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Is the SAFE Approach Too Simple for App Feature Extraction? A Replication Study

机译:SAFE方法对于应用程序特征提取是否过于简单?复制研究

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[Context and motivation] Automatic extraction and analysis of app features from user reviews is helpful for software developers to better understand users perceptions of delivered app features. Recently, a rule-based approach called safe was proposed to automatically extract app features from user reviews. safe was reported to obtain superior performance in terms of precision and recall over previously proposed techniques. However, the procedure used to evaluate safe was in part subjective and not repeatable and thus the whole evaluation might not be reliable. [Question/problem] The goal of our study is to perform an external replication of the safe evaluation using an objective and repeatable approach. [Principal ideas/results] To this end, we first implemented safe and checked the correctness of our implementation on the set of app descriptions that were used and published by the authors of the original study. We applied our safe implementation to eight review datasets (six app review datasets, one laptop review dataset, one restaurant review dataset) and evaluated its performance against manually annotated feature terms. Our results suggest that the precision of the safe approach is strongly influenced by the density of the annotated app features in a review dataset. Overall, we obtained an average precision and recall of 0.120 and 0.539, respectively which is lower than the performance reported in the original safe study. [Contribution] We performed an unbiased and reproducible evaluation of the safe approach for user reviews. We make our implementation and all datasets used for the evaluation available for replication by others.
机译:[上下文和动机]从用户评论中自动提取和分析应用程序功能有助于软件开发人员更好地理解用户对已交付应用程序功能的看法。最近,有人提出了一种称为“安全”的基于规则的方法来从用户评论中自动提取应用功能。据报道,在安全性和召回性方面,safe优于先前提出的技术。但是,用于评估安全性的过程在某种程度上是主观的,并且不可重复,因此整个评估可能并不可靠。 [问题/问题]我们研究的目标是使用客观和可重复的方法对安全性评估进行外部复制。 [主要思想/结果]为此,我们首先实施了安全措施,并根据原始研究的作者使用和发布的一组应用程序说明检查了实施方案的正确性。我们将安全实施应用于八个评论数据集(六个应用程序评论数据集,一个笔记本电脑评论数据集,一个餐厅评论数据集),并根据手动注释的功能条款评估了其性能。我们的结果表明,安全方法的精度受评论数据集中带注释的应用程序功能的密度强烈影响。总体而言,我们获得的平均精度和召回率分别为0.120和0.539,低于最初的安全性研究报告的性能。 [贡献]我们对用户评论的安全方法进行了公正且可重复的评估。我们将实现和评估所用的所有数据集都提供给他人复制。

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