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Real-Time Event Detection in Time-Series Classification Based on Amplitude Rejection

机译:基于幅度抑制的时间序列分类中的实时事件检测

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Classification methods are widely used in several types of applications and a lot of research works report highly accurate results on their ability to predict in unseen data. However, results are usually based on strong assumptions related to data preprocessing that might not hold in real world applications. The training set in practice can significantly differ to that of testing, especially when the classification process is carried out in real-time and the required preprocessing is not applicable without prior knowledge on the testing signals such as its length and amplitude. Sampling methods like sliding or additive window are usually employed, but not always resolve the problem that in many cases results in false positives. This work proposes an algorithm for real-time classification of signals with unknown length, based on a feature transformation that enables the classifier only when the signal's amplitude is within the expected event range. The proposed transformation can be used to generalize a classifier in similar data by only requiring knowledge of the expected event amplitude. The real-time performance of the proposed algorithm is evaluated in two industrial processes and its generalization ability in two novel (a synthetic and an industrial) data sets.
机译:分类方法已广泛用于多种类型的应用程序中,许多研究工作报告了它们在看不见的数据中具有预测能力的非常准确的结果。但是,结果通常基于与数据预处理有关的强大假设,而这些假设在现实世界的应用程序中可能不成立。在实践中设置的训练可能与测试的训练有很大不同,尤其是当分类过程是实时执行的,并且在没有事先了解测试信号(例如长度和幅度)的情况下,所需的预处理不适用。通常采用诸如滑动窗口或加法窗口之类的采样方法,但并不能始终解决很多情况下导致误报的问题。这项工作提出了一种基于特征变换的实时分类算法,该算法可对未知长度的信号进行实时分类,该特征转换仅在信号幅度在预期事件范围内时才启用分类器。通过仅需要了解预期事件幅度,可以将提出的变换用于在相似数据中归纳分类器。该算法的实时性能在两个工业过程中进行了评估,并在两个新颖的(合成和工业)数据集中对其泛化能力进行了评估。

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