Could anyone help me in fixing the problem in my code for solving the initial value problem numerically: y'=y^2, y(0)=1?

Question

Iqbal Batiha on 29 Jan 2024

0
Link

Direct link to this question

https://au.mathworks.com/matlabcentral/answers/2075516-could-anyone-help-me-in-fixing-the-problem-in-my-code-for-solving-the-initial-value-problem-numerica

Commented: Iqbal Batiha on 29 Jan 2024

clc;
close all;
clear all;
syms w wp wpp wppp
% Define the differential equation: y' = y^2,    y(0)=1,   t in [0,1)
f = @(t,y) y^2;
fp = @(t,y) 2*y^3;
fpp = @(t,y) 6*y^4;
fppp = @(t,y) 24*y^5;
% Choose the step size h and create the vector
% of t values from t0 to tf incremented by h
t0 = 0;
tf = 0.9;
h = 0.09;
t = t0:h:tf;
% Plot the approximation with the exact solution
t_exact = t0:h:tf;
y_exact = 1./(1-t_exact);
% Initialize a vector of y values as a zero vector 
% and set the initial value: y(t0) = y0
y = zeros(size(t));
y0 = 0.5;
y(1) = y0;
for n = 1:(length(t)-1)
    k = f(t(n),y(n));
    kp = fp(t(n),y(n));
    kpp = fpp(t(n),y(n));
    kppp = fppp(t(n),y(n));
    
    
    eqn1 = f( t(n)+h,  y(n)+ h*( (1/2)*k + ((3*h)/28)*kp + ((h^2)/84)*kpp + ((h^3)/1680)*kppp   ) ...
        + h*( (1/2)*w - ((3*h)/28)*wp + ((h^2)/84)*wpp - ((h^3)/1680)*wppp   ) ) == w;
    
    eqn2 = fp( t(n)+h,  y(n)+ h*( (1/2)*k + ((3*h)/28)*kp + ((h^2)/84)*kpp + ((h^3)/1680)*kppp   ) ...
        + h*( (1/2)*w - ((3*h)/28)*wp + ((h^2)/84)*wpp - ((h^3)/1680)*wppp   ) ) == wp;
    
    eqn3 = fpp( t(n)+h,  y(n)+ h*( (1/2)*k + ((3*h)/28)*kp + ((h^2)/84)*kpp + ((h^3)/1680)*kppp   ) ...
        + h*( (1/2)*w - ((3*h)/28)*wp + ((h^2)/84)*wpp - ((h^3)/1680)*wppp   ) ) == wpp;
    
    eqn4 = fppp( t(n)+h,  y(n)+ h*( (1/2)*k + ((3*h)/28)*kp + ((h^2)/84)*kpp + ((h^3)/1680)*kppp   ) ...
        + h*( (1/2)*w - ((3*h)/28)*wp + ((h^2)/84)*wpp - ((h^3)/1680)*wppp   ) ) == wppp;
    
    sol = solve([eqn1, eqn2, eqn3, eqn4], [w, wp, wpp, wppp])
    Sol1 = sol.w;
    Sol2 = sol.wp;
    Sol3 = sol.wpp;
    Sol4 = sol.wppp;
    
    y(n+1) = y(n) + h*( (1/2)*k + ((3*h)/28)*kp + ((h^2)/84)*kpp + ((h^3)/1680)*kppp   ) ...
        + h*( (1/2)*Sol1 - ((3*h)/28)*Sol2 + ((h^2)/84)*Sol3 - ((h^3)/1680)*Sol4   ) 
end
sol = struct with fields:
       w: [5×1 sym]
      wp: [5×1 sym]
     wpp: [5×1 sym]
    wppp: [5×1 sym]
Unable to perform assignment because the left and right sides have a different number of elements.
y1 = zeros(size(t));
y01 = 0.5;
y1(1) = y01;
for n = 1:(length(t)-1)
    k11 = f(t(n),y1(n));
    y1(n+1)=y1(n) + h*k11+(h^2/2)*fp(t(n),y1(n))+(h^3/6)*fpp(t(n),y1(n))+(h^4/24)*fppp(t(n),y1(n))
end
figure(1)
plot(t,y,'r*','linewidth',4)
hold on
plot(t,y1,'g','linewidth',4)
hold on
plot(t_exact,y_exact,'b','linewidth',2)
legend('Obreschkoff solution of order 4','Taylor solution of order 4','Exact solution')
grid on
xlabel('t','fontsize',14);
ylabel('y(t)','fontsize',14);
title('Exact vs. Numerical Solutions','fontsize',14);
h1=gca;
set(h1,'fontsize',14);
fh1 = figure(1); 
set(fh1, 'color', 'white')
E1 = abs(y_exact - y)
E2 = abs(y_exact - y1)
figure(2)
plot(t,E1,'r','linewidth',2);
hold on
plot(t,E2,'b','linewidth',2);
legend('Obreschkoff method of order 4','Taylor method of order 4')
grid on
xlabel('t','fontsize',14);
ylabel('Error','fontsize',14);
title('Absolute error','fontsize',14);
h2=gca;
set(h2,'fontsize',14);
fh2 = figure(2); 
set(fh2, 'color', 'white')

4 Comments
Show 2 older commentsHide 2 older comments

James Tursa on 29 Jan 2024

Th@Iqbal Batiha The title of this post is to solve the problem numerically, but your code makes an attempt at some type of symbolic solution. So, which is it that you want? A numeric or a symbolic solution?

Iqbal Batiha on 29 Jan 2024

Hello Sir! Actually, I'm working on establishing a new method that is better than the Runge-Kutta method. We hope to do well in that thing!

Sign in to comment.

Sign in to answer this question.

Answer 1

Alan Stevens on 29 Jan 2024

0
Link

Direct link to this answer

https://au.mathworks.com/matlabcentral/answers/2075516-could-anyone-help-me-in-fixing-the-problem-in-my-code-for-solving-the-initial-value-problem-numerica#answer_1399106

Open in MATLAB Online

Here's an attempt using fminsearch.

I don't know anything about the Obreschkoff method, so couldn't say if your equations are incorrect or my modifications have messed things up!

Note that your "exact" equation is only true when y(0) = 1, not when y(0) = 0.5.

% Define the differential equation: y' = y^2, y(0)=1, t in [0,1)

f = @(y) y^2;

fp = @(y) 2*y^3;

fpp = @(y) 6*y^4;

fppp = @(y) 24*y^5;

% Choose the step size h and create the vector

% of t values from t0 to tf incremented by h

t0 = 0;

tf = 0.9;

h = 0.09;

t = t0:h:tf;

% Plot the approximation with the exact solution

y_exact = 1./(1-t); % Only true if y(0) = 1

% Initialize a vector of y values as a zero vector

% and set the initial value: y(t0) = y0

y = zeros(size(t));

y0 = 1;

y(1) = y0;

w = [0; 1; 2; 3];

for n = 1:(length(t)-1)

k = f(y(n));

kp = fp(y(n));

kpp = fpp(y(n));

kppp = fppp(y(n));

eqn = @(w) abs(f( y(n)+ h*( (1/2)*k + ((3*h)/28)*kp + ((h^2)/84)*kpp + ((h^3)/1680)*kppp ) ...

+ h*( (1/2)*w(1) - ((3*h)/28)*w(2) + ((h^2)/84)*w(3) - ((h^3)/1680)*w(4) ) ) - w(1)) ...

+abs(fp( y(n)+ h*( (1/2)*k + ((3*h)/28)*kp + ((h^2)/84)*kpp + ((h^3)/1680)*kppp ) ...

+ h*( (1/2)*w(1) - ((3*h)/28)*w(2) + ((h^2)/84)*w(3) - ((h^3)/1680)*w(4) ) ) - w(2)) ...

+abs(fpp( y(n)+ h*( (1/2)*k + ((3*h)/28)*kp + ((h^2)/84)*kpp + ((h^3)/1680)*kppp ) ...

+ h*( (1/2)*w(1) - ((3*h)/28)*w(2) + ((h^2)/84)*w(3) - ((h^3)/1680)*w(4) ) ) - w(3)) ...

+abs(fppp( y(n)+ h*( (1/2)*k + ((3*h)/28)*kp + ((h^2)/84)*kpp + ((h^3)/1680)*kppp ) ...

+ h*( (1/2)*w(1) - ((3*h)/28)*w(2) + ((h^2)/84)*w(3) - ((h^3)/1680)*w(4) ) ) - w(4));

Sol = fminsearch(eqn, w);

y(n+1) = y(n) + h*( (1/2)*k + ((3*h)/28)*kp + ((h^2)/84)*kpp + ((h^3)/1680)*kppp ) ...

+ h*( (1/2)*Sol(1) - ((3*h)/28)*Sol(2) + ((h^2)/84)*Sol(3) - ((h^3)/1680)*Sol(4) );

end

y1 = zeros(size(t));

y01 = 1;

y1(1) = y01;

for n = 1:(length(t)-1)

k11 = f(y1(n));

y1(n+1)=y1(n) + h*k11+(h^2/2)*fp(y1(n))+(h^3/6)*fpp(y1(n))+(h^4/24)*fppp(y1(n));

end

figure(1)

plot(t,y,'r*','linewidth',4)

hold on

plot(t,y1,'bo','linewidth',4)

hold on

plot(t,y_exact,'g','linewidth',2)

legend('Obreschkoff solution of order 4','Taylor solution of order 4','Exact solution')

grid on

xlabel('t','fontsize',14);

ylabel('y(t)','fontsize',14);

title('Exact vs. Numerical Solutions','fontsize',14);

h1=gca;

set(h1,'fontsize',14);

fh1 = figure(1);

set(fh1, 'color', 'white')

E1 = abs(y_exact - y);

E2 = abs(y_exact - y1);

figure(2)

plot(t,E1,'r*','linewidth',2);

hold on

plot(t,E2,'bo','linewidth',2);

legend('Obreschkoff method of order 4','Taylor method of order 4')

grid on

xlabel('t','fontsize',14);

ylabel('Error','fontsize',14);

title('Absolute error','fontsize',14);

h2=gca;

set(h2,'fontsize',14);

fh2 = figure(2);

set(fh2, 'color', 'white')

1 Comment
Show -1 older commentsHide -1 older comments

Iqbal Batiha on 29 Jan 2024

Yap! You are right! I see that the code is working well now! Thanks a lot for your help and consideration!

Sign in to comment.

Could anyone help me in fixing the problem in my code for solving the initial value problem numerically: y'=y^2, y(0)=1?

4 Comments
Show 2 older commentsHide 2 older comments

Accepted Answer

1 Comment
Show -1 older commentsHide -1 older comments

More Answers (0)

See Also

Categories

Tags

Community Treasure Hunt

Could anyone help me in fixing the problem in my code for solving the initial value problem numerically: y'=y^2, y(0)=1?

4 Comments Show 2 older commentsHide 2 older comments

Accepted Answer

1 Comment Show -1 older commentsHide -1 older comments

More Answers (0)

See Also

Categories

Tags

Community Treasure Hunt

4 Comments
Show 2 older commentsHide 2 older comments

1 Comment
Show -1 older commentsHide -1 older comments