How to find pythagorean triangle's hypotenuse in a matrix?

1 vue (au cours des 30 derniers jours)
Ashfaq Ahmed
Ashfaq Ahmed le 8 Nov 2021
Réponse apportée : Sean de Wolski le 8 Nov 2021
Hey guys,
I have two 4x4 matrices a and b. I want a third c matrix of 4x4 size where all the values will be c = sqrt(a.^2+b.^2).
For example, the first row of c will be [13 10 13 5];
How can I do this using a for loop?
a = [5 8 12 3; 8 12 63 20; 9 84 144 20; 24 11 15 180];
b = [12 6 5 4; 15 35 16 21; 40 13 17 99; 7 60 112 19];

Connectez-vous pour répondre à cette question.

Réponse acceptée

C B
C B le 8 Nov 2021
Ran in:
a = [5 8 12 3; 8 12 63 20; 9 84 144 20; 24 11 15 180];
b = [12 6 5 4; 15 35 16 21; 40 13 17 99; 7 60 112 19];
c=[];
for i =1 : size(a,1)
c(i,:) = sqrt(a(i,:).^2+b(i,:).^2)
end
c = 1×4
13 10 13 5
c = 2×4
13 10 13 5 17 37 65 29
c = 3×4
13 10 13 5 17 37 65 29 41 85 145 101
c = 4×4
13 10 13 5 17 37 65 29 41 85 145 101 25 61 113 181

Plus de réponses (2)

Sean de Wolski
Sean de Wolski le 8 Nov 2021
Ran in:
This will be the most numrically stable.
a = [5 8 12 3; 8 12 63 20; 9 84 144 20; 24 11 15 180];
b = [12 6 5 4; 15 35 16 21; 40 13 17 99; 7 60 112 19];
hypot(a,b)
ans = 4×4
13 10 13 5 17 37 65 29 41 85 145 101 25 61 113 181
Chunru
Chunru le 8 Nov 2021
Modifié(e) : Chunru le 8 Nov 2021
Ran in:
a = [5 8 12 3; 8 12 63 20; 9 84 144 20; 24 11 15 180];
b = [12 6 5 4; 15 35 16 21; 40 13 17 99; 7 60 112 19];
c = sqrt(a.^2 + b.^2)
c = 4×4
13 10 13 5 17 37 65 29 41 85 145 101 25 61 113 181
% Using for loops should be avoid for such problem in matlab
c = zeros(size(a));
for i=1:size(a,1)
for j=1:size(a, 2)
c(i,j) = sqrt(a(i,j)^2 + b(i,j)^2);
end
end
c
c = 4×4
13 10 13 5 17 37 65 29 41 85 145 101 25 61 113 181
  2 commentaires
Ashfaq Ahmed
Ashfaq Ahmed le 8 Nov 2021
Thank you so much. But is there any specific reason why should I avoid for loop?
Chunru
Chunru le 8 Nov 2021
MATLAB excels on the matrix computations. "c = sqrt(a.^2 + b.^2)" is much neater and more efficient that the codes with loops.

Connectez-vous pour commenter.

Catégories

En savoir plus sur Logical dans Help Center et File Exchange

Tags

Community Treasure Hunt

Find the treasures in MATLAB Central and discover how the community can help you!

Start Hunting!

Translated by