index exceed matrix dimensions
Afficher commentaires plus anciens
hello folks, I'm trying to run 2 different dimensional vectors by using weighted regions with a chosen factor. can I get some expert opinion on identify the error,please. your help is gratefully appreciated.Many thanks in advance.
x=train_data; % 882 x2 double
z=test_data; %882 x 8 double
distance_max=[];
for h=1:size(x)
for kb=1:size(z)
kk=x(:,h);
gg=z(:,kb); <-- this is where the error appeared
weightsum=0;
ww = [0, 1,1,1,1,1,0,0,1,1,1,1,1,0,1,1,2,1,2,1,1,2,4,4,0,4,4,2,1,1,1,1,1,1,1,0,1,2,2,2,1,0,0,0,1,1,1,0,0];
length=18;
region = size(x,1)/length;
for e=1:region
e_start = (e -1) * length+1 ;
e_end = e_start + length-1 ;
xpart=kk(e_start:e_end);
zpart = gg (e_start:e_end);
D1 = pdist2(xpart',zpart','chisq')*ww(e);
distance_max=[distance_max,D1];
weightsum=weightsum+D1;
end
results(h,k)={weightsum};
end
end
5 commentaires
Presumably you got a line number with that error that tells you the line which causes the error?
It is a lot more difficult for us to look through a whole block of code hunting for an error when the error message should just point straight to it!
What is y by the way?
There is a
for kb=1:size(y)
line in your code though so when I tried to run it with random matrices of the correct size in place of your x and z that threw an error.
Should that just be size(z) then instead of size(y)?
Rick Rosson
le 11 Sep 2014
Two lines above the line that caused the error:
for kb=1:size(y)
Réponse acceptée
Rick Rosson
le 11 Sep 2014
Modifié(e) : Rick Rosson
le 11 Sep 2014
Please try changing the line
for kb=1:size(y)
to the following:
for kb=1:size(z)
Also, please correct the issue with size described in the answer provided by Adam.
3 commentaires
seprienna
le 11 Sep 2014
Rick Rosson
le 11 Sep 2014
I think you want to loop over the number of columns in each matrix. So please try the following:
for h=1:size(x,2)
for kb=1:size(z,2)
seprienna
le 11 Sep 2014
Plus de réponses (1)
size(x)
will return a length d vector where d is the dimension of x. In your case that will be [882 2] and likewise size(y) will return [882 8].
If you want the first dimension you can use
size( x, 1 )
to give 882, or
size( x, 2 )
if you want the second dimension only. You can use
length(x)
if you just want the longest dimension but don't know what the index of that dimension is, but I don't recommend using length for this purpose if you do know which dimension you want.
That may not be the only problem, but it will definitely cause problems.
3 commentaires
Pierre Benoit
le 11 Sep 2014
Well from what your code do, it seems that you need to use
size(x,2)
and the same for z.
seprienna
le 11 Sep 2014
Catégories
En savoir plus sur Creating and Concatenating Matrices dans Centre d'aide et File Exchange
Produits
le 11 Sep 2014
le 11 Sep 2014
Community Treasure Hunt
Find the treasures in MATLAB Central and discover how the community can help you!
Start Hunting!
Translated by 
