English

Number of solutions to a special type of unit equations in two unknowns, II

Number Theory 2024-03-05 v2

Abstract

This paper contributes to the conjecture of R. Scott and R. Styer which asserts that for any fixed relatively prime positive integers a,ba,b and cc all greater than 1 there is at most one solution to the equation ax+by=cza^x+b^y=c^z in positive integers x,yx,y and zz, except for specific cases. The fundamental result proves the conjecture under some congruence condition modulo cc on aa and bb. As applications the conjecture is confirmed to be true if cc takes some small values including the Fermat primes found so far, and in particular this provides an analytic proof of the celebrated theorem of Scott [R. Scott, On the equations pxby=cp^x-b^y=c and ax+by=cza^x+b^y=c^z, J. Number Theory 44(1993), no.2, 153-165] solving the conjecture for c=2c=2 in a purely algebraic manner. The method can be generalized for smaller modulus cases, and it turns out that the conjecture holds true for infinitely many specific values of cc not being perfect powers. The main novelty is to apply a special type of the pp-adic analogue to Baker's theory on linear forms in logarithms via a certain divisibility relation arising from the existence of two hypothetical solutions to the equation. The other tools include Baker's theory in the complex case and its non-Archimedean analogue for number fields together with various elementary arguments through rational and quadratic numbers, and extensive computation.

Keywords

Cite

@article{arxiv.2205.11217,
  title  = {Number of solutions to a special type of unit equations in two unknowns, II},
  author = {Takafumi Miyazaki and István Pink},
  journal= {arXiv preprint arXiv:2205.11217},
  year   = {2024}
}

Comments

52 pages; the title changed; minor revision