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Analog CMOS Implementation of a CNN-Based Locomotion Controller With Floating-Gate Devices

机译:具有浮动门设备的基于CNN的运动控制器的模拟CMOS实现

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This paper proposes an analog CMOS circuit that implements a central pattern generator (CPG) for locomotion control in a quadruped walking robot. Our circuit is based on an affine transformation of a reaction-diffusion cellular neural network (CNN), and uses differential pairs with multiple-input floating-gate (MIFG) MOS transistors to implement both the nonlinearity and summation of CNN cells. As a result, the circuit operates in voltage mode, and thus it is expected to reduce power consumption. Due to good matching accuracy of devices, the circuit generates stable rhythmic patterns for robot locomotion control. From experimental results on fabricated chip using a standard CMOS 1.5-μm process, we show that the chip yields the desired results; i.e., stable rhythmic pattern generation and low power consumption.
机译:本文提出了一种模拟CMOS电路,该电路实现了用于四足步行机器人运动控制的中央模式发生器(CPG)。我们的电路基于反应扩散细胞神经网络(CNN)的仿射变换,并使用差分对和多输入浮栅(MIFG)MOS晶体管来实现CNN单元的非线性和求和。结果,电路在电压模式下工作,因此期望减少功耗。由于设备具有良好的匹配精度,电路会生成稳定的节奏模式,以进行机器人运动控制。从使用标准CMOS1.5-μm工艺制造的芯片上的实验结果可以看出,该芯片可产生理想的结果。即,稳定的节奏模式产生和低功耗。

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