# Overlapping iterated function systems from the perspective of Metric   Number Theory

**Authors:** Simon Baker

arXiv: 1901.07875 · 2020-10-20

## TL;DR

This paper introduces a novel metric number theory approach to analyze overlapping iterated function systems, revealing Khintchine-like behavior and providing new proofs for classical results on Bernoulli convolutions and measure properties.

## Contribution

It develops a new method inspired by Diophantine approximation to study overlaps in iterated function systems and introduces the concept of being consistently separated with respect to a measure.

## Key findings

- Typical systems exhibit Khintchine-like measure behavior
- Identifies conditions for exact overlaps in a specific family of IFS
- Provides new proofs of classical measure-theoretic results

## Abstract

In this paper we develop a new approach for studying overlapping iterated function systems. This approach is inspired by a famous result due to Khintchine from Diophantine approximation. This result shows that for a family of limsup sets, their Lebesgue measure is determined by the convergence or divergence of naturally occurring volume sums. For many parameterised families of overlapping iterated function systems, we prove that a typical member will exhibit similar Khintchine like behaviour. Families of iterated function systems our results apply to include those arising from Bernoulli convolutions, the $\{0,1,3\}$ problem, and affine contractions with varying translation parameter. As a by-product of our analysis we obtain new proofs of well known results due to Solomyak on the absolute continuity of Bernoulli convolutions, and when the attractor in the $\{0,1,3\}$ problem has positive Lebesgue measure.   For each $t\in [0,1]$ we let $\Phi_t$ be the iterated function system given by $$\Phi_{t}:=\Big\{\phi_1(x)=\frac{x}{2},\phi_2(x)=\frac{x+1}{2},\phi_3(x)=\frac{x+t}{2},\phi_{4}(x)=\frac{x+1+t}{2}\Big\}.$$ We include a detailed study of this family. We prove that either $\Phi_t$ contains an exact overlap, or we observe Khintchine like behaviour. Our analysis of this family shows that by studying the metric properties of limsup sets, we can distinguish between the overlapping behaviour of iterated function systems in a way that is not available to us by simply studying properties of self-similar measures.   Last of all, we introduce a property of an iterated function system that we call being consistently separated with respect to a measure. We prove that this property implies that the pushforward of the measure is absolutely continuous. We include several explicit examples of consistently separated iterated function systems.

## Full text

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## References

61 references — full list in the complete paper: https://tomesphere.com/paper/1901.07875/full.md

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Source: https://tomesphere.com/paper/1901.07875