Adaptive proactive inhibitory control for embedded real-time applications.

Frontiers in neuroengineering Pub Date : 2012-06-11 eCollection Date: 2012-01-01 DOI:10.3389/fneng.2012.00010
Shufan Yang, T Martin McGinnity, Kongfatt Wong-Lin
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引用次数: 3

Abstract

Psychologists have studied the inhibitory control of voluntary movement for many years. In particular, the countermanding of an impending action has been extensively studied. In this work, we propose a neural mechanism for adaptive inhibitory control in a firing-rate type model based on current findings in animal electrophysiological and human psychophysical experiments. We then implement this model on a field-programmable gate array (FPGA) prototyping system, using dedicated real-time hardware circuitry. Our results show that the FPGA-based implementation can run in real-time while achieving behavioral performance qualitatively suggestive of the animal experiments. Implementing such biological inhibitory control in an embedded device can lead to the development of control systems that may be used in more realistic cognitive robotics or in neural prosthetic systems aiding human movement control.

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嵌入式实时应用的自适应主动抑制控制。
心理学家研究自主运动的抑制性控制已经很多年了。特别是对即将发生的诉讼的撤销进行了广泛的研究。在这项工作中,我们基于动物电生理和人类心理物理实验的现有发现,提出了一种自适应抑制控制的神经机制。然后,我们使用专用的实时硬件电路在现场可编程门阵列(FPGA)原型系统上实现该模型。我们的结果表明,基于fpga的实现可以实时运行,同时获得定性暗示动物实验的行为性能。在嵌入式设备中实施这种生物抑制控制可以导致控制系统的发展,该控制系统可用于更现实的认知机器人或辅助人类运动控制的神经假体系统。
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