Finding tangent plane with the max range value and z value being equal

Question

Rahal Rodrigo 2021-4-16

0
链接

此问题的直接链接

https://ww2.mathworks.cn/matlabcentral/answers/804166-finding-tangent-plane-with-the-max-range-value-and-z-value-being-equal

编辑： Andrew Newell 2021-4-16

Hi there. I'm plotting a tangent plane to a particular surface. However, the range for both x and y if +- sqrt(2), which is +-1.41. The expected value of z for the tangent plane is sqrt(2) as well. However, when i run the command, MATLAB produces an error for that particulat range (produces sucessful output on ranges such as +-2). Would be grateful if someone provided insight what I could do to solve this issue. The code is shown below. Any advice would be greatly apreciated.

0 个评论
显示 -2更早的评论隐藏 -2更早的评论

请先登录，再进行评论。

请先登录，再回答此问题。

Answer 1

Andrew Newell 2021-4-16

0
链接

此回答的直接链接

https://ww2.mathworks.cn/matlabcentral/answers/804166-finding-tangent-plane-with-the-max-range-value-and-z-value-being-equal#answer_677191

编辑：Andrew Newell 2021-4-16

在 MATLAB Online 中打开

image.png

Notice that j is empty, then try this:

X = -1.41:0.01:1.41;
[~,idx] = min(abs(X-1));
disp(X(idx)-1)

This being floating point, you're not getting exact increments of

. You could scale everything so x, y are

and then find

and

. Or you could do it like this:

z = @(x,y) sqrt(4-x.^2-y.^2);
X = -1.41:0.01:1.41;
[x,y] = meshgrid(X);
[fx,fy] = gradient(z(x,y),0.01);
[~,j] = min(abs(X-1));
fx0 = fx(j,j);
fy0 = fy(j,j);
z1 = @(x,y) z(1,1) + fx0*(x-1) + fy0*(y-1);