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Macro-scale Mobile App Market Analysis using Customized Hierarchical Categorization

机译:使用自定义层次分类宏观缩放移动应用市场分析

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Thanks to the widespread use of smart devices, recent years have witnessed the proliferation of mobile apps available on online stores such as Apple iTunes and Google Play. As the number of new mobile apps continues to grow at a rapid pace, automatic classification of the apps has become an increasingly important problem to facilitate browsing, searching, and recommending them. This paper presents a framework that automatically labels apps with a richer and more detailed categorization and uses the labeled apps to study the app market. Leveraging a fine-grained, hierarchical ontology as a guide, we developed a framework not only to label the apps with fine-grained categorical information but also to induce a customized class hierarchy optimized for mobile app classification. With the classification accuracy of 93%, large-scale categorization conducted with our framework on 168,000 Google Play apps discovers novel inter-class relationships among categories of Google Play market.
机译:由于智能设备的广泛使用,近年来目睹了在线商店(如Apple iTunes和Google Play)上提供的移动应用程序的扩散。随着新移动应用程序的数量继续以快速增长,应用程序的自动分类已成为越来越重要的问题,便于浏览,搜索和推荐它们。本文介绍了一个框架,可自动标记具有更丰富和更详细的分类的应用程序,并使用标记的应用程序来研究应用市场。利用一个细粒度的分层本体作为指导,我们开发了一个框架,不仅要使用细粒度的分类信息标记应用程序,还可以诱导针对移动应用程序分类优化的自定额类别层次结构。凭借93%的分类准确性,通过我们的框架进行了大规模分类,我们在168,000谷歌播放应用程序中发现了Google Play市场类别的小说间关系。

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