Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have this array of dictionaries

for row in array:
        if row['val'] < 11:
            array.pop(array.index(row))

in which I am trying to remove the dictionary from the array if one of its values is below a certain threshold. It works, but only for one of the items in the array

My solution right now is to run the for statement twice, which then removes the extra value. How should I go about this?

share|improve this question

3 Answers 3

up vote 8 down vote accepted

You shouldn't modify a collection that you're iterating over. Instead, use a list comprehension:

array = [row for row in array if row['val'] >= 11]

Also, let's clear up one other thing. Python doesn't have native arrays. It has lists.

share|improve this answer
    
alright thanks. –  Dylansq Jul 25 '13 at 18:36
    
@Dylansq: My pleasure. –  Jason Jul 25 '13 at 18:38
[el for el in array if test_to_be_preserved(el)]

Where test_to_be_preserved is a function that return True if el should be spared, and False if el should be removed from the array

Or, if you don't mind changing order of elements in your original array:

  i = 0
  while i < len(array):
    el = array[i]
    if should_remove(el):
        array[i] = array.pop()
    else:
        i += 1
share|improve this answer
    
+1 for pointing out that a while loop does the trick. –  2rs2ts Jul 25 '13 at 19:53
1  
Yes, it's a useful trick of O(1) element removal from a vector (i've used it pretty often with std c++ vectors) if you don't mind the order of elements. –  Maciej Gol Jul 25 '13 at 20:19

You can use filter():

>>> nums = [random.randint(1, 101) for x in xrange(20)]
>>> nums
[75, 101, 21, 69, 44, 98, 50, 45, 63, 73, 8, 44, 54, 42, 66, 68, 98, 56, 7, 36]
>>> (lambda x, l: filter(lambda y: y >= x, l))(25, nums)
[75, 101, 69, 44, 98, 50, 45, 63, 73, 44, 54, 42, 66, 68, 98, 56, 36]
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.