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intersperse(666, ["once", "upon", "a", 90, None, "time"])


["once", 666, "upon", 666, "a", 666, 90, 666, None, 666, "time"]

What's the most elegant (read: Pythonic) way to write intersperse?

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10 Answers 10

up vote 19 down vote accepted

I would have written a generator myself, but like this:

def joinit(iterable, delimiter):
    it = iter(iterable)
    yield next(it)
    for x in it:
        yield delimiter
        yield x
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+1 looks very clean (avoids if clauses) – Felix Kling Apr 13 '11 at 21:53
yeah, this is a lot cleaner than my attempts. – cobbal Apr 13 '11 at 21:57
sick, that looks nicest so far – Claudiu Apr 14 '11 at 2:03
note: the first arg could be called iterable. And the function could be called just joinit(). btw, the nice thing about your solution that it also works for an empty sequence (next() raises StopIteration and the generator joinseq() returns immediately). – J.F. Sebastian Apr 15 '11 at 12:03
@J.F.: Thanks for the tip. Naming it iterable would have been the first thing I did. But instead, I got into the habit of calling it sequence as everyone else has. :) – Jeff Mercado Apr 15 '11 at 18:18

itertools to the rescue
- or -
How many itertools functions can you use in one line?

from itertools import chain, izip, repeat, islice

def intersperse(delimiter, seq):
    return islice(chain.from_iterable(izip(repeat(delimiter), seq)), 1, None)


>>> list(intersperse(666, ["once", "upon", "a", 90, None, "time"])
["once", 666, "upon", 666, "a", 666, 90, 666, None, 666, "time"]
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Ah back to the last version. :) – Jeff Mercado Apr 13 '11 at 21:49
@JeffMercado: Yes, thanks for your comment ( I think it was you?) :) It works indeed... – Felix Kling Apr 13 '11 at 21:50
@Felix: Yeah it was me, I just removed the comment when I noticed you changed your implementation. ;) – Jeff Mercado Apr 13 '11 at 21:52
Note that the expansion of the arguments for chain requires iterating over all of s. This is a big problem for something like intersperse(666, repeat(777)), which the generator answers handle fine. You should be able to fix this by using chain.from_iterable(izip(...)) instead. – Andrew Clark Apr 13 '11 at 22:03
It kinda works but it is a stretch to call it elegant. – J.F. Sebastian Apr 15 '11 at 12:09

I would go with a simple generator.

def intersperse(val, sequence):
    first = True
    for item in sequence:
        if not first:
            yield val
        yield item
        first = False

and then you can get your list like so:

>>> list(intersperse(666, ["once", "upon", "a", 90, None, "time"]))
['once', 666, 'upon', 666, 'a', 666, 90, 666, None, 666, 'time']

alternatively you could do:

def intersperse(val, sequence):
    for i, item in enumerate(sequence):
        if i != 0:
            yield val
        yield item

I'm not sure which is more pythonic

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i like this the best so far: no slicing, no doing anything specific to the iterator like calling len.. it aint a 1 liner but it looks nicer than the 1 liners – Claudiu Apr 13 '11 at 21:38

Another option that works for sequences:

def intersperse(seq, value):
    res = [value] * (2 * len(seq) - 1)
    res[::2] = a
    return res
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How about:

from itertools import chain,izip_longest

def intersperse(x,y):
     return list(chain(*izip_longest(x,[],fillvalue=y)))
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Dunno if it's pythonic, but it's pretty simple:

def intersperse(elem, list):
    result = []
    for e in list:
      result.extend([e, elem])
    return result[:-1]
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i thought of that, but i don't like that you slice the list at the end – Claudiu Apr 13 '11 at 21:21
I could go with initialising result to list[0], but then I'd have to first check if list is empty. [][:-1] conveniently returns [] sparing me from that problem. Seems like the generator answer is the only one so far that doesn't employ slicing. – sverre Apr 13 '11 at 21:31
def intersperse(word,your_list):
    x = [j for i in your_list for j in [i,word]]

>>> intersperse(666, ["once", "upon", "a", 90, None, "time"])
['once', 666, 'upon', 666, 'a', 666, 90, 666, None, 666, 'time', 666]

[Edit] Corrected code below:

def intersperse(word,your_list):
    x = [j for i in your_list for j in [i,word]]
    return x

>>> intersperse(666, ["once", "upon", "a", 90, None, "time"])
['once', 666, 'upon', 666, 'a', 666, 90, 666, None, 666, 'time']
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the last 666 shouldn't be there – Claudiu Nov 17 '11 at 19:43

I just came up with this now, googled to see if there was something better... and IMHO there wasn't :-)

def intersperse(e, l):    
    return list(itertools.chain(*[(i, e) for i in l]))[0:-1]
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This works:

>>> def intersperse(e, l):
...    return reduce(lambda x,y: x+y, zip(l, [e]*len(l)))
>>> intersperse(666, ["once", "upon", "a", 90, None, "time"])
('once', 666, 'upon', 666, 'a', 666, 90, 666, None, 666, 'time', 666)

If you don't want a trailing 666, then return reduce(...)[:-1].

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Minor improvement: using 'operator.concat' instead of the lambda. – Unode Jan 31 '12 at 11:43
def intersperse(items, delim):
    i = iter(items)
    return reduce(lambda x, y: x + [delim, y], i, [])

Should work for lists or generators.

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That's pretty inefficient though, you call a function for each element and do list addition instead of append/extend – Claudiu Jul 4 '14 at 15:09
This is O(n²); an O(n) solution is trivially possible and also simpler. – Veedrac Nov 22 '14 at 7:50
Sorry, I guess I didn't notice the question was "fastest way to intersperse a list with an element?". – Art Vandelay Nov 23 '14 at 9:58

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