Facial Expression Modeling and Synthesis for Patient Simulator Systems: Past, Present, and Future

Maryam Pourebadi, L. Riek
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引用次数: 7

Abstract

Clinical educators have used robotic and virtual patient simulator systems (RPS) for dozens of years, to help clinical learners (CL) gain key skills to help avoid future patient harm. These systems can simulate human physiological traits; however, they have static faces and lack the realistic depiction of facial cues, which limits CL engagement and immersion. In this article, we provide a detailed review of existing systems in use, as well as describe the possibilities for new technologies from the human–robot interaction and intelligent virtual agents communities to push forward the state of the art. We also discuss our own work in this area, including new approaches for facial recognition and synthesis on RPS systems, including the ability to realistically display patient facial cues such as pain and stroke. Finally, we discuss future research directions for the field.
面部表情建模和合成的病人模拟器系统:过去,现在和未来
几十年来,临床教育工作者一直使用机器人和虚拟患者模拟器系统(RPS)来帮助临床学习者(CL)获得关键技能,以帮助避免未来对患者的伤害。这些系统可以模拟人类的生理特征;然而,他们的脸是静态的,缺乏对面部线索的真实描绘,这限制了CL的沉浸感。在本文中,我们详细回顾了现有系统的使用情况,并描述了人机交互和智能虚拟代理社区的新技术推动技术发展的可能性。我们还讨论了我们在这一领域的工作,包括在RPS系统上进行面部识别和合成的新方法,包括真实显示患者面部线索(如疼痛和中风)的能力。最后,对该领域未来的研究方向进行了展望。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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