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def insertion_sort(A):
    for j in range(1, len(A)):
        key = A[j]
    i = j - 1
    while (i >= 0) and (A[i] > key):
        A[i+1] = A[i]
        i = i-1
    A[i+1] = key

    return A


print insertion_sort([8, 1, 3, 4, 9, 5, 2])

Now this prints: [8, 1, 3, 4, 9, 5, 2]

But I assume, I am mutating the list A, then why is the return value the same?

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1  
Please fix the indenting on your code in the question. Currently your first for loop just reduces to key=A[len(A)-1]. I'm hoping your actual problem isn't just indentation (if it is, fix that). –  ccoakley Feb 25 '12 at 7:06
2  
If insertion_sort() modifies A inplace then it should return None to signal that. Compare list.sort() vs. sorted(). –  J.F. Sebastian Feb 25 '12 at 7:13

2 Answers 2

up vote 6 down vote accepted

Your code is wrong with current indentation. It should be like this, right?

def insertion_sort(A):
    for j in range(1, len(A)):
        key = A[j]
        i = j - 1
        while (i >= 0) and (A[i] > key):
            A[i+1] = A[i]
            i = i-1
        A[i+1] = key

    return A
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1  
I used vim to autoformat the code: gg=G and it messed it up! Thanks! –  John Feb 25 '12 at 7:09

As already mentioned, the indentation is incorrect.

And lists are mutable!

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