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Say It As You Mean It - Analyzing Free User Comments in the VOICE Awards Corpus

机译:按您的意思说-在VOICE Awards语料库中分析免费用户评论

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Usability questionnaires usually contain scales related to effectiveness, efficiency and overall satisfaction which provide a quantitative value for the user's opinion. However, analyzing quantitative data often does not show the reason underlying for a good or bad opinion. Simple questions like "What did you like about the system?" and "What did you not like about the system?" can shade light on the underlying reasons, but a lot of effort is needed for the analysis of such data. Nevertheless, the answers to these questions contain the users' opinion in their own words and hence often show high correlation with the overall rating of the system. In the frame of the SpeechEval [1] project we analyzed the German VOICE Awards corpus over three consecutive years, categorizing the answers to these two free text questions and analyzing correlations between the categories and the overall rating of the systems. We used the data to build a general linear model for predicting the overall rating.
机译:可用性调查表通常包含与有效性,效率和总体满意度有关的量表,这些量表为用户的意见提供了定量的价值。但是,分析定量数据通常不能显示出好或坏意见的根本原因。简单的问题,例如“您喜欢该系统什么?”和“您不喜欢该系统什么?”可以隐藏潜在原因,但是需要大量精力来分析此类数据。然而,这些问题的答案包含了用户自己的话语,因此通常与系统的总体评价高度相关。在SpeechEval [1]项目的框架中,我们连续三年分析了德国VOICE奖的语料库,对这两个自由文本问题的答案进行了分类,并分析了类别与系统整体评分之间的相关性。我们使用数据构建了一个总体线性模型来预测总体评分。

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