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医疗环境中非语言交流的自动视频分析

Automated Video Analysis of Non-verbal Communication in a Medical Setting.

作者信息

Hart Yuval, Czerniak Efrat, Karnieli-Miller Orit, Mayo Avraham E, Ziv Amitai, Biegon Anat, Citron Atay, Alon Uri

机构信息

The Theater Lab, Weizmann Institute of Science Rehovot, Israel.

The Department of Neuroscience, Sackler Faculty of Medicine, Tel Aviv UniversityTel Aviv, Israel; The Psychiatry Department, Chaim Sheba Medical CenterRamat-Gan, Israel.

出版信息

Front Psychol. 2016 Aug 23;7:1130. doi: 10.3389/fpsyg.2016.01130. eCollection 2016.

Abstract

Non-verbal communication plays a significant role in establishing good rapport between physicians and patients and may influence aspects of patient health outcomes. It is therefore important to analyze non-verbal communication in medical settings. Current approaches to measure non-verbal interactions in medicine employ coding by human raters. Such tools are labor intensive and hence limit the scale of possible studies. Here, we present an automated video analysis tool for non-verbal interactions in a medical setting. We test the tool using videos of subjects that interact with an actor portraying a doctor. The actor interviews the subjects performing one of two scripted scenarios of interviewing the subjects: in one scenario the actor showed minimal engagement with the subject. The second scenario included active listening by the doctor and attentiveness to the subject. We analyze the cross correlation in total kinetic energy of the two people in the dyad, and also characterize the frequency spectrum of their motion. We find large differences in interpersonal motion synchrony and entrainment between the two performance scenarios. The active listening scenario shows more synchrony and more symmetric followership than the other scenario. Moreover, the active listening scenario shows more high-frequency motion termed jitter that has been recently suggested to be a marker of followership. The present approach may be useful for analyzing physician-patient interactions in terms of synchrony and dominance in a range of medical settings.

摘要

非言语交流在医生与患者建立良好关系中起着重要作用,并且可能会影响患者健康结局的各个方面。因此,分析医疗环境中的非言语交流非常重要。当前测量医学中非言语互动的方法采用人工评分员进行编码。这类工具劳动强度大,因此限制了可能研究的规模。在此,我们展示一种用于医疗环境中非言语互动的自动视频分析工具。我们使用与扮演医生的演员互动的受试者的视频来测试该工具。演员对受试者进行访谈,采用两种预先编写好的访谈场景之一:在一种场景中,演员与受试者的互动极少。第二种场景包括医生积极倾听并关注受试者。我们分析二元组中两人总动能的互相关,并且还表征他们运动的频谱。我们发现在两种表演场景之间,人际运动同步性和跟随性存在很大差异。积极倾听场景比另一种场景表现出更多的同步性和更对称的跟随性。此外,积极倾听场景表现出更多被称为抖动的高频运动,最近有人提出这是跟随性的一个标志。本方法可能有助于在一系列医疗环境中从同步性和主导性方面分析医患互动。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9cd4/4993763/1a84c37391de/fpsyg-07-01130-g0001.jpg

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