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Quaternion-Valued Twin-Multistate Hopfield Neural Networks With Dual Connections

机译:具有双连接的四元值为多个双胞胎霍布菲尔德神经网络

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摘要

Dual connections (DCs) utilize the noncommutativity of quaternions and improve the noise tolerance of quaternion Hopfield neural networks (QHNNs). In this article, we introduce DCs to twin-multistate QHNNs. We conduct computer simulations to investigate the noise tolerance. The QHNNs with DCs were weak against an increase in the number of training patterns, but they were robust against increased resolution factor. The simulation results can be explained from the standpoints of storage capacities and rotational invariance.
机译:双连接(DCS)利用四元数的非传染性,提高四元霍尔菲尔德神经网络(QHNN)的噪声容差。在本文中,我们将DCS介绍给Twin-MultiState QHNN。我们进行计算机模拟以研究噪声容差。具有DCS的QHNNS弱抵抗培训模式的数量增加,但它们对增加的分辨率因素具有稳健性。可以从存储容量和旋转不变性的观点来解释模拟结果。

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