why setdiff have time longer than for ?

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*hi,
Itried to make my code be faster , so i used setdiff instead of a part in my code
I used:*
v=(1:18);
buf=setdiff(v,unique_x);
relevant_item(ttt(i),1:length(buf))=buf;
*instead of *
for v=1:18
b2=find(unique_x==v);
if isempty(b2)
relevant_item(ttt(i),h)=v;
h=h+1;
end
end
*why the running time of this part is less than of setdiff?
thanks*

Risposta accettata

Walter Roberson
Walter Roberson il 12 Mag 2013
setdiff() essentially has to sort each time -- or at least to check if the set is ordered.
Are the unique_x restricted to being in the allowed range for v, 1:18 ? If so, then how about
buf = 1:10;
buf(unique_x) = [];
relevant_item(ttt(i),1:length(buf))=buf;
  3 Commenti
huda nawaf
huda nawaf il 15 Mag 2013
Walter, if buf =[ 3 49 10 4 7 20];
I mean not 1:18, can find way to run the above code neither use setdiff , nor for?
thanks
Jan
Jan il 15 Mag 2013
@huda: Look into the code of setdiff. You find the relevant part in the fast MEX function ismembc2, which expects pre-sorted data. So sort your data explicitly, call this function and use the replied indices. Note that ismembc2 is not documented, but you find enough information about it in the net.

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