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A Data Loss Recovery Technique using Compressive Sensing for Structural Health Monitoring Applications

机译:一种使用压缩传感的数据丢失恢复技术,用于结构健康监测应用

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Recent developments in Wireless Sensor Networks (WSN) benefited various fields, among them Structural Health Monitoring (SHM) is an important application of WSNs. Using WSNs provides multiple advantages such as continuous monitoring of structure, lesser installation costs, fewer human inspections. However, because of the wireless medium, hardware faults, etc., data loss is an unavoidable consequence of WSNs. Recently, a new class of data loss recovery technique using Compressive Sensing (CS) is getting attention from the research community. In these methods, the transmitter sends encoded acceleration data and receiver uses a CS recovery method to recover the original signal. Usually, the encoding process uses a random measurement matrix which makes the process computationally complex to implement on sensor nodes. This paper presents a technique where the signal is encoded using Scrambled Identity Matrix. Using this method reduces the computational complexity and also robust to data loss. A performance analysis of the proposed technique is presented for random and continuous data loss. A comparison with the existing data loss recovery techniques is also shown using simulated data loss (both random and continuous data loss). It is observed that the proposed technique using Scrambled Identity Matrix can reconstruct the signals even after significant loss of data.
机译:无线传感器网络(WSN)的最新发展使各个领域受益,其中结构健康监控(SHM)是WSN的重要应用。使用WSN具有多个优点,例如连续监视结构,降低安装成本,减少人工检查。但是,由于无线介质,硬件故障等原因,数据丢失是WSN不可避免的后果。最近,使用压缩感测(CS)的新型数据丢失恢复技术引起了研究界的关注。在这些方法中,发送器发送编码的加速度数据,而接收器使用CS恢复方法恢复原始信号。通常,编码过程使用随机测量矩阵,这使得该过程在计算上难以实现在传感器节点上实现。本文提出了一种使用加扰身份矩阵对信号进行编码的技术。使用此方法可降低计算复杂度,并且对数据丢失也很健壮。针对随机和连续数据丢失,提出了所提出技术的性能分析。还显示了使用模拟数据丢失(随机和连续数据丢失)与现有数据丢失恢复技术的比较。可以看出,即使在数据大量丢失之后,使用加扰身份矩阵的拟议技术也可以重建信号。

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