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Dynamic spike threshold and nonlinear dendritic computation for coincidence detection in neuromorphic circuits

机译:动态尖峰阈值和非线性树状计算,用于神经形态电路中的重合检测

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We present an electronic cortical neuron incorporating dynamic spike threshold and active dendritic properties. The circuit is simulated using a carbon nanotube field-effect transistor SPICE model. We demonstrate that our neuron has lower spike threshold for coincident synaptic inputs; however when the synaptic inputs are not in synchrony, it requires larger depolarization to evoke the neuron to fire. We also demonstrate that a dendritic spike is key to precisely-timed input-output transformation, produces reliable firing and results in more resilience to input jitter within an individual neuron.
机译:我们提出了结合动态峰值阈值和主动树突性质的电子皮层神经元。使用碳纳米管场效应晶体管SPICE模型对电路进行仿真。我们证明了我们的神经元具有较低的突触输入阈值;然而,当突触输入不同步时,则需要更大的去极化来唤醒神经元。我们还证明,树突状尖峰是精确定时的输入-输出转换的关键,可产生可靠的触发,并导致对单个神经元内的输入抖动具有更大的弹性。

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