Why my y value went so high, whereas I using small value?
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cindyawati cindyawati
el 15 de Jun. de 2023
Editada: cindyawati cindyawati
el 15 de Jun. de 2023
I am plotting M1 with RK4 function. I am just using small value of constant but the y value went so high
%input for time
t(1)=0;
dt=0.1; %time interval
t=0:dt:100; %time span
%input empty array
T=zeros(length(t),1); %empty array for t
M1=zeros(length(t),1); %empty array for M1
M2=zeros(length(t),1); %empty array for M2
M3=zeros(length(t),1); %empty array for M3
O=zeros(length(t),1); %empty array for O
P=zeros(length(t),1); %empty array for P
for j = 1:length((t))
T(j+1)=T(j)+dt;
M1(j+1)= M1(j)+1./(1+exp(-T(j)));
k1M1= dt*fRK4M1(M2(j),M3(j),O(j),P(j),M1(j));
k2M1= dt*fRK4M1(M2(j)+k1M2/2,M3(j)+k1M3/2,O(j)+k1O/2,P(j)+k1P/2,M1(j)+k1M1/2);
k3M1= dt*fRK4M1(M2(j)+k2M2/2,M3(j)+k2M3/2,O(j)+k2O/2,P(j)+k2P/2,M1(j)+k2M1/2);
k4M1= dt*fRK4M1(M2(j)+k3M2/2,M3(j)+k3M3/2,O(j)+k3O/2,P(j)+k3P/2,M1(j)+k3M1/2);
M1(j+1) = M1(j)+(1/6*(k1M1+(2*k2M1)+(2*k3M1)+k4M1));
end
figure;
plot (T,M1,'r','Linewidth',3)
xlabel('time')
ylabel('M1')
This is my RK function for M1
function M1 =fRK4M1(M1,M2,M3,O,P)
delta=50;
K1= 10^-4;
Ko=0.1;
n=3;
Oa=10;
Pa=100;
mu_1=10^-3;
mu_2=10^-3;
mu_3=10^-3;
mu_o=10^-4;
mu_p= 10^-5;
K2=5*10^-4;
K3=10^-3;
gamma=75;
M1=(delta*M1*(1-(M1/gamma))-2*K1*M1*M1-M1*(K2.*M2)-((Oa-n)*K3*M1*M3)-((Pa-Oa)*Ko*M1*O)-(mu_1*M1));
And this is my plot
2 comentarios
Image Analyst
el 15 de Jun. de 2023
People may wait to answer until you attach the fRK4M2 variable or function so that they can run your code.
Respuesta aceptada
Steven Lord
el 15 de Jun. de 2023
Look at the way you're calling your function in the loop:
k1M1= dt*fRK4M1(M2(j),M3(j),O(j),P(j),M1(j));
and the way you've defined it:
function M1 =fRK4M1(M1,M2,M3,O,P)
Did you mean for M1 to be the first input argument in the definition but the last in the call? That smells like a bug.
There's also nothing in your code that changes any element of M2, M3, O, or P from their initial values of 0 so you could save time by simply omitting them from the calls (replacing them with 0.)
1 comentario
cindyawati cindyawati
el 15 de Jun. de 2023
Editada: cindyawati cindyawati
el 15 de Jun. de 2023
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