15

My question is very similar to this one but I can't manage exactly how to apply that answer to my problem.

I am looping through a vector with a variable k and want to select the whole vector except the single value at index k.

Any idea?

for k = 1:length(vector)

   newVector = vector( exluding index k);    <---- what mask should I use? 
   % other operations to do with the newVector

end
9

vector([1:k-1 k+1:end]) will do. Depending on the other operations, there may be a better way to handle this, though.

For completeness, if you want to remove one element, you do not need to go the vector = vector([1:k-1 k+1:end]) route, you can use vector(k)=[];

  • 1
    @Matteo Enter [1:0 2:5] and see whether it outputs what you want. ;-) (The end keyword will not work when not trying to index a vector.) – arne.b Oct 25 '13 at 17:51
  • Thanks for your help! It works out perfectly, and also thanks for the tip on vector(k)=[]; – Matteo Oct 25 '13 at 17:54
  • @LuisMendo I mean that you cannot test what [1:k-1 k+1:end] will give you for some k alone, outside vector([1:k-1 k+1:end]), hence I used 5 as a fixed end in the example of testing what 1:0 might be. – arne.b Oct 25 '13 at 18:01
27

Another alternative without setdiff() is

vector(1:end ~= k)
  • Good call. Logical indexing is usually preferable and this works great if you just have a scalar k as in the question. – chappjc Oct 26 '13 at 19:00
7

Just for fun, here's an interesting way with setdiff:

vector(setdiff(1:end,k))

What's interesting about this, besides the use of setdiff, you ask? Look at the placement of end. MATLAB's end keyword translates to the last index of vector in this context, even as an argument to a function call rather than directly used with paren (vector's () operator). No need to use numel(vector). Put another way,

>> vector=1:10;
>> k=6;
>> vector(setdiff(1:end,k))
ans =
     1     2     3     4     5     7     8     9    10
>> setdiff(1:end,k)
Error using setdiff (line 81)
Not enough input arguments.

That is not completely obvious IMO, but it can come in handy in many situations, so I thought I would point this out.

2

Very easy:

newVector = vector([1:k-1 k+1:end]);

This works even if k is the first or last element.

2
%create a logic vector of same size:
l=ones(size(vector))==1;
l(k)=false;
vector(l);
  • Thanks for your answer! it works but I'll stick with the other ones cause they involve less variables. – Matteo Oct 25 '13 at 17:55
0

Another way you can do this which allows you to exclude multiple indices at once (or a single index... basically it's robust to allow either) is:

newVector = oldVector(~ismember(1:end,k))

Works just like setdiff really, but builds a logical mask instead of a list of explicit indices.

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