A Drift-Aware Clustering and Recovery Strategy for Surface-Deployed Wireless Sensor Networks in Ocean Environments.

IF 3.5 3区 综合性期刊 Q2 CHEMISTRY, ANALYTICAL
Sensors Pub Date : 2025-09-19 DOI:10.3390/s25185883
Lei Wang, Qian-Xun Hong
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引用次数: 0

Abstract

Wireless sensor networks (WSNs) are deployed in terrestrial environments. However, on the sea surface, sensor nodes can drift due to ocean currents and wind; thus, network topologies continuously evolve, and the communication between nodes is frequently disrupted. These unstable connections significantly degrade data transmission stability and overall network performance. These problems are particularly significant in maritime regions where the sea state changes rapidly, thus imposing stringent technical requirements on the design of long-range, reliable, low-latency, and persistent sensing systems. This study proposes a wireless sensor network architecture for sea surface drifting nodes, which is termed Drift-Aware Routing and Clustering with Recovery (DARCR). The proposed system consists of three major components: (1) an enhanced dynamic drift model that more accurately predicts node movement for realistic ocean conditions; (2) a cluster-based framework that prevents disconnection and minimizes delay, which improves cluster stability and adaptability to dynamic environments through refined clustering and route setup mechanisms; and (3) a self-recovery routing strategy for re-establishing communication after disconnection. The proposed method is evaluated using ocean current data from the Copernicus Ocean Data Center simulating a 60-h drifting scenario around the central Taiwan Strait. The experimental results show that the average hourly disconnection rate is maintained at 6.2%, with a variance of 0.31%, and the transmission of newly sensed data is completed within 3 to 5 s, with a maximum delay of approximately 10 s. These findings demonstrate the feasibility of maintaining communication stability and low-latency data transmission for sea surface WSNs that operate in highly dynamic marine conditions.

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海洋环境下地面部署无线传感器网络漂移感知聚类与恢复策略。
无线传感器网络(wsn)部署在地面环境中。然而,在海面上,由于洋流和风的影响,传感器节点会漂移;因此,网络拓扑结构不断演变,节点之间的通信频繁中断。这些不稳定的连接会严重降低数据传输的稳定性和整体网络性能。这些问题在海况变化迅速的海洋地区尤为显著,因此对远程、可靠、低延迟和持久的传感系统的设计提出了严格的技术要求。本研究提出一种海面漂移节点无线传感器网络架构,称为漂移感知路由与恢复聚类(DARCR)。提出的系统由三个主要部分组成:(1)一个增强的动态漂移模型,可以更准确地预测现实海洋条件下的节点运动;(2)基于集群的框架,防止断开和最小化延迟,通过改进的集群和路由设置机制,提高集群的稳定性和对动态环境的适应性;(3)一种自恢复路由策略,用于断开后重新建立通信。利用哥白尼海洋数据中心的海流数据模拟台湾海峡中部60小时漂移情景,对该方法进行了评估。实验结果表明,平均每小时断开率保持在6.2%,方差为0.31%,新感知数据的传输在3 ~ 5 s内完成,最大延迟约为10 s。这些发现证明了在高动态海洋条件下,海面wsn保持通信稳定性和低延迟数据传输的可行性。
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来源期刊
Sensors
Sensors 工程技术-电化学
CiteScore
7.30
自引率
12.80%
发文量
8430
审稿时长
1.7 months
期刊介绍: Sensors (ISSN 1424-8220) provides an advanced forum for the science and technology of sensors and biosensors. It publishes reviews (including comprehensive reviews on the complete sensors products), regular research papers and short notes. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. There is no restriction on the length of the papers. The full experimental details must be provided so that the results can be reproduced.
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