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Deep Neural Networks for Image-Based Dietary Assessment
Published on: March 13, 2021
Novel bifurcation results for a delayed fractional-order quaternion-valued neural network
Chengdai Huang1, Xiaobing Nie2, Xuan Zhao2
1School of Mathematics and Statistics, Xinyang Normal University, Xinyang 464000, China.
Abstract:
This paper reports the innovative results on the stability and bifurcation for a delayed fractional-order quaternion-valued neural network(FOQVNN). Delay-stimulated bifurcation criteria of the developed FOQVNN are attained. Then, the bifurcation diagrams are perfectly exhibited to authenticate the veracity of the bifurcation results. Besides, the stability zone is more larger of the addressed FOQVNN in comparison with its counterpart if other parameters are intercalated. It further witnesses that the amplitudes of bifurcation oscillation get bigger with the augmentation of time delay. It discloses that the bifurcation phenomena engender earlier as the order incrementally magnifies. The exactness and merits of the achieved analytic results are eventually substantiated by a simulation example.
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