how can I reduce the execution time of the given code?

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Neetha Mary am 27 Jan. 2016

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https://de.mathworks.com/matlabcentral/answers/265383-how-can-i-reduce-the-execution-time-of-the-given-code

Kommentiert: Stephen23 am 4 Feb. 2016

i have the following code which takes a 311 kb JPEG image as input. It takes more than half hour to execute this code.

clc;
clear all;
close all;
workspace;
image= imread('1.jpg');
% extracting green channel
t2 = image(:,:,2);
[row, col]=size(t2);
k=(row-16+1)*(col-16+1);
i1 = 1
% feature extraction
    for i=1:row-15
        for j=1:col-15
            X(1,i1) = i
            X(2,i1) = j
            AC = t2(i:i+15,j:j+15)
            f(1) = mean2(AC)
            B = mat2cell(AC, [8 8],[8 8])
            s1 = mean2(B{1,1})
            s2 = mean2(B{1,2})
            s3 = mean2(B{2,1})
            s4 = mean2(B{2,2})
            f(2) = (s1/(4 * f(1) + 0.01))
            f(3) = (s2/(4 * f(1) + 0.01))
            f(4) = (s3/(4 * f(1) + 0.01))
            f(5) = (s4/(4 * f(1) + 0.01))
            f(6) = s1 - f(1)
            f(7) = s2 - f(1)
            f(8) = s3 - f(1)
            f(9) = s4 - f(1)
            m1 = max([f(6),f(7),f(8),f(9)])
            m2 = min([f(6),f(7),f(8),f(9)])
            X(3,i1) = floor(f(1))
            X(4,i1) = floor(255 * f(2)) 
            X(5,i1) = floor(255 * f(3))
            X(6,i1) = floor(255 * f(3))
            X(7,i1) = floor(255 * f(5))
            X(8,i1) = floor(255 * ((f(6) - m2)/(m1 - m2 + 0.01))) 
            X(9,i1) = floor(255 * ((f(7) - m2)/(m1 - m2 + 0.01)))
            X(10,i1) = floor(255 * ((f(8) - m2)/(m1 - m2 + 0.01)))
            X(11,i1) = floor(255 * ((f(9) - m2)/(m1 - m2 + 0.01)))      
            i1 = i1 + 1
           end
    end
    Y = X;
    for i1 = 11:-1:3
        m1 = Y;
        f = Y(i1,:);
        m2 = zeros(1,256);
        for j = 1:k
            m2(f(j)+1) = m2(f(j)+1) + 1;
        end
        % Convert to cumulative values
        for i = 2:256
            m2(i) = m2(i) + m2(i - 1);
        end
        % Sort the array
        for j = k:-1:1
            Y(:,m2(f(j)+1))= m1(:,j);
            m2(f(j)+1) = m2(f(j)+1) - 1;
        end     
    end
P(1,:) = Y(1,:);
P(2,:) = Y(2,:);
for j=1:k-1
    P(3,j) = sqrt(((P(1,j+1) - P(1,j))*(P(1,j+1) - P(1,j)))+((P(2,j+1) - P(2,j))*(P(2,j+1)-P(2,j))));
    P(3,j) = floor(P(3,j)); 
end
AC =sort(P(3,:));

how can i reduce execution time.

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Stephen23 am 29 Jan. 2016

Bearbeitet: Stephen23 am 30 Jan. 2016

I know what mat2cell is doing, I just pointed out that is not necessary. See my answer to know how you can remove the slowest operation from your code.

Stephen23 am 4 Feb. 2016

@Neetha Mary: it is considered polite on this forum to accept the answer that best resolves your question.

Melden Sie sich an, um zu kommentieren.

Melden Sie sich an, um diese Frage zu beantworten.

Answer 1

Stephen23 am 29 Jan. 2016

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Direkter Link zu dieser Antwort

https://de.mathworks.com/matlabcentral/answers/265383-how-can-i-reduce-the-execution-time-of-the-given-code#answer_207837

Bearbeitet: Stephen23 am 29 Jan. 2016

In MATLAB Online öffnen

test.m

After adding semicolons to all of the lines I ran the code with a small image and using the profiler, and found that this one line takes 40% of the total processing time:

B = mat2cell(AC, [8 8],[8 8]);

The cell array B is used on the following four lines, like this:

s1 = mean2(B{1,1})

Removing mat2cell and using basic matrix indexing would remove this bottle-neck. You can access those blocks directly using indexing, without using mat2cell, which will be twice as fast (the test script is attached below):

Elapsed time is 12.305447 seconds.
Elapsed time is 6.675523 seconds.

By removing the mat2cell I halved the time for that operation. You should replace all of these lines:

            AC = t2(i:i+15,j:j+15)
            f(1) = mean2(AC)
            B = mat2cell(AC, [8 8],[8 8])
            s1 = mean2(B{1,1})
            s2 = mean2(B{1,2})
            s3 = mean2(B{2,1})
            s4 = mean2(B{2,2})

with four lines like this:

s1 = mean2(t2(i+0:i+7,j+0:j+7))
s2 = mean2(t2(i+0:i+7,j+8:j+15))
etc

and one like this:

f(1) = mean2(t2(i:i+15,j:j+15))

Doing this will speed up the slowest operation in the whole code. Then you can use the profiler to check if there are other lines that can be sped up.