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Main Authors: Ishizaki, Takayuki, Kawaguchi, Takahiro, Yano, Yuichiro, Hanado, Yuko
Format: Preprint
Published: 2025
Subjects:
Online Access:https://arxiv.org/abs/2504.15540
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author Ishizaki, Takayuki
Kawaguchi, Takahiro
Yano, Yuichiro
Hanado, Yuko
author_facet Ishizaki, Takayuki
Kawaguchi, Takahiro
Yano, Yuichiro
Hanado, Yuko
contents This paper presents a novel theoretical framework, called explicit ensemble mean (EEM) synchronization. This framework unifies time scale generation, clock synchronization, and oscillator frequency regulation within the systems and control theory paradigm. By exploiting the observable canonical decomposition of a standard atomic ensemble clock model, the system is decomposed into two complementary components: the observable part, which represents the synchronization error, and the unobservable part, which captures the synchronization destination. Within this structure, we mathematically prove that standard Kalman filtering, which is widely used in current time scale generation, not only performs observable state estimation, but also significant unobservable state estimation, and it can be interpreted as a special case of the proposed framework that optimizes long-term frequency stability in terms of the Allan variance. Furthermore, applying state feedback control based on Kalman filtering to each component achieves optimal time scale generation, clock synchronization, and oscillator frequency regulation in a unified manner. The proposed framework provides a foundation for developing explainable timing systems.
format Preprint
id arxiv_https___arxiv_org_abs_2504_15540
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Explicit Ensemble Mean Clock Synchronization for Optimal Atomic Time Scale Generation
Ishizaki, Takayuki
Kawaguchi, Takahiro
Yano, Yuichiro
Hanado, Yuko
Systems and Control
This paper presents a novel theoretical framework, called explicit ensemble mean (EEM) synchronization. This framework unifies time scale generation, clock synchronization, and oscillator frequency regulation within the systems and control theory paradigm. By exploiting the observable canonical decomposition of a standard atomic ensemble clock model, the system is decomposed into two complementary components: the observable part, which represents the synchronization error, and the unobservable part, which captures the synchronization destination. Within this structure, we mathematically prove that standard Kalman filtering, which is widely used in current time scale generation, not only performs observable state estimation, but also significant unobservable state estimation, and it can be interpreted as a special case of the proposed framework that optimizes long-term frequency stability in terms of the Allan variance. Furthermore, applying state feedback control based on Kalman filtering to each component achieves optimal time scale generation, clock synchronization, and oscillator frequency regulation in a unified manner. The proposed framework provides a foundation for developing explainable timing systems.
title Explicit Ensemble Mean Clock Synchronization for Optimal Atomic Time Scale Generation
topic Systems and Control
url https://arxiv.org/abs/2504.15540