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电动机电设备的 fMRI 兼容性的定量测试,用于机器人辅助感觉运动协议。

Quantitative Testing of fMRI-Compatibility of an Electrically Active Mechatronic Device for Robot-Assisted Sensorimotor Protocols.

出版信息

IEEE Trans Biomed Eng. 2018 Jul;65(7):1595-1606. doi: 10.1109/TBME.2017.2741346. Epub 2017 Aug 17.

DOI:10.1109/TBME.2017.2741346
PMID:28829302
Abstract

OBJECTIVE

To develop a quantitative set of methods for testing the functional magnetic resonance imaging (fMRI) compatibility of an electrically-active mechatronic device developed to support sensorimotor protocols during fMRI.

METHODS

The set of methods includes phantom and in vivo experiments to measure the effect of a progressively broader set of noise sources potentially introduced by the device. Phantom experiments measure the radio-frequency (RF) noise and temporal noise-to-signal ratio (tNSR) introduced by the device. The in vivo experiment assesses the effect of the device on measured brain activation for a human subject performing a representative sensorimotor task. The proposed protocol was validated via experiments using a 3T MRI scanner operated under nominal conditions and with the inclusion of an electrically-active mechatronic device - the MR-SoftWrist - as the equipment under test (EUT).

RESULTS

Quantitative analysis of RF noise data allows detection of active RF noise sources both in controlled RF noise conditions, and in conditions resembling improper filtering of the EUT's electrical signals. In conditions where no RF noise was detectable, the presence and operation of the EUT did not introduce any significant increase in tNSR. A quantitative analysis conducted on in vivo measurements of the number of active voxels in visual and motor areas further showed no significant difference between EUT and baseline conditions.

CONCLUSION AND SIGNIFICANCE

The proposed set of quantitative methods supports the development and troubleshooting of electrically-active mechatronic devices for use in sensorimotor protocols with fMRI, and may be used for future testing of such devices.

摘要

目的

开发一套定量方法,用于测试为支持 fMRI 中传感器运动协议而开发的电动机电设备的功能磁共振成像 (fMRI) 兼容性。

方法

该方法集包括用于测量设备可能引入的一系列潜在噪声源的影响的体模和体内实验。体模实验测量设备引入的射频 (RF) 噪声和时间噪声与信号比 (tNSR)。体内实验评估设备对执行代表性传感器运动任务的人体被试测量脑激活的影响。该协议通过使用在名义条件下运行的 3T MRI 扫描仪进行的实验得到验证,并将电动机电设备 - MR-SoftWrist - 作为测试设备 (EUT) 包含在内。

结果

RF 噪声数据的定量分析可检测到有源 RF 噪声源,包括在受控 RF 噪声条件下和类似于 EUT 电信号滤波不当的条件下。在无法检测到 RF 噪声的情况下,EUT 的存在和操作不会导致 tNSR 显著增加。对视觉和运动区域中活跃体素数量的体内测量进行的定量分析进一步表明,EUT 和基线条件之间没有显著差异。

结论和意义

所提出的定量方法集支持用于 fMRI 中传感器运动协议的电动机电设备的开发和故障排除,并且可用于未来对这些设备的测试。

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