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Hi I want to write a function that revives a list [1,5,3,6,...] and gives [1,1,5,5,3,3,6,6,...] any idea how to do it? thanks

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2  
Sounds homeworkish. There are better ways to work with a list than duplicating the elements. –  S.Lott Mar 15 '10 at 17:28

6 Answers 6

>>> a = range(10)
>>> [val for val in a for _ in (0, 1)]
[0, 0, 1, 1, 2, 2, 3, 3, 4, 4, 5, 5, 6, 6, 7, 7, 8, 8, 9, 9]

N.B. _ is traditionally used as a placeholder variable name where you do not want to do anything with the contents of the variable. In this case it is just used to generate two values for every time round the outer loop.

To turn this from a list into a generator replace the square brackets with round brackets.

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1  
_ is, these days, used for i18n/l10n (google). I still tend to use it if I know there won't be an i18n in this module. Else I (would) use __ (two underscores). –  Jürgen A. Erhard Mar 15 '10 at 17:59
>>> a = [1, 2, 3]
>>> b = []
>>> for i in a:
    b.extend([i, i])


>>> b
[1, 1, 2, 2, 3, 3]

or

>>> [a[i//2] for i in range(len(a)*2)]
[1, 1, 2, 2, 3, 3]
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You should use // for floor division in Python 2, too. –  Mike Graham Mar 15 '10 at 17:32
    
@Mike: sure you right, except of course in / division insures that int is returned. –  SilentGhost Mar 15 '10 at 17:38

If you already have the roundrobin recipe described in the documentation for itertools—and it is quite handy—then you can just use

roundrobin(my_list, my_list)
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+1, this is a good way to accomplish this. –  Mike Graham Mar 15 '10 at 17:43

I would use zip and itertools.chain.

>>> import itertools
>>> l = [1,5,3,6,16]
>>> list(itertools.chain(*zip(l,l)))
[1, 1, 5, 5, 3, 3, 6, 6, 16, 16]

Note: I only used list to consume the generator to make it fit for printing. You probably don't need the list call in your code...

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I would use

import itertools
foo = [1, 5, 3, 6]
new = itertools.chain.from_iterable([item, item] for item in foo)

new will be an iterator that lazily iterates over the duplicated items. If you need the actual list computed, you can do list(new) or use one of the other solutions.

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or shorter: itertools.chain.from_iterable(itertools.izip(foo, foo)) –  Antony Hatchkins Mar 15 '10 at 17:56
    
I considered that code which is shorter but didn't seem clearer to me. –  Mike Graham Mar 15 '10 at 18:34

For as much as Guido dislikes the functional operators, they can be pretty darned handy:

>>> from operator import add
>>> a = range(10)
>>> b = reduce(add, [(x,x) for x in a])
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In the case of reduce, handy often means amazingly slow. It's important to measure what reduce is doing. Often, it's shocking how much computation reduce forces. –  S.Lott Mar 15 '10 at 19:40
    
I made a test script with every one of the methods on this page with the baselist = range(10) and 1,000,000 iterations. The slowest took 5.094 seconds and the fastest took 3.622 seconds. My reduce example took 3.906 seconds. –  Kirk Strauser Mar 15 '10 at 20:05
    
range(10) is tiny, so the complexity pays a small role. This solution is quadratic; all the others I see here are linear. Also, some of the others seem more readable to me. –  Mike Graham Mar 15 '10 at 20:57

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