This morning Sir Michael Atiyah gave a presentation at the Heidelberg Laureate Forum with a claimed proof of the Riemann hypothesis. The Riemann hypothesis (RH) is the most famous open problem in mathematics, and yet Atiyah claims to have a simple proof.

Simple proofs of famous conjectures

If anyone else claimed a simple proof of RH they’d immediately be dismissed as a crank. In fact, many people have sent me simple proofs of RH just in the last few days in response to my blog post, and I imagine they’re all cranks [1]. But Atiyah is not a crank. He won the Fields Medal in 1966 and the Abel prize in 2004. In other words, he was in the top echelon of mathematicians 50 years ago and has keep going from there. There has been speculation that although Atiyah is not a crank, he has gotten less careful with age. (He’s 89 years old.)

QuinteScience, source of the image above, quoted Atiyah as saying

Solve the Riemann hypothesis and you’ll become famous. But if you’re already famous, you run the risk of becoming infamous.

If Atiyah had a simple self-contained proof of RH that would be too much to believe. Famous conjectures that have been open for 150 years don’t have simple self-contained proofs. It’s logically possible, but practically speaking it’s safe to assume that the space of possible simple proofs has been very thoroughly explored by now.

But Atiyah’s claimed proof is not self-contained. It’s really a corollary, though I haven’t seen anyone else calling it that. He is claiming that a proof of RH follows easily from his work on the Todd function, which hasn’t been published. If his proof is correct, the hard work is elsewhere.

Andrew Wiles’ proof of Fermat’s last theorem was also a corollary. He proved a special case of the Taniyama–Shimura conjecture, and at end of a series of lectures noted, almost as an afterthought, that his work implied a proof to Fermat’s last theorem. Experts realized this was where he was going before he said it. Atiyah has chosen the opposite approach, presenting his corollary first.

Connections with physics

Atiyah has spoken about connections between mathematics and physics for years. Maybe he was alluding to his work on the the fine structure constant which he claims yields RH as a corollary. And he is not the only person talking about connections between the Riemann hypothesis specifically and physics. For example, there was a paper in Physical Review Letters last year by Bender, Brody, and Müller stating a possible connection. I don’t know whether this is related to Atiyah’s work.

Fine structure constant

The fine structure constant is a dimensionless physical constant α, given by

where e is the elementary charge, ħ is the reduced Planck constant, and c is the speed of light in a vacuum. Its value is roughly 1/137.

The Todd function

The Todd function T is a function introduced by Atiyah, named after his teacher J. A. Todd. We don’t know much about this function, except that it is key to Atiyah’s proof. Atiyah says the details are to be found in his manuscript The Fine Structure Constant which has been submitted to the Proceedings of the Royal Society.

Atiyah says that his manuscript shows that on the critical line of the Riemann zeta function, the line with real part 1/2, the Todd function has a limit ж and that the fine structure constant α is exactly 1/ж. That is,

lim_{y → ∞} T(1/2 + yi) = ж = 1/α.

Now I don’t know what he means by proving that a physical constant has an exact mathematical value; the fine structure constant is something that is empirically measured. Perhaps he means that in some mathematical model of physics, the fine structure constant has a precise mathematical value, and that value is the limit of his Todd function.

Or maybe it’s something like Koide’s coincidence where a mathematical constant is within the error tolerance of a physical constant, an interesting but not necessarily important observation.

Taking risks

Michael Atiyah is taking a big risk. I’ve seen lots of criticism of Atiyah online. As far as I know, none of the critics have a Fields Medal or Abel Prize in their closet.

Atiyah’s proof is probably wrong, just because proofs of big theorems are usually wrong. Andrew Wiles’ proof of Fermat’s Last Theorem had a flaw that took a year to patch. We don’t know who Atiyah has shown his work to. If he hasn’t shown it to anyone, then it is almost certainly flawed: nobody does flawless work alone. Maybe his proof has a patchable flaw. Maybe it is flawed beyond repair, but contains interesting ideas worth pursuing further.

The worst case scenario is that Atiyah’s work on the fine structure constant and the Todd function is full of holes. He has made other big claims in the last few years that didn’t work out. Some say he should quit doing mathematics because he has made big mistakes.

I’ve made big mistakes too, and I’m not quitting. I make mistakes doing far less ambitious work than trying to prove the Riemann hypothesis. I doubt I’ll ever produce anything as deep as a plausible but flawed proof of the Riemann hypothesis.

Related posts

• Interview with Michael Atiyah
• News regarding ABC and RH
• Creativity and criticism

[1] I don’t call someone a crank just because they’re wrong. My idea of a crank is someone without experience in an area, who thinks he has found a simple solution to a famous problem, and who believes there is a conspiracy to suppress their work. They’re not just wrong, they can’t conceive that they might be wrong.

There have been a couple news stories regarding proofs of major theorems. First, an update on Shinichi Mochizuki’s proof of the abc conjecture, then an announcement that Sir Michael Atiyah claims to have proven the Riemann hypothesis.

Shinichi Mochizuki’s proof of the abc conjecture

Quanta Magazine has a story today saying that two mathematicians have concluded that Shinichi Mochizuki’s proof of the ABC conjecture is flawed beyond repair. The story rightly refers to a “clash of Titans” because Shinichi Mochizuki and his two critics Peter Scholze and Jakob Stix are all three highly respected.

I first wrote about the abc conjecture when it came out in 2012. In find the proposed proof fascinating, not because I understand it, but because nobody understands it. The proof is 500 pages of dense, sui generis mathematics. Top mathematicians have been trying to digest the proof for six years now. Scholze and Stix believe they’ve found an irreparable hole in the proof, but Mochizuki has not conceded defeat.

Sometimes when a flaw is found in a proof, the flaw can later be fixed, as was the case with Andrew Wiles’ proof of Fermat’s last theorem. Other times the proof cannot be salvaged entirely, but interesting work comes out of it, as was the case with the failed attempts to prove FLT before Wiles. What will happen with Mochizuki’s proof of the abc conjecture if it cannot be repaired? I can imagine two outcomes.

1. Because the proof is so far out of the mainstream, there must be useful pieces of it that can be salvaged.
2. Because the proof is so far out of the mainstream, nobody will build on the work and it will be a dead end.

Michael Atiyah and the Riemann hypothesis

This morning I heard rumors that Michael Atiyah claims to have proven the Riemann hypothesis. The Heidelberg Laureate Forum twitter account confirmed that Atiyah is scheduled to announce his work at the forum on Monday.

I was a fan of Atiyah’s work when I was a grad student, and I got to talk to him at the 2013 and 2014 Heidelberg Laureate Forums. I hope that he really has a proof, but all the reaction I’ve seen has been highly skeptical. He claims to have a relatively simple proof, and long-standing conjectures rarely have simple proofs.

It would be great for the Riemann hypothesis to be settled, and it would be great for Atiyah to be the one who settles it.

Whereas Mochizuki’s proof is radically outside the mainstream, Atiyah’s proof appears to be radically inside the mainstream. He says he has a “radically new approach … based on work of von Neumann (1936), Hirzebruch (1954) and Dirac (1928).” It doesn’t seem likely that someone could prove the Riemann hypothesis using such classical mathematics. But maybe he found a new approach by using approaches that are not fashionable.

I hope that if Atiyah’s proof doesn’t hold up, at least something new comes out of it.

Update (9/23/2018): I’ve heard a rumor that Atiyah has posted a preprint to arXiv, but I don’t see it there. I did find a paper online that appeared to be his that someone posted to Dropbox.  It gives a very short proof of RH by contradiction, based on a construction using the Todd function. Apparently all the real work is in his paper The Fine Structure Constant which has been submitted to Proceedings of the Royal Society. I have not been able to find a preprint of that article.

Atiyah gave a presentation of his proof in Heidelberg this morning. From what I gather the presentation didn’t remove much mystery because what he did was show that RH follows as a corollary of his work on the Todd function that hasn’t been made public yet.

Michael #Atiyah at the #HLF18:

“Solve the #RiemannHypothesis and you’ll become famous.

But if you’re already famous, you run the risk of becoming infamous.”

Sense of humour above all!#RetransmisionesQS pic.twitter.com/SWU1gXvm87

— QuinteScience (@QuinteScience) September 24, 2018

Update: More on Atiyah’s proof here.

What are these theorems?

The abc conjecture claims a deep relationship between addition and multiplication of integers. Specifically, for every ε > 0, there are only finitely many coprime triples (a, b, c) such that a + b = c and c > rad(abc)^{1 + ε}.

Here coprime means a, b, and c share no common divisor larger than 1. Also, rad(abc) is the product of the distinct prime factors of a, b, and c.

This is a very technical theorem (conjecture?) and would have widespread consequences in number theory if true. This is sort of the opposite of Fermat’s Last Theorem: the method of proof had widespread application, but the result itself did not. With the abc conjecture, it remains to be seen whether the method of (attempted?) proof has application.

The Riemann hypothesis concerns the Riemann zeta function, a function ζ of complex values that encodes information about primes. The so-called trivial zeros of ζ are at negative integers. The Riemann hypothesis says that the rest of the zeros are all lined up vertically with real part 1/2 and varying imaginary parts.

Many theorems have been proved conditional on the Riemann hypothesis. If it is proven, a lot of other theorems would immediately follow.

Related posts

• Bernoulli numbers and Riemann zeta
• Distribution of Riemann zeta zeros
• ABC vs FLT
• My interview with Michael Atiyah

The Goldbach conjecture says that every even number bigger than 2 is the sum of two primes. I imagine he tried out his idea on numbers up to a certain point and guessed that he could keep going. He lived in the 18th century, so he would have done all his calculation by hand. What might he have done if he could have written a Python program?

Let’s start with a list of primes, say the first 100 primes. The 100th prime is p = 541. If an even number less than p is the sum of two primes, it’s the sum of two primes less than p. So by looking at the sums of pairs of primes less than p, we’ll know whether the Goldbach conjecture is true for numbers less than p. And while we’re at it, we could keep track not just of whether a number is the sum of two primes, but also how many ways it is a sum of two primes.

    from sympy import prime
    from numpy import zeros
    
    N = 100
    p = prime(N)
    
    primes = [prime(i) for i in range(1, N+1)]
    sums = zeros(p, int)
    
    for i in range(N):
        # j >= i so we don't double count
        for j in range(i, N):
            s = primes[i] + primes[j]
            if s >= p:
                break
            sums[s] += 1
    
    # Take the even slots starting with 4
    evens = sums[4::2]
    
    print( min(evens), max(evens) )

This prints 1 and 32. The former means that every even number greater than 4 and less than p was hit at least once, that every number under consideration was the sum of two primes. The latter means that at least one number less than p can be written as a sum of two primes 32 different ways.

According to the Wikipedia article on the Goldbach conjecture, Nils Pipping manually verified the Goldbach conjecture for even numbers up to 100,000 in 1938, an amazing feat.

There are 9,952 primes less than 100,000 and so we would need to take N = 9592 in our program to reproduce Pipping’s result. This took about seven minutes.

Update: As suggested in the comments, nearly all of the time is being spent generating the list of primes. When I changed the line

    primes = [prime(i) for i in range(1, N+1)]

to

    primes = [x for x in primerange(1, p)]

the runtime dropped from 7 minutes to 18 seconds.

The prime number theorem says that π(x), the number of primes less than or equal to x, is asymptotically x / log x. So it’s easy to estimate the number of primes below some number N. But what if we want to estimate the number of prime powers less than N? This is a question that comes up in finite fields, for example, since there is a finite field with n elements if and only if n is a prime power. It’s also important in finite simple groups because these groups are often indexed by prime powers.

Riemann’s prime-power counting function Π(x) counts the number of prime powers less than or equal to x. Clearly Π(x) > π(x) for x ≥ 4 since every prime is a prime power, and 4 is a prime power but not a prime. Is  Π(x) much bigger than π(x)? What is its limiting distribution, i.e. what is the analog of the prime number theorem for prime powers?

Numerical examples

It turns out Π(x) equals π(x) asymptotically. That is, even though Π(x) is always bigger than π(x), their ratio converges to 1 as x increases.

Why is that? Let’s first look at N = 1,000,000. The number of primes less than one million happens to be 78,498.  The number of prime powers less than N is 78,734. So the latter includes only 236 prime powers with exponent greater than 1.

If we increase N to 1,000,000,000, there are 50,847,534 primes less than N and 50,851,223 prime powers, a difference of 3,689. Said another way, 99.99% of the prime powers less than a billion have exponent 1.

Equation for Π(x)

The number of prime powers less than N with exponent 2 equals the number of primes less than the square root of N. And the number of prime powers less than N with exponent 3 equals the number of primes less than the cube root of N. The number of prime powers with exponent 4 equals the number of primes less than the fourth root of N. Etc.

Even if N is large, these counts start getting small pretty soon. How soon? We’re taking roots of order r until the rth root of N is less than 2, because then there are no more primes less than that root. That means we keep going until r > log₂ N. And so we have the following equation:

Mathematica and Python code

I looked in Mathematica and SymPy for a function to compute Π(x) and didn’t see one. Maybe I missed something. But in either case it’s easy to implement our own using the equation above.

In Mathematica:

pp[n_] := Sum[PrimePi[n^(1/r)], {r, 1, Log2[n]}]

In Python:

from sympy import primepi
from math import log2

def pp(n):
    top = int(log2(n))
    return sum(
        [primepi(n**(1/r)) for r in range(1, 1+top)]
    )

Suppose you have an odd prime p and an integer a, with a not a multiple of p. Does a have a square root mod p? That is, does there exist an integer x such that x² is congruent to a mod p? Half the time the answer is yes, and half the time it’s no. (We will remove the restriction that p is prime near the end of the post.)

In principle it’s easy to tell whether a has a square root: square all the integers from 1 to p-1 and see whether one of them is congruent to a. For example, let p = 7. Square the numbers 1 through 6 and take the remainders by 7. You get 1, 4, 2, 2, 4, 1. So the numbers 1, 2, and 4 have square roots mod 7, and the numbers 3, 5, and 6 do not. In application, p might be very large, and so such brute force isn’t practical.

Legendre symbols

Before we go any further it will help to introduce some notation. The Legendre symbol

looks like a fraction, but it’s not. As we’ll see, it behaves something like a fraction, which was the motivation for the notation. But the symbol is defined to be 1 if a has a square root mod p and -1 otherwise.

One key fact is for any numbers m and n that are not multiples of p,

So Legendre symbols multiply like fractions on top but not on bottom. This tells us that we can tell whether a has a square root mod p by factoring a and determining whether each of its factors has a square root. For example, suppose we want to know whether 108 has a square root modulo some prime p. Since 108 = 2² 3³ the question boils down to whether 3 has a square root mod p, because obviously 2² 3² has a square root, namely 2×3 = 6.

Quadratic reciprocity

The most important result we need is Gauss’ quadratic reciprocity theorem, what he called his golden theorem. Gauss published six proofs of this theorem, and left two more proofs unpublished.

One thing you can do with a fraction is take its reciprocal, and the quadratic reciprocity theorem takes the “reciprocal” of the Legendre symbol. The quadratic reciprocity theorem says that if p and q are odd primes, then

Algorithm for computing Legendre symbols

Suppose p < q. The quadratic reciprocity theorem says we can reduce the problem of determining whether p has a square root mod q to the opposite problem, determining whether q has a square root mod p. Why is that progress? Because we can reduce q mod p, and so now we’re dealing with smaller numbers. For example, quadratic reciprocity tells us that 7 has a square root mod 61 if and only if 61 has a square root mod 7. But 61 is congruent to 5 mod 7, so we’ve reduced the question to whether 5 has a square root mod 7, and we know from above that it does not.

You can repeatedly apply the techniques of factoring the top of the Legendre symbol and applying quadratic reciprocity to steadily decrease the size of the numbers you’re dealing with until you get either a 1 or a 2 on top. (Why not apply quadratic reciprocity one more time when you get a 2 on top? Because the theorem applies to odd primes.)

If you get a 1 on top, the answer is obvious: 1 has a square root, namely itself, modulo anything. If you get a 2 on top, you need the result

Jacobi symbols

You might think you could compute the Legendre symbol in Mathematica with a function called LegendreSymbol, but there’s no such function. Instead, you call JacobiSymbol. The Jacobi symbol is a generalization of the Legendre symbol, using the same notation but allowing the “denominator” to be any odd positive number. As before the symbol is defined to be 1 if the top has a square root modulo the bottom, and -1 otherwise.

If m has prime factors p_i with exponents e_i, then the Jacobi symbol can be computed by

Technically the symbol on the left is a Jacobi symbol and the symbols on the right are Legendre symbols. But the distinction doesn’t matter because when m is an odd prime, the Jacobi symbol equals the Legendre symbol.

In Python, you can compute Legendre symbols with sympy.ntheory.legendre_symbol and Jacobi symbols with sympy.ntheory.jacobi_symbol.

Finding square roots

So far we’ve described how to determine whether a number has a square root mod m where m is odd. Once you know a square root exists, how do you find it?

These notes show how to solve quadratic congruences, whether m is odd or not.

Here’s an interesting little tidbit:

For any prime p except 2 and 5, the decimal expansion of 1/p repeats with a period that divides p-1.

The period could be as large as p-1, but no larger. If it’s less than p-1, then it’s a divisor of p-1.

Here are a few examples.

1/3 = 0.33…
1/7 = 0.142857142857…
1/11= 0.0909…
1/13 = 0.076923076923…
1/17 = 0.05882352941176470588235294117647…
1/19 = 0.052631578947368421052631578947368421…
1/23 = 0.04347826086956521739130434782608695652173913…

Here’s a table summarizing the periods above.

|-------+--------|
| prime | period |
|-------+--------|
|     3 |      1 |
|     7 |      6 |
|    11 |      2 |
|    13 |      6 |
|    17 |     16 |
|    19 |     18 |
|    23 |     22 |
|-------+--------|

For a proof of the claims above, and more general results, see Periods of Fractions.

Every positive integer can be written as the sum of three palindromes, numbers that remain the same when their digits are reverse. For example, 389 = 11 + 55 + 323. This holds not just for base 10 but for any base b ≥ 5.

[Update: a new paper on arXiv extends this to b = 3 and 4 as well. Base 2 requires four palindromes.]

The result and algorithms for finding the palindromes was published online last August and is in the most recent print issue of Mathematics of Computation.

Javier Cilleruelo, Florian Luca and Lewis Baxter. Every positive integer is a sum of three palindromes. DOI: https://doi.org/10.1090/mcom/3221