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Improving Medical Studentsa?? Awareness of Their Non-Verbal Communication through Automated Non-Verbal Behavior Feedback

机译:提高医学生a ??通过自动非言语行为反馈了解他们的非言语交流

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The nonverbal communication of clinicians has an impact on patientsa?? satisfaction and health outcomes. Yet medical students are not receiving enough training on the appropriate nonverbal behaviors in clinical consultations. Computer vision techniques have been used for detecting different kinds of nonverbal behaviors, and they can be incorporated in educational systems that help medical students develop communication skills. We describe EQClinic, a system that combines a tele-health platform with automated nonverbal behavior recognition. The system aims to help medical students improve their communication skills through a combination of human and automatically generated feedback. EQClinic provides fully automated calendaring and video-conferencing features for doctors or medical students to interview patients. We describe a pilot (18 dyadic interactions) in which standardized patients (i.e. someone acting as a real patient), were interviewed by medical students and provided assessments and comments about their performance. After the interview, computer vision and audio processing algorithms were used to recognize studentsa?? nonverbal behaviors known to influence the quality of a medical consultation: including turn taking, speaking ratio, sound volume, sound pitch, smiling, frowning, head leaning, head tilting, nodding, shaking, face-touch gestures and overall body movements. The results showed that studentsa?? awareness of nonverbal communication was enhanced by the feedback information, which was both provided by the standardized patients and generated by the machines.
机译:临床医师的非语言交流对患者有影响?满意度和健康结果。然而,医学生并未在临床咨询中就适当的非语言行为接受足够的培训。计算机视觉技术已用于检测不同种类的非语言行为,并且可以将其结合到帮助医学生发展交流技能的教育系统中。我们描述了EQClinic,该系统结合了远程医疗平台和自动非语言行为识别功能。该系统旨在通过结合人工和自动生成的反馈来帮助医学生提高他们的沟通能力。 EQClinic为医生或医学生提供了完全自动化的日历和视频会议功能,以采访患者。我们描述了一个试点(18次双向互动),其中标准化的患者(即作为真实患者的某人)接受了医学生的采访,并对他们的表现进行了评估和评论。面试后,计算机视觉和音频处理算法被用来识别学生。已知会影响医疗咨询质量的非语言行为:包括转弯,说话比例,音量,音高,微笑,皱眉,头部倾斜,头部倾斜,点头,摇晃,面部触摸手势和全身运动。结果表明,学生们?反馈信息增强了非语言交流的意识,反馈信息既由标准化患者提供,又由机器生成。

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