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A human analog for benchmarking vestibular tests in a roto-tilt chair.

机译:用于在旋转式转椅上对前庭测试进行基准测试的人体模拟物。

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摘要

This thesis gives a background into the anatomy and physiology of the peripheral sensory organs of the vestibular system, as well as some diagnostic tests of the inner ear. Using previous work in vestibular modeling and prosthetics development, this thesis then brings focus to the development and testing of an experimental model that will be used to simulate the vestibulo-ocular reflex (VOR) about pitch, roll, and yaw axes.;A sensor array consisting of accelerometers and gyroscopes was built to simulate vestibular function with the sensors positioned in a manner to replicate anatomic placement of the semicircular canals and otolith organs. The accelerometers and gyroscopes are commercially available micro-electro-mechanical systems (MEMS) devices with ranges of +/-18g and +/-1500°/s, respectively. The sensor array is known as a hardware implementation of a vestibular system (HIVeS). Using a mathematical model of vestibular function developed by Chun and Robinson (1978), eye movements were then simulated using a National Instruments (NI) CompactRIO system driven with NI LabVIEW software. The software simulation is known as the software implementation of the VOR (SIVOR). To test the system, the HIVeS unit was mounted on a roto-tilt chair and stimulated with various maneuvers. The SIVOR software simultaneously predicted the corresponding eye movements that were then compared to results from human subject testing.;It was found during testing that the SIVOR was able to reproduce some elements, but not all of the human VOR. The failing is not in the HIVeS unit or in the implementation of the SIVOR software on the CompactRIO. Rather, the limitation is in the actual mathematical model used to simulate the human VOR. In spite of that, the HIVeS/SIVOR pair together provide a valuable tool that will enable validation of different mathematical models in future works.;Suggestions for improvement of the physical and mathematical models are made, along with ideas for future work based upon the technology developed during the course of this work. Future ideas include use of accelerometer data to simulate stimulation of the human linear acceleration sensors, the saccule and utricle, the development of models of vestibular deficiencies, and the creation of dummies to be used for educational purposes.
机译:本文为前庭系统周围感觉器官的解剖和生理学以及内耳的一些诊断测试提供了背景。借助先前在前庭建模和假体开发方面的工作,本文将重点放在实验模型的开发和测试上,该模型将用于模拟关于俯仰,横摇和偏航轴的前庭眼反射(VOR)。构建了由加速度计和陀螺仪组成的阵列,以模拟传感器的前庭功能,传感器的放置方式可以复制半圆形管和耳石器官的解剖位置。加速度计和陀螺仪是可购得的微机电系统(MEMS)设备,其范围分别为+/- 18g和+/- 1500°/ s。传感器阵列被称为前庭系统(HIVeS)的硬件实现。使用由Chun和Robinson(1978)开发的前庭功能数学模型,然后使用由NI LabVIEW软件驱动的National Instruments(NI)CompactRIO系统模拟眼球运动。软件模拟被称为VOR(SIVOR)的软件实现。为了测试该系统,将HIVeS单元安装在旋转式转椅上,并通过各种动作进行刺激。 SIVOR软件同时预测了相应的眼动,然后将其与人类受试者测试的结果进行比较。;在测试过程中发现,SIVOR能够复制某些元素,但不能复制所有人类VOR。故障不在HIVeS单元中,也不在CompactRIO上的SIVOR软件实现中。相反,限制在于用于模拟人类VOR的实际数学模型。尽管如此,HIVeS / SIVOR对共同提供了一个有价值的工具,可以在未来的工作中验证不同的数学模型。;提出了改进物理和数学模型的建议,以及基于该技术的未来工作的构想在这项工作过程中开发的。未来的想法包括使用加速度计数据来模拟人类线性加速度传感器的刺激,眼球和囊腔,前庭缺陷模型的开发以及用于教育目的的假人的创建。

著录项

  • 作者

    Pike, Alston Holly.;

  • 作者单位

    The University of Alabama.;

  • 授予单位 The University of Alabama.;
  • 学科 Engineering Mechanical.
  • 学位 M.S.
  • 年度 2011
  • 页码 78 p.
  • 总页数 78
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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