implementation help of Gaussian RBM in matlab
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    subha
 el 23 de Nov. de 2013
  
    
    
    
    
    Comentada: subha
 el 28 de Nov. de 2013
            First i would like to know how to make visible layer to zero mean and unit variance.I have seen in few example they followed below way.but i couldnot understand
subtracting the corresponding data with its mean and divide it by standard division, my data becomes NaN.
I am new to matlab and Neural networks.
data= batchdata(:,:,batch);
mean_data=mean(data,1),data=bsxfun(data,mean_data);
std_data=std(data,[],1);
data=bsxfun(@rdivide,data,std_data);
i am not able to find the reason
can anybody help to clear this
1 comentario
  Greg Heath
      
      
 el 23 de Nov. de 2013
				"subtracting the corresponding data with its mean and divide it by standard division, my data becomes NaN."
Did it ever occur to you to post that code?
Respuesta aceptada
  Greg Heath
      
      
 el 23 de Nov. de 2013
        doc zscore
help zscore
doc mapstd
help mapstd
Hope this helps.
- Thank you for formally accepting my answer*
Greg
3 comentarios
  Greg Heath
      
      
 el 25 de Nov. de 2013
				 [x, t ] = engine_dataset;
 [ I N ] = size(x)   %  2  1199
 [ O N ] = size(t)   %  2  1199
 z    = [ x; t];
 muz  = mean(z')';
 stdz = std(z')';
% [ muz stdz ] = [ 141.2  090.7
%                 1259.5  354.8
%                  754.2  548.7
%                  961.7  466.1 ]
 zn    = ( z - repmat(muz,1,N))./repmat(stdz,1,N);
 muzn  = mean(zn')';
 stdzn = std(zn')';
% [ muzn stdzn ] = [  -0.0000    1.0000
%                      0.0000    1.0000
%                     -0.0000    1.0000
%                     -0.0000    1.0000 ]
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