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Find double repetitions in a (sorted) array.

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bbb_bbb
bbb_bbb el 20 de Oct. de 2017
Comentada: Andrei Bobrov el 23 de Oct. de 2017
Given an array submitted in a form of struct field, containing integer numbers. For convenience, let's assume that the numbers are already sorted in ascending order:
>> s.x
ans =
2
ans =
2
ans =
5
ans =
5
ans =
5
ans =
8
ans =
8
Find indexes of elements, which occur exact 2 times:
ind =
1 2 6 7
  4 comentarios
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Jan
Jan el 21 de Oct. de 2017
Editada: Jan el 21 de Oct. de 2017
The iterative growing of arrays is a standard mistake from the view point of efficiency. Simply pre-allocate:
d = diff(x);
j = 0;
ind = zeros(1, numel(d));
indi = 1;
for i=1:numel(d)
if d(i)==0
j=j+1;
else
if j==1
ind(indi) = i-1;
ind(indi+1) = i;
indi = indi + 2;
end
j=0;
end
end
ind = ind(1:indi-1);
This does not catch the case, if the last two elements are equal.
bbb_bbb
bbb_bbb el 21 de Oct. de 2017
This does not catch the case, if the last two elements are equal.
Adding this line repairs this:
if d(end)==0, d(end+1)=1; end
This variant seems to be the fastest.

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Respuesta aceptada

Andrei Bobrov
Andrei Bobrov el 20 de Oct. de 2017
Editada: Andrei Bobrov el 23 de Oct. de 2017
x= [2; 2; 5; 5; 5; 8; 8; 13; 13; 13; 13];
[~,~,g] = unique(x); % OR for last versions of MATLAB: g = findgroups(x)
c = accumarray(g,1:numel(x),[],@(x){x});
out = cell2mat(c(cellfun(@numel,c) == 2));
or
[a,~,g] = unique(x);
out = find(ismember(x,a(accumarray(g,1) == 2)));
or (FIXED)
out = reshape(strfind([1,diff(x(:)')~=0,1],[1 0 1]) + [0;1],[],1);
out = reshape(bsxfun(@plus,strfind([1,diff(x(:)')~=0,1],[1 0 1]),[0;1]),[],1); % for old MATLAB
  13 comentarios
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bbb_bbb
bbb_bbb el 23 de Oct. de 2017
This is ok. I sligtly modified it for speed. The fastest and concisiest algorithm of all suggested!
out = strfind([true,diff(x')~=0,true],[1 0 1]);
out = reshape([out;out+1],1,[]);
Andrei Bobrov
Andrei Bobrov el 23 de Oct. de 2017
Thank you mister Bbb_bbb.

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Más respuestas (4)

Rik
Rik el 20 de Oct. de 2017
Editada: Rik el 20 de Oct. de 2017
It always pays off to get rid of loops and/or pre-allocating your output.
x= [2; 2; 5; 5; 5; 8; 8; 13; 13; 13; 13];
s = struct('x', num2cell(x));
x=[s.x];
%only newer releases: 0.000778 seconds
tic
count=histcounts(x,0.5 : max(x)+0.5);
ind=find(sum(x==find(count==2)'));
toc
%should work on most releases: 0.000628 seconds
tic
count=histcounts(x,0.5 : max(x)+0.5);
count=find(count==2);
ind=find(sum(repmat(x,length(count),1)==repmat(count',1,length(x))));
toc
%your loop: 0.001100 seconds
tic
d=diff(x); j=0; ind=[];
for i=1:numel(d)
if d(i)==0
j=j+1;
else
if j==1
ind(end+1)=i-1;
ind(end+1)=i;
end
j=0;
end
end
toc
  8 comentarios
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Rik
Rik el 21 de Oct. de 2017
That's because x has a different shape:
x1= [2; 2; 5; 5; 5; 8; 8; 13; 13; 13; 13];
s = struct('x', num2cell(x1));
x2=[s.x];
x1 is 11x1 and x2 is 1x11
bbb_bbb
bbb_bbb el 21 de Oct. de 2017
This variant isn't working at big arrays:
x=randi([1,1e6],1e5,1); x=sort(x)';
count=histcounts(x,0.5 : max(x)+0.5);
count=find(count==2);
ind=find(sum(repmat(x,length(count),1)==repmat(count',1,length(x))));
Error using repmat
Maximum variable size allowed by the program is exceeded.

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Image Analyst
Image Analyst el 20 de Oct. de 2017
You didn't tag it as homework. Is it? This will do it:
% Assignment of a struct with a field containing integer numbers
x= [2; 2; 5; 5; 5; 8; 8; 13; 13; 13; 13];
s = struct('x', num2cell(x));
numbers = [s.x]
[groupNumber, groupValue] = findgroups(numbers)
counts = histcounts(groupNumber)
ofGroupSize2 = find(counts == 2) % Find those only if they have a length of 2.
values = groupValue(ofGroupSize2)
indexes = find(ismember(numbers, values))
  2 comentarios
bbb_bbb
bbb_bbb el 20 de Oct. de 2017
Editada: bbb_bbb el 21 de Oct. de 2017
No, its no homework - so called "just-for-fun project".
[groupNumber, groupValue] = findgroups(numbers)
Undefined function or variable 'findgroups'.
Matlab 2015a
Image Analyst
Image Analyst el 20 de Oct. de 2017
Editada: Image Analyst el 21 de Oct. de 2017
You can use regionprops() instead of findgroups() if you have an old version and have the Image Processing Toolbox. See my separate answer with demo code.

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Jan
Jan el 21 de Oct. de 2017
Your code looks like the input is sorted. The other approaches do not have this limitation. If it is really sorted:
d = [true; diff(x) ~= 0]; % TRUE if values change
b = x(d); % Elements without repetitions
k = find([d', true]); % Indices of changes
n = diff(k);
is2 = find(n==2);
ind4 = reshape([k(is2); k(is2)+1], 1, []);
Code taken from FEX: RunLength.
Image Analyst
Image Analyst el 21 de Oct. de 2017
Editada: Image Analyst el 21 de Oct. de 2017
If you have the Image Processing Toolbox, you can use regionprops():
% Assignment of a struct with a field containing integer numbers
x= [2; 2; 5; 5; 5; 8; 8; 13; 13; 13; 13];
s = struct('x', num2cell(x));
numbers = [s.x] % A labeled "image"
% Find lengths of each run of numbers plus the indexes where they occur.
props = regionprops(numbers, 'Area', 'PixelIdxList')
% Extract from structure into one vector.
allLengths = [props.Area]
% Find those only if they have a length of 2.
ofGroupSize2 = find(allLengths == 2)
% Find indexes of those runs with length 2.
indexes = [props(ofGroupSize2).PixelIdxList]
% Shape into row vector
indexes = reshape(sort(indexes(:)), 1, [])
  1 comentario
bbb_bbb
bbb_bbb el 21 de Oct. de 2017
This works, but the variant is the longest (6.2 sec on 1e6 elements vector). The fastest is 0.03 sec.

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