This question follows a suggestion by Tito Piezas in Is there an integral or series for $\frac{\pi}{3}-1-\frac{1}{15\sqrt{2}}$?
Q: Is there a series by Ramanujan that justifies the approximation $\pi\approx2\sqrt{1+\sqrt{2}}?$
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The answer needs some context.
Part I. One may ask why,
$$\frac{1}{2\pi\sqrt{2}} - \frac{1103}{99^2} \approx 10^{-9}\tag1$$
is such a good approximation? In fact, the convergents of the continued fraction of $\displaystyle\frac{1}{2\pi\sqrt{2}}$ start as,
$$0,\;\frac{1}{8},\;\color{brown}{\frac{1}{3^2}},\;\frac{8}{71},\;\frac{9}{80},\dots\color{brown}{\frac{1103}{99^2}},\dots$$
and it turns out using the 3rd and 9th convergents,
$$\frac{1}{2\pi\sqrt{2}}-\frac{1}{3^2} = 16\sum_{k=1}^\infty \frac{(4k)!}{k!^4} \frac{1+10k}{(12^4)^{k+1/2}}$$
$$\frac{1}{2\pi\sqrt{2}}-\frac{1103}{99^2} = 16\sum_{k=1}^\infty \frac{(4k)!}{k!^4} \frac{1103+26390k}{(396^4)^{k+1/2}}\tag2$$
so truncating $(2)$ "explains" the approximation $(1)$.
Part II. The OP's post originated with the observation that,
$$\frac{\pi}{3} -\Big(1+\frac{1}{15\sqrt{2}}\Big) \approx 10^{-5}\tag3$$
The convergents of the continued fraction of $\displaystyle\sqrt{2}\big(\frac{\pi}{3}-1\big)$ are,
$$0,\;\frac{1}{14},\;\color{brown}{\frac{1}{15}},\;\frac{55}{824},\dots$$
As there are dozens and dozens of Ramanujan-Sato pi formulas that use $\sqrt{2}$, it is possible (though not certain) there is one that is directly responsible $(3)$.
Part III. Finally, the question. The modest approximation,
$$\pi \approx 2\sqrt{1+\sqrt{2}}\tag4$$
has an explanation as it is the first term (after some manipulation) of the Ramanujan-type formula,
$$\frac{1}{\pi}= \sum_{n=0}^\infty (-1)^n\frac{(2n)!^3}{n!^6} \frac{16(8+5\sqrt{2})n+8(2+\sqrt{2})}{(C)^{n+1/2}},\quad C = 2^9(1+\sqrt{2})^3\tag5$$
And there are many other similar ones.
Tito Piezas III
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The coincidence between your unnumbered $\frac{1}{2\pi\sqrt{2}}\approx \frac{1}{9}$ and http://math.stackexchange.com/questions/1623368/is-there-an-integral-or-series-for-frac-pi3-1-frac115-sqrt2#comment3321177_1625142 suggests the additional question whether Ramanujan's series may be obtained from $\left(1+x\right)^\frac{1}{2}asin(\frac{x}{2})$ – Jaume Oliver Lafont Jan 31 '16 at 01:42
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A "Ramanujan-type" formula isn't the same as a series "by Ramanujan", so this doesn't answer the question that was asked. Don't get me wrong – it's very nice mathematics – it's just not an answer to the question as asked. – Gerry Myerson Feb 01 '16 at 12:07
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@Bacon: Thanks. You'd like formula $(2)$ even more if you find out it is connected to the Pell equation $x^2-29y^2 = 1$. – Tito Piezas III Feb 01 '16 at 14:50
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1@GerryMyerson: In his 1914 paper, Ramanujan gave 17 formulas for four kinds of families. You're right, the particular formula using $1+\sqrt{2}$ isn't explicitly there, but the general series $\displaystyle \frac{1}{\pi}= \sum_{n=0}^\infty \frac{(2n)!^3}{n!^6} \frac{An+B}{C^{n+1/2}}$ is by Ramanujan. :) – Tito Piezas III Feb 01 '16 at 14:59
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Why $\frac{1}{2\pi\sqrt{2}}$ is so close to the fifth convergent $\frac{9}{80} $ is explained by $$\sum_{k=0}^\infty \frac{160}{(8k+5)(8k+6)(8k+7)(8k+9)(8k+10)(8k+11)} =\frac{20}{9}-\frac{\pi}{\sqrt{2}}$$ – Jaume Oliver Lafont Feb 22 '16 at 23:50
Yours gives $$\frac{\sqrt{4e-1}}{\pi}=1.000178...$$
– Jaume Oliver Lafont Feb 01 '16 at 15:08