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A Feedback-Based Self-Organizing Query Structure Optimization Algorithm

机译:基于反馈的自组织查询结构优化算法

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Query is one of the most important factors that can directly influence the results of information retrieval (IR). However, the query is defined by the user and thus inevitably has the following two problems: (1) the user often cannot exactly represent their search intention via query terms, (2) the user cannot effectively select the weight of each query term based on its importance toward the query's meaning. The above two problems cause the two types of uncertainty of a query. In this paper, we define them as the uncertainty of the query structure and the uncertainty of the query parameter, respectively. To eliminate the above two types of uncertainty and solve the above two problems, this paper proposes a new algorithm which includes two parts: (1) a self-organizing query structure loop which expands the initial query by adding only one term within each loop based on feedback technology until it meets the terminating condition of expansion defined by the author, and (2) an optimization algorithm based on a genetic algorithm (GA) that optimizes the weights of the expanded query vector within each loop. This algorithm provides a method of finding the optimal number of query expansion terms and improving the precision and recall of the search results. The experiment results show the effectiveness of the proposed algorithm.
机译:查询是可以直接影响信息检索(IR)结果的最重要因素之一。但是,查询是由用户定义的,因此不可避免地存在以下两个问题:(1)用户经常无法通过查询词准确表示其搜索意图,(2)用户无法根据以下信息有效地选择每个查询词的权重它对查询含义的重要性。以上两个问题导致查询的两种不确定性。在本文中,我们将它们分别定义为查询结构的不确定性和查询参数的不确定性。为了消除上述两种类型的不确定性并解决上述两个问题,本文提出了一种新算法,该算法包括两部分:(1)自组织查询结构循环,该循环通过在每个循环中仅添加一个项来扩展初始查询直到它满足作者定义的扩展终止条件为止,以及(2)基于遗传算法(GA)的优化算法,该算法可以优化每个循环内扩展查询向量的权重。该算法提供了一种找到最佳数量的查询扩展项并提高搜索结果的准确性和查全率的方法。实验结果表明了该算法的有效性。

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