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An Entropy-Based Approach for Generating Multi-dimensional Sequential Patterns

机译:一种基于熵的方法,用于生成多维顺序模式

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This paper proposes a new method for generating multidimensional sequential patterns. While the current sequential pattern methods are generating patterns within a single attribute, the proposed method is able to detect them among different attributes. We employ an information theoretic method for generating multi-dimensional sequential patterns with the use of Hellinger entropy measure. A number of theorems are proposed to reduce the computational complexity of the sequential pattern systems. The proposed method is tested on some synthesized transaction databases.
机译:本文提出了一种生成多维序列模式的新方法。虽然当前的顺序模式方法在单个属性内生成图案,但是所提出的方法能够在不同的属性之间检测它们。我们采用了一种信息理论方法,用于使用Hellinger熵测量产生多维顺序模式。提出了许多定理以降低顺序图案系统的计算复杂性。在一些合成的交易数据库上测试了所提出的方法。

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