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Apoptotic self-organized electronic device using thin-film transistors for artificial neural networks with unsupervised learning functions

机译:使用薄膜晶体管的细胞自组织电子设备,用于无监督学习功能的人工神经网络

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Artificial neural networks are promising systems for information processing with many advantages, such as self-teaching and parallel distributed computing. However, conventional ones consist of extremely intricate circuits to guarantee accurate behaviors of the neurons and synapses. We demonstrate an apoptotic self-organized electronic device using thin-film transistors for artificial neural networks with unsupervised learning functions. First, we formed a “neuron” from only eight transistors and reduced a “synapse” to only one transistor by employing the characteristic degradations of the synapse transistors to adjust the synaptic connection strength. Second, we classified the synapses into two types: "concordant" and "discordant" synapses, and composed a local interconnective network optimized for integrated electronic circuits. Finally, we confirmed that the device could work and learn multiple logical operations, including AND and OR.
机译:人工神经网络是具有许多优点的有前途的信息处理系统,例如自学习和并行分布式计算。然而,常规电路由极其复杂的电路组成,以保证神经元和突触的准确行为。我们演示了使用薄膜晶体管的无细胞自组织电子设备,用于具有无监督学习功能的人工神经网络。首先,我们通过仅利用8个晶体管形成“神经元”,并通过利用突触晶体管的特性退化来调节突触连接强度,将“突触”减少为仅1个晶体管。其次,我们将突触分为两种类型:“一致”突触和“不一致”突触,并组成了针对集成电路优化的本地互连网络。最后,我们确认该设备可以工作并学习多种逻辑运算,包括AND和OR。

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