Hi, I am finding area enclosed by convex hull using delayunayt​​riangulat​i​on,,,i have pasted the code...I just need someone to tell me..the area i got is right according to my code?

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L K
L K 2017년 3월 20일
댓글: L K 2017년 3월 21일
theta1=[88,89,90,91,92,94,96,94,90,89,-100,-102,-104,-105,-104,-102,-101,-100];
radius1=[5,7,11,17,26,39,46,44,32,3,0,18,34,32,33,29,28,20];
%subplot(211)
theta_rad=theta1*pi/180;
polar(theta_rad, radius1, 'b*');
hold on;
[x, y] = pol2cart(theta_rad, radius1);
k = convhull(x, y);
xch = x(k);
ych = y(k);
[thetaCH1, rhoCH1] = cart2pol(xch, ych);
%subplot(212)
polar(thetaCH1, rhoCH1, 'ro-');
DT = delaunayTriangulation(theta_rad(:),radius1(:));
[U,v]=convexHull(DT);
i got v=130.8648.... is it the right way to do it ?

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John D'Errico
John D'Errico 2017년 3월 20일
NO. You cannot compute a convex hull of your points when they are represented in polar coordinates!!!!! If you did, the result will be nonsensical. And the area it would compute will certainly be nonsense.
Instead, convert the polar coordinates to cartesian coordinates, then compute the area of the convex hull in Cartesian coordiantes:
DT = delaunayTriangulation(x(:),y(:));
[H,A] = convexHull(DT);
A =
390.270316856299
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Image Analyst
Image Analyst 2017년 3월 21일
Another quirk of polyarea is that if the perimeter overlaps, you can have a negative area there. For example, the area of a perfect bowtie shape is zero according to polyarea.

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