11

This question already has an answer here:

In Java I can do by using an Iterator and then using the .remove() method of the iterator to remove the last element returned by the iterator, like this:

import java.util.*;

public class ConcurrentMod {
    public static void main(String[] args) {
        List<String> colors = new ArrayList<String>(Arrays.asList("red", "green", "blue", "purple"));
        for (Iterator<String> it = colors.iterator(); it.hasNext(); ) {
            String color = it.next();
            System.out.println(color);
            if (color.equals("green"))
                it.remove();
        }
        System.out.println("At the end, colors = " + colors);
    }
}

/* Outputs:
red
green
blue
purple
At the end, colors = [red, blue, purple]
*/

How would I do this in Python? I can't modify the list while I iterate over it in a for loop because it causes stuff to be skipped (see here). And there doesn't seem to be an equivalent of the Iterator interface of Java.

marked as duplicate by unutbu python Jun 22 '15 at 16:00

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

19

Iterate over a copy of the list:

for c in colors[:]:
    if c == 'green':
        colors.remove(c)
  • Why colors[:] instead of colors? – hughdbrown Aug 30 '09 at 3:07
  • 4
    colors[:] is a copy (a weird but, sigh, idiomatic way to spell list(colors)) so it doesn't get affected by the .remove calls. – Alex Martelli Aug 30 '09 at 3:28
  • 1
    The only reason to call it more idiomatic is because the stdlib copy module documentation references it. Despite that, I would still use list(otherlist) for copies (or possibly copy.copy(otherthing)) – Devin Jeanpierre Aug 30 '09 at 15:18
27

Best approach in Python is to make a new list, ideally in a listcomp, setting it as the [:] of the old one, e.g.:

colors[:] = [c for c in colors if c != 'green']

NOT colors = as some answers may suggest -- that only rebinds the name and will eventually leave some references to the old "body" dangling; colors[:] = is MUCH better on all counts;-).

  • 1
    List comprehension is the best choice. – hughdbrown Aug 30 '09 at 3:07
  • or colors=list(c for c in colors if c != 'green') – dugres Aug 30 '09 at 9:17
  • @dugres: not quite: colors = list(...) does rebind. Alex insisted on the idea that it's better not do leave useless lists dangling in memory. – Eric O Lebigot Aug 30 '09 at 9:39
  • 1
    @Devin, NOT just for other references. E.g. if colors is a global doing colors= in a fuction requires an extra global colors, colors[:]= doesn't. GC of the old list does't happen instantly in all versions of Python. Etc: there's NEVER any downside in assigning to name[:], OFTEN many downsides to assigning to name (including the occasional puzzling bug where the "rarely for you" case DOES occur but you're used to the wrong way), so it's a hiding to nothing FOR the correct way, name[:]=, and AGAINST the wrong one, name=. Only one obvious way... – Alex Martelli Aug 30 '09 at 15:38
  • 2
    ...though it may not be obvious unless you're Dutch;-). – Alex Martelli Aug 30 '09 at 15:39
4

You could use filter function:

>>> colors=['red', 'green', 'blue', 'purple']
>>> filter(lambda color: color != 'green', colors)
['red', 'blue', 'purple']
>>>
0

or you also can do like this

>>> colors = ['red', 'green', 'blue', 'purple']
>>> if colors.__contains__('green'):
...     colors.remove('green')
  • 3
    There is no advantage in using .__contains__() over 'green' in colors – Roberto Bonvallet Aug 30 '09 at 5:13
  • 1
    Plus, colors.remove() only removed the first occurrence instead of all the occurrences. – Eric O Lebigot Aug 30 '09 at 9:37
  • 2
    The solution could be made to work, via: while 'green' in colors: colors.remove('green') . Of course, this is O(n**2), while the better solutions are O(n). – Devin Jeanpierre Aug 30 '09 at 15:19
  • yes,you are correct Devin.. – user149513 Sep 12 '09 at 5:58

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