107

In Python, how do I move an item to a definite index in a list?

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164

Use the insert method of a list:

l = list(...)
l.insert(index, item)

Alternatively, you can use a slice notation:

l[index:index] = [item]

If you want to move an item that's already in the list to the specified position, you would have to delete it and insert it at the new position:

l.insert(newindex, l.pop(oldindex))
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  • 23
    Just keep in mind that moving an item already in a list with the insert/pop method will have different behavior depending if you're moving towards front or back of the list. Moving to the left you insert before the object you've chosen. Moving to the back you insert after the item you've chosen. Check for moving to the end of the list (index error). – MKaras Jul 27 '12 at 10:53
  • How to move multiple elements? Given a list a = [1,2,3,4,5,6,7,8,9], how to transform it to [1,2,[3,4,5],6,7,8,9]? Can this be done in one step or with a list comprehension? – g33kz0r Feb 21 '13 at 19:04
  • @MKaras I tested this with Python 3.5 and you CAN insert to last index + 1 without errors. The element is just appended to the list in that case. – user2061057 Nov 25 '16 at 9:47
  • @user2061057 is correct :) even large indexes will result in things inserted at the end. a.insert(99999, 1) In [14]: a Out[14]: [...., 1] – lee penkman Aug 27 '18 at 4:12
  • 1
    For those who are trying to use index -1 to insert the item at the end, you have to use len(l) instead. – nda Oct 19 '19 at 15:04
32

A slightly shorter solution, that only moves the item to the end, not anywhere is this:

l += [l.pop(0)]

For example:

>>> l = [1,2,3,4,5]
>>> l += [l.pop(0)]
>>> l
[2, 3, 4, 5, 1]
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  • 13
    You might as well use l.append(l.pop(0)). It's only marginally longer, but it's much more readable. – coredumperror Jan 11 '17 at 20:27
  • How might I be able to move it to the start instead? – user13645394 Aug 4 at 21:29
  • to add to the beginning: l.insert(0, value) – Tim Tisdall Oct 23 at 15:29
22

If you don't know the position of the item, you may need to find the index first:

old_index = list1.index(item)

then move it:

list1.insert(new_index, list1.pop(old_index))

or IMHO a cleaner way:

try:
  list1.remove(item)
  list1.insert(new_index, item)
except ValueError:
  pass
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  • 6
    I think I'm right to cringe at your pass statement... never hide exceptions - the default thing in an example like this should be to provide a cleaner error statement or print statement... raise ValueError(f'Unable to move item to {new_index}') or print(f'Moving item to {new_index} failed. List remains unchanged.'). Maybe pass would be ok if in a function called try_to_move_item or something so that its understood that the operation might fail silently. – flutefreak7 Nov 8 '18 at 21:11
3

A solution very simple, but you have to know the index of the original position and the index of the new position:

list1[index1],list1[index2]=list1[index2],list1[index1]
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  • 8
    This is a swap, not a move. – juzzlin Nov 24 '16 at 18:19
0

I profiled a few methods to move an item within the same list with timeit. Here are the ones to use if j>i:

┌──────────┬──────────────────────┐
│ 14.4usec │ x[i:i]=x.pop(j),     │
│ 14.5usec │ x[i:i]=[x.pop(j)]    │
│ 15.2usec │ x.insert(i,x.pop(j)) │
└──────────┴──────────────────────┘

and here the ones to use if j<=i:

┌──────────┬───────────────────────────┐
│ 14.4usec │ x[i:i]=x[j],;del x[j]     │
│ 14.4usec │ x[i:i]=[x[j]];del x[j]    │
│ 15.4usec │ x.insert(i,x[j]);del x[j] │
└──────────┴───────────────────────────┘

Not a huge difference if you only use it a few times, but if you do heavy stuff like manual sorting, it's important to take the fastest one. Otherwise, I'd recommend just taking the one that you think is most readable.

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0
l = list(...)
if item in l:
    l.remove(item) #  checks if the item to be moved is present in the list 
l.insert(new_index,item)
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