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I'm writing a round robin algorithm for a tournament app.

When the number of players is odd, I add 'DELETE' to the list of players, but later, when I want to delete all items from schedule list that contain 'DELETE', I can't -- one is always left. Please take a look at the code -- the problem is simple and I suppose it's about lists; I just i can't see it.

"""
Round-robin tournament:
1, 2, 3, 4, | 5, 6, 7, 8    =>  1, 2, 3, 4  => rotate all but 1 =>  1, 5, 2, 3  => repeat =>    1, 6, 5, 2  ...
                    5, 6, 7, 8              6, 7, 8, 4          7, 8, 4, 3
in every round pick l1[0] and l2[0] as first couple, after that l1[1] and l2[1]...
"""

import math

lst = []
schedule = []
delLater = False

for i in range(3):                  #make list of numbers
    lst.append(i+1)

if len(lst) % 2 != 0:               #if num of items is odd, add 'DELETE'
    lst.append('DELETE')
    delLater = True


while len(schedule) < math.factorial(len(lst))/(2*math.factorial(len(lst) - 2)): #!(n)/!(n-k)

    mid = len(lst)/2

    l1 = lst[:mid]
    l2 = lst[mid:]

    for i in range(len(l1)):            
        schedule.append((l1[i], l2[i]))         #add lst items in schedule

    l1.insert(1, l2[0])             #rotate lst
    l2.append(l1[-1])
    lst = l1[:-1] + l2[1:]


if delLater == True:                #PROBLEM!!! One DELETE always left in list
    for x in schedule:
        if 'DELETE' in x:
            schedule.remove(x)

i = 1
for x in schedule:
    print i, x
    i+=1
share|improve this question
    
possible duplicate of Removing from a list while iterating over it –  agf Sep 27 '11 at 17:40
    
possible duplicate of Remove items from a list while iterating in Python –  Dana the Sane Sep 27 '11 at 18:22
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4 Answers

up vote 2 down vote accepted

You shouldn't modify the list while iterating over it:

for x in schedule:
    if 'DELETE' in x:
        schedule.remove(x)

Instead, try:

schedule[:] = [x in schedule where 'DELETE' not in x]

Fore more info, see Remove items from a list while iterating in Python

share|improve this answer
1  
There was no need to copy the in-place assignment from the other answers, it's not better. –  agf Sep 27 '11 at 17:26
    
thanks for the answer and info. to be honest i still don't know how to ask question about python properly or where to look for the answer. i didn't know that removing items during iteration is different. –  Rodic Sep 27 '11 at 17:39
    
@Rodic: My pleasure. This problem is something every Python coder runs into sooner or later. –  NPE Sep 27 '11 at 17:41
1  
@agf: if not using [:] creates bugs, then using it is better. See my answer for details. –  Ethan Furman Sep 27 '11 at 18:08
add comment
schedule[:] = [x for x in schedule if 'DELETE' not in x]

See the other questions about deleting from a list while iterating over it.

share|improve this answer
    
+1 for using [:] to just modify the same list object. –  Macke Sep 27 '11 at 17:24
1  
Why use in-place assignment? @Macke there is likely no benefit to it. It briefly saves a bit of memory, and it's a bit slower. Most likely neither matters. –  agf Sep 27 '11 at 17:25
    
@agf: Just to fix the existing code with as little change as possible. Personally, I'd just use generators everywhere or write a algorithm that doesn't need the bogus entries, but that's not the question. –  Jochen Ritzel Sep 27 '11 at 17:34
    
@agf Readability. Introducing another list object introduces another variable to remember when reading the code. –  Velociraptors Sep 27 '11 at 17:36
    
@Velociraptors What does object identity matter? You can still use the same name, you don't need a new variable: schedule = [x for x in schedule if 'DELETE' not in x] –  agf Sep 27 '11 at 17:39
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Don't modify a sequence being iterated over.

schedule[:] = [x for x in schedule if 'DELETE' not in x]
share|improve this answer
add comment

To remove elements from a list while iterating over it, you need to go backwards:

if delLater == True:
    for x in schedule[-1::-1]):
        if 'DELETE' in x:
            schedule.remove(x)

A better option is to use a list-comprehension:

schedule[:] = [item for item in schedule if item != 'DELETE']

Now, you could just do schedule = instead of schedule[:] = -- what's the difference? One example is this:

schedule = [some list stuff here]  # first time creating
modify_schedule(schedule, new_players='...') # does validation, etc.

def modify_schedule(sched, new_players):
    # validate, validate, hallucinate, illustrate...
    sched = [changes here]

At this point, all the changes that modify_schedule made have been lost. Why? Because instead of modifying the list object in place, it re-bound the name sched to a new list, leaving the original list still bound to the name schedule in the caller.

So whether or not you use list_object[:] = depends on if you want any other names bound to your list to see the changes.

share|improve this answer
    
In a correct design, def returns sched which is assigned back to schedule, or in a considered-bad-form-but-logical design, you don't pass the schedule and you use global schedule. The example design you have above is simply wrong, whether or not you use in-place assignment, because it isn't clear that sched and schedule refer to the same thing at the point where you're changing schedule. –  agf Sep 27 '11 at 18:13
    
Also, did you try your loop version? I'm not sure how it's supposed to work, but it's got at least a couple of errors. You're trying to remove something that you don't know is in the list (the index from enumerate) and your values for slicing don't appear to make sense. –  agf Sep 27 '11 at 18:17
    
That is not the correct way to use slices to reverse a list, try schedule[-1::-1], or better yet reversed(schedule), since the slice will construct a new list anyway. –  F.J Sep 27 '11 at 18:24
    
@F.J something like for _ in range(sum('DELETE' in x for x in schedule)): schedule.remove(x) works just as well -- since remove does a search anyway, you're really just using the number of matches not their location, so just de-sychronize the two operations and there is no need to act in reverse, even if you want to use a loop. –  agf Sep 27 '11 at 18:27
    
@F.J: Argh - thanks. Fixed. –  Ethan Furman Sep 27 '11 at 18:41
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