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Implicit plane curve discretization

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Maxim Bogdan
Maxim Bogdan am 16 Apr. 2021
Kommentiert: Maxim Bogdan am 17 Apr. 2021
I want to have a matrix with 2 lines and n columns with the coordinates of points that lie on the implicit curve where is a function. I know that the matlab function fimplicit can plot the curve. So in its subroutines it grabs a set of points from\near that curve. How can I extract those points and use them for future calculations (like the perimeter of the curve)?
Thanks!

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Matt J
Matt J am 16 Apr. 2021
Bearbeitet: Matt J am 16 Apr. 2021
Ran in:
fp=fimplicit(@(x,y) x.^2 + 2*y.^2 - 1); %Example
Points=[fp.XData;fp.YData]
Points = 2×587
-0.0458 -0.0533 -0.0667 -0.0800 -0.0933 -0.1067 -0.1200 -0.1333 -0.1467 -0.1600 -0.1689 -0.1733 -0.1867 -0.2000 -0.2133 -0.2267 -0.2337 -0.2400 -0.2533 -0.2667 -0.2800 -0.2834 -0.2933 -0.3067 -0.3200 -0.3251 -0.3333 -0.3467 -0.3600 -0.3616 -0.7063 -0.7061 -0.7055 -0.7048 -0.7040 -0.7031 -0.7020 -0.7008 -0.6994 -0.6980 -0.6969 -0.6964 -0.6947 -0.6928 -0.6908 -0.6887 -0.6875 -0.6864 -0.6840 -0.6815 -0.6788 -0.6781 -0.6760 -0.6730 -0.6699 -0.6687 -0.6667 -0.6632 -0.6597 -0.6593
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Walter Roberson
Walter Roberson am 17 Apr. 2021
fp = fimplicit(@(x,y) x.^2 + 2*y.^2 - 1, 'visible', 'off'); %Example
Points = [fp.XData;fp.YData]
delete(fp)
However this creates a graphic object -- so for example if you have no existing figure then one will be created with an axes in it (that just will not have any visible content.)
Maxim Bogdan
Maxim Bogdan am 17 Apr. 2021
That works fine for me!
It doesn't open any figure that code for me.
Thanks a lot!

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