[superprismatic]

BEAL'S CONJECTURE: If A^x + B^y = C^z , where A, B, C, x, y and z are positive integers

and x, y and z are all greater than 2, then A, B and C must have a common prime factor.

EXAMPLE: 3⁶ + 18³ = 3⁸

COOL THING: As far as I can tell, a prize of $100,000 is still unclaimed for someone

who can produce either a proof or a counterexample of this conjecture.

Does anyone have any ideas? I'd love to see someone from this forum win the prize!

[Faizaan]

COOL THING: As far as I can tell, a prize of $100,000 is still unclaimed for someone

who can produce either a proof or a counterexample of this conjecture.

$100,000. Still not enough motivation to get me to sit down and try to figure this out. My laziness know no bounds.

Anywho, I had not heard of this conjecture until now. This is intriguing!

[Guest]

I'm having a really hard time showing any case where the values aren't all divisible by 2 or 3.

[Guest]

Is x=y=z?

edit: never mind... i didnt see the example.

Edited November 19, 2011 by Assassinator

[EventHorizon]

Well, if any two of {A,B,C} have the same prime factor, then the other must (trivial to prove). So we are looking for a case where all 3 are relatively prime.

I'm thinking my approach will involve lots of modular arithmetic, but nothing of note to report right now. And given there's a prize on this one, I'm thinking it's been tried before by people more familiar with the necessary maths to solve it (I know next to nothing about rings/fields/etc). Still interesting though, so I'll play with it for a while.

[Guest]

One possible answer

A = 3

B = 3

C = 6

All have common prime factor of 3

X = 2

Y = 3

Z = 2

X, Y and Z are positive integers greater than or equal to 2

3² + 3³ = 6² = 36

[superprismatic]

One possible answer

A = 3

B = 3

C = 6

All have common prime factor of 3

X = 2

Y = 3

Z = 2

X, Y and Z are positive integers greater than or equal to 2

3² + 3³ = 6² = 36

x,y, and z must all be greater than 2.