omit for-loop per arrayfun function

1 vue (au cours des 30 derniers jours)
Alejandro Fernández
Alejandro Fernández le 17 Août 2020
Hello, let's see if someone could help me, starting from a BB matrix of dimensions m X 8 and containing the X and Y positions of the vertices of a rectangle by rows I need to convert each row of that matrix into a polygon and then apply polybuffer with an offset of 1. I know how to do it with a for loop. Would there be any way to use arrayfun to get the same result?
for i = 1 : size(BB,1)
pgonBB{i,1} = polyshape(BB(i,1:2:8),BB(i,2:2:8),'Simplify',false);
pgonBB{i,1} = polybuffer(pgonBB{i,1},offset,'JointType','miter','MiterLimit',2);
end
  2 commentaires
Rik
Rik le 17 Août 2020
Why do you want to replace the for loop with arrayfun?
Alejandro Fernández
Alejandro Fernández le 18 Août 2020
To try to reduce the time as much as possible since in a real case the size of the loop exceeds 4000 iterations

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Rik
Rik le 18 Août 2020
I doubt arrayfun will cause the speed-up you're hoping for. It has its own overhead, so it might even be slower. Functions like rowfun, cellfun and arrayfun only hide the loop, they don't remove it. The real speed-up is when you move to array operations.
The example below shows an example in action.
N=10000;
v=randi(50,N,1);
if~isequal(fun_deliberately_slow(v),fun_fast(v)) || ...
~isequal(fun_deliberately_slow(v),fun_hidden_loop(v))
error('functions don''t match')
else
clc
fprintf('loop : %.6f seconds\n',...
timeit(@()fun_deliberately_slow(v)))
fprintf('arrayfun: %.6f seconds\n',...
timeit(@()fun_hidden_loop(v)))
fprintf('direct : %.6f seconds\n',...
timeit(@()fun_fast(v)))
end
function a=fun_deliberately_slow(v)
a=zeros(size(v));
for n=1:numel(v)
a(n)=sum(v(1:n));
end
end
function a=fun_hidden_loop(v)
%essentially the same code as the loop above
n=(1:numel(v))';
a=arrayfun(@(n) sum(v(1:n)),n);
end
function a=fun_fast(v)
a=cumsum(v);
end
  1 commentaire
Alejandro Fernández
Alejandro Fernández le 18 Août 2020
Ah okey, thank you so much for all your help!!!

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