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Autores principales: Zhao, Yaning, Miszewski, Luca, Deppe, Christian, Pierobon, Massimiliano
Formato: Preprint
Publicado: 2025
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Acceso en línea:https://arxiv.org/abs/2506.14360
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author Zhao, Yaning
Miszewski, Luca
Deppe, Christian
Pierobon, Massimiliano
author_facet Zhao, Yaning
Miszewski, Luca
Deppe, Christian
Pierobon, Massimiliano
contents Molecular communication (MC) enables information exchange at the nano- and microscale, with applications in areas like drug delivery and health monitoring. These event-driven scenarios often require alternatives to traditional transmission. Identification communication, introduced by Ahlswede and Dueck, offers such an approach, in which the receiver only determines whether a specific message was sent, suiting resource-limited and event-triggered systems. This paper combines MC with identification and proposes a one-dimensional (1D) diffusion-based model. Diffusion noise is modeled as a Poisson process, and a lower bound on channel capacity is derived. Simulations, microscopic, and with short-length deterministic codes, validate theoretical results, including the channel impulse response and error bounds. The findings support the design of practical MC systems, with potential use in testbed development.
format Preprint
id arxiv_https___arxiv_org_abs_2506_14360
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Identification for Molecular Communication Based on Diffusion Channel with Poisson Reception Process
Zhao, Yaning
Miszewski, Luca
Deppe, Christian
Pierobon, Massimiliano
Information Theory
Molecular communication (MC) enables information exchange at the nano- and microscale, with applications in areas like drug delivery and health monitoring. These event-driven scenarios often require alternatives to traditional transmission. Identification communication, introduced by Ahlswede and Dueck, offers such an approach, in which the receiver only determines whether a specific message was sent, suiting resource-limited and event-triggered systems. This paper combines MC with identification and proposes a one-dimensional (1D) diffusion-based model. Diffusion noise is modeled as a Poisson process, and a lower bound on channel capacity is derived. Simulations, microscopic, and with short-length deterministic codes, validate theoretical results, including the channel impulse response and error bounds. The findings support the design of practical MC systems, with potential use in testbed development.
title Identification for Molecular Communication Based on Diffusion Channel with Poisson Reception Process
topic Information Theory
url https://arxiv.org/abs/2506.14360