Why the if statement does not work when I am trying to avoid the singularity in my code ??

1 Ansicht (letzte 30 Tage)
function RunlogisticOscilnumericalfisherfixedn0omega
omega=1;
N0=1;
k = 10;
A = 1;
p0 = 0.1;
tspan=(0:0.1:4);
[t,p] = ode45(@logisticOscilnumerical,tspan,p0,[],omega,k,N0);
P = @(T) interp1(t,p,T);
f = @(t) ( ( A.*( ( N0.* (sin(omega.*t)).^2 .*(1-(2.*P(t)./k))+(omega.*cos(omega.*t) ) ).^2 ) ./( (N0.^2).*((sin(omega.*t)).^4).*((P(t)-(P(t).^2./k)).^2 )) ) ) ;
v = ( (N0.^2).*((sin(omega.*t)).^4).*((P(t)-(P(t).^2./k)).^2 )); if v <= 1e-100
f = 0
else
f = I4
end
I1 = integral( f, 0.01,1,'ArrayValued',true)./1
I2 = integral( f, 0.01,2,'ArrayValued',true)./2
I3 = integral( f, 0.01,3,'ArrayValued',true)./3
I4 = integral( f, 0.01,4,'ArrayValued',true)./4
I=[I1,I2,I3,I4] ;
T=[1,2,3,4] ;
figure(2)
plot(T,I)
g = @(t) ( ( A.*( ( N0.* (sin(omega.*t)).^2 .*(1-(2.*P(t)./k))+(omega.*cos(omega.*t) ) ).^2 ) ./( (N0.^2).*((sin(omega.*t)).^4).*((P(t)-(P(t).^2./k)).^2 )) ) ) ;
figure(3)
plot(tspan,g(tspan))
1;
% function dpdt = logisticOscilnumerical(t,p,omega,k,N0)
% dpdt = N0*sin(omega*t)*p*(1-p/k);
% end
Could anyone help me to avoid singularity at x = 3.14159 using if statement please??
  5 Kommentare
Avan Al-Saffar
Avan Al-Saffar am 28 Nov. 2014
Ok, I know that my problem is with the term(sin(omega*t) but what if I tried to use if statement to avoid integration at those specific values, What do you think? Or do you have another idea?
Regards
Avan
Torsten
Torsten am 28 Nov. 2014
The values of a function at a finite number of points do not influence the integral.
Changing the function in a neighborhood of the singularities will give you a finite value for the integrals, but this finite value will depend on the size of the neighborhood you chose.
So I think it is better to reconsider how you came up with the function f and if this f is appropriate for your purpose.
Best wishes
Torsten.

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