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On Neural Network Architecture Based on Concept Lattices

机译:基于概念格的神经网络架构

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Selecting an appropriate network architecture is a crucial problem when looking for a solution based on a neural network. If the number of neurons in network is too high, then it is likely to overfit. Neural networks also suffer from poor interpretability of learning results. In this paper an approach to building neural networks based on concept lattices and on lattices coming from monotone Galois connections is proposed in attempt to overcome the mentioned difficulties.
机译:在寻找基于神经网络的解决方案时,选择合适的网络体系结构是至关重要的问题。如果网络中的神经元数量过多,则可能会过度拟合。神经网络也遭受学习结果的可解释性差的困扰。在本文中,为克服上述困难,提出了一种基于概念格和单调伽罗瓦连接的格建立神经网络的方法。

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