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Optimal fiber link fault decision for optical 2D coding-monitoring scheme in passive optical networks

机译:无源光网络中光学二维编码监控方案的最佳光纤链路故障决策

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摘要

Several fiber-fault monitoring schemes based on traditional OTDR technique have been proposed for monitoring fiber links in passive optical networks (PONs). However, in a tree-topology PON, it is difficult for network managers to distinguish which fiber link the fault occurs in. Thus, some schemes based on an optical coding technique have been proposed to overcome the optical time-domain reflectometry disadvantages in monitoring point-to-multipoint networks. In this paper, we develop a mathematical model for an optical 2D coding-monitoring system in PONs which includes three modules: detection pulse generator, optical encoding and transmission, and optical decoding and fault identification. We also analyze the correlation distance expression and interference probability with partial overlap between any two 2D codes. In addition, we derive close-form expressions for P (detection probability) and P (false-alarm probability) by analyzing the target signal, interference, and all possible noises, which are used to calculate optimal decision probability. The system performance in terms of signal-to-noise ratio, signal-to-interference ratio (SIR), and the optimal decision probability are investigated with different system parameters such as client separation distance, network size, transmitted pulse width, and transmitted pulse power. The extensive simulation results show that the optimal transmitted pulse width is T ≈ 1 ns and the SIR is to a lower bound of ∼21 dB. It is concluded that suitable system variables can be chosen optimally to facilitate the optimal decision.
机译:提出了几种基于传统OTDR技术的光纤故障监控方案,用于监控无源光网络(PON)中的光纤链路。但是,在树形结构的PON中,网络管理员很难区分故障发生在哪条光纤链路上。因此,提出了一些基于光编码技术的方案来克服光时域反射法在监测点上的缺点。多点网络。在本文中,我们为PON中的光学2D编码监视系统开发了一个数学模型,该模型包括三个模块:检测脉冲发生器,光学编码和传输以及光学解码和故障识别。我们还分析了相关距离表达式和干扰概率,其中任意两个2D码之间存在部分重叠。此外,我们通过分析目标信号,干扰和所有可能的噪声来导出用于P(检测概率)和P(错误警报概率)的近似形式表达式,这些表达式用于计算最佳决策概率。使用不同的系统参数(例如客户端分离距离,网络大小,传输脉冲宽度和传输脉冲)研究系统在信噪比,信号干扰比(SIR)和最佳决策概率方面的性能。功率。广泛的仿真结果表明,最佳的发射脉冲宽度为T≈1 ns,并且SIR约为21 dB的下限。结论是,可以最佳地选择合适的系统变量以促进最佳决策。

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