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PERFORMANCE OF AN OPTOELECTRONIC NEURAL NETWORK IN THE PRESENCE OF NOISE

机译:有噪声时光电子神经网络的性能

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摘要

Optoelectronic neural networks must not only be highly parallel but also fast to compete with electrical systems. Receiver noise becomes an important consideration at high data rates; so the limits set by noise to network size and speed are analyzed. A network incorporating an array of high-speed multi-quantum-well modulators was constructed. It employed a general method for optical representation of bipolar values, which required only a minimal increase in network dimensions and gave the network immunity to common-mode parameter variations. Different ways of partitioning pattern-recognition problems were compared, and the accuracy of one configuration was tested with the experimental network over a range of noise levels. [References: 14]
机译:光电神经网络不仅必须高度并行,而且必须快速与电气系统竞争。在高数据速率下,接收机噪声成为重要的考虑因素。因此,分析了噪声对网络规模和速度设置的限制。构建了包含高速多量子阱调制器阵列的网络。它采用了一种通用的方法来光学表示双极性值,该方法仅需要网络尺寸的最小增加,并且使网络不受共模参数变化的影响。比较了划分模式识别问题的不同方法,并使用实验网络在一定噪声水平范围内测试了一种配置的准确性。 [参考:14]

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