How to write an efficient script for perfect numbers

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K M
K M el 7 de Abr. de 2017
Comentada: Walter Roberson el 25 de Sept. de 2017
I have to display the first 4 perfect numbers but am running into a problem. The way I am trying it takes very very long to reach the last value (8128 or whatever). Figured out how to post code (there's a freaking button for it lol...)
for k = 1:9000
factors = divisors(k);
factors(end) = [];
if sum(factors) == k
disp(k)
end
  2 comentarios
KSSV
KSSV el 7 de Abr. de 2017
You have to show code to figure out your difficulty..
K M
K M el 7 de Abr. de 2017
As I was about to comment I just saw the button for 'code' lol... Anyway here's what I have:
for k = 1:9000
factors = divisors(k);
factors(end) = [];
if sum(factors) == k
disp(k)
end

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KSSV
KSSV el 7 de Abr. de 2017
Try this:
for k = 1:9000
% factors = divisors(k);
D = 1:k ;
factors =D(rem(k,D)==0) ;
factors(end) = [] ;
if sum(factors) == k
disp(k)
end
end
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Grace Lim
Grace Lim el 25 de Sept. de 2017
@KSSV, sorry to bother you but can you explain this line '
factors =D(rem(k,D)==0)
Walter Roberson
Walter Roberson el 25 de Sept. de 2017
rem(k,D) is the remainder when k is divided by D, which will be 0 when D exactly divides k. This code uses logical indexing to extract the exact divisors.

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