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Date: 26-6-2020
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Date: 14-9-2020
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Date: 8-2-2020
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The conjecture that there are only finitely many triples of relatively prime integer powers ,
,
for which
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(1) |
with
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(2) |
Darmon and Merel (1997) have shown that there are no relatively prime solutions with
. Ten solutions are known,
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(3) |
for , and
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(4) |
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(5) |
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(6) |
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(7) |
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(8) |
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(9) |
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(10) |
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(11) |
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(12) |
(Mauldin 1997).
The following table summarizes known solutions (Poonen et al. 2005). Any remaining solutions would satisfy the Tijdeman-Zagier conjecture, also known popularly as Beal's conjecture (Elkies 2007).
exponents ![]() |
reference |
(2, 3, 7) | Poonen et al. (2005) |
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Wiles |
(2, 3, 8), (2, 3, 9), (2, 4, 5), | Bruin (2004) |
(2, 4, 6), (3, 3, 4), (3, 3, 5) | |
(2, 4, 7) | Ghioca |
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Darmon-Merel |
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Bennett |
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Bennett-Skinner |
It is not known if the analogous conjecture for ,
, and
Gaussian integers holds. Known solutions include
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(13) |
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(14) |
(E. Pegg Jr., pers. comm., March 30, 2002).
REFERENCES:
Bruin, N. "Visualising Sha[2] in Abelian Surfaces." Math. Comput. 73, 1459--1476, 2004.
Darmon, H. and Granville, A. "On the Equations and
." Bull. London Math. Soc. 27, 513-543, 1995.
Darmon, H. and Merel, L. "Winding Quotients and Some Variants of Fermat's Last Theorem." J. reine angew. Math. 490, 81-100, 1997.
Elkies, N. "The ABCs of Number Theory." Harvard Math. Rev. 1, 64-76, 2007.
Mauldin, R. D. "A Generalization of Fermat's Last Theorem: The Beal Conjecture and Prize Problem." Not. Amer. Math. Soc. 44, 1436-1437, 1997.
Poonen, B.; Schaefer, E. F.; and Stoll, M. "Twists of and Primitive Solutions to
." 10 Aug 2005. https://arxiv.org/abs/math/0508174.
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