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I have this type of data:

         1
         2
         3
         3
         4
         1

Now , I want to maintain two separate arrays: one will keep the above numbers and the other will keep thier corresponding probabilities

values      values_counter (proabability)
   1                     2/6
   2                     1/6
   3                     2/6
   4                     1/6

I have written the following code but it prints out all the 6 numbers ie 1 2 3 3 4 1 and their proabilities as uniform. Please help me where I am making the mistake in the code given below

 values=[];
 values_counter=[];
for d=1:1:648
size_of_array=size(values);
values_array_size=size_of_array(2);

if(values_array_size~=0)

for b=1:1:values_array_size
    if (columnB(d)~=values(b))
        values(values_array_size+1)=columnB(d); // columnB(d) has different values (may   have duplicate values)
        dfastates_counter(values_array_size+1)=1/648;
    else
        values_counter(b)=(values_counter(b)+1)/648;
    end
end

else
    values(1)=columnB(d);
    values_counter(1)=1/648;
end

end


   values
   values_counter
share|improve this question
    
The sum of the probabilities should not more than 1. –  mbm Jul 4 '13 at 7:37
    
@mbm I think the denominator in all the probabilities in that example is just supposed to be 6 –  Dan Jul 4 '13 at 7:37
    
Actually in total my dataset has 648 values. I was just giving that as an example if I have 6 values... –  Zara Jul 4 '13 at 7:39
1  
You can also try with format rat when looking at the output of Dan's method –  Rody Oldenhuis Jul 4 '13 at 8:18
3  
Why are people downvoting this!? It's a valid problem, the OP has shown his/her best attempt at solving the problem, comes back to answer comments, ...This question does not deserve to be downvoted! –  Rody Oldenhuis Jul 4 '13 at 8:19

1 Answer 1

up vote 6 down vote accepted

I'm afraid your code is just too convoluted. You're basically trying to find a histogram, so while I'm not telling what's wrong with your code, here is the correct way to do it in Matlab:

x = [1;2;3;3;4;1]
egdes = unique(x)
histc(x, edges)/numel(x)

I'm not sure where you get your probabilities in your question though...

ans =

    0.3333
    0.1667
    0.3333
    0.1667
share|improve this answer
    
I probably didn't read your answer deeply, sorry. –  Adiel Jul 4 '13 at 7:43
    
I have taken the values from an excel file which are 648 in total using this function columnB = xlsread(filename,'B:B'); I just pass columnB in histc (as in your case x is there)? –  Zara Jul 4 '13 at 7:45
3  
you have spelling error. Look at your first word of the code –  Adiel Jul 4 '13 at 7:55
2  
If you want to see the histogram use hist –  Adiel Jul 4 '13 at 8:04
1  
... or bar. There's is no need to recompute the number of occurrences. –  Eitan T Jul 4 '13 at 8:10

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