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ALDA: An Aggregated LDA for Polarity Enhanced Aspect Identification Technique in Mobile App Domain

机译:ALDA:用于移动应用程序领域中极性增强方面识别技术的聚合LDA

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With the increased popularity of the smart mobile devices, mobile applications (a.k.a apps) have become essential. While the app developers face an extensive challenge to improve user satisfaction by exploiting the valuable feedbacks, the app users are overloaded with way too many apps. Extracting the valuable features from apps and mining the associated sentiments is of utmost importance for the app developers. Similarly, from the user perspective, the key preferences should be identified. This work deals with profiling users and apps using a novel LDA based aspect identification technique. Polarity aggregation technique is used to tag the weak features of the apps the developers should concentrate on. The proposed technique has been experimented on an Android review dataset to validate the efficacy compared to state-of-the-art algorithms. Experimental findings suggest superiority and applicability of our model in practical scenarios.
机译:随着智能移动设备的日益普及,移动应用程序(又称aa应用程序)已变得至关重要。尽管应用程序开发人员通过利用宝贵的反馈意见来提高用户满意度时面临着广泛的挑战,但应用程序用户却被太多的应用程序所淹没。从应用程序中提取有价值的功能并挖掘相关的情感对于应用程序开发人员而言至关重要。同样,从用户的角度来看,应该确定关键首选项。这项工作使用基于LDA的新颖方面识别技术来分析用户和应用程序。极性聚合技术用于标记开发人员应专注于的应用程序的弱功能。与最先进的算法相比,已在Android评论数据集上对提出的技术进行了实验,以验证其有效性。实验结果表明,该模型在实际场景中具有优越性和适用性。

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