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I need to found the place of 1 digit in array and the number of 0 digit before 1. It means in the below array I need to achieve placeOfOne=3 numberOfZeros=2 in:

a = [0 0 1 0]

Do we have any function for this? Best, Elnaz

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4 Answers 4

up vote 2 down vote accepted

Following your example, I'm assuming your input vector contains only binary values of "1" and "0".

If you're looking for the position of "1"s, use find like everyone suggested. The number of zeros should always be the position of the "1" minus the number of preceding "1"s:

placeOfOne = find(a);
numberOfZeros = placeOfOne - (1:numel(placeOfOne));

If you're looking only for the first "1", add a second parameter. This reduces to:

placeOfOne = find(a, 1);
numberOfZeros = placeOfOne - 1;
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1  
It should be find(a,1) instead of find(a,'first'). This is the best solution. –  Navan Apr 24 '13 at 14:22
    
@Navan yes, you're right. Long day... :) Thanks! –  Eitan T Apr 24 '13 at 14:23
1  
thank you all!! :) –  user2286747 Apr 26 '13 at 19:02

Use find to get the place of 1

placeOfOne = find(a)

And then sum up the zeros before that:

numberOfZeros = sum(a(1:placeOfOne)  == 0)
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You can use the isMember function, if there are elements other than 0 and 1.

Also, if there are just 0 and 1, the number of zeros should just be (position of 1) - 1, should it?

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Slightly different approach

a = [0 0 1 0];
placeOfOne = find(a==1);
digitsBeforeOne = a(1:placeOfOne);
numberOfZeros= length(find(digitsBeforeOne ==0));
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1  
lenght(find( d == 0 ))??? what's wrong with nnz( d==0 ) ? –  Shai Apr 24 '13 at 14:29
    
Thanks Shai, I was unaware of the nnz function –  DaveH Apr 24 '13 at 14:43

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