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Local App Classification using Deep Neural Network based on Mobile App Market Data

机译:基于移动应用市场数据的深神经网络的本地应用分类

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Due to the spread of smartphones, mobile applications (app) have been widely used in daily life. Several apps which provide real-world related information (called "local apps") are useful for not only tourist but also residents. There is a category that seems to contain local apps in app market such as "Travel & Local" in Google Play, but many local apps are categorized into other categories. Thus, we present a method to classify local apps based on app market data using deep neural network (DNN). We leverage the fact that each app is manually labeled by developer to pre-train the DNN. In addition, we create features from an app market data because app markets involve multi-modal data such as app name, category and number of installs. We conducted an experiment on a real-world dataset crawled from Google Play to validate the effectiveness of the proposed method. Our evaluation shows that the proposed method outperforms the baseline method by 5.5% regarding F1 score.
机译:由于智能手机的传播,移动应用程序(应用程序)已广泛用于日常生活中。提供现实世界相关信息的几个应用程序(称为“本地应用程序”)对于不仅是游客而且还有居民来说是有用的。有一个类别似乎包含应用程序市场中的本地应用,例如Google Play中的“旅行和本地”,但许多本地应用程序被分类为其他类别。因此,我们提出了一种基于应用深度神经网络(DNN)的应用市场数据对本地应用程序进行分类的方法。我们利用了每个应用程序由开发人员手动标记,以预先培训DNN。此外,我们从App Market数据创建功能,因为App Markets涉及多模态数据,如应用名称,类别和安装数量。我们在谷歌演出中逐渐爬出的真实数据集进行了实验,以验证所提出的方法的有效性。我们的评价表明,所提出的方法优于基线方法,对F1得分进行5.5%。

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