John D. CookModify

2025-11-18 21:13:35

Five posts on Pythagorean triangles and Pythagorean triples

1. Primitive Pythagorean triangles with the same area
2. Sparse binary Pythagorean triples
3. Matrix Pythagorean triples
4. Approximation by Pythagorean triangles
5. Fibonacci meets Pythagoras

2025-11-18 16:22:52

The last couple posts have been about group pairings, specifically Tate pairings as they’re used in cryptography. This post will show that RSA encryption can be seen as a special case of pairing-based cryptography.

The idea comes from Ben Lynn’s 2007 dissertation. Lynn is the “L” in BLS signatures—one of the topics in his dissertations—and in BLS elliptic curves.

A pairing is a bilinear mapping from two groups to a third group

e: G₁ × G₂ → G_T.

Here bilinear means that if P is an element of G₁ and Q is an element of G₂, and a and b are nonnegative integers, then

e(aP, bQ) = e(P, Q)^ab.

There are more criteria for a pairing to be useful in cryptography, but we won’t need those for this post.

Ben Lynn’s dissertation mentions that exponentiation is a special case of pairing if you let G₁ and G_T be the multiplicative group of the integers mod r and let G₂ be the additive group of integers mod (r − 1). Then you can define a pairing by

e(g, a) = g^a.

Typically you can’t just write down a simple expression for a pairing, but in this case you can.

RSA encryption corresponds to r = pq where p and q are large primes. The product pq is made public but the factorization into p and q is held secret. A message [1] is encrypted by exponentiation mod n where the exponent is the public key. In Lynn’s notation, the message is g and the public key is a.

The security of RSA encryption depends on the fact that you can’t recover g from g^a mod n unless you know a trapdoor, the factorization of n [2]. This is true of pairings more generally: it is not practical to recover the inputs to a pairing from the output unless you know a trapdoor.

Related posts

• A quiet change to RSA
• My interview with John Tate
• More posts on cryptography

[1] In practice, RSA isn’t used to encrypt entire messages. Instead, it is used to encrypt a key for a symmetric encryption algorithm such as AES, and that key is used to encrypt the message. This is done for efficiency.

[2] Or, more specifically, a private key that can easily be computed if you know the factorization of n. It’s conceivable that breaking RSA encryption is easier than factoring, but so far that does not appear to be the case.

2025-11-18 00:51:24

Elliptic curve Diffie-Hellman

Given a point P on an elliptic curve E, and a random number a, aP means to add P to itself a times, using the addition on E. The point aP can be computed efficiently, even if a is a very large number [1]. However, if E has a large number of points, and if a is chosen at random from a large range, then it is not practical to compute a given P and aP.

This is the elliptic curve version of the discrete logarithm problem, and its presumed difficulty is the basis of the security of Diffie-Hellman key exchange.

Two-party Diffie-Hellman

With two-party Diffie-Hellman key exchange, two parties, Alice and Bob, generate random private keys a and b respectively. They agree on a point P on an elliptic curve E. Alice computes aP and sends it to Bob. Simultaneously Bob computes bP and sends it to Alice. Then Alice can compute

a(bP) = (ab)P

and Bob can compute

b(aP) = (ba)P = (ab)P.

Then both Alice and Bob know a shared secret, the point (ab)P on E, but neither party has revealed a private key.

Three-party Diffie-Hellman

You could extend the approach above to three parties, say adding Carol, but this would require extra communication: Alice could send (ab)P to Carol, which she could multiply by her private key c to obtain abcP. Similarly, everyone else could arrive at abcP. Each person has to do a computation, send and receive a message, do another computation, and send an receive another message.

Joux [2] came up with a way to do Diffie-Hellman key exchange with three people and only one round of sending and receiving messages. The set up uses a pairing e( , ) of two elliptic curve subgroups, G₁ and G₂, as in the previous post. Fix generators P ∈ G₁ and Q ∈ G₂. Each party multiplies P and Q by their private key and sends the results to the other two parties.

Alice receives bP from Bob and cQ from Carol. This is enough for her to compute

e(bP, cQ)^a = e(P, Q)^abc.

Similarly, Bob receives aP from Alice and cQ from Carol, enabling him to compute

e(aP, cQ)^b = e(P, Q)^abc.

And finally, Carol receives aP from Alice and bQ from Bob, enabling her to compute

e(aP, bQ)^c = e(P, Q)^abc.

So all three parties can compute the shared secret e(P, Q)^abc. but no party knows the other parties’ private keys.

Footnotes

[1] If you want to multiply a point by 2¹⁰⁰, for example, you don’t carry out 2¹⁰⁰ additions; you carry out 100 doublings. Of course not every positive integer is a power of 2, but every positive integer is the sum of powers of 2, i.e. it can be written in binary. So as you’re doing your doublings, sum the terms that correspond to 1s in the binary representation of the number you’re multiplying by.

[2] Antoine Joux. A One Round Protocol for Tripartite Diffie–Hellman. Journal of Cryptology (2004) 17: 263–276.

2025-11-17 04:27:09

Pairings can mean a variety of related things in group theory, but for our purposes a pairing is a bilinear mapping from two groups to a third group.

e: G₁ × G₂ → G_T

Typically the group operation on G₁ and G₂ is written addititvely and the group operation on G_T is written multiplicatively. In fact, G_T will always be the multiplicative group of a finite field, i.e. G_T consists of the non-zero elements of a finite field under multiplication. (The “T” stands for “target.”)

Here bilinear [1] means that if P is an element of G₁ and Q is an element of G₂, and a and b are nonnegative integers,

e(aP, bQ) = e(P, Q)^ab.

There are a few provisos …

First, the pairing must be non-degenerate, i.e. e(P, Q) ≠ 1 for some P and Q.

Second, the pairing must be efficiently computable.

Third, the embedding degree must not be “too high.” This means that if G_T is the multiplicative group of a field with p^k elements, k is not too big. We will look at two examples in which k = 12.

The second and third provisos are important even though they’re not stated rigorously.

Cryptography often speaks of pairing elliptic curves, but in fact it uses pairings of prime-order subgroups of the additive groups of elliptic curves. Because the subgroups have prime order, they are cyclic, and so the pairing is determined by its value on a generator from each subgroup.

Example: BN254

The previous post briefly mentioned a pairing between two elliptic curves, BN254 and alt_bn128, that is used in Ethereum and was used in Zcash in the original Sprout shielded protocol.

The elliptic curve BN254 is defined over the field F_p, the integers mod p, where

p = 21888242871839275222246405745257275088696311157297823662689037894645226208583.

and the elliptic curve alt_bn128 is defined over the field F_p[i], i.e. the field F_p, with an imaginary element i adjoined.

Both elliptic curves have a subgroup of order

r = 21888242871839275222246405745257275088548364400416034343698204186575808495617,

which is prime. So in the pairing the groups G₁ and G₂ are isomorphic to the integers mod r. The target group G_T has order p12 − 1 and so the embedding degree k equals 12, and so the embedding degree is “not too high.”

Example: BLS12-381

Another example also comes from Ethereum and Zcash. Ethereum uses BN254 in smart contracts, but it uses BLS12-381 in its consensus layer. Zcash switched from BN254 to BLS12-381 in the Sapling release.

BLS12-381 is defined over a prime order field with on the order of 2³⁸¹ elements and has embedding order 12, hence 12-381. The BLS stands for Paulo Barreto, Ben Lynn, and Michael Scott. Elliptic curve names often look mysterious, but they’re actually pretty descriptive. I discuss BLS12-381 in more detail here. As in the example above, BLS12-381 is defined over a field F_p and is paired with a curve over F_p[i], i.e. the same field with an imaginary element adjoined. The equation for BLS12-381 is

y² = x³ + 4

and the equation for the curve it is paired with is

y² = x³ + 4(1 + i)

As before the target group is the multiplicative group of a finite field of order p¹².

Related posts

• Pairing-unfriendly curves
• Zcash price soars
• Blockchains and cryptocurrency

[1] You’ll also see bilinearity defined by

e(P + Q, R) = e(P, R) e(Q, R)

and

e(P, R + S) = e(P, R) e(P, S).

These definitions are equivalent. To see that the definition here implies the definition at the top, write out aP as P + P + … + P etc.

Since we’re working in subgroups of prime order, there is a generator for each subgroup. Write out each element as a multiple of a generator, then the definition at the top implies the definition here.

2025-11-17 03:13:04

Let p be a prime number. Then the integers mod p form a finite field.

The number of elements in a finite field must be a power of a prime, i.e. the order q = pⁿ for some n. When n > 1, we can take the elements of our field to be polynomials of degree n − 1 with coefficients in the integers mod p.

Addition works just as you’d expect addition to work, adding coefficients mod p, but multiplication is a little more complicated. You multiply field elements by multiplying their polynomial representatives, but then you divide by an irreducible polynomial and take the remainder.

When n = 2, for some p you can define the field by adding an imaginary unit.

When you can and cannot adjoin an i

For some finite fields of order p, you can construct a field of order p² by joining an element i to the field, very much the way you form the complex numbers from the real numbers. For example, you can create a field with 49 elements by taking pairs of (a, b) of integers mod 7 and multiplying them as if they were a + bi. So

(a, b) * (c, d) = (ac − bd, ad + bc).

This is equivalent to choosing the polynomial x² + 1 as your irreducible polynomial and following every polynomial multiplication by taking the remainder modulo x² + 1.

This works for a field with 49 elements, but not for a field of 25 elements. That’s because over the integers mod 5 the polynomial x² + 1 already has a root. Two of them in fact: x = 2 or x = 3. So you could say that mod 5, i = 2. Or i = 3 if you prefer. You can still form a field of 25 elements by taking pairs of elements from a field of 5 elements, but you have to choose a different polynomial as your irreducible polynomial because x² + 1 is not irreducible because

x² + 1 = (x − 2)(x + 2)

when working over the integers mod 5. You could use

x² + x + 1

as your irreducible polynomial. To prove that this polynomial is irreducible mod 5, plug in the numbers 0, 1, 2, 3, and 4 and confirm that none of them make the polynomial equal 0.

In general, you can create a field of order p² by adjoining an element i if and only if p = 3 mod 4.

Next we’ll look at an example of making a very large finite field even larger by adding an imaginary element.

Example from Ethereum

The Ethereum virtual machine has support for a pairing—more on that in a future post—of two elliptic curves, BN254 and alt_bn128. The BN254 curve is defined by

y² = x³ + 3

over the field F_p, the integers mod p, where

p = 21888242871839275222246405745257275088696311157297823662689037894645226208583.

The curve alt_bn128 is defined by

y² = x³ + 3/(9 + i)

over the field F_p[i], i.e. the field F_p, with an element i adjoined. Note the that last two digits of p are 83, and so p is congruent to 3 mod 4.

Special point on curve

The Ethereum documentation (EIP-197) singles out a particular point (x, y) on alt_bn128:

x = a + bi
y = c + di

where

a = 10857046999023057135944570762232829481370756359578518086990519993285655852781
b = 11559732032986387107991004021392285783925812861821192530917403151452391805634
c = 8495653923123431417604973247489272438418190587263600148770280649306958101930
d = 4082367875863433681332203403145435568316851327593401208105741076214120093531.

We will show that this point is on the curve as an exercise in working in the field F_p[i]. We’ll write Python code from scratch, not using any libraries, so all the details will be explicit.

def add(pair0, pair1, p):
    a, b = pair0
    c, d = pair1
    return ((a + c) % p, (b + d) % p)

def mult(pair0, pair1, p):
    a, b = pair0
    c, d = pair1
    return ((a*c - b*d) % p, (b*c + a*d) % p)

p = 21888242871839275222246405745257275088696311157297823662689037894645226208583
a = 10857046999023057135944570762232829481370756359578518086990519993285655852781
b = 11559732032986387107991004021392285783925812861821192530917403151452391805634
c = 8495653923123431417604973247489272438418190587263600148770280649306958101930
d = 4082367875863433681332203403145435568316851327593401208105741076214120093531

# Find (e, f) such that (e, f)*(9, 1) = (1, 0).
# 9e - f = 1
# e + 9f = 0
# Multiply first equation by 9 and add.
e = (9*pow(82, -1, p)) % p
f = (-e*pow(9, -1, p)) % p
prod = mult((e, f), (9, 1), p)
assert(prod[0] == 1 and prod[1] == 0)

y2 = mult((c, d), (c, d), p)
x3 = mult((a, b), mult((a, b), (a, b), p), p)
rhs = add(x3, mult((3, 0), (e, f), p), p)

assert(y2[0] == rhs[0])
assert(y2[1] == rhs[1])

Related posts

• Finite fields
• Elliptic curve in Ethereum’s consensus layer
• Misleading plots of elliptic curves

2025-11-13 23:25:33

Here are four theorems that generalize the Pythagorean theorem. Follow the links for more details regarding each equation.

1. Theorem by Apollonius for general triangles.

2. Edsgar Dijkstra’s extension of the Pythagorean theorem for general triangles.

3. A generalization of the Pythagorean theorem to tetrahedra.

4. A unified Pythagorean theorem that covers spherical, plane, and hyperbolic geometry.