Basel problem Details, Meaning Basel problem Article and Explanation Guide

Basel problem Guide, Meaning , Facts, Information and Description

The Basel problem is a famous problem in number theory, first posed by Pietro Mengoli in 1644, and solved by Leonhard Euler in 1735. The problem had withstood the attacks of the leading mathematicians of the day, so Euler's solution gained him immediate notoriety at the age of 28. Euler generalised the problem considerably, and his ideas were taken up years later by Bernhard Riemann in his seminal 1859 paper, in which he defined his zeta function and proved its basic properties.

The Basel problem asks for the precise sum of the reciprocals of the squares of the positive integers, i.e. it asks for the precise sum of the infinite series

The series is approximately equal to 1.644934. The Basel problem asks us to find the exact sum of this series, (in closed form), as well as a proof that our sum is correct. Euler found the exact sum π²/6 and announced this discovery in 1735. His arguments were based on manipulations that were not justified at the time, and it was not until about 10 years later that he was able to produce a truly rigorous proof.

Table of contents

1 Euler attacks the problem
2 The Riemann zeta function
3 A rigorous proof

3.1 History of this proof
3.2 What you need to know
3.3 The proof

4 References
5 External links

Euler attacks the problem

Euler's original "derivation" of the value π²/6 is clever and original. He essentially extended observations about finite polynomials and assumed that these same properties hold true for infinite series. Of course, Euler's original reasoning requires justification, but even without justification, by simply obtaining the correct value, he was able to numerically check it against partial sums of the series. The agreement he observed gave him sufficient confidence to announce his result to the mathematical community.

To follow Euler's argument, recall the Taylor series expansion of the sine function

Dividing through by x, we have

Now, the roots (zeros) of sin(x)/x occur precisely at x = ±nπ, where n = 1, 2, 3, ... Let us assume we can express this infinite series as a product of linear factors given by its roots, just as we do for finite polynomials:

If we formally multiply out this product and collect all the x² terms, we see that the x² coefficient of sin(x)/x is

But from the original infinite series expansion of sin(x)/x, the coefficient of x² is −1/(3!) = −1/6. These two coefficients must be equal; thus,

Multiplying through both sides of this equation by π² gives the sum of the reciprocals of the positive square integers.

The Riemann zeta function

The Riemann zeta function ζ(s) is one of the most important functions in mathematics, because of its relationship to the distribution of the prime numbers. The function is defined for any complex number s with real part > 1 by the following formula:

Taking s = 2, we see that ζ(2) is equal to the sum of the reciprocals of the squares of the positive integers:

How do we know it converges at all? We can demonstrate this with the following inequality:

This gives us the upper bound ζ(2) < 2, but the exact value ζ(2) = π²/6 was unknown for some time, until Leonhard Euler computed it in 1735. It can be shown that ζ(s) has a nice expression in terms of the Bernoulli numbers whenever s is a positive even integer.

A rigorous proof

The following argument proves the identity ζ(2) = π²/6, where ζ(s) is the Riemann zeta function. It is by far the simplest proof yet available; while most proofs utilise results from advanced mathematics, such as Fourier analysis, complex analysis, and multivariable calculus, the following does not even require single-variable calculus (although a single limit is taken at the end).

History of this proof

The origin of the proof is unclear. It appeared in the journal Eureka in 1982, attributed to John Scholes, but Scholes claims he learned the proof from Peter Swinnerton-Dyer, and in any case he maintains the proof was "common knowledge at Cambridge in the late 1960s".

What you need to know

To understand the proof, you will need to understand the following facts:

De Moivre's formula states that for any real number x and any integer n,

Proof: This can be proved from Euler's formula; see the article for more details.

The binomial theorem, which states that for any real numbers x and y and any nonnegative integer n,

where we have the binomial coefficients

(See factorial)

Proof: This requires mathematical induction and some properties of the binomial coefficients.

The function cot² x is 1-1 on the interval (0, π/2).
- Proof: Suppose cot² x = cot² y for some x, y in the interval (0, π/2). Using the definition of cotangent cot x = (cos x)/(sin x) and the trigonometric identity cos² x = 1 − sin² x, we see that (sin² x)(1 − sin² y) = (sin² y)(1 − sin² x). Subtracting (sin² x)(sin² y) from each side, we have sin² x = sin² y. Since the sine function is always nonnegative on the interval (0, π/2), this means sin x = sin y, but it is geometrically evident (by looking at the unit circle, e.g.) that the sine function is 1-1 on the interval (0, π/2), so that x = y.
If p(t) is a polynomial of degree m, then p has no more than m distinct roots.
- Proof: This is a consequence of the fundamental theorem of algebra.
If p(t) = a_mt^m + a_{m − 1}t^{m − 1} + ... + a₁t + a₀, then the sum of the roots of p (counting multiplicities) is −a_{m − 1}/a_m.
- Proof: If a_m = 1, then p(t) = product of all (t − s), where s ranges over all roots of p. Expanding this product, we see the coefficient of t^{m − 1} is minus the sum of all the roots. If a_m ≠ 1, then we can divide each term by it, obtaining a new polynomial with the same roots, whose leading coefficient is now 1; applying the preceding argument shows that the sum of the roots of the original p(t) = sum of the roots of this new polynomial = −a_{m − 1}/a_m.
The trigonometric identity csc² x = 1 + cot² x.
- Proof: This follows from the fundamental identity 1 = sin² x + cos² x after dividing through by sin² x.
For any real number x with 0 < x < π/2, we have the inequalities cot² x < 1/x² < csc² x.
- Proof: First note that 0 < sin x < x < tan x. This can be seen by considering the following picture:

Now, take the reciprocal of everything and square. Remember that the inequality switches direction.

Let a, b, and c be any real numbers, with a and c not both zero; then the limit of the function (am + b)/(am + c) as m approaches infinity is 1.
- Proof: Divide each term by m, and get (a + b/m)/(a + c/m). If we divide a fixed number by a larger and larger number, the quotient approaches zero; thus, both the numerator and the denominator above tend to a, and so their quotient tends to 1.
The squeeze theorem, which states that if a function is "squeezed" between two other functions, and each of those two functions approach a common limit, then the "squeezed" function also approaches that same limit.
- Proof: See the article for a thorough discussion and proof.

The proof

The main idea behind the proof is to bound the partial sums

between two expressions, each of which will tend to π²/6 as m approaches infinity. The two expressions are derived from identities involving the cotangent and cosecant functions. These identities are in turn derived from De Moivre's formula, and we now turn to establishing these identities.

Let x be a real number with 0 < x < π/2, and let n be a positive integer. Then from De Moivre's formula and the definition of the cotangent function, we have

From the binomial theorem, we have

Combining the two equations and equating imaginary parts gives the identity