Analyzing the Language of Therapist Empathy in Motivational Interview based Psychotherapy.

Bo Xiao, Dogan Can, Panayiotis G Georgiou, David Atkins, Shrikanth S Narayanan
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Abstract

Empathy is an important aspect of social communication, especially in medical and psychotherapy applications. Measures of empathy can offer insights into the quality of therapy. We use an N-gram language model based maximum likelihood strategy to classify empathic versus non-empathic utterances and report the precision and recall of classification for various parameters. High recall is obtained with unigram while bigram features achieved the highest F1-score. Based on the utterance level models, a group of lexical features are extracted at the therapy session level. The effectiveness of these features in modeling session level annotator perceptions of empathy is evaluated through correlation with expert-coded session level empathy scores. Our combined feature set achieved a correlation of 0.558 between predicted and expert-coded empathy scores. Results also suggest that the longer term empathy perception process may be more related to isolated empathic salient events.

动机访谈心理治疗中治疗师共情语言分析
共情是社会沟通的一个重要方面,特别是在医疗和心理治疗应用中。同理心的测量可以提供对治疗质量的洞察。我们使用基于N-gram语言模型的最大似然策略对共情话语和非共情话语进行分类,并报告了不同参数下分类的准确率和召回率。单图特征的查全率较高,双图特征的查全率最高。在话语层次模型的基础上,提取治疗会话层次的词汇特征。通过与专家编码的会话级共情得分的相关性来评估这些特征在建模会话级注释者共情感知方面的有效性。我们的综合特征集在预测和专家编码的共情得分之间实现了0.558的相关性。结果还表明,长期共情知觉过程可能与孤立的共情显著事件更相关。
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