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Supervised and Unsupervised Feature Selection for Inferring Social Nature of Telephone Conversations from Their Content

机译:有监督和无监督特征选择可从其内容推断电话对话的社会性质

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摘要

The ability to reliably infer the nature of telephone conversations opens up a variety of applications, ranging from designing context-sensitive user interfaces on smartphones, to providing new tools for social psychologists and social scientists to study and understand social life of different subpopulations within different contexts. Using a unique corpus of everyday telephone conversations collected from eight residences over the duration of a year, we investigate the utility of popular features, extracted solely from the content, in classifying business-oriented calls from others. Through feature selection experiments, we find that the discrimination can be performed robustly for a majority of the calls using a small set of features. Remarkably, features learned from unsupervised methods, specifically latent Dirichlet allocation, perform almost as well as with as those from supervised methods. The unsupervised clusters learned in this task shows promise of finer grain inference of social nature of telephone conversations.
机译:可靠地推断电话交谈性质的能力开辟了各种应用程序,从设计智能手机上的上下文相关用户界面到为社会心理学家和社会科学家提供新工具,以研究和理解不同上下文中不同亚人群的社会生活。我们使用一年中从八个住所收集的日常电话交谈的独特语料,调查了仅从内容中提取的流行功能在对来自其他人的面向业务的呼叫进行分类时的效用。通过特征选择实验,我们发现可以使用少量特征对大多数呼叫进行鲁棒的区分。值得注意的是,从无监督方法中学到的功能(特别是潜在的Dirichlet分配)的性能几乎与从有监督方法学到的功能一样好。在此任务中学习到的无监督的群集显示出可以更好地推断电话对话的社会性质的希望。

著录项

  • 期刊名称 other
  • 作者单位
  • 年(卷),期 -1(1),-1
  • 年度 -1
  • 页码 378–384
  • 总页数 18
  • 原文格式 PDF
  • 正文语种
  • 中图分类
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  • 入库时间 2022-08-21 11:34:06

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