changing the scale on the Y axis

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mallela ankamma rao
mallela ankamma rao am 11 Jul. 2024
Bearbeitet: Pavl M. vor etwa 15 Stunden
Good evening sir
Sir I need -1 to 1 on Y-axis but i got this on X-axis. Now I request you please help me how to getting -1 to 1 on Y-axis. I attached my code and graph relating to my code.
Code:
xmesh1 = linspace(-1,0,10);
xmesh2 = linspace(0,1,10);
xmesh = [xmesh1,xmesh2];
yinit = [0 1 0 1 0 1 0 1];
init = bvpinit(xmesh,yinit);
sol = bvp5c(@f, @bc, init);
plot(sol.x,sol.y(2,:),'b-o',sol.x,sol.y(3 ,:),'r-o')
Warning: Imaginary parts of complex X and/or Y arguments ignored.
%line([1 1], [0 1], 'Color', 'k')
% legend('y1','y3')
% % title('A Three-Point BVP Solved with bvp5c')
% xlabel({'x', '\lambda = 2, \kappa = 5'})
% ylabel('v(x) and C(x)')
hold on
function dydx = f(x,y,region) % equations being solved
W=1;alpha=1;M=2;k1=1;k2=1;k3=1;k4=1;k=1; Ps=1;Po=1;R1=0;R2=2;
omega=1;
us = y(1);
usy = y(2);
uo = y(3);
u0y = y(4);
thetas = y(5);
thetasy = y(6);
thetao = y(7);
thetaoy = y(8);
dydx = zeros(8,1);
switch region
case 1 % x in [-1 0]
dydx(1) = usy;
dydx(2) = (M^2 + 1/k2)*us - alpha*Ps*R2;
dydx(3) = u0y;
dydx(4) = (M^2 + 1/k1 + 1i*omega*R2)*uo - alpha*Po*R2; % 1/K2 ?
dydx(5) = thetasy+thetas;
dydx(6) = k1*usy^2;
dydx(7) = thetaoy;
dydx(8) = k*thetao - k3*thetasy*thetaoy;
case 2 % x in [0 1]
dydx(1) = usy;
dydx(2) = (M^2 + 1/k1)*us - Ps*R1;
dydx(3) = u0y;
dydx(4) = (M^2 + 1/k1 + 1i*omega*R1)*uo - Po*R1;
dydx(5) = thetasy;
dydx(6) = k2*usy^2;
dydx(7) = thetaoy;
dydx(8) = k*thetao - k4*thetasy*thetaoy;
end
end
function res = bc(YL,YR)
mu1=1; mu2=1; k1=1; k2=1;
res = [YL(1,1)
YL(3,1)
YL(5,1)
YL(7,1)
YR(1,2)-1
YR(3,2)-1
YR(5,2)-1
YR(7,2)
YR(1,1)-YL(1,2)
mu1*YR(2,1)-mu2*YL(2,2)
YR(3,1)-YL(3,2)
mu1*YR(4,1)-mu2*YL(4,2)
YR(5,1)-YL(5,2)
k1*YR(6,1)-k2*YL(6,2)
YR(7,1)-YL(7,2)
k1*YR(8,1)-k2*YL(8,2)];
end
The graph relating to code is
But I need the -1 to 1 range on Y-axis like the following graph:
  7 Kommentare
mallela ankamma rao
mallela ankamma rao am 12 Jul. 2024
Ok sir thank you
mallela ankamma rao
mallela ankamma rao am 12 Jul. 2024
Thank you very much Torsten sir

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Antworten (2)

ScottB
ScottB am 11 Jul. 2024
ylim([-1 1]);
y_values = [-1:0.2:1];
ha = gca;
set(ha, 'ytick', y_values);
yticklabels('manual');
yticklabels(y_values);
  1 Kommentar
mallela ankamma rao
mallela ankamma rao am 11 Jul. 2024
I tried but its not working sir. Please tell me where should I put this code in my code sir

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Pavl M.
Pavl M. vor etwa 15 Stunden
Bearbeitet: Pavl M. vor etwa 15 Stunden
xmesh1 = linspace(-1,0,10);
xmesh2 = linspace(0,1,10);
xmesh = [xmesh1,xmesh2];
yinit = [0 1 0 1 0 1 0 1];
init = bvpinit(xmesh,yinit);
sol = bvp5c(@f, @bc, init)
sol = struct with fields:
solver: 'bvp5c' x: [-1 -0.9630 -0.9259 -0.8889 -0.8333 -0.7778 -0.7222 -0.6667 -0.6111 -0.5556 -0.5000 -0.4444 -0.3889 -0.3333 -0.2778 -0.2222 -0.1111 -0.0556 0 0 ... ] (1x40 double) y: [8x40 double] idata: [1x1 struct] stats: [1x1 struct]
figure
plot(-abs(sol.y(2,:)),sol.x,'b-o',-abs(sol.y(3,:)),sol.x,'r-o')
ylim([-1 1]);
y_values = [-1:0.2:1];
ha = gca;
set(ha, 'ytick', y_values);
yticklabels('manual');
yticklabels(y_values);
%line([1 1], [0 1], 'Color', 'k')
% legend('y1','y3')
title('A Three-Point 8 values BVP Solved with bvp5c')
xlabel('u')
ylabel('y')
% xlabel({'x', '\lambda = 2, \kappa = 5'})
% ylabel('v(x) and C(x)')
function dydx = f(x,y,region) % equations being solved
W=1;alpha=1;M=2;k1=1;k2=1;k3=1;k4=1;k=1; Ps=1;Po=1;R1=0;R2=2;
omega=1;
us = y(1);
usy = y(2);
uo = y(3);
u0y = y(4);
thetas = y(5);
thetasy = y(6);
thetao = y(7);
thetaoy = y(8);
dydx = zeros(8,1);
switch region
case 1 % x in [-1 0]
dydx(1) = usy;
dydx(2) = (M^2 + 1/k2)*us - alpha*Ps*R2;
dydx(3) = u0y;
dydx(4) = (M^2 + 1/k1 + 1i*omega*R2)*uo - alpha*Po*R2; % 1/K2 ?
dydx(5) = thetasy+thetas;
dydx(6) = k1*usy^2;
dydx(7) = thetaoy;
dydx(8) = k*thetao - k3*thetasy*thetaoy;
case 2 % x in [0 1]
dydx(1) = usy;
dydx(2) = (M^2 + 1/k1)*us - Ps*R1;
dydx(3) = u0y;
dydx(4) = (M^2 + 1/k1 + 1i*omega*R1)*uo - Po*R1;
dydx(5) = thetasy;
dydx(6) = k2*usy^2;
dydx(7) = thetaoy;
dydx(8) = k*thetao - k4*thetasy*thetaoy;
end
end
function res = bc(YL,YR)
mu1=1; mu2=1; k1=1; k2=1;
res = [YL(1,1)
YL(3,1)
YL(5,1)
YL(7,1)
YR(1,2)-1
YR(3,2)-1
YR(5,2)-1
YR(7,2)
YR(1,1)-YL(1,2)
mu1*YR(2,1)-mu2*YL(2,2)
YR(3,1)-YL(3,2)
mu1*YR(4,1)-mu2*YL(4,2)
YR(5,1)-YL(5,2)
k1*YR(6,1)-k2*YL(6,2)
YR(7,1)-YL(7,2)
k1*YR(8,1)-k2*YL(8,2)];
end

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