Bed of Nails from vectors - inverse of find()?

2 views (last 30 days)
Douglas Anderson
Douglas Anderson on 27 Feb 2018
Commented: Jos (10584) on 28 Feb 2018
Hello,
I would like to do the following:
X = zeros(N,M); % Say N = 50, M = 100
Then have N sets of indices, one for each row of X:
a(1,:) = [ 1 5 10 12 19 32 56 ...]; % These may vary substantially
a(2,:) = [ 1 7 14 19 29 45 76 ...];
...
These are then indices that will indicate where there should be a "1" in each row of X.
Is there a function that will take the indices and then put a "1" in an array? This is kind of like the inverse of find().
Thanks!
Doug Anderson
  2 Comments
Jos (10584)
Jos (10584) on 27 Feb 2018
As your variable a is a N-by-K matrix, this assumes that all rows of X will hold K ones. Is that so?

Sign in to comment.

Sign in to answer this question.

Accepted Answer

Jos (10584)
Jos (10584) on 27 Feb 2018
% input
N = 5 ; M = 4 ;
a = [1 3 ; 2 4 ; 1 4 ; 1 2 ; 3 4]
% engine in one line
XX = full(sparse(repmat(1:N, size(a,2), 1)', a, 1,N,M))
  2 Comments
Douglas Anderson
Douglas Anderson on 27 Feb 2018
Thanks to everyone. Of course, this is only the deepest level of a bunch of calculations to determine the "a" values, so this one-line engine is nice.
Can you tell me why this works? :) Thank you!
Jos (10584)
Jos (10584) on 28 Feb 2018
This might not be the most efficient way though.
See the documentation of sparse for more details.

Sign in to comment.

More Answers (2)

Sean de Wolski
Sean de Wolski on 27 Feb 2018
for ii = 1:size(x, 1)
x(ii, a(ii,:)) = 1;
end
Jos (10584)
Jos (10584) on 27 Feb 2018
N = 5 ; M = 4 ;
a = [1 3 ; 2 4 ; 1 4 ; 1 2 ; 3 4]
X = zeros(N,M)
X(sub2ind([N M], repmat(1:N, size(a,2), 1)', a)) = 1

Categories

Find more on Simulink in Help Center and File Exchange

Tags

Products

Community Treasure Hunt

Find the treasures in MATLAB Central and discover how the community can help you!

Start Hunting!