How to replace all for-loops ?

Question

Sadiq Akbar il 10 Gen 2023

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https://it.mathworks.com/matlabcentral/answers/1891062-how-to-replace-all-for-loops

Commentato: Jan il 11 Gen 2023

I had posted a function here for vectorization. Now this is the same function and even I tried myself to replace all for-loops like previous but I didn't succeed because in this the outer loop has enclosed all the for-loops and instead of pop being a vector, now it is a matrix due to which I failed to do so. The code is:

clear all; clc
u=[1  2 10 20]; 
dim=length(u);
pop=rand(10,dim);
C = size(pop,2);
P=C/2;
M=2*C;
e = zeros(size(pop,1),1);
for ii = 1:size(pop,1)
    % calculate xo
    b = pop(ii,:);
    xo=zeros(1,M);
    for k=1:M
        for i=1:P
            xo(1,k)=xo(1,k)+u(i)*exp(-1i*(k-1)*pi*cos(u(P+i)));
        end
    end
    
    % calculate xe
    xe=zeros(1,M);
    for k=1:M
        for i=1:P
            xe(1,k)=xe(1,k)+b(i)*exp(-1i*(k-1)*pi*cos(b(P+i)));
        end
    end
    
    abc=0.0;
    for m1=1:M
        abc=abc+(abs(xo(1,m1)-xe(1,m1))).^2; 
    end
    abc=abc/M; 
    
    e(ii)=abc
    
end

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Dyuman Joshi il 10 Gen 2023

Apri in MATLAB Online

To add on @Rik's comment, I vectorised a part of the code, and here is the comparison.

You can see that double for loop is faster than the vectorized code.

u   = [1  2 10 20]; 
pop = rand(10, numel(u));
P = width(pop)/2;
M = width(pop)*2;
H = height(pop);
e1=vector(P,M,H,pop,u);
e2=twofor(P,M,H,pop,u);
%comparing results from both methods
result_comparison=isequal(e1,e2)
result_comparison = logical
   1
tic
for i=1:1e3
    y=vector(P,M,H,pop,u);
end
t1=toc;
fprintf('time taken by vector method = %0.4f seconds', t1)
time taken by vector method = 0.1316 seconds
tic
for i=1:1e3
    z=twofor(P,M,H,pop,u);
end
t2=toc;
fprintf('time taken by double for loop method = %0.4f seconds', t2)
time taken by double for loop method = 0.0789 seconds
function e = vector(P,M,H,pop,u)
e=zeros(H,1);
xo=zeros(1,M);
xe=zeros(1,M);
for ii = 1:H
    b=pop(ii,:);
    xo=(exp(-1i*(0:M-1)'*pi*cos(u(P+1:2*P)))*u(1:P)')';
    xe=(exp(-1i*(0:M-1)'*pi*cos(b(P+1:2*P)))*b(1:P)')';
    e(ii)=sum(abs(xo-xe).^2)/M;    
end
end
function e = twofor(P,M,H,pop,u)
e = zeros(H,1);
for ii = 1:H
    b = pop(ii,:);
    xo = zeros(1,M);
    xe = zeros(1,M);
    abc = 0;
    for jj=1:M
        for kk=1:P
            xo(1,jj) = xo(1,jj) + u(kk) * exp(-1i*(jj-1) * pi * cos(u(P+kk)));
            xe(1,jj) = xe(1,jj) + b(kk) * exp(-1i*(jj-1) * pi * cos(b(P+kk)));
        end
        abc = abc+(abs(xo(1,jj)-xe(1,jj))).^2; 
    end
    
    e(ii) = abc/M;    
end
end

Dyuman Joshi il 11 Gen 2023

Modificato: Dyuman Joshi il 11 Gen 2023

Apri in MATLAB Online

As @Rik mentioned, tic toc will only give an approximate idea of execution time. Results from running tic-toc a single time will always vary. That is why I ran in individual for loops to get a better idea of their execution time.

If you want to see the stark difference between run times, increase the number of iterations. I have increased the count to 1e5. You can see the (obvious) difference in execution times now.

u   = [1  2 10 20];
pop = rand(10, numel(u));
P = width(pop)/2;
M = width(pop)*2;
H = height(pop);
e1=vector(P,M,H,pop,u);
e2=twofor(P,M,H,pop,u);
%comparing results from both methods
result_comparison=isequal(e1,e2)
result_comparison = logical
   1
tic
for i=1:1e5
    y=vector(P,M,H,pop,u);
end
t1=toc;
fprintf('time taken by vector method = %0.4f seconds', t1)
time taken by vector method = 9.4559 seconds
tic
for i=1:1e5
    z=twofor(P,M,H,pop,u);
end
t2=toc;
fprintf('time taken by double for loop method = %0.4f seconds', t2)
time taken by double for loop method = 5.7637 seconds
function e = vector(P,M,H,pop,u)
e=zeros(H,1);
xo=zeros(1,M);
xe=zeros(1,M);
for ii = 1:H
    b=pop(ii,:);
    xo=(exp(-1i*(0:M-1)'*pi*cos(u(P+1:2*P)))*u(1:P)')';
    xe=(exp(-1i*(0:M-1)'*pi*cos(b(P+1:2*P)))*b(1:P)')';
    e(ii)=sum(abs(xo-xe).^2)/M;    
end
end
function e = twofor(P,M,H,pop,u)
e = zeros(H,1);
for ii = 1:H
    b = pop(ii,:);
    xo = zeros(1,M);
    xe = zeros(1,M);
    abc = 0;
    for jj=1:M
        for kk=1:P
            xo(1,jj) = xo(1,jj) + u(kk) * exp(-1i*(jj-1) * pi * cos(u(P+kk)));
            xe(1,jj) = xe(1,jj) + b(kk) * exp(-1i*(jj-1) * pi * cos(b(P+kk)));
        end
        abc = abc+(abs(xo(1,jj)-xe(1,jj))).^2; 
    end
    
    e(ii) = abc/M;    
end
end

Sadiq Akbar il 11 Gen 2023

Thanks a lot dear Dyuman Joshi for your kind response. Yes, i want to accept your answer and give vote to others also but how because vote icon is not visible with others?

Jan il 11 Gen 2023

I've moved Dyuman Joshi's comment to the answers section, such that it can be accepted now.

Accedi per commentare.

Accedi per rispondere a questa domanda.

Answer 1

Dyuman Joshi il 11 Gen 2023

1
Link

Link diretto a questa risposta

https://it.mathworks.com/matlabcentral/answers/1891062-how-to-replace-all-for-loops#answer_1146390

Spostato: Jan il 11 Gen 2023

Apri in MATLAB Online

That would be something like this -

e1=vector;
e2=twofor;
%comparing results from both methods
result_comparison=isequal(e1,e2)
result_comparison = logical
   1
fprintf('time taken by vector method = %e seconds', timeit(@vector))
time taken by vector method = 3.112200e-04 seconds
fprintf('time taken by double for loop method = %e seconds', timeit(@twofor))
time taken by double for loop method = 2.392200e-04 seconds
function e = vector
rng(1)
u   = [1  2 10 20];
pop = rand(10, numel(u));
P = width(pop)/2;
M = width(pop)*2;
H = height(pop);
e=zeros(H,1);
xo=zeros(1,M);
xe=zeros(1,M);
for ii = 1:H
    b=pop(ii,:);
    xo=(exp(-1i*(0:M-1)'*pi*cos(u(P+1:2*P)))*u(1:P)')';
    xe=(exp(-1i*(0:M-1)'*pi*cos(b(P+1:2*P)))*b(1:P)')';
    e(ii)=sum(abs(xo-xe).^2)/M;    
end
end
function e = twofor
rng(1)
u   = [1  2 10 20];
pop = rand(10, numel(u));
P = width(pop)/2;
M = width(pop)*2;
H = height(pop);
e = zeros(H,1);
for ii = 1:H
    b = pop(ii,:);
    xo = zeros(1,M);
    xe = zeros(1,M);
    abc = 0;
    for jj=1:M
        for kk=1:P
            xo(1,jj) = xo(1,jj) + u(kk) * exp(-1i*(jj-1) * pi * cos(u(P+kk)));
            xe(1,jj) = xe(1,jj) + b(kk) * exp(-1i*(jj-1) * pi * cos(b(P+kk)));
        end
        abc = abc+(abs(xo(1,jj)-xe(1,jj))).^2; 
    end
    
    e(ii) = abc/M;    
end
end