Εμφανίζονται 1 - 20 Αποτελέσματα από 42 για την αναζήτηση '"мультистабильность"', χρόνος αναζήτησης: 0,62δλ Περιορισμός αποτελεσμάτων
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    Academic Journal

    Συνεισφορές: This work was financially supported by the Russian Science Foundation, project No. 22-71-10028.

    Πηγή: Vavilov Journal of Genetics and Breeding; Том 27, № 7 (2023); 755-767 ; Вавиловский журнал генетики и селекции; Том 27, № 7 (2023); 755-767 ; 2500-3259 ; 10.18699/VJGB-23-83

    Περιγραφή αρχείου: application/pdf

    Relation: https://vavilov.elpub.ru/jour/article/view/3975/1762; Akın E., Yeni G., Perelson A.S. Continuous and discrete modeling of HIV-1 decline on therapy. J. Math. Biol. 2020;81(1):1-24. DOI 10.1007/s00285-020-01492-z; Banks H.T., Hu S., Rosenberg E. A dynamical modeling approach for analysis of longitudinal clinical trials in the presence of missing endpoints. Appl. Math. Lett. 2017;63:109-117. DOI 10.1016/j.aml.2016.07.002; Bocharov G., Chereshnev V., Gainova I., Bazhan S., Bachmetyev B., Argilaguet J., Martinez J., Meyerhans A. Human immunodeficiency virus infection: from biological observations to mechanistic mathematical modelling. Math. Model. Nat. Phenom. 2012;7(5):78-104. DOI 10.1051/mmnp/20127507; Bocharov G., Kim A., Krasovskii A., Chereshnev V., Glushenkova V., Ivanov A. An extremal shift method for control of HIV infection dynamics. Russ. J. Numer. Anal. Math. Model. 2015;30(1):11-25. DOI 10.1515/rnam-2015-0002; Bocharov G.A., Nechepurenko Y.M., Khristichenko M.Y., Grebennikov D.S. Optimal perturbations of systems with delayed independent variables for control of dynamics of infectious diseases based on multicomponent actions. J. Math. Sci. 2021;253(5):618-641. DOI 10.1007/s10958-021-05258-w; Bocharov G., Grebennikov D., Cebollada Rica P., Domenjo-Vila E., Casella V., Meyerhans A. Functional cure of a chronic virus infection by shifting the virus – host equilibrium state. Front. Immunol. 2022;13:904342. DOI 10.3389/fimmu.2022.904342; Gandhi R.T., Bedimo R., Hoy J.F., Landovitz R.J., Smith D.M., Eaton E.F., Lehmann C., Springer S.A., Sax P.E., Thompson M.A., Benson C.A., Buchbinder S.P., Del Rio C., Eron J.J., Jr., Günthard H.F., Molina J.-M., Jacobsen D.M., Saag M.S. Antiretroviral drugs for treatment and prevention of HIV infection in adults: 2022 recommendations of the International Antiviral Society-USA Panel. JAMA. 2023;329(1):63-84. DOI 10.1001/jama.2022.22246; Geddes K.O., Czapor S.R., Labahn G. Algorithms for Computer Algebra. Boston: Kluwer Academic, 1992; Golub G.H., Van Loan C.F. Matrix Computations. Baltimore: Johns Hopkins Univ. Press, 1989; Grossman Z., Singh N.J., Simonetti F.R., Lederman M.M., Douek D.C., Deeks S.G., Kawabe T., Bocharov G., Meier-Schellersheim M., Alon H., Chomont N., Grossman Z., Sousa A.E., Margolis L., Maldarelli F. “Rinse and replace”: boosting T cell turnover to reduce HIV-1 reservoirs. Trends Immunol. 2020;41(6):466-480. DOI 10.1016/j.it.2020.04.003; Hadjiandreou M.M., Conejeros R., Wilson I. HIV treatment planning on a case-by-case basis. Int. J. Bioeng. Life Sci. 2009;3(8):387-396; Hairer E., Nørsett S.P., Wanner G. Solving Ordinary Differential Equations I. Springer Series in Computational Mathematics. Vol. 8. Berlin: Springer, 1987. DOI 10.1007/978-3-662-12607-3; Joly M., Pinto J.M. Role of mathematical modeling on the optimal control of HIV-1 pathogenesis. AIChE J. 2006;52(3):856-884. DOI 10.1002/aic.10716; Khristichenko M.Y., Nechepurenko Y.M. Computation of periodic solutions to models of infectious disease dynamics and immune response. Russ. J. Numer. Anal. Math. Model. 2021;36(2):87-99. DOI 10.1515/rnam-2021-0008; Khristichenko M.Y., Nechepurenko Y.M. Optimal disturbances for periodic solutions of time-delay differential equations. Russ. J. Numer. Anal. Math. Model. 2022;37(4):203-212. DOI 10.1515/rnam-20220017; Khristichenko M.Yu., Nechepurenko Yu.M., Grebennikov D.S., Bocharov G.A. Numerical analysis of stationary solutions of systems with delayed argument in mathematical immunology. Sovremennaya Matematika. Fundamental’nye Napravleniya = Contemporary Mathematics. Fundamental Directions. 2022;68(4):686-703. DOI 10.22363/2413-3639-2022-68-4-686-703 (in Russian); Khristichenko M., Nechepurenko Y., Grebennikov D., Bocharov G. Numerical study of chronic hepatitis B infection using Marchuk– Petrov model. J. Bioinform. Comput. Biol. 2023;21(2):2340001. DOI 10.1142/S0219720023400012; Landovitz R.J., Scott H., Deeks S.G. Prevention, treatment and cure of HIV infection. Nat. Rev. Microbiol. 2023;21(10):657-670. DOI 10.1038/s41579-023-00914-1; Ludewig B., Stein J.V., Sharpe J., Cervantes-Barragan L., Thiel V., Bocharov G. A global “imaging” view on systems approaches in immunology. Eur. J. Immunol. 2012;42(12):3116-3125. DOI 10.1002/eji.201242508; Nechepurenko Y.M., Khristichenko M.Y. Computation of optimal disturbances for delay systems. Comput. Math. and Math. Phys. 2019; 59(5):731-746. DOI 10.1134/S0965542519050129; Nechepurenko Y., Khristichenko M., Grebennikov D., Bocharov G. Bistability analysis of virus infection models with time delays. Discrete Cont. Dyn. Syst. ­ S. 2020;13(9):2385-2401. DOI 10.3934/dcdss.2020166; Niessl J., Baxter A.E., Mendoza P., Jankovic M., Cohen Y.Z., Butler A.L., Lu C.-L., Dubé M., Shimeliovich I., Gruell H., Klein F., Caskey M., Nussenzweig M.C., Kaufmann D.E. Combination anti-HIV-1 antibody therapy is associated with increased virus-specific T cell immunity. Nat. Med. 2020;26(2):222-227. DOI 10.1038/s41591-019-0747-1; Nowak M.A., May R.M. Virus Dynamics: Mathematical Principles of Immunology and Virology. Oxford: Oxford Univ. Press, 2000; Perelson A.S., Nelson P.W. Mathematical analysis of HIV-1 dynamics in vivo. SIAM Rev. 1999;41(1):3-44. DOI 10.1137/S0036144598335107; Rasmussen T.A., Søgaard O.S. Clinical interventions in HIV cure research. In: Zhang L., Lewin S.R. (Eds.) HIV Vaccines and Cure. Advances in Experimental Medicine and Biology. Vol. 1075. Singapore: Springer, 2018;285-318. DOI 10.1007/978-981-13-0484-2_12; Savinkova A.A., Savinkov R.S., Bakhmetyev B.A., Bocharov G.A. Mathematical modeling and control of HIV infection dynamics taking into account hormonal regulation. Vestnik Rossiyskogo Universiteta Druzhby Narodov. Seriya Meditsina = RUDN Journal of Medicine. 2019;23(1):79-103. DOI 10.22363/2313-0245-2019-231-79-103 (in Russian); Trickey A., Zhang L., Gill M.J., Bonnet F., Burkholder G., Castagna A., Cavassini M., Cichon P., Crane H., Domingo P., Grabar S., Guest J., Obel N., Psichogiou M., Rava M., Reiss P., Rentsch C.T., Riera M., Schuettfort G., Silverberg M.J., Smith C., Stecher M., Sterling T.R., Ingle S.M., Sabin C.A., Sterne J.A.C. Associations of modern initial antiretroviral drug regimens with all-cause mortality in adults with HIV in Europe and North America: a cohort study. Lancet HIV. 2022;9(6):e404-e413. DOI 10.1016/S2352-3018(22)00046-7; Villani A.-C., Sarkizova S., Hacohen N. Systems immunology: learning the rules of the immune system. Annu. Rev. Immunol. 2018;36(1): 813-842. DOI 10.1146/annurev-immunol-042617-053035; https://vavilov.elpub.ru/jour/article/view/3975

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    Academic Journal

    Συγγραφείς: I. M. Burkin, И. М. Буркин

    Πηγή: Chebyshevskii Sbornik; Том 18, № 4 (2017); 127-138 ; Чебышевский сборник; Том 18, № 4 (2017); 127-138 ; 2226-8383 ; 10.22405/2226-8383-2017-18-4

    Περιγραφή αρχείου: application/pdf

    Relation: https://www.chebsbornik.ru/jour/article/view/383/345; Lorenz, E. N. 1963, "Deterministic nonperiodic flow". J.Atmos.Sci., vol.20, pp.65 -75.; R¨ossler, O. E. 1976, "An Equation for Continuous Chaos". Physics Letters A, vol. 57, no.5, pp.397 -398.; Chua, L. O. 1992, "A zoo of Strange Attractors from the Canonical Chua’s Circuits". Proc. Of the IEEE 35th Midwest Symp. on Circuits and Systems (Cat. No.92CH3099-9). Wash-ington, vol. 2, pp. 916 – 926.; Leonov G. A., Kuznetsov N. V., Vagaitsev V. I. 2011 "Localization of hidden Chua’s at-tractors". Phys. Lett. A, vol. 375, pp.2230-2233.; Sharma P. R. , Shrimali M.D , Prasad A , Kuznetsov N.V , Leonov G.A. 2015, "Control of multistability in hidden attractors". Eur Phys J Spec Top; vol. 224,no.8, pp.1485–1491 .; Sharma P. R. , Shrimali M.D , Prasad A , Kuznetsov N.V , Leonov G.A . 2015, "Controlling dynamics of hidden attractors".Int. J. Bifurcation and Chaos, vol. 25, no.4:1550061.; Pham V-T, Volos C. , Jafari S. , Wei Z. , Wang X . 2014, "Constructing a novel no-equilib- rium chaotic system". Int J Bifurcation and Chaos, vol. 24,no.5:1450073 .; Tahir F. R. , Jafari S. , Pham V-T. , Volos C , Wang X . 2015, "A novel no-equilibrium chaot-ic system with multiwing butterfly attractors". Int J Bifurcation and Chaos, vol.25, no.4:1550056.; Jafari S, Pham V-T., Kapitaniak T . 2016, "Multiscroll chaotic sea obtained from a simple 3d system without equilibrium". Int J Bifurcation and Chaos, vol.26,no.2:1650031.; Molaie M., Jafari S., Sprott J. C., Golpayegani SMRH 2013, "Simple chaotic flows with one stable equilibrium". Int J Bifurcation and Chaos, vol.23, no.11:1350188.; Kingni S. T., Simo H., Woafo P. 2014, "Three-dimensional chaotic autonomous system with only one stable equilibrium: analysis, circuit design, parameter estimation, control, synchroni-zation and its fractional-order form". Eur Phys J Plus, vol.129, no.5, pp.1–16 .; Pham V-T , Jafari S., Volos C. , Giakoumis A/ , Vaidyanathan S. , Kapitaniak T. 2016, "A chaotic system with equilibria located on the rounded square loop and its circuit implementation". IEEE Trans Circuits Syst II, vol.63,no.9, pp.878–882.; Pham V-T., Jafari S., Volos C., 2017, "A novel chaotic system with heart-shaped equilibrium and its circuital implementation". Optik, vol. 131, pp. 343–349.; Rajagopal K., Karthikeyan A., Duraisamy P. 2017,"Hyperchaotic chameleon: fractional order FPGAimplementation". Complexity Volume 2017. Available at: https://www.hindawi. com/journals/complexity/aip/8979408/.; Rajagopal K., Akgul A. , Jafari S. , Karthikeyan A., Koyuncu I. 2017, " Chaotic chameleon: Dynamic analyses, circuit implementation, FPGA design and fractional-order form with basic analyses". Chaos, Solitons and Fractals, vol.103, pp.476-487.; Буркин И. М., Нгуен Нгок Хиен. Аналитико-численные методы поиска скрытых колебаний в многомерных динамических системах // Диф. уравнения, 2014, т. 50, № 13. С.1695–1717.; Sprott, J. C. 2011, “A new chaotic jerk circuit”. IEEE Trans. Circuits Syst.-II: Expr. Briefs, vol. 58, pp. 240–243.; Sprott, J. C., Fatma Y. D., 2016, "Simple Chaotic Hyperjerk System". Int. J. Bifurcation and Chaos,vol. 26, no.11: 1650189.; Буркин И. М. О явлении буферности в многомерных динамических системах // Диф. уравнения, 2002, т.38, №5. С. 615-625.; Буркин И. М. Скрытые аттракторы некоторых мультистабильных систем с бесконеч-ным числом состояний равновесия // Чебышевский сборник,2017,т.18. № 2 (62). С. 18-33.; Leonov G. A., Kuznetsov N. V., Mokaev T. N. 2015, "Homoclinic orbits, and self-excited and hidden attractors in a Lorenz-like system describing convective fluid motion". The Eu-ropean Physical Journal Special Topics, Multistability: Uncovering Hidden Attractors, vol. 224, no. 8, pp. 1421–1458,doi:10.1140/epjst/e2015-02470-3.; https://www.chebsbornik.ru/jour/article/view/383

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    Report

    Συνεισφορές: Михальченко, Сергей Геннадьевич

    Περιγραφή αρχείου: application/pdf

    Relation: Русскин В. А. Исследование динамических режимов повышающего преобразователя напряжения сетевого инвертора солнечных батарей : дипломный проект / В. А. Русскин; Национальный исследовательский Томский политехнический университет (ТПУ), Энергетический институт (ЭНИН), Кафедра электропривода и электрооборудования (ЭПЭО); науч. рук. С. Г. Михальченко. — Томск, 2016.; http://earchive.tpu.ru/handle/11683/28305

    Διαθεσιμότητα: http://earchive.tpu.ru/handle/11683/28305

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