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首页> 外文期刊>IEEE transactions on biomedical circuits and systems >Optogenetics in Silicon: A Neural Processor for Predicting Optically Active Neural Networks
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Optogenetics in Silicon: A Neural Processor for Predicting Optically Active Neural Networks

机译:硅中的光遗传学:预测光学活性神经网络的神经处理器

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We present a reconfigurable neural processor for real-time simulation and prediction of opto-neural behaviour. We combined a detailed Hodgkin–Huxley CA3 neuron integrated with a four-state Channelrhodopsin-2 (ChR2) model into reconfigurable silicon hardware. Our architecture consists of a Field Programmable Gated Array (FPGA) with a custom-built computing data-path, a separate data management system and a memory approach based router. Advancements over previous work include the incorporation of short and long-term calcium and light-dependent ion channels in reconfigurable hardware. Also, the developed processor is computationally efficient, requiring only 0.03 ms processing time per sub-frame for a single neuron and 9.7 ms for a fully connected network of 500 neurons with a given FPGA frequency of 56.7 MHz. It can therefore be utilized for exploration of closed loop processing and tuning of biologically realistic optogenetic circuitry.
机译:我们提出了一种可重新配置的神经处理器,用于实时模拟和预测光神经行为。我们将详细的霍奇金-赫克斯利(Hodgkin-Huxley)CA3神经元与四态Channelrhodopsin-2(ChR2)模型集成在一起,构成了可重新配置的硅硬件。我们的体系结构包括具有定制的计算数据路径的现场可编程门控阵列(FPGA),独立的数据管理系统和基于内存方法的路由器。与以前的工作相比,进步包括将短期和长期的钙离子和光依赖性离子通道合并到可重构硬件中。同样,开发的处理器具有高效的计算能力,对于单个神经元而言,每个子帧仅需要0.03毫秒的处理时间,而对于具有56.7 MHz给定FPGA频率的500个神经元的完全连接的网络,则仅需要9.7毫秒。因此,可以将其用于探索闭环处理和调节生物学上可行的光遗传学电路。

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