Central Limit Theorem for Mutation Systems

Fuente: arXiv
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Autores principales: Koram, Liav, Elishco, Ohad
Formato: Preprint
Publicado: 2026
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author Koram, Liav
Elishco, Ohad
author_facet Koram, Liav
Elishco, Ohad
contents DNA-based storage has emerged as a promising alternative to traditional data storage methods, offering unmatched advantages in data density, longevity, and sustainability. Two main approaches have developed: in-vitro storage, where information is synthesized in controlled environments, and in-vivo storage, where data is embedded within an organism's DNA for enhanced confidentiality and protection. While in-vivo DNA storage provides unique advantages, it faces significant challenges from mutations, including duplications, deletions, and substitutions, which cause sequence evolution over time. Thus, in-vivo systems experience continuous sequence alterations that increase length and change composition, making error correction particularly challenging. We study the asymptotic behavior of mutation systems, which model the probabilistic evolution of sequences over a finite alphabet, and are central to the analysis of in-vivo DNA-based data storage. Building upon prior works that established the limit of empirical $k$-tuple frequencies, we characterize the stochastic fluctuations around these values by establishing a Central Limit Theorem (CLT). Our approach leverages the spectral properties of the $k$-substitution matrix to project the centered count vectors, allowing us to approximate the system via a martingale difference sequence, and then verifying the classical martingale CLT conditions. In addition, we explicitly derive the limiting covariance matrix.
format Preprint
id arxiv_https___arxiv_org_abs_2604_25445
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Central Limit Theorem for Mutation Systems
Koram, Liav
Elishco, Ohad
Information Theory
DNA-based storage has emerged as a promising alternative to traditional data storage methods, offering unmatched advantages in data density, longevity, and sustainability. Two main approaches have developed: in-vitro storage, where information is synthesized in controlled environments, and in-vivo storage, where data is embedded within an organism's DNA for enhanced confidentiality and protection. While in-vivo DNA storage provides unique advantages, it faces significant challenges from mutations, including duplications, deletions, and substitutions, which cause sequence evolution over time. Thus, in-vivo systems experience continuous sequence alterations that increase length and change composition, making error correction particularly challenging. We study the asymptotic behavior of mutation systems, which model the probabilistic evolution of sequences over a finite alphabet, and are central to the analysis of in-vivo DNA-based data storage. Building upon prior works that established the limit of empirical $k$-tuple frequencies, we characterize the stochastic fluctuations around these values by establishing a Central Limit Theorem (CLT). Our approach leverages the spectral properties of the $k$-substitution matrix to project the centered count vectors, allowing us to approximate the system via a martingale difference sequence, and then verifying the classical martingale CLT conditions. In addition, we explicitly derive the limiting covariance matrix.
title Central Limit Theorem for Mutation Systems
topic Information Theory
url https://arxiv.org/abs/2604.25445