在有限制和逆转视觉的有针对性的运动中,自身感知和视觉关系
Yuqian Wang1, Ravindra S Goonetilleke2, Ray F Lin3
1School of Design, Hong Kong Polytechnic University, Hung Hom, Hong Kong SAR.
Applied ergonomics
|September 28, 2025
概括
自身感知显著影响有针对性的运动,特别是有冲突的视觉反. 控制自感变异性减少了性能差异,突出了需要考虑个人感官能力的人与计算机的互动.
科学领域:
- 人类运动和感官集成
- 神经科学和生物力学
- 人与计算机的互动.
背景情况:
- 人类的运动依赖于集成的视觉和自身感知输入.
- 虚拟现实 (VR) 和机器人手术中常见的感官反中断,可能会损害运动控制.
- 了解自身感受的作用对于设计有效的接口和训练协议至关重要.
研究的目的:
- 在视觉条件改变的情况下,研究自身感应对目标运动表现的影响.
- 评估不兼容的视觉反对运动速度和认知负载的影响.
- 为了确定控制自身感知变异性是否会影响表现结果.
主要方法:
- 一项涉及24名参与者执行有针对性的运动任务的实验.
- 对视觉反条件的操纵 (受限和反转).
- 使用协差分析 (ANCOVA) 进行分析,以控制自感变性.
主要成果:
- 不兼容的视觉反导致运动速度减慢,信息处理需求增加.
- 视觉条件之间的性能差异在控制自身感知变异时下降.
- 个人自身感知能力的差异影响了表现结果.
结论:
- 自身感知能力是改变视觉反条件下的表现的关键因素.
- 培训协议和接口设计应考虑到感官集成的挑战.
- 持续的视觉反对于有针对性的运动可能比清晰的视觉目标表示更不重要,特别是在VR中.
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