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)​)

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Varun
Varun 2013년 10월 26일
댓글: Jie 2013년 10월 31일
I basically do not have any idea how to start. any help would be appreciated.
  댓글 수: 1
Walter Roberson
Walter Roberson 2013년 10월 26일
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?

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Jie
Jie 2013년 10월 26일
편집: Jie 2013년 10월 26일
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')

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