首页> 外文会议>Eighth ACM SIGKDD International Conference on Knowledge Discovery and Data Mining, Jul 23-26, 2002, Edmonton >Finding Surprising Patterns in a Time Series Database in Linear Time and Space
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Finding Surprising Patterns in a Time Series Database in Linear Time and Space

机译:在线性时空中的时间序列数据库中寻找令人惊讶的模式

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摘要

The problem of finding a specified pattern in a time series database (i.e. query by content) has received much attention and is now a relatively mature field. In contrast, the important problem of enumerating all surprising or interesting patterns has received far less attention. This problem requires a meaningful definition of "surprise", and an efficient search technique. All previous attempts at finding surprising patterns in time series use a very limited notion of surprise, and/or do not scale to massive datasets. To overcome these limitations we introduce a novel technique that defines a pattern surprising if the frequency of its occurrence differs substantially from that expected by chance, given some previously seen data.
机译:在时间序列数据库中查找指定模式的问题(即,按内容查询)已受到广泛关注,并且现在已成为一个相对成熟的领域。相反,枚举所有令人惊讶或有趣的模式的重要问题却很少受到关注。这个问题需要有意义的“惊喜”定义和有效的搜索技术。以前在时间序列中寻找令人惊讶的模式的所有尝试都使用了非常有限的令人惊讶的概念,并且/或者没有扩展到庞大的数据集。为了克服这些局限性,我们引入了一种新颖的技术,该技术定义了一种模式,如果给定一些先前看到的数据,则其发生频率与偶然发生的预期频率显着不同时会令人惊讶。

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