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r (y ) =(1-x^2)/(1-x*cos(y) where y= 0 to 2pi and x=(0,0.1,0.5,0.9)

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Rik
Rik le 12 Oct 2018
Should r be a vector for a given value of x?
And what have you tried so far yourself?

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madhan ravi
madhan ravi le 12 Oct 2018
Modifié(e) : madhan ravi le 12 Oct 2018

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x=[0,0.1,0.5,0.9]
y=linspace(0,2*pi,numel(x))
r=(1-x.^2)./(1-x.*cos(y))
plot(y,r,'-*b')

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Eylül Erol
Eylül Erol le 13 Oct 2018
thanks
madhan ravi
madhan ravi le 13 Oct 2018
Modifié(e) : madhan ravi le 13 Oct 2018
make sure to accept the answer if it worked

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Stephan
Stephan le 12 Oct 2018

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Hi,
y= linspace(0,2*pi);
x=[0, 0.1, 0.5, 0.9];
[a,b] = meshgrid(x,y);
r = (1-a.^2)./(1-a.*cos(b));
contourf(x,y,r)

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Eylül Erol
Eylül Erol le 12 Oct 2018
why do ı have to mesh grid function and change the variables x,y to a,b? I just want to write this equation and plot of r and y graph. How can ı do that?
Rik
Rik le 12 Oct 2018
Because r depends on the value of x and y. You can either have a single value for each combination of x and y, or you will have a vector of values as the output for any y. The meshgrid function can be used to generate a grid with all combinations of values.
Note that the call to linspace generates a vector of 100 values. You can change this by adding a third input with your desired number of inputs.
Stephan
Stephan le 12 Oct 2018
Thanks Rik

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