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Designing Implicit Interfaces for Physiological Computing: Guidelines and Lessons Learned Using fNIRS

机译:设计用于生理计算的隐式接口:使用fNIRS的指南和经验教训

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A growing body of recent work has shown the feasibility of brain and body sensors as input to interactive systems. However, the interaction techniques and design decisions for their effective use are not well defined. We present a conceptual framework for considering implicit input from the brain, along with design principles and patterns we have developed from our work. We also describe a series of controlled, offline studies that lay the foundation for our work with functional near-infrared spectroscopy (fNIRS) neuroimaging, as well as our real-time platform that serves as a testbed for exploring brain-based adaptive interaction techniques. Finally, we present case studies illustrating the principles and patterns for effective use of brain data in human-computer interaction. We focus on signals coming from the brain, but these principles apply broadly to other sensor data and in domains such as aviation, education, medicine, driving, and anything involving multitasking or varying cognitive workload.
机译:越来越多的最新研究表明,将大脑和身体传感器用作交互式系统的输入是可行的。但是,交互技术和有效使用它们的设计决策还没有很好的定义。我们提供了一个概念框架,用于考虑来自大脑的隐式输入,以及我们从工作中开发出的设计原理和模式。我们还描述了一系列受控的离线研究,这些研究为我们使用功能性近红外光谱(fNIRS)神经成像以及实时平台提供了基础,该实时平台可作为探索基于大脑的适应性交互技术的试验台。最后,我们提供案例研究,说明在人机交互中有效使用大脑数据的原理和模式。我们专注于来自大脑的信号,但是这些原理广泛应用于其他传感器数据以及航空,教育,医学,驾驶以及涉及多任务或变化的认知工作量的任何领域。

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