Saturday, 30 November 2013

sequences and series - Why does the sum of inverse squares equal $pi^2/6$?




I've heard that $1+1/4+1/9+1/16+1/25+...$ converges to $\pi^2/6$. This was very surprising to me and I was wondering if there was a reason that it converges to this number?




I am also confused why $\pi$ would be involved. If someone could provide a proof of this or a intuitive reason/ derivation I would appreciate it. I am only able to understand high school maths however (year 12).


Answer



Some of the proofs in the given link are somewhat technical and I'll try to vulgarize a variant of one of them.



Consider the function $$f(x):=\frac{\sin\pi\sqrt x}{\pi\sqrt x}.$$



This function has roots for every perfect square $x=n^2$, and it can be shown to equal the infinite product of the binomials for the corresponding roots



$$p(x):=\left(1-\frac x{1^2}\right)\left(1-\frac x{2^2}\right)\left(1-\frac x{3^2}\right)\left(1-\frac x{4^2}\right)\cdots$$




(obviously, $p(0)=f(0)=1$ and $p(n^2)=f(n^2)=0$.)



If we expand this product to the first degree, we get



$$1-\left(\frac1{1^2}+\frac1{2^2}+\frac1{3^2}+\frac1{4^2}+\cdots\right)\,x+\cdots$$



On the other hand, the Taylor development to the first order is



$$f(0)+f'(0)\,x+\cdots=1-\frac{\pi^2}6x+\cdots$$ hence the claim by identification.




The plot shows the function $f$ in blue, the linear approximation in red, and the product of the first $4,5$ and $6$ binomials, showing that they coincide better and better.



enter image description here


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