[10] | 1 | %HAMDISTM Hamming Distance Matrix between Binary Vectors |
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| 2 | % |
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| 3 | % D = HAMDISTM(A,B) |
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| 4 | % OR |
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| 5 | % D = HAMDISTM(A) |
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| 6 | % |
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| 7 | % INPUT |
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| 8 | % A NxK Binary matrix or dataset |
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| 9 | % B MxK Binary matrix or dataset |
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| 10 | % |
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| 11 | % OUTPUT |
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| 12 | % D NxM Dissimilarity matrix or dataset |
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| 13 | % |
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| 14 | % DESCRIPTION |
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| 15 | % Hamming distance between sets of binary vectors. |
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| 16 | % If A and B are datasets, then D is a dataset as well with the labels defined |
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| 17 | % by the labels of A and the feature labels defined by the labels of B. If A is |
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| 18 | % not a dataset, but a matrix of doubles, then D is also a matrix of doubles. |
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| 19 | % |
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| 20 | |
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| 21 | % Copyright: Elzbieta Pekalska, ela.pekalska@googlemail.com |
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| 22 | % Faculty EWI, Delft University of Technology and |
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| 23 | % School of Computer Science, University of Manchester |
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| 24 | |
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| 25 | |
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| 26 | function d = hamdistm(A,B) |
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| 27 | bisa = nargin < 2; |
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| 28 | if bisa, |
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| 29 | B = A; |
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| 30 | end |
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| 31 | |
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| 32 | isda = isdataset(A); |
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| 33 | isdb = isdataset(B); |
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| 34 | a = +A; |
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| 35 | b = +B; |
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| 36 | |
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| 37 | [ra,ca] = size(a); |
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| 38 | [rb,cb] = size(b); |
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| 39 | if ca ~= cb, |
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| 40 | error ('Matrices should have equal numbers of columns'); |
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| 41 | end |
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| 42 | |
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| 43 | if any(a~=0) | any(a~=1) | any(b~=0) | any(b~=1), |
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| 44 | error('Data should be binary.'); |
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| 45 | end |
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| 46 | |
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| 47 | D = zeros(ra,rb); |
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| 48 | for i=1:rb |
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| 49 | D(:,i) = sum((repmat(b(i,:),ra,1) ~= a),2); |
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| 50 | end |
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| 51 | |
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| 52 | % Set object labels and feature labels |
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| 53 | if xor(isda, isdb), |
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| 54 | prwarning(1,'One matrix is a dataset and the other not. ') |
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| 55 | end |
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| 56 | if isda |
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| 57 | if isdb, |
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| 58 | D = setdata(A,D,getlab(B)); |
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| 59 | else |
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| 60 | D = setdata(A,D); |
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| 61 | end |
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| 62 | D.name = 'Distance matrix'; |
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| 63 | if ~isempty(A.name) |
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| 64 | D.name = [D.name ' for ' A.name]; |
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| 65 | end |
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| 66 | end |
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| 67 | return |
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