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I have a problem in computing the distance between two different matrices. The first matrix is 5000x6, the second matrix is 5x80.

I want to use this syntax to calculate the distances:

pdist2(mCe(1,:),row);

But this gives me an error saying "columns in x have to be same in y".

Is there a way to compute the distances when the matrices have a different amount of columns?

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Sorry, what? You're asking something like: "What's the distance between the Earth and a square?" –  Rody Oldenhuis Nov 6 '12 at 8:04
2  
What do you understand to be the distance between [1 2 3 4] and [-5 6]? It's not defined mathematically, so you'll have to be a bit more clear...What do you hope to get out of the calculation? –  Rody Oldenhuis Nov 6 '12 at 8:05

1 Answer 1

The pdist2 function calculates the distance between a set of points based on a metric. A metric is a function of 2 vector arguments from the same metric space and as such they are required to have the same dimension. What you want to do is not possible based on the definition of a metric. Read this link for more details

http://en.wikipedia.org/wiki/Metric_space

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simply friends I am trying to count the distance between two data set first data set contain 6 culomns with more than 5000 rows but the other data set contain like 106 culomns with sample real numbers –  AbuNada Nov 7 '12 at 17:25
    
simply friends I am trying to count the distance between two data set first data set contain 6 columns with more than 5000 rows but the other data set contain like 106 columns with sample real numbers is it possople to find the distance between those data set , by the way i wanna fine the distance to classify the data whether thay are normal or attack . –  AbuNada Nov 7 '12 at 17:38
    
here is an example , please if any one can understand it explain it for me clc clear all load mC; % from the anal1 execution load(M)% from the aiNet execution load ('X.txt'); NZ1=nonzeros(mC(1,:)); count1=size(NZ1,1); for i=1:count1 ab1(i,:)=M(NZ1(i),:); end ab1; %%%%%%%%%%%%%%%%%%%%%% w=X; l=w(:,1:end-1); D1= dist(l,ab1'); [row1,col1]=size(D1); for i=1:row1 min_value(i)=2; for j=1:col1 if D1(i,j)<min_value(i) min_value(i)=D1(i,j); mind1(i)=min_value(i); mind11=mind1'; –  AbuNada Nov 7 '12 at 17:39

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