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How to get the oddly indexed elements in a list? I am thinking of Select, but did not find anything returning an element's position, especially considering there are repetitive elements in the list.

Also in general, how to select those elements whose indices satisfy some certain conditions?

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3 Answers 3

up vote 8 down vote accepted

There are a lot of ways, here are some of them:

In[2]:= a = Range[10];le = Length@a;

In[3]:= Table[a[[i]], {i, 1, le, 2}]

In[5]:= Pick[a, Table[Mod[i, 2], {i, 1, le}], 1]

In[6]:= a[[1 ;; le ;; 2]]

In general, with Pick[] (as an example) you can model any conceivable index mask.

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1  
Supplying the length in the Span (1;;le;;2) is not required. By default, the second term is the end of the list. So, 1;;;;2 works exactly the same. –  rcollyer Feb 18 '11 at 16:49
    
@rcollyer you are right! See also Michael's answer, he uses -1 instead of Length[ ], which also can be avoided. –  belisarius Feb 18 '11 at 16:56

Here's a few more in addition to @belisarius's answer, which don't require computing Length[lis]:

Take[lis, {1, -1, 2}]

lis[[1 ;; -1 ;; 2]]

You can often use -1 to represent the "last" position.

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+1 for remind me that -1 :D –  belisarius Jan 27 '11 at 7:06
    
A question: AFAIK Length[ ] is not computing (its timing is nil). Am I correct? –  belisarius Feb 18 '11 at 3:39

For some reason the terse form of Span has been omitted from the answers.

Range[20][[;;;;2]]
{1, 3, 5, 7, 9, 11, 13, 15, 17, 19}

Quoting the documentation:

;;;;k 
from the beginning to the end in steps of k.  
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