Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

can someone explain why I am getting the following error in my code? It concerns passing doubles into Z, but I am failing to see how the parameters a and b are doubles.

clear all;
im = imread('smallblob.png');
im = im(:,:,1);
w = size(im,1);
h = size(im,2);
[dx,dy] = gradient(double(im));
lambda = 1;
Ox = -1.^lambda.*(-dx);
Oy = -1.^lambda.*(dy);
magO = sqrt(Ox.^2 + Oy.^2);

Ix = dx;
Iy = dy;
magI = sqrt(Ix.^2 + Iy.^2);

N=w+1;
yp(1:N)=-0.5*w:1:0.5*w;
xp(1:N)=-0.5*h:1:0.5*h;
Y(1:w,1:h)=0;
X(1:w,1:h)=0;
for i=1:w
    Y(i,:)=yp(i);
end
for i=1:h
    X(:,i)=xp(i);
end


for a=1:h
    for b=1:w
        for i=1:N-1
            Rx(i)=-0.5*(Ix(i)+Ix(i+1));
            Ry(i)=-0.5*(Iy(i)+Iy(i+1));
            Rz(i)=Z(a,b);                   %HERE IS THE ERROR
            dlx(i)=Ix(i+1)-Ix(i);
            dly(i)=Iy(i+1)-Iy(i);
        end
        Rx(N)=-0.5*(Ix(N)+Ix(1));
        Ry(N)=-0.5*(Iy(N)+Iy(1));
        Rz(N)=Z(a,b);
        dlx(N)=-Ix(N)+Ix(1);
        dly(N)=-Ix(N)+Ix(1);

        for i=1:N
            Xcross(i)=dly(i).*Rz(i);
            Ycross(i)=-dlx(i).*Rz(i);
            Zcross(i)=(dlx(i).*Ry(i))-(dly(i).*Rx(i));
            R(i)=sqrt(Rx(i).^2+Ry(i).^2+Rz(i).^2);
        end

        Bx1=(magI*magO./((R.^3))).*Xcross;
        By1=(magI*magO./((R.^3))).*Ycross;
        Bz1=(magI*magO./((R.^3))).*Zcross;

        BX(a,b)=0;
        BY(a,b)=0;
        BZ(a,b)=0;

        for i=1:N
            BX(a,b)=BX(a,b)+Bx1(i);
            BY(a,b)=BY(a,b)+By1(i);
            BZ(a,b)=BZ(a,b)+Bz1(i);
        end
    end
end



??? Undefined function or method 'Z' for input arguments of type 'double'.

Error in ==> MAC4 at 34
Rz(i)=Z(a,b);

Thanks very much!

share|improve this question

1 Answer 1

up vote 6 down vote accepted

You try to access the variable Z before it was defined. You need to assign a value to Z before accessing its contents.

share|improve this answer
    
thanks for pointing out my silly error. –  brucezepplin Jul 24 '12 at 21:17

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.