Borrar filtros
Borrar filtros

Avoiding unnecessary for loops

5 visualizaciones (últimos 30 días)
Deepayan Bhadra
Deepayan Bhadra el 6 de Mzo. de 2018
Editada: Jan el 8 de Mzo. de 2018
How do I do this without the loops in a few lines?
S = zeros(100,100);
sig = 0.05;
for i = 1:100
for j = 1:100
S(i,j) = exp(-norm(D(i,:)-D(j,:),'fro')/sig);
end
end
  2 comentarios
Deepayan Bhadra
Deepayan Bhadra el 7 de Mzo. de 2018
@Walter Roberson, did you make any comment on this?
Jos (10584)
Jos (10584) el 7 de Mzo. de 2018
Note that S will be symmetric with zeros on the diagonal, as norm(x) = norm(-x), so you can let j run from i+1 to 100 to save time.
Since norm is not vectorized it is hard to get rid of the for-loops at all.

Iniciar sesión para comentar.

Iniciar sesión para responder a esta pregunta.

Respuesta aceptada

Jan
Jan el 7 de Mzo. de 2018
Editada: Jan el 7 de Mzo. de 2018
These are a few lines already. The mos expensive is the exp call, so you save the most time with using the symmetry (as mentioned by Jos already):
S = zeros(100,100);
sig = 0.05;
for i = 1:100
for j = i+1:100
S(i,j) = exp(-norm(D(i,:) - D(j,:)) / sig);
S(j,i) = S(i,j);
end
end
You can try if it is faster to replace norm by:
for i = 1:100
v = D(i, :);
for j = i+1:100
w = v - D(j, :);
S(i,j) = exp(-sqrt(w * w.') / sig);
S(j,i) = S(i,j);
end
end
Operating on columns is faster than on rows:
DT = D.';
for i = 1:100
v = DT(:, i);
for j = i+1:100
w = v - DT(:, j);
S(i,j) = exp(-sqrt(w.' * w) / sig);
S(j,i) = S(i,j);
end
end
Please post the timings you get.
  4 comentarios
Mostrar 2 comentarios más antiguos
Deepayan Bhadra
Deepayan Bhadra el 8 de Mzo. de 2018
data: 100x2. D = pdist(data), Z = squareform(D), S = exp(-Z/sig). This accomplishes the exact thing as the for loop. I appreciate your inputs but let's not jump to conclusions about intentions of different MATLAB users on the forum.
Jan
Jan el 8 de Mzo. de 2018
Editada: Jan el 8 de Mzo. de 2018
In pdist you find exactly the same loops as in the suggested code, but S = exp(-Z/sig) does not use the symmetry of the input, such that almost the double number of expensive exp() calls are performed. Therefore I assume, that this "loop free" code is not less "nightmarishly time-consuming". I'm interested in the timings you get, especially for the larger matrices with 10'000 vectors.
I did not draw any conclusions about intentions of anybody. I'm convinced, that the forum should not solve homework. That's all. But discussions about homework are very useful for the forum and the students.

Iniciar sesión para comentar.

Más respuestas (0)

Categorías

Más información sobre Loops and Conditional Statements en Help Center y File Exchange.

Etiquetas

Community Treasure Hunt

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

Start Hunting!

Translated by