How to find elements in an array faster / without using for loop?

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Jan Brychta
Jan Brychta 2022 年 2 月 3 日
コメント済み: Jan Brychta 2022 年 2 月 5 日
Hi,
I have the following working code with a for loop but I want to make the process faster. For the sizes of arrays I use this process now takes up to 30 seconds.
The code:
neighbour is a X by 2 array with integers only (for example 65000 x 2)
squares is a Y by 4 array with integers only (for example 35000 x 4)
B = zeros(squares,1); %the preallocation I tried - not much helpful, minimal time saving
for i = 1:length(neighbour) % for loop going though values from 1 to length of 'neighbour' array ~ for example 1:65000
B = any(squares == (neighbour(i,1)),2) & any(squares == (neighbour(i,2)),2);
% this finds indicies of lines in 'squares' where there are both values from 'i'th row of 'neighbour' array
end
If not clear from the code what I want to do is:
I want to go though the 'neighbour' array row by row and obtain the indicies of lines in 'square' array which contain the values as in that row in neighbour array.
Example:
if the neighbour array had only 1 row with
[1 2]
in it, and the square array looked like this:
[ 4 58 6 7;
1 2 47 48;
84 12 8 9],
then the output should be the index of the line in square array which contains both numbers i.e.
2
I have tried preallocation but the time it saves is marginal. Do you have any ideas on how to make this faster, ideally without a for loop?
Many thanks,
Jan

採用された回答

Turlough Hughes
Turlough Hughes 2022 年 2 月 5 日
編集済み: Turlough Hughes 2022 年 2 月 5 日
In the example you provided you aren't actually storing any of the indices. It is also important to consider that you will get results where more than one neighbour matches a square, or none match a square at all - you're going to need to store the indices in a cell array. To go through some different approaches, lets first generate some similar data:
neighbour = randi(1000,65000,2);
squares = randi(1000,35000,4);
B = cell(height(squares),1);
I've done three approaches to the problem the first one being based on the example you provided.
Approach 1 based on the example you provided:
tic
for i = 1:length(neighbour)
B{i} = find( ...
any(squares == (neighbour(i,1)),2) &...
any(squares == (neighbour(i,2)),2)...
);
end
toc
% Elapsed time is 33.780513 seconds. (Mathworks Server)
% Elapsed time is 21.165682 seconds. (My PC)
It's taking about 21 seconds on my computer, we can get some improvent with approach 2.
Approach 2 Instead of using &, it's faster to index into squares with the first logical expression. In this way, you're only scanning a portion of squares for neighbour(i,2) instead of the whole array, that is a significant improvement. In a sense, this is the vector equivalent of logical short-circuiting.
B = cell(height(squares),1);
tic
for i = 1:length(neighbour)
idx = find(any(squares == (neighbour(i,1)),2));
B{i} = idx(any(squares(idx,:) == (neighbour(i,2)),2));
end
toc
% Elapsed time is 21.825993 seconds. (Mathworks Server)
% Elapsed time is 12.312727 seconds. (My PC)
Approach 3 It turns out that any(someArray,1), is faster than any(someArray,2), which isn't surpising as MATLAB is column major-order. With some modification we can get another improvement.
B = cell(height(squares),1);
tic
squares = squares.';
for i = 1:length(neighbour)
idx = find(any(squares == neighbour(i,1),1));
B{i} = idx(any(squares(:, idx) == (neighbour(i,2)),1)).';
end
toc
%Elapsed time is 11.630071 seconds. (Mathworks Server)
%Elapsed time is 6.896441 seconds. (My PC)
So for me that was about a 3x improvement, and it does about a 3x improvement on MathWorks servers as well.
Edit: find needed to be used on the first logical expression in approaches 2 and 3.
  4 件のコメント
Turlough Hughes
Turlough Hughes 2022 年 2 月 5 日
Jan, that was a mistake, I should have used find on the first logical expression. Approaches 2 and 3 now match up with approach 1. I've retimed everything in the edit above.
Jan Brychta
Jan Brychta 2022 年 2 月 5 日
Thank you for that! I really appreciate your help.
Jan

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その他の回答 (1 件)

Christopher McCausland
Christopher McCausland 2022 年 2 月 3 日
Hi Jan,
The 'ismember' function should be able to do this!
Christopher
  5 件のコメント
Christopher McCausland
Christopher McCausland 2022 年 2 月 4 日
Hi Jan,
The fact that your data isn't the same size is a little problematic! I would suggest zero padding but I think this will cause more problems as neighbour would probably never be found in the larger matrix (square).
One option might be to use reshape() to reshape square to the same size as neighbour. I think re-arrainging neigbhour and using [Lia,Locb] = ismember(Neighbour,Square,’rows’) will probably be your best bet.
Let me know how you get on,
Christopher
Jan Brychta
Jan Brychta 2022 年 2 月 5 日
編集済み: Jan Brychta 2022 年 2 月 5 日
Hi Christopher,
I know, the size difference is not making this easier at all. The issue is that each row of the 'square' array represents 4 verticies of a square. That's why I need to keep it in this format without re-arranging.
The aim of these lines of the code is basically to find which 'walls' (rows of the neighbour array) correspond to which 'sqaure' (rows of the square matrix) by matching the values.
Thanks,
Jan

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