Weight identification of a weighted bipartite graph complex dynamical network with coupling delay.
Jia, Zhen, Deng, Guangming (2010)
Journal of Inequalities and Applications [electronic only]
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Jia, Zhen, Deng, Guangming (2010)
Journal of Inequalities and Applications [electronic only]
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Miloš Kudělka, Šárka Zehnalová, Zdeněk Horák, Pavel Krömer, Václav Snášel (2015)
International Journal of Applied Mathematics and Computer Science
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Many real world data and processes have a network structure and can usefully be represented as graphs. Network analysis focuses on the relations among the nodes exploring the properties of each network. We introduce a method for measuring the strength of the relationship between two nodes of a network and for their ranking. This method is applicable to all kinds of networks, including directed and weighted networks. The approach extracts dependency relations among the network's nodes...
Romas Baronas, Feliksas Ivanauskas, Romualdas Maslovskis, Marijus Radavičius, Pranas Vaitkus (2007)
Kybernetika
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This paper presents a semi-global mathematical model for an analysis of a signal of amperometric biosensors. Artificial neural networks were applied to an analysis of the biosensor response to multi-component mixtures. A large amount of the learning and test data was synthesized using computer simulation of the biosensor response. The biosensor signal was analyzed with respect to the concentration of each component of the mixture. The paradigm of locally weighted linear regression was...
Dong, Chengdong (2010)
Mathematical Problems in Engineering
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Jan Pelikán (1997)
Kybernetika
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Wang, Dong Q., Zhang, Mengjie (2005)
Journal of Applied Mathematics and Decision Sciences
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Andrzej Kasiński, Filip Ponulak (2006)
International Journal of Applied Mathematics and Computer Science
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In this review we focus our attention on supervised learning methods for spike time coding in Spiking Neural Networks (SNNs). This study is motivated by recent experimental results regarding information coding in biological neural systems, which suggest that precise timing of individual spikes may be essential for efficient computation in the brain. We are concerned with the fundamental question: What paradigms of neural temporal coding can be implemented with the recent learning methods?...
Guo, Qin, Luo, Mingxing, Li, Lixiang, Yang, Yixian (2010)
Mathematical Problems in Engineering
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