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A Probabilistic Interpretation for a Geometric Similarity Measure

机译:几何相似度测量的概率解释

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A Boolean logic-based evaluation of a database query returns true on match and false on mismatch. Unfortunately, there are many application scenarios where such an evaluation is not possible or does not adequately meet user expectations about vague and uncertain conditions. Consequently, there is a need for incorporating impreciseness and proximity into a logic-based query language. In this work we propose a probabilistic interpretation for our query language CQQL which is based on a geometric retrieval model. In detail, we show that the CQQL can evaluate arbitrary similarity conditions in a probabilistic fashion. Furthermore, we lay a theoretical foundation for the combination of CQQL with other probabilistic semantics.
机译:基于布尔逻辑的数据库查询的评估返回true匹配和false上的不匹配。不幸的是,存在许多应用场景,其中不可能或不充分满足关于模糊和不确定条件的用户期望。因此,需要将不精确性和接近结合到基于逻辑的查询语言。在这项工作中,我们为我们的查询语言CQQL提出了概率解释,该概率解释基于几何检索模型。详细地,我们表明CQQL可以以概率方式评估任意相似条件。此外,我们为CQQL与其他概率语义的组合奠定了理论基础。

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