I get "index must be a positive integer or logical. " Error, please help

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hgrlk
hgrlk el 27 de Mayo de 2019
Comentada: dpb el 28 de Mayo de 2019
Hello, I write a code that use third-order Runge Kutta method. I want my result in tabulated form which i starting with 0, ti, yi (represents numerically estimated value), yei(true value) and et ( true percent absolute relative error).
Finally, I want to plot the true solution together with the numerical solution in the same place.
I have dy/dt = t*e^(3*t)-2*y , step size 0.1 , the true solution ye(t) = 1/5*t*e^(3*t)-(1/25)*e^(3*t)+(1/25)*e^(-2*t)
I write a code but when I run that, I get
i ti yi yei |Et|
Attempted to access t(0); index must be a positive integer or logical.
Error in hw5 (line 22)
k1(i)=f(t(i),y(i));
>>
MY i HAS TO BE START WITH 0.
HOW CAN I SOLVE THAT? THANKS
clc
clear all
close all
fprintf('%10s %10s %10s %10s %10s\n','i','ti','yi','yei','|Et|')
h=0.1; %initial step size
t=0:h:1; %time array with initial step size
c=length(t); %number of time values with 0.1 step size
y=zeros(1,c); %creating an empty array for numerically calculated 'y' values
%y(0)=0 in this definition. so, initial value is already included.
y_2=zeros(1,c); %creating an empty array for numerically calculated 'y' values
y_true=zeros(1,c); %creating an empty array for exact 'y' values
E=zeros(1,c); %creating an empty array for estimating local truncation errors
%defining the ODE, f = dy/dt
f = @(t,y) t*exp(3*t) - 2*y;
%% Part a
klmn=zeros(1,c-1);
for i=0:1:(c-1)
%defining k1,k2 and k3 for each case
k1(i)=f(t(i),y(i));
k2(i)=f((t(i)+h/2),(y(i)+h/2*k1(i)));
k3(i)=f((t(i)+h/2),(y(i)+h/2*k2(i)));
%defining next value of dy/dt, y(i+1) numerically
y(i+1)=y(i)+(h/6)*(k1(i)+2*k2(i)+2*k3(i));
%real value of y(i+1)
y_true(i+1)=1/5*t(i+1)*exp(3*t(i+1))-(1/25)*exp(3*t(i+1))+(1/25)*exp(-2*t(i+1));
%true error calculation
et(i+1)=abs(y(i+1)-y_true(i+1))./y_true(i+1);
fprintf('%10s %10s %10s %10s %10s\n',i,t,y,y_true,et)
end

Respuestas (1)

dpb
dpb el 27 de Mayo de 2019
Editada: dpb el 27 de Mayo de 2019
"MATLAB is not C"
...
for i=0:1:(c-1)
%defining k1,k2 and k3 for each case
k1(i)=f(t(i),y(i));
...
Matlab arrays are one-based, not 0-based. Write
for i=1:c
%defining k1,k2 and k3 for each case
k1(i)=f(t(i),y(i));
...
instead (and fix up any other references that assume 0-based arrays as well, of course).
  2 comentarios
hgrlk
hgrlk el 28 de Mayo de 2019
When i start from 1, my output looks wrong. I think my code doesn't print the i value.
And I change fprintf('%10s %10s %10s %10s %10s\n',i,t,y,y_true,et) to fprintf('%15s %15s %15s %15s %15s\n',i,t(i),y(i),y_true(i),et(i)).
But my output looks wrong. Where is my problem?
dpb
dpb el 28 de Mayo de 2019
The first fprintf is before any variables are defined.
You still have an indexing issue when i==c, i+1 will be outside array boundaries.
Other than that, nothing terribly obvious in "just looking"; use the debugger and step through your code looking for logical issues...

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