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I get "list of index out of range" error when try to use 2 different size list.

example:

ListA = [None, None, None, None, None]
ListB = ['A', None, 'B']

for x, y in enumerate(ListA):
    if ListB[x]:
        ListA[x]=ListB[x]

Doing this will get "list of index out of range" error, because ListB[3] and ListB[4] does not exist:
I hope to join ListA and ListB to get ListA look like this:

ListA = ['A', None, 'B', None, None]

How can I achieve that?

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Note that in this particular case the result can be achieved with listA = listB + listA[len(listB):] or listA[:len(listB)] = listB. –  Lev Levitsky Jan 30 '13 at 11:23
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5 Answers

up vote 8 down vote accepted

Use itertools.izip_longest

from itertools import izip_longest
ListA = [b or a for a, b in izip_longest(ListA,ListB)]
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Thanks, izip_longest work great! –  Vogelsire Jan 31 '13 at 2:13
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The fastest solution is to use slice assignment

>>> ListA = [None, None, None, None, None]
>>> ListB = ['A', None, 'B']
>>> ListA[:len(ListB)] = ListB
>>> ListA
['A', None, 'B', None, None]

Timing

>>> def merge_AO(ListA, ListB):
    return [ i[1] for i in map(None,ListA,ListB)]

>>> def merge_ke(ListA, ListB):
    for x in range(len(ListB)): #till end of b
        ListA[x]=ListB[x]
    return ListA

>>> def merge_JK(ListA, ListB):
    ListA = [b or a for a, b in izip_longest(ListA,ListB)]
    return ListA

>>> def merge_AB(ListA, ListB):
    ListA[:len(ListB)] = ListB
    return ListA

>>> funcs = ["merge_{}".format(e) for e in ["AO","ke","JK","AB"]]
>>> _setup = "from __main__ import izip_longest, ListA, ListB, {}"
>>> tit = [(timeit.Timer(stmt=f + "(ListA, ListB)", setup = _setup.format(f)), f) for f in funcs]
>>> for t, foo in tit:
    "{} took {} secs".format(t.timeit(100000), foo)


'0.259869612113 took merge_AO secs'
'0.115819095634 took merge_ke secs'
'0.204675467452 took merge_JK secs'
'0.0318886645255 took merge_AB secs'
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Try this:

>>> [i[1] for i in map(None,ListA,ListB)]
['A', None, 'B', None, None]
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1  
I believe that this fails on python3.x (unfortunately) as the behavior of map with multiple iterables changed -- Notably on python2.x, map uses the longer of the iterables and pads the other with None, whereas on python3.x, map uses the shorter of the two iterables. –  mgilson Jan 30 '13 at 12:09
    
@mgilson does not work on python3 :) –  Adem Öztaş Jan 30 '13 at 12:15
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try this:

ListA = [None, None, None, None, None]
ListB = ['A', None, 'B']

for x in range(len(ListB)): #till end of b
    ListA[x]=ListB[x]
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Use MAP to avoid list index out of range error

for iterator,tup in enumerate(map(None,ListA,ListB)):
    if tup[1]:
        ListA[iterator] = tup[1]

This will fix the issue.

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Thank you so much~ –  Vogelsire Jan 31 '13 at 1:59
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