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Given a vector

A = [1,2,3,...,100]

I want to extract all elements, except every n-th. So, for n=5, my output should be

B = [1,2,3,4,6,7,8,9,11,...]

I know that you can access every n-th element by


but I need something like the inverse command. If this doesn't exist I would iterate over the elements and skip every n-th entry, but that would be the dirty way.

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read my answer, the "inverse command" you look for exists. Logical indexing is an important part of Matlab, and a very important feature to know and use. – Castilho Nov 20 '12 at 9:30
given the help of all of you, I guess this is even more what i was looking for: A(mod(1:100,5)~=0) thanks! – cmmndy Nov 20 '12 at 9:37
+1 nice question :-) – Shai Jan 4 '13 at 10:08

6 Answers 6

up vote 12 down vote accepted

You can eliminate elements like this:

A = 1:100;
removalList = 1:5:100;
A(removalList) = [];
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short and simple, thanks ! – cmmndy Nov 20 '12 at 9:26

Use a mask. Let's say you have

A = 1 : 100;


m = mod(0 : length(A) - 1, 5);

will be a vector of the same length as A containing the repeated sequence 0 1 2 3 4. You want everything from A except the elements where m == 4, i.e.

B = A(m ~= 4);

will result in

B == [1 2 3 4 6 7 8 9 11 12 13 14 16 ...]
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thanks that would have been the way i would have tried it. – cmmndy Nov 20 '12 at 9:25

Or you can use logical indexing:

n = 5; % remove the fifth
idx = logical(zeroes(size(A))); % creates a blank mask
idx(n) = 1; % makes the nth element 1
A(idx) = []; % ta-da!

About the "inversion" command you cited, it is possible to achieve that behavior using logical indexing. You can negate the vector to transform every 1 in 0, and vice-versa.

So, this code will remove any BUT the fifth element:

negatedIdx = ~idx;
A(negatedIdx) = [];
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why not use it like this?

say A is your vector

A = 1:100
n = 5
B = A([1:n-1,n+1:end])


B=[1 2 3 4 6 7 8 9 10 ...]
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One possible solution for your problem is the function setdiff().

In your specific case, the solution would be:

lenA = length(A);
index = setdiff(1:lenA,n:n:lenA);
B = A(index)

If you do it all at once, you can avoid both extra variables:

B = A( setdiff(1:end,n:n:end) )

However, Logical Indexing is a faster option, as tested:

lenA = length(A);
index = true(1, lenA);
index(n:n:lenA) = false;
B = A(index)

All these codes assume that you have specified the variable n, and can adapt to a different value.

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For the shortest amount of code, you were nearly there all ready. If you want to adjust your existing array use:


Or if you want a new array called B:

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