Calculate absolute maxima and minima of a two variable function
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I have a function
% f(x,y) = x^4 + y^4 - x^2 - y^2 + 1
but i am not able to understand how to start solving this. Can someone help me with the code?
Respuesta aceptada
Image Analyst
el 17 de Dic. de 2020
OK, here is the function, but exactly what does "solve" mean to you???
xMin = -2;
xMax = 2;
yMin = -2;
yMax = 2;
numPoints = 200;
xv = linspace(xMin, xMax, numPoints);
yv = linspace(yMin, yMax, numPoints);
[x, y] = meshgrid(xv, yv);
% f(x,y) = x^4 + y^4 - x^2 - y^2 + 1
fprintf('Creating function.\n');
f = x.^4 + y.^4 - x.^2 - y.^2 + 1;
fprintf('Creating surface plot.\n');
surf(x, y, f, 'LineStyle', 'none');
xlabel('x', 'FontSize', 20);
ylabel('y', 'FontSize', 20);
zlabel('f', 'FontSize', 20);
title('f(x,y) = x^4 + y^4 - x^2 - y^2 + 1', 'FontSize', 20);
colorbar;
Do you want to use contour() or contour3() to find out where it equals some value?
3 comentarios
Rishabh Agrawal
el 17 de Dic. de 2020
Image Analyst
el 18 de Dic. de 2020
maxValue = max(abs(f(:)))
minValue = min(abs(f(:)))
fprintf('The max of f = %f.\nThe min of f = %f.\n', maxValue, minValue);
If this does what you wanted, then please "Accept this answer".
Image Analyst
el 18 de Dic. de 2020
Editada: Image Analyst
el 18 de Dic. de 2020
Note: that max is for the plotted region. If you plotted more, the max would be higher. For x and y of infinity, the max is infinity.
The min though is always at (x,y) = (0,0) and is 1.
Más respuestas (1)
Billuri
el 9 de Dic. de 2022
0 votos
f1 = x^2 + y^2
1 comentario
Image Analyst
el 9 de Dic. de 2022
Editada: Image Analyst
el 9 de Dic. de 2022
Can you please elaborate on how this solves his question on the 4th order polynomial? He says "solve means to display the values of absolute maxima and minima".
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Más información sobre Surface and Mesh Plots en Centro de ayuda y File Exchange.
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