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I am trying to filter a list, here is the code:

 test=['aaa','bbb','ccc','ddd','footer','header']

 def rm_hf(x): return x != 'footer'

 filter(rm_hf,test)

Results in :

>>>['aaa','bbb','ccc','ddd','header']

That is expected result, finding 'footer' in the list and remove it.

Now I want to remove both 'header' and 'footer' so I do this:

 test2=['aaa','bbb','ccc','ddd','footer','header']

 def rm_hf2(x): return x != 'footer' or x != 'header'

 filter(rm_hf2,test2)

Results in :

>>>['aaa','bbb','ccc','ddd','footer','header']

Now that's weird, it just gives out both 'footer','header' instead of filtering them?

What did I do wrong? I think my logic is correct...

share|improve this question
4  
and, not or!!!!! –  Gareth Rees Nov 26 '10 at 1:05
3  
-1: Trivial logic question muddied up with "weird behavior" and "bug in Python". It's always logic. How hard can it be to test rm_hf2? –  S.Lott Nov 26 '10 at 1:47
    
Well , i just asked question clearly , You just vote me down instead of correcting me , wow , what an expert LOL. I can't stop laughing.Well i dont care votes here anyways , so enjoy voting me down :) –  V3ss0n Nov 26 '10 at 2:08
2  
The correction is the point. The downvote doesn't fix the question to help other people to learn from your question. Please actually test your rm_hf2 function. Please post the results of testing your rm_hf2 function to make the question understandable to other people. –  S.Lott Nov 26 '10 at 2:16
1  
+1 vote to you as you love votes :). do you see the result of rm_hf2?>>>['aaa','bbb','ccc','ddd','footer','header'] lol.. , Anyways , thanks for voting me down , other people gives me clear and productive answers. Thats way a lot more valuable than votes :) –  V3ss0n Nov 26 '10 at 3:14

4 Answers 4

up vote 7 down vote accepted

Your logic is correct because you think like a human. Your computer does not. He reads every element from your list, then stumbles upon 'footer'. "Is footer different than footer?", he says. "NO! It's the same string! It's evaluated to false. Let's see the next condition". "Is footer different than header? YES!" The condition is therefore False or True, which obviously evaluates to true.

You want a and, not a or :

def rm_hf2(x): return x != 'footer' and x != 'header'

You could also use a tuple and the in keyword, which is more readable :

def rm_hf2(x): return x not in ('footer', 'header')

It's important that you understand what's really going on with "and" and "or", though. And let's be honest : if something isn't working as you think it should, the problem most likely lies in your own code, and not in Python language itself.

share|improve this answer
1  
Here is another explanation for the logical error: He thought he wrote not (x=='footer' or x=='header') but wrote (not x=='footer') or (not x=='header') instead. –  Jochen Ritzel Nov 26 '10 at 1:18
    
@THC4k: It's possible, although it's a common beginner mistake to write or when you mean "shouldn't be any of those". –  Vincent Savard Nov 26 '10 at 1:30
1  
Another explanation: He didn't read the filter function he wrote INCLUSIVE_OR he didn't TEST the filter function he wrote. –  John Machin Nov 26 '10 at 1:48
    
Thanks a lot!, i was thinking the way what THC4K saids! –  V3ss0n Nov 26 '10 at 2:10
    
+ it is my first time using filter too. –  V3ss0n Nov 26 '10 at 2:13

my logic is correct

Actually, no it isn't, as highlighted in other answers.

A far neater way to achieve the desired outcome is to use list comprehensions, viz:

test = ['aaa', 'bbb', 'ccc', 'ddd', 'footer', 'header']
undesirable = ['footer', 'header']
[_ for _ in test if _ not in undesirable]

From the documentation:

Note that filter(function, iterable) is equivalent to [item for item in iterable if function(item)] if function is not None and [item for item in iterable if item] if function is None.

That said, there's no time like the present to brush-up on your Boolean logic!

Were you to unit test your code, you would quickly find out that your second filtration function is not doing what you expect. Here is a simplistic example:

$ cat 4281875.py 
#!/usr/bin/env python

import unittest

def rm_hf2(x): return x != 'footer' or x != 'header'

class test_rm_hft(unittest.TestCase):

    def test_aaa_is_not_filtered(self):
        self.assertTrue(rm_hf2('aaa'))

    def test_footer_is_filtered_out(self):
        self.assertFalse(rm_hf2('footer'))


if __name__ == '__main__':
    unittest.main()


$ ./4281875.py 
.F
======================================================================
FAIL: test_footer_is_filtered_out (__main__.test_rm_hft)
----------------------------------------------------------------------
Traceback (most recent call last):
  File "./4281875.py", line 13, in test_footer_is_filtered_out
    self.assertFalse(rm_hf2('footer'))
AssertionError

----------------------------------------------------------------------
Ran 2 tests in 0.000s

FAILED (failures=1)
share|improve this answer

What everybody else said, plus:

When you have several items that you want to exclude, use a set instead of a chain of ands or a tuple:

# do once
blacklist = set(['header', 'footer'])

# as needed
filter(lambda x: x not in blacklist, some_iterable)

Rationale: Looking through a tuple takes time proportional to the position of the found item; failure takes the same time as the last item. Looking up an item in a set takes the same time for all items, and for failure. Sets usually win for a large number of items. It all depends on the probability that each item will be searched, and what the probability of failure is. Tuples can win even with a large collection when there's a high probability of a few items (they should be put at the front of the tuple) and a low chance of failure.

share|improve this answer
    
thanks , any advantage of using Sets vs tuples? –  V3ss0n Nov 26 '10 at 2:12
1  
@V3ss0n: see my edited answer. –  John Machin Nov 26 '10 at 2:50
    
Thanks a lot. I used lists when comparing in list comprehension. I should changed to sets. These list are big , they are list of files which have 20k + items. –  V3ss0n Nov 28 '10 at 8:03

you can also use a list comprehension instead of filter.

test = ['aaa','bbb','ccc','ddd','footer','header']
filtered_test = [x for x in test if x not in ('footer', 'header')]

or a generator expression (depending on your needs)

test = ['aaa','bbb','ccc','ddd','footer','header']
filtered_test = (x for x in test if x not in ('footer', 'header'))
share|improve this answer
    
yes i just have just used list comprehensions. But thought filter is more readable , and i tired filters , it is first time using filter. , i dont usually use filters or maps , just list comprehensions –  V3ss0n Nov 26 '10 at 2:14
1  
@V3ss0n This is why you should stick with comprehensions - precisely because they are easier to read and understand! –  fmark Nov 26 '10 at 5:58

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