Propagation and Rate-Aware Cell Switching Optimization in HAPS-Assisted Wireless Networks

Fuente: arXiv
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Main Authors: Uluçınar, Mehmet Eren, Ersoy, Özgün, Ciloglu, Berk, Ozturk, Metin, Gorcin, Ali
Format: Preprint
Published: 2026
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author Uluçınar, Mehmet Eren
Ersoy, Özgün
Ciloglu, Berk
Ozturk, Metin
Gorcin, Ali
author_facet Uluçınar, Mehmet Eren
Ersoy, Özgün
Ciloglu, Berk
Ozturk, Metin
Gorcin, Ali
contents Cell switching is a promising approach for improving energy efficiency in wireless networks; however, existing studies largely rely on simplified models and energy-centric formulations that overlook key performance-limiting factors. This paper revisits the cell switching concept by redefining its modeling assumptions and mathematical formulation, explicitly incorporating realistic propagation effects such as building entry loss (BEL) and atmospheric losses relevant to non-terrestrial networks (NTN), particularly high-altitude platform station (HAPS). Beyond proposing a new cell switching strategy, the conventional energy-focused problem is reformulated as a multi-objective optimization framework that jointly minimizes power consumption, unconnected users, and data rate degradation. Through this reformulation, the proposed methods ensure that energy-efficient operation is achieved without compromising user connectivity and data rate performance, thereby inherently supporting sustainability objectives for sixth-generation (6G) networks. To solve this reformulated problem, two complementary approaches are employed: the weighted sum method (WSM), which enables flexible and adaptive weighting mechanism, and the {ε-constraint-inspired method (εCM), which converts connectivity and rate-related objectives into constraints within the conventional energy-focused problem. Moreover, unlike prior work relying only on simulations, this study combines system-level simulations with Sionna-OpenAirInterface (OAI) based emulation on a smaller network to validate the proposed cell switching concept under realistic conditions. The results show that, compared to the conventional approach, WSM reduces rate degradation for up to 70% for high-loss indoor users and eliminates the 44% drop for low-loss indoor users.
format Preprint
id arxiv_https___arxiv_org_abs_2603_10635
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Propagation and Rate-Aware Cell Switching Optimization in HAPS-Assisted Wireless Networks
Uluçınar, Mehmet Eren
Ersoy, Özgün
Ciloglu, Berk
Ozturk, Metin
Gorcin, Ali
Signal Processing
Systems and Control
Cell switching is a promising approach for improving energy efficiency in wireless networks; however, existing studies largely rely on simplified models and energy-centric formulations that overlook key performance-limiting factors. This paper revisits the cell switching concept by redefining its modeling assumptions and mathematical formulation, explicitly incorporating realistic propagation effects such as building entry loss (BEL) and atmospheric losses relevant to non-terrestrial networks (NTN), particularly high-altitude platform station (HAPS). Beyond proposing a new cell switching strategy, the conventional energy-focused problem is reformulated as a multi-objective optimization framework that jointly minimizes power consumption, unconnected users, and data rate degradation. Through this reformulation, the proposed methods ensure that energy-efficient operation is achieved without compromising user connectivity and data rate performance, thereby inherently supporting sustainability objectives for sixth-generation (6G) networks. To solve this reformulated problem, two complementary approaches are employed: the weighted sum method (WSM), which enables flexible and adaptive weighting mechanism, and the {ε-constraint-inspired method (εCM), which converts connectivity and rate-related objectives into constraints within the conventional energy-focused problem. Moreover, unlike prior work relying only on simulations, this study combines system-level simulations with Sionna-OpenAirInterface (OAI) based emulation on a smaller network to validate the proposed cell switching concept under realistic conditions. The results show that, compared to the conventional approach, WSM reduces rate degradation for up to 70% for high-loss indoor users and eliminates the 44% drop for low-loss indoor users.
title Propagation and Rate-Aware Cell Switching Optimization in HAPS-Assisted Wireless Networks
topic Signal Processing
Systems and Control
url https://arxiv.org/abs/2603.10635