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Simple but elusive array question

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Will
Will am 17 Apr. 2012
Hi,
I have what must be quite a straightforward question, but I can't find a good solution.
I have a large number of arrays, of dimension 500x40. Each column of the arrays consists of a number of (non-repeating) integers between 1 and 40, with the remaining elements being zeros. An example of this on a smaller array would look like this:
1 1 3
2 0 4
3 0 0
0 0 0
What I want to do, is use this to create an array of the same dimensions, which consists of zeros and ones, such that for each column, the entries in that column are the indices of the "ones", and the remaining elements are zero. So, for the example above, I would get:
1 1 0
1 0 0
1 0 1
0 0 1
The catch is, I was trying to think of a nice way of doing it without using for loops, because I have a large number of arrays and want things to run quickly.
I'm sure there must be a very simple solution to this, but I can't think of it!
Any thoughts? Thanks, Will

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Akzeptierte Antwort

Oleg Komarov
Oleg Komarov am 17 Apr. 2012
[r,c,v] = find(a);
out = accumarray([v,c],1,size(a));
  3 Kommentare
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Will
Will am 17 Apr. 2012
Thank you, that is a very nice solution!
Sean de Wolski
Sean de Wolski am 17 Apr. 2012
+1, anything with accumarray or bsxfun gets a vote!

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Weitere Antworten (2)

Andrei Bobrov
Andrei Bobrov am 17 Apr. 2012
A = [1 1 3
2 0 4
3 0 0
0 0 0]
s1 = size(A);
out = zeros(size(A));
t = A~=0;
A1 = bsxfun(@times,t,1:s1(2));
out(sub2ind(s1,A(t),A1(t))) = 1
Richard
Richard am 17 Apr. 2012
should your question be like 'a' below?
clear all
a = [1,1,3;2,0,4;3,0,0;0,0,0];
b = arrayfun(@find,a,'un',0);
If so, use find and then just replace the empty cells with zeros.
  1 Kommentar
Will
Will am 17 Apr. 2012
No, the ones should correspond to the indices of the values. Oleg has posted a very nice answer which does this. Thanks for your help though!

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