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A Digital Memristor Emulator for FPGA-Based Artificial Neural Networks

机译:基于FPGA的人工神经网络的数字忆阻仿真器

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FPGAs are reconfigurable electronic platforms, well-suited to implement complex artificial neural networks (ANNs). To this end, the compact hardware (HW) implementation of artificial synapses is an important step to obtain human brain-like functionalities at circuit-level. In this context, the memristor has been proposed as the electronic analogue of biological synapses, but the price of commercially available samples still remains high, hence motivating the development of HW emulators. In this work we present the first digital memristor emulator based upon a voltage-controlled threshold-type bipolar memristor model. We validate its functionality in low-cost yet powerful FPGA families. We test its suitability for complex memrisive circuits and prove its synaptic properties in a small associative memory via a perceptron ANN.
机译:FPGA是可重新配置的电子平台,非常适合实施复杂的人工神经网络(ANNS)。为此,紧凑的硬件(HW)的人工突触的实施是在电路级获得人脑样功能的重要步骤。在这种情况下,存储器已经提出作为生物突触的电子模拟,但商业上可获得的样本的价格仍然很高,因此激励了HW仿真器的发展。在这项工作中,我们基于电压控制的阈值型双极映射器模型呈现第一数字忆阻器仿真器。我们在低成本但功能强大的FPGA系列中验证其功能。我们测试其适用性对复杂的备忘电路,并通过Perceptron ANN证明其在小关联内存中的突触特性。

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