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Text-Based User-kNN: Measuring User Similarity Based on Text Reviews

机译:基于文本的用户KNN:根据文本评论测量用户相似性

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This article reports on a modification of the user-kNN algorithm that measures the similarity between users based on the similarity of text reviews, instead of ratings. We investigate the performance of text semantic similarity measures and we evaluate our text-based user-kNN approach by comparing it to a range of ratings-based approaches in a ratings prediction task. We do so by using datasets from two different domains: movies from RottenTomatoes and Audio CDs from Amazon Products. Our results show that the text-based user-kNN algorithm performs significantly better than the ratings-based approaches in terms of accuracy measured using RMSE.
机译:本文报告了根据文本评论的相似性测量用户之间的相似性的用户核对算法的修改,而不是额定值。我们调查文本语义相似度措施的性能,并通过将其与评级预测任务中的基于评级的一系列方法进行比较来评估基于文本的用户核武器方法。我们通过使用来自两个不同域的数据集:来自亚马逊产品的rottentomatoes和音频CD的电影。我们的结果表明,基于文本的用户KNN算法比使用RMSE测量的准确度的基于评级的方法显着更好地执行。

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