vix.ing · top · new · best · stats

Fractal Zeta Functions and Complex Dimensions of Ahlfors Metric Measure Spaces

2025/04/07 by Michel L. Lapidus, Lapidus, Michel L., Sean Watson +1 · 1 citation
Mathematics · #11M41 #28A75 #28A80 (Primary) #46E30 (Secondary) #Advanced Banach Space Theory #Advanced Topology and Set Theory #Complex Variables (math.CV) #FOS: Mathematics #Mathematical Dynamics and Fractals #Metric Geometry (math.MG)

paper · pdf · doi:10.48550/arxiv.2504.04720

openalex publication_date 2025/04/07 · openalex created_date 2025/10/10 · openalex updated_date 2026/07/28

Abstract

While classical analysis dealt primarily with smooth spaces, much research has been done in the last half century on expanding the theory to the nonsmooth case. Metric Measure spaces are the natural setting for such analysis, and it is thus important to understand the geometry of subsets of these spaces. In this paper we will focus on the geometry of Ahlfors regular spaces, Metric Measure spaces with an additional regularity condition. Historically, fractals have been studied using different ideas of dimension which have all proven to be unsatisfactory to some degree. The theory of complex dimensions, developed by M.L. Lapidus and a number of collaborators, was developed in part to better understand fractality in the Euclidean case and seeks to overcome these problems. Of particular interest is the recent theory of complex dimensions in higher-dimensional Euclidean spaces, as studied by M.L. Lapidus, G. Radunović, and D. Zubrinić, who introduced and studied the properties of the distance zeta function ζA. We will show that this theory of complex dimensions naturally generalizes to the case of Ahlfors regular spaces, as the distance zeta function can be modified to these spaces and all of its main properties carry over. We also provide a selection of examples in Ahlfors spaces, as well as hints that the theory can be expanded to a more general setting.

Citations

Related