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An empirical study of the structure of relevant keywords in a search engine using the minimum spanning tree

机译:使用最小生成树的搜索引擎中相关关键字结构的实证研究

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This paper provides a comprehensive study of the structure of relevant keywords in a search engine using the minimum spanning tree (MST) approach. In the process of constructing MST's, we introduce a novel metric to measure a distance between keywords by applying an integration of the Pearson correlation and the query-based cosine similarity. From this work, we made several meaningful observations about the networks of relevant keywords. First, keyword networks in a search engine exhibit the small-world effect and the scale-free property. Second, only a few among relevant keywords in the order of popularity are positively correlated and there is no significantly positive or negative relationship for the rest of relevant keywords. Third, the degree of searching activity for relevant keywords varies depending on whether they are branded keywords or non-branded keywords as well as the characteristics of product categories. Fourth, the mean correlation coefficient for keyword impressions during slow season increases. Finally, both k_(max) and the betweenness centrality for high-involvement products are higher than those for low-involvement products.
机译:本文使用最小生成树(MST)方法对搜索引擎中相关关键字的结构进行了全面的研究。在构造MST的过程中,我们通过应用Pearson相关性和基于查询的余弦相似度的积分,引入了一种新颖的度量来测量关键字之间的距离。通过这项工作,我们对相关关键字的网络做了一些有意义的观察。首先,搜索引擎中的关键字网络具有小世界效应和无标度特性。其次,在相关关键字中,只有几个按流行度顺序是正相关的,而其余相关关键字之间没有显着的正相关或负相关。第三,相关关键词的搜索活动程度取决于它们是品牌关键词还是非品牌关键词以及产品类别的特征。第四,淡季关键字展示次数的平均相关系数增加。最后,高参与度产品的k_(max)和中间性都高于低参与度产品。

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