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Display radius on the plot

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jeet Mehta
jeet Mehta am 11 Jun. 2019
Kommentiert: Star Strider am 11 Jun. 2019
%% Plot Region of Attraction
for k=1:360
xra(k)=2*cos(2*pi*k/360);
yra(k)=2*sin(2*pi*k/360);
end
figure(1)
p1=plot(xra,yra,'--r')
title('Initial Condition with radius ')
xlabel('x1(t)')
ylabel('x2(t)')
grid
axis(2.5*[-1 1 -1 1])
hold on
%% Plot Initial Circle
for k=1:360
xc(k)=ro*cos(2*pi*k/360); %Projection on x1
yc(k)=ro*sin(2*pi*k/360); %Projection on x2
end
figure(1)
p2=plot(xc,yc,'--k')
%% Run Simulation for N different initial conditions
for k =1:N
x1_o=ro*cos(2*pi*k/10+pi/6); %Projection on x1
x2_o=ro*sin(2*pi*k/10+pi/6); %Projection on x2
%% Simulation Linear Model
sim('sim_nonlinear_new.slx')
%states
x1=x(:,1);
x2=x(:,2);
scatter(x1_o,x2_o,100,'ok','filled') %Plot initial condition
plot(x1,x2) %Plot trajectory
drawnow;
legend([p1 p2],{'First','Second'});
end
hold off
I have above code for region of attraction circle and intial circle. I want to be able to display with a line drawing out and radius of the two circles. Please help

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Akzeptierte Antwort

Star Strider
Star Strider am 11 Jun. 2019
You did not define ‘ro’.
When you do, you can plot the radius easily as:
plot([0 xra(45)], [0 yra(45)], '-b', [0 xc(135)],[0 yc(135)],'-g')
after the second loop. Choose whatever index you want to define the radius lines.
I would also use:
axis equal
so your circles don’t look like elipses.
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jeet Mehta
jeet Mehta am 11 Jun. 2019
Thank you i did relaised that and fixed it yesterday . Thanks heaps really appreciate
Star Strider
Star Strider am 11 Jun. 2019
As always, my pleasure.

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Weitere Antworten (1)

KSSV
KSSV am 11 Jun. 2019
YOu can display radius of the circle like below:
th = linspace(0,2*pi) ;
R = 1. ; % REadius of Circle
C = [0. 0.] ; % cneter of circle
x = C(1)+R*cos(th) ;
y = C(2)+R*sin(th) ;
plot(x,y)
hold on
plot([C(1) x(1)],[C(2) y(1)])
  2 Kommentare
jeet Mehta
jeet Mehta am 11 Jun. 2019
It giving me error saying its bound to index 1 . Can u please have a look at the code above and suggest
KSSV
KSSV am 11 Jun. 2019
The above code doesn't show any error. It is wokring fine unless you make some changes.

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