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首页> 外文期刊>International journal of computer-supported collaborative learning >Measuring prevalence of other-oriented transactive contributions using an automated measure of speech style accommodation
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Measuring prevalence of other-oriented transactive contributions using an automated measure of speech style accommodation

机译:使用语音风格调节的自动量度方法来衡量其他方向性交往贡献的发生率

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摘要

This paper contributes to a theory-grounded methodological foundation for automatic collaborative learning process analysis. It does this by illustrating how insights from the social psychology and sociolinguistics of speech style provide a theoretical framework to inform the design of a computational model. The purpose of that model is to detect prevalence of an important group knowledge integration process in raw speech data. Specifically, this paper focuses on assessment of transactivity in dyadic discussions, where a transactive contribution is operationalized as one where reasoning is made explicit, and where that reasoning builds on a prior reasoning statement within the discussion. Transactive contributions can be either self-oriented, where the contribution builds on the speaker's own prior contribution, or other-oriented, where the contribution builds on a prior contribution of a conversational partner. Other-oriented transacts are particularly central to group knowledge integration processes. An unsupervised Dynamic Bayesian Network model motivated by concepts from Speech Accommodation Theory is presented and then evaluated on the task of estimating prevalence of other-oriented transacts in dyadic discussions. The evaluation demonstrates a significant positive correlation between an automatic measure of speech style accommodation and prevalence of other-oriented transacts (R=.36, p<.05).
机译:本文为自动协作学习过程分析的理论基础方法奠定了基础。它通过说明语音风格的社会心理学和社会语言学如何提供洞​​察力来提供理论框架来指导计算模型的设计,从而做到这一点。该模型的目的是检测原始语音数据中重要的群体知识整合过程的普遍性。具体而言,本文重点讨论二元讨论中的交易性评估,其中将交易性贡献作为一种操作,其中将推理明确化,并且该推理基于讨论中的先前推理陈述。互动式贡献既可以是自我导向的(基于发言者自己的先前贡献而建立),也可以是其他定向的(其中基于对话伙伴的先前贡献而建立)。面向其他对象的事务对于小组知识集成过程尤其重要。提出了一种基于语音适应理论的概念驱动的无监督动态贝叶斯网络模型,然后在二元讨论中评估估计其他定向事务的普遍性的任务进行了评估。评估表明,言语适应性的自动测量与其他方向的交易的普遍性之间存在显着的正相关(R = .36,p <.05)。

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