用于前庭电刺激研究的电压控制电流源的设计与评价

IF 2 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC
Zhi Liu , Shieru Suzuki , Tatsuki Fushimi , Yoichi Ochiai
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引用次数: 0

摘要

前庭电刺激(GVS)是一种非侵入性刺激前庭系统的技术,它对维持平衡和处理空间定向至关重要。视觉和前庭系统之间的整合,被称为眼-前庭再耦合(OVR),在减少晕动病和增强扩展现实(XR)沉浸感方面显示出了巨大的潜力。然而,GVS研究中一个明显的挑战是缺乏开源设备,大多数研究依赖于自制原型或恒流电源。这种设备的原型需要严格的测试和校准,这是一个资源密集且耗时的过程。这些挑战对于电子专业知识有限的研究人员来说尤其明显,从而增加了安全风险并使实验结果的可重复性复杂化。为了解决这些问题,本文介绍了一个专门为GVS设计的开源压控电流源(VCCS)模块。该模块提供了一个安全、稳定、紧凑的解决方案。本研究详细介绍了该模块的硬件开发、性能评估和无线集成,以及一种简单的控制方法。此外,还进行了小规模用户研究,以验证使用所提出模块的GVS的可行性和用户感知。这一综合方法旨在为从事全球导航系统相关研究的研究人员提供一种易于获得的解决方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Design and evaluation of a voltage-controlled current source for galvanic vestibular stimulation research

Design and evaluation of a voltage-controlled current source for galvanic vestibular stimulation research
Galvanic Vestibular Stimulation (GVS) is a non-invasive technique that stimulates the vestibular system, which is crucial for maintaining balance and processing spatial orientation. The integration between the visual and vestibular systems, known as Oculo-Vestibular Recoupling (OVR), has shown promising potential in reducing motion sickness and enhancing immersion in Extended Reality (XR). However, a noticeable challenge in GVS research is the lack of open-sourced devices, with most studies relying on self-made prototypes or constant current power supplies. The prototyping of such devices necessitates rigorous testing and calibration, processes that are both resource-intensive and time-consuming. These challenges are particularly pronounced for researchers with limited expertise in electronics, thereby increasing the safety risks and complicating the reproducibility of experimental results. To address these issues, this paper introduces an open-source voltage-controlled current source (VCCS) module specifically designed for GVS. The proposed module provides a safe, stable, and compact solution. This study details the hardware development, performance evaluation, and wireless integration of the module, as well as a simple control methodology. Furthermore, a small-scale user study is conducted to validate the feasibility and user perception of GVS using the proposed module. This comprehensive approach aims to offer an easily accessible solution for researchers engaged in GVS-related studies.
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来源期刊
HardwareX
HardwareX Engineering-Industrial and Manufacturing Engineering
CiteScore
4.10
自引率
18.20%
发文量
124
审稿时长
24 weeks
期刊介绍: HardwareX is an open access journal established to promote free and open source designing, building and customizing of scientific infrastructure (hardware). HardwareX aims to recognize researchers for the time and effort in developing scientific infrastructure while providing end-users with sufficient information to replicate and validate the advances presented. HardwareX is open to input from all scientific, technological and medical disciplines. Scientific infrastructure will be interpreted in the broadest sense. Including hardware modifications to existing infrastructure, sensors and tools that perform measurements and other functions outside of the traditional lab setting (such as wearables, air/water quality sensors, and low cost alternatives to existing tools), and the creation of wholly new tools for either standard or novel laboratory tasks. Authors are encouraged to submit hardware developments that address all aspects of science, not only the final measurement, for example, enhancements in sample preparation and handling, user safety, and quality control. The use of distributed digital manufacturing strategies (e.g. 3-D printing) is encouraged. All designs must be submitted under an open hardware license.
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