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1 M. A. Nowak, "Virus dynamics: Mathematical Principles of Immunology and Virology" Oxford Uni., Springer Verlag 2000
2 V. Herz, "Viral dynamics in vivo: Limitations on estimations on intracellular delay and virus delay" 93 : 7247-7251, 1996
3 T. Wang, "Stability and Hopf bifurcation for a virus infection model with delayed humoral immunity response" 411 : 63-74, 2014
4 A. M. Shehata, "Stability analysis of humoral immunity HIV infection models with RTI and discrete delays" 2016
5 X. Yang, "Permanence and positive periodic solution for the single-species nonautonomous delay diffusive models" 32 (32): 109-116, 1996
6 A.S. Perelson, "Mathematical analysis of HIV-1 dynamics in vivo" 41 : 3-44, 1999
7 J. K. Hale, "Introduction to functional differential equations" Springer Science & Business Media 99-, 2013
8 J. A. Deans, "Immunology of malaria" 37 : 25-49, 1983
9 D. S. Callaway, "HIV-1 infection and low steady state viral loads" 64 : 29-64, 2002
10 A. M. Elaiw, "HIV dynamics: Analysis and robust multirate MPC-based treatment schedules" 356 : 285-301, 2009
11 Z. Yuan, "Global threshold dynamics in an HIV virus model with nonlinear infection rate and distributed invasion and production delays" 10 (10): 483-498, 2013
12 A. M. Elaiw, "Global stability of humoral immunity virus dynamics models with nonlinear infection rate and removal" 26 : 161-190, 2015
13 S. Liu, "Global stability of an HIV-1 model with distributed intracellular delays and a combination therapy" 7 (7): 675-685, 2010
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18 C. Lv, "Global stability for an HIV-1 infection model with Beddington-DeAngelis incidence rate and CTL immune response" 19 : 121-127, 2014
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20 T. Wang, "Global stability analysis for delayed virus infection model with general incidence rate and humoral immunity" 89 : 13-22, 2013
21 A. M. Elaiw, "Global properties of delayed-HIV dynamics models with differential drug efficacy in co-circulating target cells" 265 : 1067-1089, 2015
22 A.M. Elaiw, "Global properties of a class of HIV models" 11 : 2253-2263, 2010
23 A.M. Elaiw, "Global properties of a class of HIV infection models with Beddington-DeAngelis functional response" 36 : 383-394, 2013
24 A. M. Elaiw, "Global properties of a cell mediated immunity in HIV infection model with two classes of target cells and distributed delays" 77 (77): 25-, 2014
25 A. M. Elaiw, "Global dynamics of virus infection model with humoral immune response and distributed delays" 17 : 515-523, 2014
26 A. M. ELAIW, "GLOBAL THRESHOLD DYNAMICS IN HUMORAL IMMUNITY VIRAL INFECTION MODELS INCLUDING AN ECLIPSE STAGE OF INFECTED CELLS" 한국산업응용수학회 19 (19): 137-170, 2015
27 A. M. ELAIW, "GLOBAL ANALYSIS FOR A DELAY-DISTRIBUTED VIRAL INFECTION MODEL WITH ANTIBODIES AND GENERAL NONLINEAR INCIDENCE RATE" 한국산업응용수학회 18 (18): 317-335, 2014
28 A.M. Elaiw, "Dynamics of viral infection models with antibodies and general nonlinear incidence and neutralize rates" 2015
29 J. Wang, "Constructing Lyapunov functionals for a delayed viral infection model with multitarget cells" 9 (9): 524-536, 2016
30 N. M. Dixit, "Complex patterns of viral load decay under antiretroviral therapy: influence of pharmacokinetics and intracellular delay" 226 : 95-109, 2004
31 R. Larson, "Calculus of a single variable" Cengage Learning, Inc. 2010
32 C. Monica, "Analysis of stability and Hopf bifurcation for HIV-1 dynamics with PI and three intracellular delays" 27 : 55-69, 2016
33 B. Li, "A delayed HIV-1 model with virus waning term" 13 : 135-157, 2016