A variety of globally stable periodic orbits in permutation binary neural networks

IF 1.3 4区 数学 Q2 MATHEMATICS, APPLIED
Mikito Onuki, Kento Saka, Toshimichi Saito
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引用次数: 2

Abstract

The permutation binary neural networks are characterized by global permutation connections and local binary connections. Although the parameter space is not large, the networks exhibit various binary periodic orbits. Since analysis of all the periodic orbits is not easy, we focus on globally stable binary periodic orbits such that almost all initial points fall into the orbits. For efficient analysis, we define the standard permutation connection that represents multiple equivalent permutation connections. Applying the brute force attack to 7-dimensional networks, we present the main result: a list of standard permutation connections for all the globally stable periodic orbits. These results will be developed into detailed analysis of the networks and its engineering applications.
置换二元神经网络中各种全局稳定周期轨道
置换二元神经网络具有全局置换连接和局部二元连接的特点。虽然参数空间不大,但网络表现出不同的二元周期轨道。由于分析所有的周期轨道是不容易的,我们把重点放在全局稳定的二元周期轨道上,使得几乎所有的初始点都落在轨道上。为了便于分析,我们定义了表示多个等价排列连接的标准排列连接。将蛮力攻击应用于7维网络,我们给出了主要结果:所有全局稳定周期轨道的标准排列连接列表。这些结果将发展为对网络及其工程应用的详细分析。
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来源期刊
CiteScore
2.80
自引率
8.30%
发文量
216
审稿时长
6 months
期刊介绍: Centered around dynamics, DCDS-B is an interdisciplinary journal focusing on the interactions between mathematical modeling, analysis and scientific computations. The mission of the Journal is to bridge mathematics and sciences by publishing research papers that augment the fundamental ways we interpret, model and predict scientific phenomena. The Journal covers a broad range of areas including chemical, engineering, physical and life sciences. A more detailed indication is given by the subject interests of the members of the Editorial Board.
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