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Reaction-diffusion chemistry implementation of associative memory neural network

机译:联想记忆神经网络的反应扩散化学实现

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Unconventional computing paradigms are typically very difficult to program. By implementing efficient parallel control architectures such as artificial neural networks, we show that it is possible to program unconventional paradigms with relative ease. The work presented implements correlation matrix memories (a form of artificial neural network based on associative memory) in reaction-diffusion chemistry, and shows that implementations of such artificial neural networks can be trained and act in a similar way to conventional implementations.
机译:非常规计算范例通常很难编程。通过实现有效的并行控制体系结构(例如人工神经网络),我们表明可以相对轻松地编程非常规范例。提出的工作实现了反应扩散化学中的相关矩阵存储器(一种基于联想记忆的人工神经网络形式),并表明可以训练这种人工神经网络的实现并以与常规实现类似的方式起作用。

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