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ANOMALY LOCALIZATION DENOISING AUTOENCODER FOR MACHINE CONDITION MONITORING

机译:异常本地化去噪自动化机器条件监控

摘要

Systems, techniques, and computer-program products that, individually and in combination, permit machine condition monitoring are provided. In some aspects, state estimation and anomaly localization can be determined jointly. To that end, in some embodiments, systems can be configured using at least a synthetic training dataset. The synthetic training dataset includes sensor output data that incorporates synthetic a random amount of noise to each one of multiple sensor devices that probe an industrial machine. The training dataset also includes synthetic information indicative of location of anomalous sensor device(s) of the multiple sensor devices. Therefore, the systems can learn to determine state estimation and anomalous localization concurrently, in a single operation. Accordingly, the training of the systems is consistent with the operation of the systems during machine condition monitoring. Embodiments of the disclosure provide superior predictive performance over conventional machine condition monitoring approaches.
机译:提供,单独和组合,提供系统,技术和计算机程序产品,允许允许机器状态监控。在一些方面,可以共同确定状态估计和异常定位。为此,在一些实施例中,可以使用至少一个合成训练数据集来配置系统。合成训练数据集包括传感器输出数据,该传感器输出数据包含探测工业机器的多个传感器设备中的每一个随机噪声。训练数据集还包括表示多个传感器装置的异常传感器装置的位置的合成信息。因此,在单个操作中,系统可以学习同时确定状态估计和异常本地化。因此,系统的训练与在机器状态监视期间系统的操作一致。本公开的实施例提供了通过传统机器状态监测方法的卓越的预测性能。

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