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Most published authors (scientific articles only) of the journal
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| 1. |
V. I. Ponomarenko |
18 |
| 2. |
I. V. Sysoev |
15 |
| 3. |
M. D. Prokhorov |
13 |
| 4. |
A. V. Shabunin |
13 |
| 5. |
S. P. Kuznetsov |
12 |
| 6. |
M. V. Sysoeva |
11 |
| 7. |
S. L. Vysotsky |
10 |
| 8. |
G. M. Dudko |
10 |
| 9. |
V. V. Matrosov |
10 |
| 10. |
N. M. Ryskin |
10 |
| 11. |
Yu. A. Filimonov |
10 |
| 12. |
O. I. Moskalenko |
9 |
| 13. |
V. I. Nekorkin |
9 |
| 14. |
V. K. Sakharov |
9 |
| 15. |
A. A. Funtov |
9 |
| 16. |
Yu. V. Khivintsev |
9 |
| 17. |
A. E. Khramov |
9 |
| 18. |
V. B. Kazantsev |
8 |
| 19. |
S. A. Kaschenko |
8 |
| 20. |
A. V. Kozhevnikov |
8 |
| 21. |
A. P. Kuznetsov |
8 |
| 22. |
A. V. Sadovnikov |
8 |
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40 most published authors of the journal |
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| Most cited authors of the journal |
| 1. |
V. I. Nekorkin |
47 |
| 2. |
V. V. Klinshov |
41 |
| 3. |
O. V. Maslennikov |
39 |
| 4. |
A. S. Dmitrichev |
35 |
| 5. |
D. V. Kasatkin |
35 |
| 6. |
S. Yu. Kirillov |
32 |
| 7. |
M. V. Sysoeva |
29 |
| 8. |
D. S. Shchapin |
29 |
| 9. |
I. V. Sysoev |
28 |
| 10. |
V. I. Ponomarenko |
25 |
| 11. |
A. V. Shabunin |
24 |
| 12. |
S. V. Gonchenko |
17 |
| 13. |
A. O. Kazakov |
17 |
| 14. |
I. I. Safarov |
17 |
| 15. |
M. Kh. Teshaev |
17 |
| 16. |
N. M. Egorov |
16 |
| 17. |
V. E. Gvindzhilija |
14 |
| 18. |
V. L. Zakovorotnyj |
14 |
| 19. |
S. A. Kaschenko |
14 |
| 20. |
V. V. Matrosov |
13 |
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40 most cited authors of the journal |
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| Most cited articles of the journal |
| 1. |
Nonlinear dynamical models of neurons: Review A. S. Dmitrichev, D. V. Kasatkin, V. V. Klinshov, S. Yu. Kirillov, O. V. Maslennikov, D. S. Shapin, V. I. Nekorkin Izvestiya VUZ. Applied Nonlinear Dynamics, 2018, 26:4, 5–58 |
29 |
| 2. |
Dynamic damping of vibrations of a solid body mounted on viscoelastic supports I. I. Safarov, M. Kh. Teshaev Izvestiya VUZ. Applied Nonlinear Dynamics, 2023, 31:1, 63–74 |
15 |
| 3. |
Ring generator of neuron-like activity with tunable frequency N. M. Egorov, M. V. Sysoeva, V. I. Ponomarenko, M. V. Kornilov, I. V. Sysoev Izvestiya VUZ. Applied Nonlinear Dynamics, 2023, 31:1, 103–120 |
9 |
| 4. |
Collective dynamics of networks of active units with pulse coupling: Review V. V. Klinshov Izvestiya VUZ. Applied Nonlinear Dynamics, 2020, 28:5, 465–490 |
8 |
| 5. |
Mathematical theory of dynamical chaos and its applications: Review. Part 2. Spiral chaos of three-dimensional flows S. V. Gonchenko, A. S. Gonchenko, A. O. Kazakov, A. D. Kozlov, Yu. V. Bakhanova Izvestiya VUZ. Applied Nonlinear Dynamics, 2019, 27:5, 7–52 |
8 |
| 6. |
SIRS-model with dynamic regulation of the population: Probabilistic cellular automata approach A. V. Shabunin Izvestiya VUZ. Applied Nonlinear Dynamics, 2019, 27:2, 5–20 |
8 |
| 7. |
Common mechanisms of attractorless oscillatory regimes in radioengineering models of brain thalamocortical network N. M. Egorov, V. I. Ponomarenko, S. N. Melnikova, I. V. Sysoev, M. V. Sysoeva Izvestiya VUZ. Applied Nonlinear Dynamics, 2021, 29:6, 927–942 |
7 |
| 8. |
On methods for verification of the pseudohyperbolicity of strange attractors S. V. Gonchenko, M. H. Kaynov, A. O. Kazakov, D. V. Turaev Izvestiya VUZ. Applied Nonlinear Dynamics, 2021, 29:1, 160–185 |
7 |
| 9. |
Bifurcations of attracting sets of cutting tool deformation displacements at the evolution of treatment process properties V. L. Zakovorotnyj, V. E. Gvindzhilija Izvestiya VUZ. Applied Nonlinear Dynamics, 2018, 26:5, 20–38 |
7 |
| 10. |
Differentially coherent information transmission based on chaotic radio pulses A. S. Dmitriev, T. I. Mokhseni, C. M. Sierra-Teran Izvestiya VUZ. Applied Nonlinear Dynamics, 2018, 26:4, 59–74 |
7 |
| 11. |
Nonlinear waves of the sine-Gordon equation in the model with three attracting impurities E. G. Ekomasov, K. Yu. Samsonov, A. M. Gumerov, R. V. Kudryavtsev Izvestiya VUZ. Applied Nonlinear Dynamics, 2022, 30:6, 749–765 |
6 |
| 12. |
Simple and complex dynamics in the model of evolution of two populations coupled by migration with non-overlapping generations M. P. Kulakov, E. Ya. Frisman Izvestiya VUZ. Applied Nonlinear Dynamics, 2022, 30:2, 208–232 |
6 |
| 13. |
Hemodynamic response in the motor cortex to execution of different types of movements A. A. Badarin, V. V. Grubov, A. V. Andreev, V. M. Antipov, S. A. Kurkin Izvestiya VUZ. Applied Nonlinear Dynamics, 2022, 30:1, 96–108 |
6 |
| 14. |
Influence of parameters inhomogeneity on the existence of chimera states in a ring of nonlocally coupled maps V. A. Nechaev, E. V. Rybalova, G. I. Strelkova Izvestiya VUZ. Applied Nonlinear Dynamics, 2021, 29:6, 943–952 |
6 |
| 15. |
Simulation of business and financial cycles: self-oscillation and synchronization V. V. Matrosov, V. D. Shalfeev Izvestiya VUZ. Applied Nonlinear Dynamics, 2021, 29:4, 515–537 |
6 |
| 16. |
Nonlinear phenomena in Kuramoto networks with dynamical couplings D. V. Kasatkin, A. Emel'yanova, V. I. Nekorkin Izvestiya VUZ. Applied Nonlinear Dynamics, 2021, 29:4, 635–675 |
6 |
| 17. |
Link between the self-organization of dynamic cutting system and tool wear V. L. Zakovorotnyj, V. E. Gvindzhilija Izvestiya VUZ. Applied Nonlinear Dynamics, 2020, 28:1, 46–61 |
6 |
| 18. |
Hybrid SIRS model of infection spread A. V. Shabunin Izvestiya VUZ. Applied Nonlinear Dynamics, 2022, 30:6, 717–731 |
5 |
| 19. |
Synchronization of infections spread processes in populations interacting: Modeling by lattices of cellular automata A. V. Shabunin Izvestiya VUZ. Applied Nonlinear Dynamics, 2020, 28:4, 383–396 |
5 |
| 20. |
The reconstruction of the couplings structure in the ensemble of oscillators according to the time series via phase dynamics modeling E. V. Navrotskaya, D. A. Smirnov, B. P. Bezruchko Izvestiya VUZ. Applied Nonlinear Dynamics, 2019, 27:1, 41–52 |
5 |
| 21. |
The discrete van der Pol oscillator: Finite differences and slow amplitudes V. V. Zaytcev Izvestiya VUZ. Applied Nonlinear Dynamics, 2017, 25:6, 70–78 |
5 |
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| Most requested articles of the journal |
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| 1. |
Traveling waves solution in parabolic problem with a rotation Yu. A. Khazova Izvestiya VUZ. Applied Nonlinear Dynamics, 2017, 25:6, 57–69 | 32 |
| 2. |
On the origin of russian numerals A. A. Abrashkin Izvestiya VUZ. Applied Nonlinear Dynamics, 2016, 24:5, 84–91 | 32 |
| 3. |
Interaction and synchronization of rhythms in a model of the brain limbic system A. A. Kapustnikov, M. V. Sysoeva, I. V. Sysoev, M. V. Kornilov Izvestiya VUZ. Applied Nonlinear Dynamics, 2025, 33:4, 567–589 | 20 |
| 4. |
On the question accounting of the resistance force at the hinge point of setting physical pendulum and its influence on the dynamics of movement S. O. Gladkov, S. B. Bogdanova Izvestiya VUZ. Applied Nonlinear Dynamics, 2019, 27:1, 53–62 | 18 |
| 5. |
Entropy and DFA of heart rate variability in remote ischemic preconditioning, orthostatic test in healthy young subjects and in individuals with changes in autonomic regulation of cardiodynamics A. N. Fleishman, T. V. Korablina, E. S. Smagina, S. A. Petrovskiy, D. E. Ioven, A. A. Neretin Izvestiya VUZ. Applied Nonlinear Dynamics, 2016, 24:5, 37–61 | 16 |
| 6. |
Analysis of synchronous modes of coupled oscillators in power grids V. S. Anishchenko, P. A. Arinushkin Izvestiya VUZ. Applied Nonlinear Dynamics, 2018, 26:3, 62–77 | 14 |
| 7. |
Amazing Robert Adler: Adler’s tube, Adler’s equation, and more A. P. Kuznetsov, I. R. Sataev, D. I. Trubetskov, E. S. Seliverstova Izvestiya VUZ. Applied Nonlinear Dynamics, 2015, 23:3, 3–26 | 14 |
| 8. |
Model of 2D-imaging system using correlation-based reception for image synthesis of radio light sources M. M. Petrosyan, A. I. Ryzhov Izvestiya VUZ. Applied Nonlinear Dynamics, 2025, 33:1, 69–81 | 13 |
| 9. |
Asymptotic research of local dynamics families of Cahn-Hilliard equations S. P. Plyshevskaya Izvestiya VUZ. Applied Nonlinear Dynamics, 2019, 27:1, 63–76 | 13 |
| 10. |
Nonlinear temperature waves: Analysis based on the nonlinear heat equation M. V. Davidovich, I. A. Kornev, A. B. Timofeev Izvestiya VUZ. Applied Nonlinear Dynamics, 2019, 27:6, 73–90 | 12 |
|
| Total publications: |
581 |
| Scientific articles: |
460 |
| Authors: |
711 |
| Citations: |
490 |
| Cited articles: |
207 |
 |
Impact Factor Web of Science |
|
for 2025:
0.400 |
|
for 2024:
0.300 |
|
for 2023:
0.500 |
 |
Scopus Metrics |
|
2025 |
CiteScore |
1.100 |
|
2025 |
SNIP |
0.532 |
|
2025 |
SJR |
0.280 |
|
2024 |
CiteScore |
1.200 |
|
2024 |
SNIP |
0.394 |
|
2024 |
SJR |
0.226 |
|
2023 |
CiteScore |
1.200 |
|
2023 |
SNIP |
0.499 |
|
2023 |
SJR |
0.295 |
|
2022 |
SJR |
0.242 |
|
2021 |
SJR |
0.284 |
|
2020 |
SJR |
0.226 |
|
2019 |
SJR |
0.220 |
|