English

The distribution of intermediate prime factors

Number Theory 2023-05-03 v1

Abstract

Let P(12)(n)P^{\left(\frac 12\right)}(n) denote the middle prime factor of nn (taking into account multiplicity). More generally, one can consider, for any α(0,1)\alpha \in (0,1), the α\alpha-positioned prime factor of nn, P(α)(n)P^{(\alpha)}(n). It has previously been shown that loglogP(α)(n)\log \log P^{(\alpha)}(n) has normal order αloglogx\alpha \log \log x, and its values follow a Gaussian distribution around this value. We extend this work by obtaining an asymptotic formula for the count of nxn\leq x for which P(α)(n)=pP^{(\alpha)}(n)=p, for primes pp in a wide range up to xx. We give several applications of these results, including an exploration of the geometric mean of the middle prime factors, for which we find that 1x1<nxlogP(12)(n)A(logx)φ1\frac 1x \sum_{1<n \le x} \log P^{\left(\frac 12 \right)}(n) \sim A(\log x)^{\varphi-1}, where φ\varphi is the golden ratio, and AA is an explicit constant. Along the way, we obtain an extension of Lichtman's recent work on the ``dissected'' Mertens' theorem sums P+(n)yΩ(n)=k1n\sum_{\substack{P^+(n) \le y \\ \Omega(n)=k}} \frac{1}{n} for large values of kk.

Keywords

Cite

@article{arxiv.2305.01117,
  title  = {The distribution of intermediate prime factors},
  author = {Nathan McNew and Paul Pollack and Akash Singha Roy},
  journal= {arXiv preprint arXiv:2305.01117},
  year   = {2023}
}