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User Behaviors in Related Word Retrieval and New Word Detection: A Collaborative Perspective

机译:关联词检索和新词检测中的用户行为:协作视角

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摘要

Nowadays, user behavior analysis and collaborative filtering have drawn a large body of research in the machine learning community. The goal is either to enhance the user experience or discover useful information hidden in the data. In this article, we conduct extensive experiments on a Chinese input method data set, which keeps the word lists that users have used. Then, from the collaborative perspective, we aim to solve two tasks in natural language processing, that is, related word retrieval and new word detection. Motivated by the observation that two words are usually highly related to each other if they co-occur frequently in users' records, we propose a novel semantic relatedness measure between words that takes both user behaviors and collaborative filtering into consideration. We utilize this measure to perform related word retrieval and new word detection tasks. Experimental results on both tasks indicate the applicability and effectiveness of our method.
机译:如今,用户行为分析和协作过滤已在机器学习社区中吸引了大量研究。目标是增强用户体验或发现隐藏在数据中的有用信息。在本文中,我们对中文输入法数据集进行了广泛的实验,该数据集保留了用户使用过的单词列表。然后,从协作的角度出发,我们旨在解决自然语言处理中的两个任务,即相关单词检索和新单词检测。通过观察两个词(如果它们经常出现在用户记录中通常通常彼此高度相关)的观察结果,我们提出了一种新的词之间语义相关性度量,该度量同时考虑了用户行为和协作过滤。我们利用这种措施来执行相关的单词检索和新单词检测任务。这两个任务的实验结果表明了我们方法的适用性和有效性。

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