In the first part of the code, plot the approximation of π as a function of N, the number of terms in the series, for N between 1 and 15. The function to be used is (pi^2-8)/1​6=Summatio​n(n=1:N)(1​/((2n-1)^2​*(2n+1)^2)​)

2 views (last 30 days)
Varun
Varun on 26 Oct 2013
Commented: Jie on 31 Oct 2013
I basically do not have any idea how to start. any help would be appreciated.
  1 Comment
Walter Roberson
Walter Roberson on 26 Oct 2013
How would you calculate the approximation of Pi if N is 1? How would you calculate it if N is 2? How would you plot the approximations?

Sign in to comment.

Sign in to answer this question.

Answers (1)

Jie
Jie on 26 Oct 2013
Edited: Jie on 26 Oct 2013
wish this could help.
% the formula could be rewrote as pi=sqrt(sum(16/((2*n-1)^2*(2*n+1)^2)+8)
N=[1:15, 20, 30];
my_pi=[];
for n=N
x=1:n;
tmp=sqrt(sum(16./((2*x-1).^2.*(2*x+1).^2))+8);
my_pi=[my_pi, tmp];
end
figure;h=axes('color',[.5,.5,.9],'fontangle','italic','fontname','Times New Roman','xcolor',[0,0,.7]);hold on; grid on,
plot(N,my_pi)
title('approcimation of \pi')

Categories

Find more on MATLAB in Help Center and File Exchange

Tags

Community Treasure Hunt

Find the treasures in MATLAB Central and discover how the community can help you!

Start Hunting!