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I am trying to find a more elegant way to pad ones to zero vector according to the index (1,3) of the four-length vector. How can you do it more elegantly/succintly?

Input

(0,0,0,0) and (1,3)

Intended output

(1,0,1,0)

Trial

>> B=[0,1,0,0;0,1,0,1;1,0,0,0;1,1,1,0];

>> find(B(1,:)==0 & B(4,:)==1)

ans =

     1     3

>> zeros(1,4)+[1,0,1,0]

ans =

     1     0     1     0

Basically (1,3) ---> (1,0,1,0).

share|improve this question
    
So (1,4) would become (1,0,0,1), etc? The one-based index of the tuples indicates where 1s appear, everything else is 0? – Patashu Jun 5 '13 at 23:41
    
@Patashu yes (1,4) would be (1,0,0,1). Yes. – hhh Jun 5 '13 at 23:42
up vote 3 down vote accepted

If your input is I such that I=[0,0,0,0] and the index pair is ind=[1,3], then just

I(ind)=1;

This is a very basic matlab question, and I think just reading the documentation about matrix indexing should have sufficed.

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