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Azzera filtri

How to display value of particular iteration in a loop

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Piotr Haciuk
Piotr Haciuk il 14 Ago 2018
Modificato: Stephen23 il 14 Ago 2018
I am having a slight problem, I'd like to find a relative error without knowing the analytical solution. I have an equation where i need to find the value of F using composite mid rule when the relative error is less than 1%. Here is my code so far: The equation is F= integral (from 0 to 30) of (200*(z(n)/(5+z(n)))*exp((-2*z(n))/30))dz :
clc
clear all
a=0;
b=30;
s=1000;
dx=(b-a)/s;
z=zeros(1,s);
for n=1:s
z(n)=a+dx/2+(n-1)*dx;
F=0;
for n=1:s
F=F+dx*(200*(z(n)/(5+z(n)))*exp((-2*z(n))/30));
end
sprintf('%6.2f',F)
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Piotr Haciuk
Piotr Haciuk il 14 Ago 2018
How can i find the relative error? the answers i wrote i should expect. When you change the value of s for 100 i get the answer 1480.72, for 200 i get the answer 1480.61, for s=1000 i get 1480.57, but when running it with s=1000 when i want to take the value for n=100 it doesnt give me same answer as for s=100
Piotr Haciuk
Piotr Haciuk il 14 Ago 2018
Also, at which iteration the relative error of the si=olution is less than 1%

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Alberto Mora
Alberto Mora il 14 Ago 2018
Maybe you can use this piece of code inside the for loop:
if n==desired_iteration
disp('This is the desired iteration!');
disp(['The result at ',num2str(n),' iteration is ',num2str(result)]);
end
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Piotr Haciuk
Piotr Haciuk il 14 Ago 2018
Torsten, how to implement it to my code?
Torsten
Torsten il 14 Ago 2018
As you can see from the answer provided in your textbook, the authors seem to define the relative error as
|F_(2*n)-F_n|/|F_n|
So simply calculate F for n and 2*n and evaluate the expression above. If it is less than 0.01, you are done. Otherwise you will have to increase n and repeat the procedure.

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