences also needs to be removed', 
     '@$\tthis sentences must be removed', 'this shouldnt',
     '# this needs to be removed', 'this isnt',
     '# this must', 'this musnt']

for i, j in enumerate(sents):
  if j[0:3] == "@$\t":
    sents.pop(i)
    continue
  if j[0] == "#":
    sents.pop(i)

for i in sents:
  print i

Output:

this doesnt
@$  this sentences must be removed
this shouldnt
this isnt
#this should
this musnt

Desired output:

this doesnt
this shouldnt
this isnt
this musnt
share|improve this question
2  
Classic case of removing items from a list while you're iterating over that list. Read the dozens of other Stack Overflow questions that relate to this. Also, see the note in the docs. –  John Y Oct 1 '12 at 2:47
1  
you should always avoid changing the length of a container while iterating through it, this is a recipe for disaster –  wim Oct 1 '12 at 2:48
    
In general, it's usually better to create a new filtered list than to try to modify a list in-place. Immutable algorithms are always easier to reason through (although not always easier to figure out how to write). When you're just replacing values, sometimes the efficiency gains of working in-place beat that, but when you're deleting or inserting in the middle of a list, you're usually getting worse efficiency along with your less robust logic. –  abarnert Oct 1 '12 at 3:36

3 Answers 3

up vote 9 down vote accepted

How about something simple like:

>>> [x for x in sents if not x.startswith('@$\t') and not x.startswith('#')]
['this doesnt', 'this shouldnt', 'this isnt', 'this musnt']
share|improve this answer
    
ah a list comprehension, elegant! let me try. –  alvas Oct 1 '12 at 2:35
    
+1 for the cleanest answer. –  abarnert Oct 1 '12 at 3:35

Another technique using filter

filter( lambda s: not (s[0:3]=="@$\t" or s[0]=="#"), sents)

The problem with your orignal approach is when you're on list item i and determine it should be deleted, you remove it from the list, which slides the i+1 item into the i position. The next iteration of the loop you're at index i+1 but the item is actually i+2.

Make sense?

share|improve this answer
    
thanks for the explanation! popping a list while enumerating is silly indeed. hahaha.. –  alvas Oct 1 '12 at 3:03
    
+1 for explaining the problem. –  abarnert Oct 1 '12 at 3:35

This should work:

[i for i in sents if not ('@$\t' in i or '#' in i)]

If you want only things that begin with those specified sentential use the str.startswith(stringOfInterest) method

share|improve this answer
    
I'd argue this one is better than the other two for not assuming the substrings are at the start –  Dirk Haupt Jul 21 at 18:04

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