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Efficient storage and processing of large guided wave data sets with random projections

机译:随机投影的大型导波数据集的高效存储和处理

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摘要

Over the last several decades, structural health monitoring systems have grown into increasingly diverse applications. Structural health monitoring excels with large data sets that can capture the typical variability, novel events, and undesired degradation over time. As a result, the efficient storage and processing of these large, guided wave data sets have become a key feature for successful application of structural health monitoring. This article describes a series of investigations into the use of random projection theory to significantly reduce storage burdens and improve computational complexity while not significantly affecting common damage detection strategies. Random projections are used as a lossy compression scheme that approximately retains metrics of distance or similarity between data records. Random projection compression is evaluated using a large 1,440,000 measurement data set, which was collected over 5 months in an unprotected outdoor environment. Accurate damage detection, after the compression process, is achieved through correlation analysis and singular value decomposition. The results indicate consistent detection performance with over 95% of storage compression and more than a 477 times speed improvement in computational cost for singular value decomposition-based damage detection.
机译:在过去的几十年中,结构健康监测系统已成为越来越多样化的应用。结构健康监测具有大数据集的优势,可以捕获典型的变异性,新颖事件以及随着时间的推移不期望的降级。结果,高效的存储和处理这些大型引导波数据集已经成为成功应用结构健康监测的关键特征。本文介绍了一系列对使用随机投影理论的调查,以显着降低存储负担,提高计算复杂性,同时不会显着影响常见的损坏检测策略。随机投影用作有损压缩方案,其大致保留数据记录之间的距离或相似度的度量。使用大型1,440,000个测量数据集进行随机投影压缩,该数据集在未受保护的室外环境中在5个月内收集。通过相关性分析和奇异值分解来实现精确损坏检测。结果表明,一致的检测性能,具有超过95%的储存压缩,并且在奇异值分解的损伤检测中计算成本超过477倍的速度提高。

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