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Suppose I want the first element, the 3rd through 200th elements, and the 201st element through the last element by step-size 3, from a list in Python.

One way to do it is with distinct indexing and concatenation:

new_list = old_list[0:1] + old_list[3:201] + old_list[201::3]

Is there a way to do this with just one index on old_list? I would like something like the following (I know this doesn't syntactically work since list indices cannot be lists and since Python unfortunately doesn't have slice literals; I'm just looking for something close):

new_list = old_list[[0, 3:201, 201::3]]

I can achieve some of this by switching to NumPy arrays, but I'm more interested in how to do it for native Python lists. I could also create a slice maker or something like that, and possibly strong arm that into giving me an equivalent slice object to represent the composition of all my desired slices.

But I'm looking for something that doesn't involve creating a new class to manage the slices. I want to just sort of concatenate the slice syntax and feed that to my list and have the list understand that it means to separately get the slices and concatenate their respective results in the end.

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1  
"Python unfortunately doesn't have slice primitives" Not even slice? –  Ignacio Vazquez-Abrams Dec 12 '12 at 14:46
    
Sorry, I should have said slice literals, not slice primitives. That is, you can't just pass around the syntax (0:10:2) as if that was itself some object that always represented indices. You have to go through the tedious extra layer of making your own slice object, which destroys all the niceties of the slice syntax. See my question that is also linked in the above. –  prpl.mnky.dshwshr Dec 12 '12 at 15:19

3 Answers 3

up vote 1 down vote accepted

A slice maker object (e.g. SliceMaker from your other question, or np.s_) can accept multiple comma-separated slices; they are received as a tuple of slices or other objects:

from numpy import s_
s_[0, 3:5, 6::3]
Out[1]: (0, slice(3, 5, None), slice(6, None, 3))

NumPy uses this for multidimensional arrays, but you can use it for slice concatenation:

def xslice(arr, slices):
    return sum((arr[s] if isinstance(s, slice) else [arr[s]] for s in slices), [])
xslice(range(10), s_[0, 3:5, 6::3])
Out[1]: [0, 3, 4, 6, 9]
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You're probably better off writing your own sequence type.

>>> L = range(20)
>>> L
[0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19]
>>> operator.itemgetter(*(range(1, 5) + range(10, 18, 3)))(L)
(1, 2, 3, 4, 10, 13, 16)

And to get you started on that:

>>> operator.itemgetter(*(range(*slice(1, 5).indices(len(L))) + range(*slice(10, 18, 3).indices(len(L)))))(L)
(1, 2, 3, 4, 10, 13, 16)
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I'd use itertools.islice and itertools.chain to construct these. –  Paul McGuire Dec 12 '12 at 15:10

Why don;t you create a custom slice for your purpose

>>> from itertools import chain, islice
>>> it = range(50)
>>> def cslice(iterable, *selectors):
    return chain(*(islice(iterable,*s) for s in selectors))

>>> list(cslice(it,(1,5),(10,15),(25,None,3)))
[1, 2, 3, 4, 10, 11, 12, 13, 14, 25, 28, 31, 34, 37, 40, 43, 46, 49]
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Did you look at the link I included above to a previous question that I've asked? The answer to that question more or less embodies the same thing as your answer, but has better syntax and doesn't need itertools. The main goal of mine is to directly pass exactly the slice syntax as-is. Adding the syntactic overhead of representing slices as tuples and passing them to a new object is even worse than just concatenating separate slices. –  prpl.mnky.dshwshr Dec 12 '12 at 17:13
    
@EMS: no, that answer just describe a way to create slices easily, but they can't be used as they are to index the elements in a list. Abhijit solution does what you want, and you may combine it with the other answer to have a nice syntax like: cslice(it, make_slice[1:5], make_slice[10:15], make_slice[25::3]) –  Bakuriu Dec 12 '12 at 17:52
    
@Bakuriu: that was my entire point. cslice doesn't do anything but chain the slices, which is inferior to concatenating lists. In the answer, tuples are used as arguments to cslice. Thank you for showing me that the results of the SliceMaker example can also be passed in. That alleviates some of the syntax bloat of this answer, but not enough. –  prpl.mnky.dshwshr Dec 12 '12 at 18:55

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