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i just started with matlab and stuck somewhere...consider example

X=(3:7)
Z=(2:6)
for (i=1:5)
    y=abs(X(i)-Z);

    dm=min(y);

    D=find(y==min(y))
    D1=Z(D);

end

i want D and D1 to be a column/row vector.Please help.

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Can you explain exactly what you want your output to be? What will your vectors look like? –  Stewie Griffin Sep 5 '13 at 8:13
    
X = 3 4 5 6 7 Z = 2 3 4 5 6 D = 2 D = 3 D = 4 D = 5 D = 5 ds is my output...but i am looking something like D=[2 3 4 5 5] or D=[2;3;4;5;5] or same output in some other variable. –  Misha Sep 5 '13 at 8:38

4 Answers 4

up vote 1 down vote accepted

Currently you are storing scalar values into D and D1. Maybe you wanted to save the values into i-th column of D and D1?

X=(3:7)
Z=(2:6)
for (i=1:5)
    y=abs(X(i)-Z);
    dm=min(y);
    D(i)=find(y==min(y));
    D1(i)=Z(D(i));
end
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when i run the above code i get D as 5X5 matrix..i.e. the no of times the loop is running..1st row is [2 3 4 5 5] and this is also the 2nd, 3rd ,4th and 5th row..which i do not want. i simply want the output to be a 5x1 or 1X5 matrix (in this example).is this possible?? or to make another matrix which gives me the desired output?? –  Misha Sep 5 '13 at 8:32
    
The code above returns D and D1 as 1x5 matrices, if they were not defined before. Try to clear your workspace by clear all before running the code. –  Milan Sep 5 '13 at 8:47
    
thank you so much –  Misha Sep 5 '13 at 9:21
    
Please help me with ds also....a = dec2bin(rand(5,1)*100); X = 3:7; Z = 2:6; for i = 1:5 y = abs(X(i)-Z); dm = min(y); D(i) = find(y==min(y)); end D2 = D' b = a(D') Output is a = 01001 01110 10000 10011 11111 X = 3 4 5 6 7 Z = 2 3 4 5 6 D2 = 2 3 4 5 5 b = 0 1 1 1 1 why it did not return b = [01110 10000 10011 11111] How will i get this output? –  Misha Sep 5 '13 at 10:47
    
b = a(D',:) As a is a char matrix, you have to choose the whole rows. –  Milan Sep 5 '13 at 11:32

If you're looking to simply convert D and D1 from row vectors to column vectors, you can simply add the following lines at the end of your code:

D = D';
D1 = D1';

The ' operation simply gives you the transpose of the matrix in question.

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1  
' is conjugate transpose. To cover complex numbers one should use .' which is the transpose operator. –  Mohsen Nosratinia Sep 5 '13 at 8:14
    
When i run the above code i do not get D or D1 as vectors...its like D=..., D=..., D=...., every time the loop runs...so how can i do D=D'?? –  Misha Sep 5 '13 at 8:14
    
@Misha: Just use D=find(y==min(y)).' –  Rody Oldenhuis Sep 5 '13 at 8:29

use:

if isrow(D)
    D = D.'; % .' is the transpose operator
end

BTW: you don't need to use parentheses that often.

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1  
note that isrow was introduced in R2011a and cannot be used in older versions. –  Rody Oldenhuis Sep 5 '13 at 8:26

I think the following will help too:

% convert ANY array into a column vector
D = D(:);

% convert ANY array into a row vector
D1 = D1(:).';

doing it like this will guarantee that one is column and the other row, without any performance loss.

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