40

I am trying to do print all the possible outcomes of a given list and I was wondering how to put a value into various locations in the list. For example, if my list was [A, B], I want to insert X into all possible index of the list such that it would return this [X, A, B], [A, X, B], [A, B, X].

I was thinking about using range(len()) and a for loop but not sure how to start.

2
  • "all possible outcomes of a given list" of length 3 would give you 6 permutations. Commented Feb 7, 2010 at 20:56
  • 1
    I know, I just didn't write them all out
    – Dan
    Commented Feb 7, 2010 at 21:18

7 Answers 7

95

Use insert() to insert an element before a given position.

For instance, with

arr = ['A','B','C']
arr.insert(0,'D')

arr becomes ['D','A','B','C'] because D is inserted before the element at index 0.

Now, for

arr = ['A','B','C']
arr.insert(4,'D')

arr becomes ['A','B','C','D'] because D is inserted before the element at index 4 (which is 1 beyond the end of the array).

However, if you are looking to generate all permutations of an array, there are ways to do this already built into Python. The itertools package has a permutation generator.

Here's some example code:

import itertools
arr = ['A','B','C']
perms = itertools.permutations(arr)
for perm in perms:
    print perm

will print out

('A', 'B', 'C')
('A', 'C', 'B')
('B', 'A', 'C')
('B', 'C', 'A')
('C', 'A', 'B')
('C', 'B', 'A')
0
22

You could do this with the following list comprehension:

[mylist[i:] + [newelement] + mylist[:i] for i in xrange(len(mylist),-1,-1)]

With your example:

>>> mylist=['A','B']
>>> newelement='X'
>>> [mylist[i:] + [newelement] + mylist[:i] for i in xrange(len(mylist),-1,-1)]
[['X', 'A', 'B'], ['B', 'X', 'A'], ['A', 'B', 'X']]
3
  • is there a difference between xrange and range? and is it possible to do: for i in xrange(len(mylist),-1,-1): mylist[i:] + [newelement] + mylist[:i] because this is for homework and I never learned the way how you wrote it
    – Dan
    Commented Feb 7, 2010 at 21:12
  • 2
    range generates each number in the sequence all at once and returns these numbers in a list. xrange generates each number in the range as you need it. Thus xrange uses less memory (a lot less if the sequence is quite large). So unless you really need all the numbers at once, xrange can be more efficient. The code you suggest would also do the trick. (Though you might want to do something with the lists you construct in the body of the for loop). Commented Feb 7, 2010 at 22:56
  • Option for modern Python that involves fewer temporaries is to replace mylist[i:] + [newelement] + mylist[:i] with [*mylist[i:], newelement, *mylist[:i]]. Won't make a major difference in performance, but the additional unpacking generalizations added in 3.5 are awesome, use 'em. :-) Commented Apr 2, 2021 at 16:03
5

If you want to insert a list into a list, you can do this:

>>> a = [1,2,3,4,5]
>>> for x in reversed(['a','b','c']): a.insert(2,x)
>>> a
[1, 2, 'a', 'b', 'c', 3, 4, 5]
1

Simplest is use list[i:i]

    a = [1,2, 3, 4]
    a[2:2] = [10]

Print a to check insertion

    print a
    [1, 2, 10, 3, 4]
2
  • 4
    Doesn't answer the question, you just give one approach on how to insert at a given position in a list. Question asked for result in the form of all resulting lists when inserting a value in all possible positions.
    – Olivier
    Commented Apr 5, 2017 at 14:53
  • 1
    In Python 3.7 and above name = ["John, "James", "Tim"] name[1:1] = "Sam" print(name) ['John', 'S', 'a', 'm', 'James', 'Tim'] Which is not the element insertion expected.
    – Sumax
    Commented Jun 2, 2020 at 11:25
0

Coming from JavaScript, this was something I was used to having "built-in" via Array.prototype.splice(), so I made a Python function that does the same:

def list_splice(target, start, delete_count=None, *items):
    """Remove existing elements and/or add new elements to a list.

    target        the target list (will be changed)
    start         index of starting position
    delete_count  number of items to remove (default: len(target) - start)
    *items        items to insert at start index

    Returns a new list of removed items (or an empty list)
    """
    if delete_count == None:
        delete_count = len(target) - start

    # store removed range in a separate list and replace with *items
    total = start + delete_count
    removed = target[start:total]
    target[start:total] = items

    return removed
0

Just for fun, a solution that:

  1. Allows inserting multiple values into all possible locations, not just one, and
  2. Minimizes temporaries
  3. Does not invoke O(n * m) work on the insertions (which naïve repeated calls to list.insert would perform)

Bonus, (for the person who asked a duplicate question) it makes use of the itertools module without it feeling completely forced:

import itertools

l1 = ['a','b','c','d','f']
l2 = ['Z', 'Y']

combined_indices = range(len(l1)+len(l2))
iterators = itertools.cycle(l1), itertools.cycle(l2)

l3 = []
for positions in map(frozenset, itertools.combinations(combined_indices , len(l2))):
    l3.append([next(iterators[idx in positions]) for idx in combined_indices])

print(*l3, sep="\n")

Try it online!

which produces output of the form:

['Z', 'Y', 'a', 'b', 'c', 'd', 'f']
['Z', 'a', 'Y', 'b', 'c', 'd', 'f']
['Z', 'a', 'b', 'Y', 'c', 'd', 'f']
['Z', 'a', 'b', 'c', 'Y', 'd', 'f']
['Z', 'a', 'b', 'c', 'd', 'Y', 'f']
['Z', 'a', 'b', 'c', 'd', 'f', 'Y']
['a', 'Z', 'Y', 'b', 'c', 'd', 'f']
['a', 'Z', 'b', 'Y', 'c', 'd', 'f']
# ... eleven lines omitted ...
['a', 'b', 'c', 'd', 'Z', 'f', 'Y']
['a', 'b', 'c', 'd', 'f', 'Z', 'Y']

And for bonus fun, a version that inserts the elements of l2 in either order (and condenses the work to an absurdly complicated listcomp for funsies):

from itertools import cycle, permutations, repeat

l1 = ['a','b','c','d','f']
l2 = ['Z', 'Y']

combined_indices = range(len(l1)+len(l2))
i1next = cycle(l1).__next__

l3 = [[pos_to_l2[pos] if pos in pos_to_l2 else i1next() for pos in combined_indices]
      for pos_to_l2 in map(dict, map(zip, permutations(combined_indices, len(l2)), repeat(l2)))]

print(*l3, sep="\n")

Try it online!

which behaves the same, but produces outputs where the elements of l2 are inserted in either order (when l2[0] shifts right, the other elements of l2 are inserted before it before they continue inserting after it, as in the first solution, e.g. the output sequence:

...
['Z', 'a', 'b', 'c', 'd', 'f', 'Y']
['a', 'Z', 'Y', 'b', 'c', 'd', 'f']
...

expands to:

...
['Z', 'a', 'b', 'c', 'd', 'f', 'Y']
['Y', 'Z', 'a', 'b', 'c', 'd', 'f']  # New
['a', 'Z', 'Y', 'b', 'c', 'd', 'f']
...
-1

If l is your list and X is your value:

for i in range(len(l) + 1):
    print l[:i] + [X] + l[i:]
1
  • the remove call might remove another instance of X Commented Oct 11, 2012 at 22:02

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