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I'm using this code to find the maximum of a value in different range of values in A(i).data. What I'm doing is importing a txt, manually enter the center of the different ranges (ppmdata), set the extreme for the range (emax and emin), find their index (which are collected in the array g) and then use the index to find values in A(i).data.

The code is working ok until the number that I add (subract) to emax (and emin) is equal or minor 0.01. When is bigger, matlab return me an error :

Error in ==> NMR at 27
        Massimo=max(A(i).data(g(1,1):g(m3,1),2));

Open g, i not that the element g(m3,1) is completly out of scale and do not even corrisponds to a value of A(i).data (if I check for that index I got an empty cell). If i use

 Massimo=max(A(i).data(g(1,1):g(m3-1,1),2));

it works perfectly.

 % % Call all txt file
    [filename, pathname] = uigetfile('*.txt','Select the Excel file:', 'MultiSelect','on');
    %% Import all file
    [m1,n1]=size(filename);
A(1:n1)=struct('data',zeros(),'textdata',zeros());
for i=1:n1
    nomefile= fullfile(pathname,filename{1,i});
    A(i)=importdata(nomefile);
end
%% ask which X values to monitor
prompt = {'Insert PPM values you want to monitor:'};
dlg_title = 'PPM';
num_lines = 1;
def = {'0.78,1.00,1.18'};
ppminput = inputdlg(prompt,dlg_title,num_lines,def);
ppmdata = str2num(ppminput{:});
%% Found the maxima for each X value in a range emin<X<emax
g=zeros();
[m2,n2]=size(ppmdata);
result=struct('data',zeros(),'name','', 'columnheading','');
for i=1:n1 % ciclo per mettere il nome
    for j=1:n2 %ciclo per mettere il dato
        emax=(ppmdata(1,j)+0.1;
        emin=(ppmdata(1,j)-0.1);
        g=find((A(i).data<emax) & (A(i).data>emin));
        [m3,n3]=size(g);
        Massimo=max(A(i).data(g(1,1):g(m3,1),2));
        if Massimo<0
            result.data(i,j)=0;
            result.columnheading{1,j}=['PPM:', ' ', num2str(ppmdata(1,j))];
        else
            result.data(i,j)=Massimo;
            result.columnheading{1,j}=['PPM:', ' ', num2str(ppmdata(1,j))];
        end
    end
    result.name{i,1}=A(i).textdata(19,1);
end
for i=1:n1
    for j=1:n2 %ciclo per mettere il dato
        result.data(i,n2+j)=((result.data(i,j)/sum(result.data(i,1:n2)))*100);
        result.columnheading{1,j+n2}=['Percentage:', ' ', num2str(ppmdata(1,j))];
    end

end
share|improve this question

closed as unclear what you're asking by Shai, Bas Swinckels, AZ_, Salvador Dali, Soner Gönül Nov 5 '13 at 7:24

Please clarify your specific problem or add additional details to highlight exactly what you need. As it's currently written, it’s hard to tell exactly what you're asking. See the How to Ask page for help clarifying this question. If this question can be reworded to fit the rules in the help center, please edit the question.

2  
So what error do you get. Also, if you use dbstop if error what are the sizes and values of the relevant variables in the line that the error occurs? –  Dennis Jaheruddin Nov 4 '13 at 13:50
    
the error (which I tought I put in the question) is ??? Index exceeds matrix dimensions. At the brake point g=(635,1) and its values are ok (so they actually correspond to index in the matrix A(i).data from 48276 to 48909) with exception of g(635,1) which is 89461. emax and emin are 1.28 and 1.08. Value g(635,1) is the reason of the error, but i don't understand why. If I change 0.1 with 0.01 it run smoothly with g being a 63x1 array – –  Michele Carboni Nov 4 '13 at 15:24

1 Answer 1

up vote 0 down vote accepted

The error tells you that you try to index outside a variable.

As this is the line where the error occurs:

Massimo=max(A(i).data(g(1,1):g(m3,1),2));

There are only a few options:

  1. A has less than i elements
  2. size(g) is less than [m3 1]
  3. size(A(i).data) is less than [g(m3,1) 2] (which is [89461 2])

Based on your description I would guess that the third case is your problem and that the length of your A(i).data variable is less than 89461.

My guess is that it goes wrong in this line:

g=find((A(i).data<emax) & (A(i).data>emin))

Perhaps you only want to search in the first or second column of A(i).data. If it is the first you can do:

g=find((A(i).data(:,1)<emax) & (A(i).data(:,1)>emin))

Example of this problem

Suppose you have a matrix M:

M = [1 3; 5 7]

If you try finding small values like this it will go well (by coincidence)

find(M<2)  % Returns 1

However, if you put your treshold as such that it is met by a value in the second column, you will run into trouble:

find(M<4)  % Returns 1 and 3

What you would need to do is:

find(M(:,1)<4) % Returns 1

The reason that you didn't run into problems for certain values, is not because you used the right commands, but because the numbers were in your favor.

share|improve this answer
    
Hi Dennis , the answer was definitely number 3 as A(i).data=(65536, 2). Trying the way you suggested everything go smoothly. I still do not understand why with 'g=find((A(i).data<emax) & (A(i).data>emin))` was working with some values and with other no. If you could give an explanation will be great, otherwise thx anyway – Michele Carboni 5 mins ago –  Michele Carboni Nov 4 '13 at 16:09
    
@MicheleCarboni See my updated answer including example –  Dennis Jaheruddin Nov 4 '13 at 16:32
    
thanks for the explanation. Actually, after making your changing, it appeared quite obvious what was the reason and how stupid I was not thinking about it. Thanks again! Michele –  Michele Carboni Nov 4 '13 at 16:54

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