Contour Plot of Rosie Function

Question

Brittany Burns il 24 Gen 2021

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https://it.mathworks.com/matlabcentral/answers/725757-contour-plot-of-rosie-function

Risposto: Star Strider il 24 Gen 2021

Hello,

I am trying to get the same plot as my professor showed in class. He said to use a for loop instead of meshgrid. I keep getting an error that X must not be a scalar. I'm not sure where I'm going wrong. Below is the plot I'm supposed to get followed by my code that is not working.

i=1; j=1;
x1=-1:.01:3;
x2=-1:.01:3;
for a=x1
    for b=x2
        f(i,j)=100*(a^2-b)^2+(1-a)^2;
        j=j+1;
    end
    j=1;
    i=i+1;
end 
clf;figure(1)
contour(a,b,f)

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Brittany Burns il 24 Gen 2021

Modificato: Brittany Burns il 24 Gen 2021

I did mean to use x1 and x2 instead of a and b. After that, I'm stuck on getting the correct contour. I've been able to fiddle with it and hand the contours directly to contour and get what's below, but that still is not correct.

i=1; j=1;
conts=[-1 -.5 0 .5 2 3 3.5 3.6 3.7 3.8 3.9 3.98 4 4.02 4.1 4.2 4.5 5 10 ];
x1=-1:.01:3;
x2=-1:.01:3;
for a=x1
    for b=x2
        f(i,j)=100*(a^2-b)^2+(1-a)^2;
        j=j+1;
    end
    j=1;
    i=i+1;
end 
clf;figure(1)
contour(x1,x2,f,conts)

Adam Danz il 24 Gen 2021

I'm sure it's based on some dataset, function, or algorithm that our prof must have provided at some point.

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Answer 1

Star Strider il 24 Gen 2021

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Link diretto a questa risposta

https://it.mathworks.com/matlabcentral/answers/725757-contour-plot-of-rosie-function#answer_605287

Transpose ‘f’, since ‘x1’ and ‘x2’ appear to be the same (otherwise it would also be necessary to reverse their orders in the argument list for the contour call):

i=1; j=1;
% conts=[-1 -.5 0 .5 2 3 3.5 3.6 3.7 3.8 3.9 3.98 4 4.02 4.1 4.2 4.5 5 10 ];
conts = 10.^(-1:1:3);
x1=-1:.01:3;
x2=-1:.01:3;
for a=x1
    for b=x2
        f(i,j)=100*(a^2-b)^2+(1-a)^2;
        j=j+1;
    end
    j=1;
    i=i+1;
end 
% clf;
figure(1)
contour(x1,x2,f.',conts, 'ShowText','on', 'LineWidth',1.5)
axis('equal')