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Monitoring Abnormal Patterns with Complex Semantics over ICU Data Streams

机译:在ICU数据流中监视具有复杂语义的异常模式

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Monitoring abnormal patterns in data streams is an important research area for many applications. In this paper we present a new approach MAPS (Monitoring Abnormal Patterns over data Streams) to model and identify the abnormal patterns over the massive data streams. Compared with other data streams, ICU streaming data have their own features: pseudo-periodicity and polymorphism. MAPS first extracts patterns from the online arriving data streams and then normalizes them according to their pseudo-periodic semantics. Abnormal patterns will be detected if they are satisfied the predicates defined in the clinician-specifying normal patterns. At last, a real application demonstrates that MAPS is efficient and effective in several important aspects.
机译:监视数据流中的异常模式是许多应用的重要研究区域。在本文中,我们提出了一种新的方法映射(监视数据流的异常模式),以模拟并识别大规模数据流上的异常模式。与其他数据流相比,ICU流数据具有自己的特征:伪周期性和多态性。映射首先从在线到达数据流中提取模式,然后根据其伪周期性语义来规范化它们。如果满足临床医生指定的正常模式中定义的谓词,将检测异常模式。最后,实际应用程序演示了在几个重要方面的地图是高效且有效的。

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