A Universal Block Error Rate Bound for Fluid Antenna Systems

Fuente: arXiv
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Main Authors: Zhang, Zhentian, Morales-Jimenez, David, Jiang, Hao, Masouros, Christos
Format: Preprint
Published: 2025
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author Zhang, Zhentian
Morales-Jimenez, David
Jiang, Hao
Masouros, Christos
author_facet Zhang, Zhentian
Morales-Jimenez, David
Jiang, Hao
Masouros, Christos
contents Fluid antenna systems (FASs) offer genuine simplicity for communication network design by eliminating expensive hardware overhead and reducing the complexity of access protocol architectures. Through the discovery of significant spatial diversity within a compact antenna space, FASs enable the implementation of reconfigurable-antenna-based architectures. However, current state-of-the-art studies rarely investigate the impact of finite blocklength constraints on FAS-based designs, leaving a gap in both analytical modeling and the establishment of a solid, universally applicable performance metric for finite blocklength fluid antenna systems (FBL-FAS). In this work, we focus on the study of FBL-FAS and, more importantly, derive a block error rate (BLER) bound that serves as a general and practical performance benchmark across various FAS architectures. The proposed BLER bound is computable both with and without an explicit statistical model, meaning that the BLER performance can be characterized analytically or empirically under model-aware or model-free system scenarios. Moreover, when the statistical model is known, the analytical results derived from the proposed BLER bound exhibit strong alignment with the empirical findings, demonstrating the remarkable simplicity, accuracy, and universality of the proposed BLER bound.
format Preprint
id arxiv_https___arxiv_org_abs_2511_09929
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle A Universal Block Error Rate Bound for Fluid Antenna Systems
Zhang, Zhentian
Morales-Jimenez, David
Jiang, Hao
Masouros, Christos
Information Theory
Fluid antenna systems (FASs) offer genuine simplicity for communication network design by eliminating expensive hardware overhead and reducing the complexity of access protocol architectures. Through the discovery of significant spatial diversity within a compact antenna space, FASs enable the implementation of reconfigurable-antenna-based architectures. However, current state-of-the-art studies rarely investigate the impact of finite blocklength constraints on FAS-based designs, leaving a gap in both analytical modeling and the establishment of a solid, universally applicable performance metric for finite blocklength fluid antenna systems (FBL-FAS). In this work, we focus on the study of FBL-FAS and, more importantly, derive a block error rate (BLER) bound that serves as a general and practical performance benchmark across various FAS architectures. The proposed BLER bound is computable both with and without an explicit statistical model, meaning that the BLER performance can be characterized analytically or empirically under model-aware or model-free system scenarios. Moreover, when the statistical model is known, the analytical results derived from the proposed BLER bound exhibit strong alignment with the empirical findings, demonstrating the remarkable simplicity, accuracy, and universality of the proposed BLER bound.
title A Universal Block Error Rate Bound for Fluid Antenna Systems
topic Information Theory
url https://arxiv.org/abs/2511.09929