How can I compute the Area and the Centroid of the following shape?

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M
M el 11 de Sept. de 2022
Editada: Bruno Luong el 12 de Sept. de 2022
Ran in:
How can I compute the Area and the Centroid of the following shape?
I have used the following code to construct it:
xA = 0;
xB = 1;
xf = 1
xf = 1
x = linspace(0, xf, xf*1e4 + 1);
a = 9.2; %
c = 0.5; % center of function
Y = sigmf(x, [a c]).*((0 <= (x - xA)) & ((x - xA) < (xB - xA)));
plot(x, Y, 'linewidth', 1.5), grid on, xlim ([0 1.1])
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M
M el 11 de Sept. de 2022
@Torsten If that the case, the x_Centroid will be the length of the x always?
M
M el 11 de Sept. de 2022
Hi @Star Strider, Do you have any idea how to compute the centroid here. Thanks

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Star Strider
Star Strider el 11 de Sept. de 2022
Ran in:
The polyshape approach is the easiest way to go on this.
However it is possible to calculate this using the trapz function and the centroid definition —
xA = 0;
xB = 1;
xf = 1
xf = 1
x = linspace(0, xf, xf*1e4 + 1);
a = 9.2; %
c = 0.5; % center of function
Y = sigmf(x, [a c]).*((0 <= (x - xA)) & ((x - xA) < (xB - xA)));
cx = trapz(x,x.*Y) ./ trapz(x,Y)
cx = 0.7138
cy = trapz(Y,x.*Y) ./ trapz(Y,x)
cy = 0.3934
p = polyshape(x,Y);
Warning: Polyshape has duplicate vertices, intersections, or other inconsistencies that may produce inaccurate or unexpected results. Input data has been modified to create a well-defined polyshape.
[xc,yc] = centroid(p)
xc = 0.7176
yc = 0.3974
figure
plot(x, Y, 'linewidth', 1.5), grid on, xlim ([0 1.1])
The values from the two approaches are not exactly the same, however they are reasonably close.
.
  2 comentarios
M
M el 11 de Sept. de 2022
Editada: M el 11 de Sept. de 2022
@Star Strider Thank you so much.
What do you think of the approach that Torsten suggested (https://en.wikipedia.org/wiki/Centroid
Section:
Locating by integral formula of a bounded region)
Do you think it gives more accurate answer?
Because any difference it causes effects in my application
Thanks
Star Strider
Star Strider el 12 de Sept. de 2022
Ran in:
As always, my pleasure!
That is esentially the approach I used, with trapz.
The polyshape approach may be more accurate, however the difference is slight —
xA = 0;
xB = 1;
xf = 1;
x = linspace(0, xf, xf*1e4 + 1);
a = 9.2; %
c = 0.5; % center of function
Y = sigmf(x, [a c]).*((0 <= (x - xA)) & ((x - xA) < (xB - xA)));
cx = trapz(x,x.*Y) ./ trapz(x,Y)
cx = 0.7138
cy = trapz(Y,x.*Y) ./ trapz(Y,x)
cy = 0.3934
p = polyshape(x,Y);
Warning: Polyshape has duplicate vertices, intersections, or other inconsistencies that may produce inaccurate or unexpected results. Input data has been modified to create a well-defined polyshape.
[xc,yc] = centroid(p)
xc = 0.7176
yc = 0.3974
x_accuracy = abs(xc-cx)/mean([xc cx])
x_accuracy = 0.0053
y_accuracy = abs(yc-cy)/mean([yc cy])
y_accuracy = 0.0100
figure
plot(x, Y, 'linewidth', 1.5, 'DisplayName','Data'), grid on, xlim ([0 1.1])
hold on
plot(cx,cy,'r+', 'DisplayName','trapz')
plot(xc,yc,'rx', 'DisplayName','polyshape+centroid')
hold off
legend('Location','best')
The relative deviation of the individual values from the mean of each set is about 0.5% for the x-coordinate and about 1% for the y-coordinate. I am not certain how accurate they can be.
.

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Más respuestas (3)

Bruno Luong
Bruno Luong el 12 de Sept. de 2022
Editada: Bruno Luong el 12 de Sept. de 2022
Ran in:
xA = 0;
xB = 1;
a = 9.2;
c = 0.5;
sfun = @(x)sigmf(x, [a c]);
Area = integral(@(x)sfun(x),xA,xB);
xc = integral(@(x)sfun(x).*x,xA,xB)/Area
xc = 0.7138
yc = integral(@(x)sfun(x).^2,xA,xB)/(2*Area)
yc = 0.3935
Sam Chak
Sam Chak el 12 de Sept. de 2022
Ran in:
Hi @M
If your intention is to find the defuzzified output value for membership function mf at the interval in x using the centroid method, then you can try this method:
xA = 0;
xB = 1;
x = xA:0.0001:xB;
mf = sigmf(x, [9.2 0.5]);
plot(x, mf), grid on, xlim([-0.2 1.2]), ylim([0 1.2]), xlabel('\it{x}'), ylabel('\mu(\it{x})')
xc = defuzz(x, mf, 'centroid')
xc = 0.7138
xline(xc, '--', sprintf('%.4f', xc), 'LabelVerticalAlignment', 'middle');
Note that there should be no significant difference between
mf = sigmf(x, [9.2 0.5]).*((0 <= (x - xA)) & ((x - xA) < (xB - xA)));
and
mf = sigmf(x, [9.2 0.5]);
Image Analyst
Image Analyst el 11 de Sept. de 2022
centroid
Centroid of polyshape
collapse all in page
Syntax
[x,y] = centroid(polyin)
[x,y] = centroid(polyin,I)
Description
example
[x,y] = centroid(polyin) returns the x-coordinates and the y-coordinates of the centroid of a polyshape.
example
[x,y] = centroid(polyin,I) returns the coordinates of the centroid of the Ith boundary of polyin.
This syntax is only supported when polyin is a scalar polyshape object.
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M
M el 11 de Sept. de 2022
Editada: M el 11 de Sept. de 2022
@Image Analyst I didnt get you. Can you explain please!
Image Analyst
Image Analyst el 12 de Sept. de 2022
You didn't look up the help for polyshape, did you? It's just as trivial as @Star Strider showed:
p = polyshape(x,Y);
[x,y] = centroid(p)

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