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Practical optoelectronic neural network realizations based on the fault tolerance of the backpropagation algorithm

机译:基于反向传播算法容错的光电神经网络实用实现

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This paper describes how the fault tolerance of the backpropagation algorithm can be used to accommodate the realistic (nonideal) transfer characteristics of the optical communication links used, between neural layers, in optoelectronic neural networks. In particular the authors demonstrate that networks, utilizing MSM (metal-semiconductor-metal) photodiodes (PDs) and either LED (light emitting diode) or MQW (multiple quantum well) laser transmitters within these intraneural links, are capable of performing satisfactorily even in the presence of such nonideal device phenomena as: 60% optical crosstalk, 50% optoelectronic device variation, or a thresholded (I/sub th/=0.5*I/sub max/) laser output characteristic. Subsequent to this, the authors then show how it is possible to use this fault tolerance to simplify the neuron architecture, to the extent that it consists only of MSM PDs a current amplifier, and an MQW laser. The overall neuron transfer function is then a first-order approximation to the original sigmoidal function.
机译:本文介绍了如何使用反向传播算法的容错能力来适应光电神经网络中神经层之间所使用的光通信链路的实际(非理想)传输特性。特别是,作者证明了在这些神经内链路中利用MSM(金属-半导体-金属)光电二极管(PD)和LED(发光二极管)或MQW(多量子阱)激光发射器的网络,即使在光纤通信中也能令人满意地工作。存在以下非理想设备现象:60%的光学串扰,50%的光电设备变化或阈值(I / sub th / = 0.5 * I / sub max /)激光输出特性。随后,作者展示了如何使用这种容错能力来简化神经元体系结构,使其仅由MSM PD,电流放大器和MQW激光器组成。然后,整个神经元传递函数是原始S形函数的一阶近似值。

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