...
首页> 外文期刊>Frontiers in Neuroscience >Broadband Prosthetic Interfaces: Combining Nerve Transfers and Implantable Multichannel EMG Technology to Decode Spinal Motor Neuron Activity
【24h】

Broadband Prosthetic Interfaces: Combining Nerve Transfers and Implantable Multichannel EMG Technology to Decode Spinal Motor Neuron Activity

机译:宽带修复接口:结合神经传递和植入式多通道EMG技术来解码脊髓运动神经元活动。

获取原文
           

摘要

Modern robotic hands/upper limbs may replace multiple degrees of freedom of extremity function. However, their intuitive use requires a high number of control signals, which current man-machine interfaces do not provide. Here, we discuss a broadband control interface that combines targeted muscle reinnervation, implantable multichannel electromyographic sensors, and advanced decoding to address the increasing capabilities of modern robotic limbs. With targeted muscle reinnervation, nerves that have lost their targets due to an amputation are surgically transferred to residual stump muscles to increase the number of intuitive prosthetic control signals. This surgery re-establishes a nerve-muscle connection that is used for sensing nerve activity with myoelectric interfaces. Moreover, the nerve transfer determines neurophysiological effects, such as muscular hyper-reinnervation and cortical reafferentation that can be exploited by the myoelectric interface. Modern implantable multichannel EMG sensors provide signals from which it is possible to disentangle the behavior of single motor neurons. Recent studies have shown that the neural drive to muscles can be decoded from these signals and thereby the user's intention can be reliably estimated. By combining these concepts in chronic implants and embedded electronics, we believe that it is in principle possible to establish a broadband man-machine interface, with specific applications in prosthesis control. This perspective illustrates this concept, based on combining advanced surgical techniques with recording hardware and processing algorithms. Here we describe the scientific evidence for this concept, current state of investigations, challenges, and alternative approaches to improve current prosthetic interfaces.
机译:现代的机器人手/上肢可以替代肢体功能的多个自由度。然而,它们的直观使用需要大量的控制信号,而当前的人机界面则无法提供。在这里,我们讨论一种宽带控制界面,该界面结合了目标肌肉的神经支配能力,可植入的多通道肌电图传感器和先进的解码功能,以解决现代机器人四肢不断增强的功能。通过有针对性的肌肉再支配,由于截肢而失去目标的神经将通过外科手术转移到残余的残肢肌肉,以增加直观的假体控制信号的数量。该手术重建了神经肌肉连接,用于通过肌电接口感应神经活动。而且,神经传递决定了神经生理学作用,例如肌电接口可以利用的肌肉过度神经支配和皮质返送。现代的植入式多通道EMG传感器提供了可以解开单个运动神经元行为的信号。最近的研究表明,可以根据这些信号来解码对肌肉的神经驱动,从而可以可靠地估计用户的意图。通过将这些概念结合在慢性植入物和嵌入式电子产品中,我们相信原则上可以建立宽带人机界面,并在假体控制中具有特定的应用。该视角基于先进的手术技术与记录硬件和处理算法的结合,说明了这一概念。在这里,我们描述了该概念的科学证据,研究的现状,挑战以及改善当前义肢界面的替代方法。

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号