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Please consider the following code:

i = [1, 2, 3, 5, 8, 13]
j = []
k = 0

for l in i:
    j[k] = l
    k += 1

print j

The output (Python 2.6.6 on Win 7 32-bit) is:

> Traceback (most recent call last): 
>     j[k] = l IndexError: list assignment index out of range

I guess it's something simple I don't understand. Can someone clear it up?

share|improve this question
    
append is the right solution for your use case, however there's an insert method on python list which can insert directly to the i'th position in list. j.insert(k, l) – opensourcegeek Sep 30 '15 at 8:46
up vote 110 down vote accepted

j is an empty list, but you're attempting to write to element [0] in the first iteration, which doesn't exist yet.

Try the following instead, to add a new element to the end of the list:

for l in i:
    j.append(l)
share|improve this answer
1  
OK, thank you very much. I didn't know which one to praise as there are three almost same answers. This is most descriptive I think. Cheers – Vladan Apr 13 '11 at 18:11

Your other option is to initialize j:

j = [None]*max(i)
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Do j.append(l) instead of j[k] = l and avoid k at all.

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1  
A shorter (more Pythonic?) way might be j+=[l] – Oleh Prypin Apr 13 '11 at 18:05
1  
@BlaXpirit: It will put burden to the garbage collector, I think. – khachik Apr 13 '11 at 18:06
2  
@BalXpirit: Given that is only saves a few characters (especially since you need to add spaces for it to be acceptable) and that .append is by far more common (perhaps for a reason - I think it's slightly easier to comprehend), not really superior in any way. (Edit @khachik: No, += modifies in-place) – delnan Apr 13 '11 at 18:08
j.append(l)

Also avoid using lower-case "L's" because it is easy for them to be confused with 1's

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For the example you posted, you could also use a list comprehension:

j = [l for l in i]

or just make a copy:

j = i[:]
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One more way:

j=i[0]
for k in range(1,len(i)):
    j = numpy.vstack([j,i[k]])

In this case j will be a numpy array

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