How to reduce run time of for loop

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dharmin
dharmin el 26 de Jun. de 2023
Respondida: Walter Roberson el 31 de Ag. de 2023
%Material_data_kevlar;
K =4;
best_m = 0;
best_n = 0;
best_l = 0;
max_layers = K;
num_of_layup_req = [];
flag = false; % Initialize flag variable
while numel(num_of_layup_req) == 0
for m = 1:K
for n = 1:K
for l = 1:K
if rem(m,2) == 0 && rem(n,2) == 0 && rem(l,2) == 0
if (m + n +l) >= K
break;
end
end
if flag
break;
end
% end
end
end
end
F = 0.1926
max_stress_criteria = max(max(Max_stress_value))
max_stress_criteria = 0.8219
%extract stress components from X
sigma_x = X(1, :);
sigma_y = X(2, :);
tau_12 = X(3, :);
figure('Name', 'Stress Distribution', 'NumberTitle', 'off');
% Plot sigma_x versus z
plot(sigma_x, z, 'DisplayName', '\sigma_x','LineStyle','-','LineWidth',2);
hold on;
% Plot sigma_y versus z
plot(sigma_y, z, 'DisplayName', '\sigma_y','LineStyle','-','LineWidth',2);
% Plot tau_12 versus z
plot(tau_12, z, 'DisplayName', '\tau_{12}','LineStyle','-','LineWidth',2);
xlabel('Stress (MPa)');
ylabel('z (m)');
%xlim([-5e8 5e8]);
% Add legend
legend('Location', 'best','FontSize',12);
% Set limits for y-axis
ylim([min(z) max(z)]);
title("[0_{m}/45_{n}/90_{l}]_{s}")
% Display the minimal stress and the corresponding angle
%disp(['Minimal Calculated Stress: ', num2str(min_stress)]);
disp(['Number of layers:',num2str(numel(L))]);
Number of layers:8
disp(['Orientation:',num2str(L)]);
Orientation:0 45 -45 90 90 -45 45 0
disp(['Tsai-wu value:',num2str(Tsai_wu_value)]);
Tsai-wu value:0.18584
disp(['Thickness:',num2str(t*numel(L)*1000)]);
Thickness:1.32
save("0+45+90")

Respuesta aceptada

Jacob Mathew
Jacob Mathew el 27 de Jun. de 2023
Hi dharmin,
Looking at the code in the for loop, you can try and precalculate the values of sind(L(i)) and cosd(L(i)) which will have some minor time savings than calculating it multiple times in the single row.
However, the first part of the code has 3 nested for loops i.e time complexity of O() which might be the reason why the code is taking so long to run. Consider some optimisation to the algorithm itself to improve the time.

Más respuestas (1)

Walter Roberson
Walter Roberson el 31 de Ag. de 2023
num_of_layup_req = [];
flag = false; % Initialize flag variable
while numel(num_of_layup_req) == 0
for m = 1:K
for n = 1:K
for l = 1:K
if rem(m,2) == 0 && rem(n,2) == 0 && rem(l,2) == 0
if (m + n +l) >= K
break;
end
end
if flag
break;
end
% end
end
end
end
Inside of the while loop you never change num_of_layup_req so the numel() of it cannot change. Therefore, if the while loop body starts running the first time, it will run infinitely after that -- unless, that is, there is a break at the level of the while loop.
You do have break inside the while loop, but the break statements are all inside for loops, and break only refers to the immediately enclosing for or while . You sometimes terminate the for l early, but you never terminate the for n or for m early and never terminate the while early. Therefore you have an infinite while loop.
You set the flag to false before the loop and you test whether the flag is true inside the loop, but the flag is never changed -- so it never changes from false to true. It is therefore useless to test it.
You can optimize the other break test by looping 2:2:K instead of 1:K . With 2:2:K then mod 2 will always be 0 and so the first if will always be true. You can do this because you never take any action other than testing flag (that cannot change) when any of the mod 2 come out as non-zero

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