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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.

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I wonder if using a reverse iterator could be a solution. Any thoughts on this? It would be better than making a copy of a list. –  Craig McQueen Aug 30 '09 at 2:59
    
stackoverflow.com/questions/1207406/… It gets asked alot ... –  Jochen Ritzel Aug 30 '09 at 3:07

4 Answers 4

up vote 17 down vote accepted

Iterate over a copy of the list:

for c in colors[:]:
    if c == 'green':
        colors.remove(c)
share|improve this answer
    
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

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;-).

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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. –  EOL 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

You could use filter function:

>>> colors=['red', 'green', 'blue', 'purple']
>>> filter(lambda color: color != 'green', colors)
['red', 'blue', 'purple']
>>>
share|improve this answer

or you also can do like this

>>> colors = ['red', 'green', 'blue', 'purple']
>>> if colors.__contains__('green'):
...     colors.remove('green')
share|improve this answer
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. –  EOL 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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