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A new efficient error control algorithm for wireless sensor networks in smart grid

机译:智能电网中无线传感器网络的新型高效差错控制算法

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Error detection and correction is an important issue in the design and maintenance of a smart grid communication network to provide reliable communication between sender and receiver. Various error-control coding techniques are employed to reduce bit error rates (BER) in wireless sensor networks (WSNs). The performance of these techniques is also compared and evaluated to find the most suitable technique for WSNs. This is the first study to compare the most efficient coding techniques in the smart grid environment, and it suggests a new error correction algorithm based on this comparison result. Therefore, this article first examines and compares two forward error control (FEC) coding techniques such as Bose-Chaudhuri-Hochquenghem code (BCH) and Reed Solomon code (RS) with various modulation methods including frequency shift keying (FSK), offset quadrature phase-shift keying (OQPSK), and differential phase shift keying (DPSK) in a 500 kV line-of-sight (LoS) substation smart grid environment. Second, as a result of this comparison, a new adaptive error control (AEC) algorithm is proposed. Adaptive error control adaptively changes error correction code (ECC) based on the channel behavior that is observed through the packet error rate (PER) in the recent previous transmissions. The link-quality-aware capacitated minimum hop spanning tree (LQ-CMST) algorithm and the multi-channel scheduling algorithm are used for data transmission over the log-normal channel. Therefore, the performance of compared coding techniques and AEC are also evaluated when multiple channels are used during transmission Further, AEC is compared with static RS and without-FEC methods based on performance metrics such as the throughput, BER, and delay in different smart grid environments, e.g., 500 kV Substation (LoS), underground network transformer vaults (UTV) (LoS), and main power control room (MPR) (LoS). Our simulation results indicate that the proposed AEC algorithm achieves better performances than all those techniques.
机译:错误检测和纠正是设计和维护智能电网通信网络中的重要问题,以提供发送方和接收方之间的可靠通信。在无线传感器网络(WSN)中,采用了各种差错控制编码技术来降低误码率(BER)。还对这些技术的性能进行了比较和评估,以找到最适合WSN的技术。这是第一项比较智能电网环境中最有效编码技术的研究,并基于此比较结果提出了一种新的纠错算法。因此,本文首先研究并比较两种前向误差控制(FEC)编码技术,例如Bose-Chaudhuri-Hochquenghemhem码(BCH)和Reed Solomon码(RS),以及各种调制方法,包括频移键控(FSK),正交正交偏移在500 kV视距(LoS)变电站智能电网环境中使用移相键控(OQPSK)和差分相移键控(DPSK)。其次,作为比较的结果,提出了一种新的自适应错误控制(AEC)算法。自适应错误控制基于最近的先前传输中通过数据包错误率(PER)观察到的信道行为,自适应地更改纠错码(ECC)。链路质量感知的最小跳数生成树(LQ-CMST)算法和多通道调度算法用于对数正态通道上的数据传输。因此,在传输过程中使用多个信道时,还将评估比较编码技术和AEC的性能。此外,基于性能指标(例如吞吐量,BER和不同智能电网中的延迟),将AEC与静态RS和无FEC方法进行比较环境,例如500 kV变电站(LoS),地下网络变压器库(UTV)(LoS)和主电源控制室(MPR)(LoS)。我们的仿真结果表明,提出的AEC算法比所有这些技术都具有更好的性能。

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