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I'm looking for an elegant way to write a simple function that would shift the elements of list by a given number of positions, while keeping the list of the same length and padding empty positions with a default value. This would be the docstring of the function:

def shift_list(l, shift, empty=0):
    """
    Shifts the elements of a list **l** of **shift** positions,
    padding new items with **empty**::

        >>> l = [0, 1, 4, 5, 7, 0]
        >>> shift_list(l, 3)
        [0, 0, 0, 0, 1, 4]
        >>> shift_list(l, -3)
        [5, 7, 0, 0, 0, 0]
        >>> shift_list(l, -8)
        [0, 0, 0, 0, 0, 0]
    """
    pass

How would you proceed ? Any help greatly appreciated !

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seems like adding empty to the start and poping is the way to go, keeping in mind shift is limited by len(l) –  Aram Kocharyan Feb 9 '12 at 11:28
    
In place? Or a new copy? –  Marcin Feb 9 '12 at 11:32
    
why not use a deque? docs.python.org/library/collections.html#collections.deque –  Savino Sguera Feb 9 '12 at 11:34
    
@Marcin: The docstring suggests that a new list is returned. –  Sven Marnach Feb 9 '12 at 11:35
    
@SvenMarnach: Not really. It just shows that a list is returned. –  Marcin Feb 9 '12 at 11:44

6 Answers 6

up vote 3 down vote accepted

I'd use slice assignment:

def shift_list(l, shift, empty=0):
    src_index = max(-shift, 0)
    dst_index = max(shift, 0)
    length = max(len(l) - abs(shift), 0)
    new_l = [empty] * len(l)
    new_l[dst_index:dst_index + length] = l[src_index:src_index + length]
    return new_l
share|improve this answer
    
No imports, a short seven lines of code that remain readable without too much concentration. I think we will declare you the winner ! It was a close call though ! –  xApple Feb 9 '12 at 13:43

If you can use a deque instead of a list, it has a few nice features that make it a natural choice for this problem. Working from the left of a deque is much less expensive than doing so on a list. Also it has a maxlen argument that can be used to make the code prettier and faster. I'm rather sure using itertools.repeat instead of [empty] * n is more efficient, both memory-wize and with regards to speed.

from collections import deque
from itertools import repeat

def shift_list(l, n, empty=0):
    d = deque(l, maxlen=len(l))
    if n > 0:
        d.extendleft(repeat(empty, min(n, len(l))))
    elif n < 0:
        d.extend(repeat(empty, min(-n, len(l))))
    # return list(d) to pass your doctest, at the cost of performance
    return d   

A bit of a warning though -- while the time complexity of iterating over the elements of a deque is comparable to doing the same on a list, item lookup may be rather expensive -- it depends on the index: s[0] and s[-1] is very fast, s[len(s)/2] is the most expensive. So if you do a lot of lookups, consider either using another solution, or converting the result back to a list. See this page for an overview.

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+1 for deque! –  Praveen Gollakota Feb 9 '12 at 12:15
    
It requires two imports of built-ins, but the code is short and easy to read ! Also +1 for thinking about optimization ! Pretty nice ! –  xApple Feb 9 '12 at 13:36

A bit naïve, but job's done.

def shift(l, shift, empty=0):
    reverse = False
    if shift < 0:
        reverse = True
        shift = abs(shift)
    while (shift > 0) :
        if reverse:
            l.pop(0)
            l.append(empty)
        else:
            l.pop()
            l.insert(0, empty)
        shift-=1



l = [0, 1, 4, 5, 7, 0]
shift(l, 3)
print l
l = [0, 1, 4, 5, 7, 0]
shift(l, -3)
print l
l = [0, 1, 4, 5, 7, 0]
shift(l, -8)
print l
share|improve this answer
    
It works, but the doctest given wouldn't pass since the list is modified in place. –  xApple Feb 9 '12 at 13:33
    
This solution suffers from the same performance problems as Aram's solution, it has O(len(l)*shift) time complexity. Both l.pop(0) and l.insert(0, empty) are very expensive operations. –  Lauritz V. Thaulow Feb 9 '12 at 13:35

A non intuitive way of rotating a list

def shift_list(l, shift, empty=0):
    l1=[empty]*len(l)+l+[empty]*len(l)
    l1=l1[len(l)-shift:][0:len(l)]
    return l1+[empty]*(len(l)-len(l1))
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Works and is only three lines ! The code is hard to read however, but it's a nice approach. –  xApple Feb 9 '12 at 13:32

I would do it like this:

def shift_list(l, shift, empty=0):
    if shift > 0:
        return [empty] * shift + l[:-shift]

    return l[-shift:] + [empty] * abs(shift)
share|improve this answer
    
Nice, but only works for positive shifts unfortunatly. –  xApple Feb 9 '12 at 13:32

Would this do it?

def shift_list(l, shift, empty=0):
    while shift > 0:
        l.insert(0,empty)
        l.pop()
        shift -= 1
    ​return l
share|improve this answer
    
It would, but it is O(len(l)*shift), which is rather suboptimal. (And also get rid of those braces, semicolons and redundant parens. shift-- isn't Python either.) –  Sven Marnach Feb 9 '12 at 11:32
    
:) sorry, been a few months –  Aram Kocharyan Feb 9 '12 at 11:34
    
Nice, but only works for positive shifts unfortunatly. –  xApple Feb 9 '12 at 13:31

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