Sensing-Enhanced Handover Criterion for Low-Altitude Wireless Network (LAWNs)

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Li, Jingli, Ma, Yiyan, Ai, Bo, Yuan, Weijie, Cheng, Qingqing, Ma, Guoyu, Yang, Mi, Lu, Yunlong, Yue, Wenwei, Zhong, Zhangdui
Format: Preprint
Published: 2025
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866911089678090240
author Li, Jingli
Ma, Yiyan
Ai, Bo
Yuan, Weijie
Cheng, Qingqing
Ma, Guoyu
Yang, Mi
Lu, Yunlong
Yue, Wenwei
Zhong, Zhangdui
author_facet Li, Jingli
Ma, Yiyan
Ai, Bo
Yuan, Weijie
Cheng, Qingqing
Ma, Guoyu
Yang, Mi
Lu, Yunlong
Yue, Wenwei
Zhong, Zhangdui
contents With the rapid growth of the low-altitude economy, the demand for cellular-enabled low-altitude wireless networks (LAWN) is rising significantly. The three-dimensional mobility of drones will lead to frequent handovers (HOs) in cellular networks, while traditional reference signal received power (RSRP)-based criteria may fail to capture the dynamic environment, causing redundant HOs or HO failures. To address this issue and motivated by the underutilization of sensing information in conventional HO mechanisms, we propose a novel HO activation criterion for drone systems that integrates both sensing parameters provided by integrated sensing and communication (ISAC) signals and RSRP. First, we construct an ISAC signal model tailored for low-altitude scenarios and derive the Cramér--Rao lower bound for sensing distance estimation. Subsequently, we propose a novel joint HO criterion that extends the conventional RSRP-based method by integrating sensing information from ISAC signals, enabling more reliable HOs in dynamic drone environments. Simulation results show that the joint HO criterion outperforms the baseline RSRP-based criterion under different signal-to-noise ratio (SNR) and sensing pilot ratio conditions. Particularly, when the SNR exceeds 0dB and the sensing pilot ratio is 20%, the proposed joint HO criterion reduces the average HO region length by 75.20% and improves the activation probability by 76.31%.
format Preprint
id arxiv_https___arxiv_org_abs_2505_16350
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Sensing-Enhanced Handover Criterion for Low-Altitude Wireless Network (LAWNs)
Li, Jingli
Ma, Yiyan
Ai, Bo
Yuan, Weijie
Cheng, Qingqing
Ma, Guoyu
Yang, Mi
Lu, Yunlong
Yue, Wenwei
Zhong, Zhangdui
Information Theory
With the rapid growth of the low-altitude economy, the demand for cellular-enabled low-altitude wireless networks (LAWN) is rising significantly. The three-dimensional mobility of drones will lead to frequent handovers (HOs) in cellular networks, while traditional reference signal received power (RSRP)-based criteria may fail to capture the dynamic environment, causing redundant HOs or HO failures. To address this issue and motivated by the underutilization of sensing information in conventional HO mechanisms, we propose a novel HO activation criterion for drone systems that integrates both sensing parameters provided by integrated sensing and communication (ISAC) signals and RSRP. First, we construct an ISAC signal model tailored for low-altitude scenarios and derive the Cramér--Rao lower bound for sensing distance estimation. Subsequently, we propose a novel joint HO criterion that extends the conventional RSRP-based method by integrating sensing information from ISAC signals, enabling more reliable HOs in dynamic drone environments. Simulation results show that the joint HO criterion outperforms the baseline RSRP-based criterion under different signal-to-noise ratio (SNR) and sensing pilot ratio conditions. Particularly, when the SNR exceeds 0dB and the sensing pilot ratio is 20%, the proposed joint HO criterion reduces the average HO region length by 75.20% and improves the activation probability by 76.31%.
title Sensing-Enhanced Handover Criterion for Low-Altitude Wireless Network (LAWNs)
topic Information Theory
url https://arxiv.org/abs/2505.16350