Chinese Journal of Computational Physics ›› 2023, Vol. 40 ›› Issue (5): 622-632.DOI: 10.19596/j.cnki.1001-246x.8632
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Guowei WANG1(), Yan FU2
Received:
2022-09-05
Online:
2023-09-25
Published:
2023-11-02
Guowei WANG, Yan FU. Stochastic Boundary-induced Spatiotemporal Pattern Transformation in Izhikevich Neuronal Networks[J]. Chinese Journal of Computational Physics, 2023, 40(5): 622-632.
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URL: http://www.cjcp.org.cn/EN/10.19596/j.cnki.1001-246x.8632
Types | a | b | c | d |
RS | 0.02 | 0.2 | -65 | 8 |
FS | 0.10 | 0.2 | -65 | 2 |
CH | 0.02 | 0.2 | -50 | 2 |
IB | 0.02 | 0.2 | -55 | 4 |
Table 1 Control parameters of neurons with different discharge types
Types | a | b | c | d |
RS | 0.02 | 0.2 | -65 | 8 |
FS | 0.10 | 0.2 | -65 | 2 |
CH | 0.02 | 0.2 | -50 | 2 |
IB | 0.02 | 0.2 | -55 | 4 |
Fig.3 Time series diagram of membrane potential of different types of Izhikevich neuron models (a) a = 0.02, b = 0.2, c = -50.0, d = 2.0, I = 10; (b) a = 0.1, b = 0.2, c = -65.0, d = 2.0, I = 10; (c) a = 0.02, b = 0.2, c = -55.0, d = 4.0, I =10; (d) a = 0.02, b = 0.2, c = -65.0, d = 8.0, I = 10
Fig.4 Phase diagrams of four different discharge modes (a) a = 0.02, b = 0.2, c = -50.0, d = 2.0, I = 10;(b) a = 0.1, b = 0.2, c = -65.0, d = 2.0, I = 10; (c) a = 0.02, b = 0.2, c = -55.0, d = 4.0, I =10;(d) a = 0.02, b = 0.2, c = -65.0, d = 8.0, I = 10
Fig.5 Bifurcation diagram of the membrane potential of four different types of Izhikevich neurons with external stimulation current (a) a = 0.02, b = 0.2, c = -65.0, d = 8.0; (b) a = 0.1, b = 0.2, c = -65.0, d = 2.0;(c) a = 0.02, b = 0.2, c = -50.0, d = 2.0; (d) a = 0.02, b = 0.2, c = -55.0, d = 4.0
Fig.6 Spatiotemporal pattern transformation induced by random boundary when changing coupling strength D at 3 000 time units (a = 0.02, b = 0.2, c = -65.0, d = 8.0, I = 10) (a)~(i) D = 0.0, 0.3, 0.4, 0.5, 0.6, 0.7, 0.8, 0.9, 1.0
Fig.7 Spatiotemporal pattern transformation induced by random boundary when changing coupling strength D at 5 000 time unit (a = 0.02, b = 0.2, c = -65.0, d = 8.0, I = 10) (a)~(i) D = 0.3, 0.6, 0.9, 1.0, 1.2, 1.5, 1.8, 2.0, 2.1
Fig.8 Spatiotemporal pattern transformation induced by random boundary at different time units when D = 1.0 (a = 0.02, b = 0.2, c = -65.0, d = 8.0, I =10) (a)~(i) t = 50, 500, 1 000, 1 500, 2 000, 2 500, 3 000, 3 500, 4 000
Fig.9 Synchronization factor corresponding to the square neural network changing with coupling strength D at 3 000 time units (a = 0.02, b = 0.2, c = -65.0, d = 8.0, I =10)
Fig.10 Synchronization factor corresponding to the square neural network changes with coupling strength D at 5 000 time units (a = 0.02, b = 0.2, c = -65.0, d = 8.0, I =10)
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