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Efficient implementation of a real-time estimation system for thalamocortical hidden Parkinsonian properties

机译:丘脑皮层隐性帕金森病属性的实时估计系统的有效实现

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摘要

Real-time estimation of dynamical characteristics of thalamocortical cells, such as dynamics of ion channels and membrane potentials, is useful and essential in the study of the thalamus in Parkinsonian state. However, measuring the dynamical properties of ion channels is extremely challenging experimentally and even impossible in clinical applications. This paper presents and evaluates a real-time estimation system for thalamocortical hidden properties. For the sake of efficiency, we use a field programmable gate array for strictly hardware-based computation and algorithm optimization. In the proposed system, the FPGA-based unscented Kalman filter is implemented into a conductance-based TC neuron model. Since the complexity of TC neuron model restrains its hardware implementation in parallel structure, a cost efficient model is proposed to reduce the resource cost while retaining the relevant ionic dynamics. Experimental results demonstrate the real-time capability to estimate thalamocortical hidden properties with high precision under both normal and Parkinsonian states. While it is applied to estimate the hidden properties of the thalamus and explore the mechanism of the Parkinsonian state, the proposed method can be useful in the dynamic clamp technique of the electrophysiological experiments, the neural control engineering and brain-machine interface studies.
机译:实时估算丘脑皮层细胞的动力学特征,例如离子通道和膜电位的动力学,对于研究帕金森病状态的丘脑是有用的,也是必不可少的。但是,测量离子通道的动力学特性在实验上极具挑战性,在临床应用中甚至是不可能的。本文提出并评估了丘脑皮层隐性的实时估计系统。为了提高效率,我们使用现场可编程门阵列进行严格的基于硬件的计算和算法优化。在提出的系统中,基于FPGA的无味卡尔曼滤波器被实现为基于电导的TC神经元模型。由于TC神经元模型的复杂性限制了其在并行结构中的硬件实现,因此提出了一种具有成本效益的模型,以在保持相关离子动力学的同时降低资源成本。实验结果表明,在正常状态和帕金森状态下,实时能力都可以高精度估算丘脑皮层的隐性。该方法可用于估算丘脑的隐性特性并探索帕金森状态的机理,可用于电生理实验的动态钳制技术,神经控制工程和脑机接口研究。

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