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I have a vector

V=[ 1 2 3 5 9];

and would like to multiply it like this:

newVect=zeros(1,length(V));

for i=1:length(V)

    if V(i)==1
       newVect(i)=V(i)*somevaluex
    elseif V(i)==5
       newVect(i)=V(i)*somevaluey
    else
       newVect(i)=V(i);
end

This seems cumbersome as I'm actually dealing with arrays with 10000 elements. Can this be replaced by vectorisation somehow?

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1 Answer 1

up vote 4 down vote accepted

You can do that:

newVect = V .* (   someValuex.*(V==1) +  someValuey.*(V==5) + V.*( (V~=1) & (V~=5) ) )

or a bit faster:

newVect=V;
newVect(V==1)=V(V==1)*someValuex;
newVect(V==5)=V(V==5)*someValuey;
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Ah! very nice, thank you :)! if V was a large matrix (r=100000, c=100) does this have to be done row by row within a for loop? or can it be done in a similar way to above? –  HCAI Oct 5 '12 at 10:44
    
If V is a matrix the first example will work for sure. The second may change the shape of V. The easier is that you try it yourself. –  Oli Oct 5 '12 at 13:39
    
Ah, i've noticed that if someValuex=rand; then this rand value remains the same throughout... and I would like it to change. What do you think? ie. newVect = V .* ( rand.*(V==1) + someValuey.*(V==5) + V.*( (V~=1) & (V~=5) ) ) –  HCAI Oct 5 '12 at 13:53
1  
You should replace rand by rand(size(V)) –  Oli Oct 5 '12 at 14:02

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