试验台
收发机
计算机科学
频道(广播)
电子工程
吞吐量
误码率
无线
领域(数学)
大气模式
光通信
多项式的
自由空间光通信
通信系统
遥感
功率(物理)
实时计算
无线电频率
光无线
折射率
数据建模
多项式回归
可见光通信
差异(会计)
信噪比(成像)
试验数据
线性回归
回归分析
工程类
作者
Xun Li,Ataberk Atalar,Md Nadim,Sarath Babu,Ozan Berk Boyraz,Christian Joseph Margison,Mustafa Mert Bayer,Arsalan Ahmad,Daji Qiao,Hongwei Zhang,Ozdal Boyraz
标识
DOI:10.1109/jlt.2026.3667493
摘要
This paper presents araoptical, a 10.15 km rural free-space optical communication (FSOC) testbed designed using commercial off-the-shelf (COTS) 10 G SFP+ transceivers and integrated into the ARA wireless living lab. The system features a multi-level autonomous alignment algorithm and real-time link monitoring, enabling stable high-throughput communication in dynamically varying atmospheric conditions. A continuous 2-hour UDP-based bit rate test was conducted, and environmental data were logged to investigate turbulence-induced impairments. A two-stage polynomial regression approach was developed to estimate the refractive index structure parameter ($C_{n}^{2}$) from weather station data and predict link throughput by combining one-minute block-averaged received power with the Rytov variance predicted from the measured meteorological data. The proposed model achieved$R^{2} = 89.92\%$for turbulence estimation and$R^{2} = 62.22\%$for throughput prediction. Our results demonstrate the feasibility of using in-situ environmental sensing and data-driven models to characterize and predict FSOC performance under real-world conditions.
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