[1] M. Mishra, L. Panigrahi, J. Panda, Investigation of induced magnetic field on MHD radiative flow across an exponentially stretching sheet, Int. J. Ambient Energy 44 (1) (2023) 1192-1201. [2] A.K. Abdul Jawwad, M. Jawad, K.S. Nisar, M. Saleem, B. Hasanain, Radiative transport of MHD stagnation point flow of chemically reacting Carreau nanofluid due to radially stretched sheet, Alex. Eng. J. 69 (2023) 699-714. [3] U.S. Mahabaleshwar, K.N. Sneha, A. Wakif, Significance of thermo-diffusion and chemical reaction on MHD Casson fluid flows conveying CNTs over a porous stretching sheet, Waves Random Complex Medium. (2023) 1-19. [4] A.M. Alqahtani, M. Bilal, M. Usman, T.R. Alsenani, A. Ali, S.R. Mahmuod, Heat and mass transfer through MHD Darcy Forchheimer Casson hybrid nanofluid flow across an exponential stretching sheet, ZAMM J. Appl. Math. Mech. 103 (6) (2023) e202200213. [5] A. Al-Bossly, F.S. Alduais, S. Ahmad Lone, M.Y. Almusawa, A. Saeed, A stratified MHD flow of Eyring-Powell fluid containing gyrotactic microorganisms through a stretching sheet with mixed convection, ZAMM J. Appl. Math. Mech. 103 (9) (2023) e202200492. [6] M.M. Bhatti, E.E. Michaelides, Oldroyd 6-constant Electro-magneto-hydrodynamic fluid flow through parallel micro-plates with heat transfer using Darcy-Brinkman-Forchheimer model: A parametric investigation, Math. Eng. 5 (3) (2023) 1-19. [7] A. Shahid, H.L. Huang, C.M. Khalique, M.M. Bhatti, Numerical analysis of activation energy on MHD nanofluid flow with exponential temperature-dependent viscosity past a porous plate, J. Therm. Anal. Calorim. 143 (3) (2021) 2585-2596. [8] M. Abbas, M. Bhatti, M. Rashidi, Heat transfer on magnetohydrodynamic stagnation point flow through a porous shrinking/stretching sheet: A numerical study, Therm. Sci. 24 (2 Part B) (2020) 1335-1344. [9] K. Ramesh, D. Tripathi, M.M. Bhatti, K. Ghachem, S.U. Khan, L. Kolsi, Mathematical modeling and simulation of electromagnetohydrodynamic bio-nanomaterial flow through physiological vessels, J. Appl. Biomater. Funct. Mater. 20 (2022) 22808000221114708. [10] M.M. Bhatti, L. Phali, C.M. Khalique, Heat transfer effects on electro-magnetohydrodynamic Carreau fluid flow between two micro-parallel plates with Darcy-Brinkman-Forchheimer medium, Arch. Appl. Mech. 91 (4) (2021) 1683-1695. [11] A. Singh, S.C. Sharma, Behaviour of conical porous hybrid journal bearing operated with MHD lubricant considering influence of surface irregularities, Tribol. Int. 174 (2022) 107730. [12] J.R. Lin, MHD steady and dynamic characteristics of wide tapered-land slider bearings, Tribol. Int. 43 (12) (2010) 2378-2383. [13] N.B. Naduvinamani, B.N. Hanumagowda, S. Tasneem Fathima, Combined effects of MHD and surface roughness on couple-stress squeeze film lubrication between porous circular stepped plates, Tribol. Int. 56 (2012) 19-29. [14] M. Nabhani, M. El Khlifi, Inertial MHD couple stress effects on infinitely wide slider bearings, Tribol. Trans. 58 (2) (2015) 374-383. [15] M. Nabhani, M. El Khlifi, Non-Newtonian inertial magnetohydrodynamic porous squeeze film lubrication between circular discs, Tribol. Int. 94 (2016) 373-382. [16] S.R. Munjam, K. Gangadhar, R. Seshadri, M. Rajeswar, Novel technique MDDIM solutions of MHD flow and radiative Prandtl-Eyring fluid over a stretching sheet with convective heating, Int. J. Ambient Energy 43 (1) (2022) 4850-4859. [17] Z. Ullah, I. Ullah, G. Zaman, T.C. Sun, A numerical approach to interpret melting and activation energy phenomenon on the magnetized transient flow of Prandtl-Eyring fluid with the application of Cattaneo-Christov theory, Waves Random Complex Medium. (2022) 1-21. [18] M. Shoaib, I. Naz, M.I. Khan, M.A.Z. Raja, G. Zubair, K.S. Nisar, K. Guedri, Artificial intelligence knacks-based stochastic paradigm to study lie group analysis with the impact of electric field on MHD Prandtl-Eyring fluid flow system, Int. J. Mod. Phys. B 36 (30) (2022) 2250216. [19] I. Ullah, R. Ali, H. Nawab, Abdussatar, I. Uddin, T. Muhammad, I. Khan, K.S. Nisar, Theoretical analysis of activation energy effect on Prandtl-Eyring nanoliquid flow subject to melting condition, J. Non Equilib. Thermodyn. 47 (1) (2022) 1-12. [20] S.O. Salawu, Two-step exothermic reaction-diffusion of hydromagnetic Prandtl-Eyring viscous heating fluid in a channel, Int. J. Thermofluids 17 (2023) 100300. [21] Z. Shah, M. Rooman, M. Shutaywi, Computational analysis of radiative engine oil-based Prandtl-Eyring hybrid nanofluid flow with variable heat transfer using the Cattaneo-Christov heat flux model, RSC Adv. 13 (6) (2023) 3552-3560. [22] A.K. Verma, K. Bhattacharyya, S. Rajput, M.S. Mandal, A.J. Chamkha, D. Yadav, Buoyancy driven non-Newtonian Prandtl-Eyring nanofluid flow in Darcy-Forchheimer porous medium over inclined non-linear expanding sheet with double stratification, Waves Random Complex Medium. (2022) 1-33. [23] S. Chaudhary, K.K. Chouhan, Darcy-Forchheimer flow of Prandtl-Eyring nanofluid subjected to a Riga plate of varying thickness along with Brownian diffusion, thermophoresis and non-uniform heat source/sink effects, Numer. Heat Transf. Part A Appl. 84 (7) (2023) 732-759. [24] Z.I. Butt, I. Ahmad, M. Shoaib, H. Ilyas, A.K. Kiani, M.A.Z. Raja, Neuro-evolution heuristics for Prandtl-Eyring nanofluid flow with homogenous/heterogeneous reaction across a linearly heated stretched sheet, Waves Random Complex Medium. (2023) 1-47. [25] S.O. Salawu, A.M. Obalalu, M. Shamshuddin, Nonlinear solar thermal radiation efficiency and energy optimization for magnetized hybrid Prandtl-Eyring nanoliquid in aircraft, Arab. J. Sci. Eng. 48 (3) (2023) 3061-3072. [26] J. Akram, N.S. Akbar, E. Maraj, Chemical reaction and heat source/sink effect on magnetonano Prandtl-Eyring fluid peristaltic propulsion in an inclined symmetric channel, Chin. J. Phys. 65 (2020) 300-313. [27] M.A.Z. Raja, A. Mehmood, S. Ashraf, K.M. Awan, P. Shi, Design of evolutionary finite difference solver for numerical treatment of computer virus propagation with countermeasures model, Math. Comput. Simul. 193 (2022) 409-430. [28] N. Anwar, I. Ahmad, A.K. Kiani, S. Naz, M. Shoaib, M.A.Z. Raja, Intelligent predictive stochastic computing for nonlinear differential delay computer virus model, Waves Random Complex Medium. (2022) 1-29. [29] N. Anwar, I. Ahmad, M.A.Z. Raja, S. Naz, M. Shoaib, A.K. Kiani, Artificial intelligence knacks-based stochastic paradigm to study the dynamics of plant virus propagation model with impact of seasonality and delays, Eur. Phys. J. Plus 137 (1) (2022) 144. [30] S. Noinang, M. Munawar, M.A. Zahoor Raja, Z. Sabir, T. Botmart, W. Weera, P. Junsawang, Numerical assessments employing neural networks for a novel drafted anti-virus subcategory in a nonlinear fractional-order SIR differential system, IEEE Access 10 (2022) 114192-114202. [31] E.B. Moustafa, A. Elsheikh, Predicting characteristics of dissimilar laser welded polymeric joints using a multi-layer perceptrons model coupled with Archimedes optimizer, Polymers 15 (1) (2023) 233. [32] S. Saurav, R. Saini, S. Singh, A dual-channel ensembled deep convolutional neural network for facial expression recognition in the wild, Comput. Intell. 39 (5) (2023) 666-706. [33] M. Shoaib, R. Tabassum, M.A.Z. Raja, K.S. Nisar, M.S. Alqahtani, M. Abbas, A design of predictive computational network for transmission model of Lassa fever in Nigeria, Results Phys. 39 (2022) 105713. [34] A.H. Elsheikh, S.W. Sharshir, M. Abd Elaziz, A.E. Kabeel, G.L. Wang, H.O. Zhang, Modeling of solar energy systems using artificial neural network: A comprehensive review, Sol. Energy 180 (2019) 622-639. [35] A.H. Elsheikh, V.P. Katekar, O.L. Muskens, S.S. Deshmukh, M.A. Elaziz, S.M. Dabour, Utilization of LSTM neural network for water production forecasting of a stepped solar still with a corrugated absorber plate, Process. Saf. Environ. Prot. 148 (2021) 273-282. [36] A. Bamasag, F.A. Essa, Z.M. Omara, E. Bahgat, A.O. Alsaiari, H. Abulkhair, R.A. Alsulami, A.H. Elsheikh, Machine learning-based prediction and augmentation of dish solar distiller performance using an innovative convex stepped absorber and phase change material with nanoadditives, Process. Saf. Environ. Prot. 162 (2022) 112-123. [37] A. Rizwan, I. Ahmad, M.A.Z. Raja, M. Shoaib, Design of spline-evolutionary computing paradigm for nonlinear thin film flow model, Arab. J. Sci. Eng. 46 (9) (2021) 9279-9299. [38] I. Ahmad, M.A.Z. Raja, H. Ramos, M. Bilal, M. Shoaib, Integrated neuro-evolution-based computing solver for dynamics of nonlinear corneal shape model numerically, Neural Comput. Appl. 33 (11) (2021) 5753-5769. [39] A.H. Elsheikh, Applications of machine learning in friction stir welding: Prediction of joint properties, real-time control and tool failure diagnosis, Eng. Appl. Artif. Intell. 121 (2023) 105961. [40] M. Shoaib, M. Kausar, K.S. Nisar, M. Asif Zahoor Raja, A. Morsy, Impact of thermal energy on MHD Casson fluid through a Forchheimer porous medium with inclined non-linear surface: A soft computing approach, Alex. Eng. J. 61 (12) (2022) 12211-12228. [41] S.I. Hussain, I. Ahmad, N. Yasmeen, The remarkable role of hydrogen in conductors with copper and silver nanoparticles by mixed convection using viscosity reynold’s model, Proceedings of the International Conference on Nonlinear Dynamics and Applications, 2024, pp. 49-60. [42] M. Abd Elaziz, F.A. Essa, A.H. Elsheikh, Utilization of ensemble random vector functional link network for freshwater prediction of active solar stills with nanoparticles, Sustain. Energy Technol. Assess. 47 (2021) 101405. [43] Z.I. Butt, I. Ahmad, M.A.Z. Raja, S.I. Hussain, M. Shoaib, H. Ilyas, Neuro-heuristic computational intelligence approach for optimization of electro-magneto-hydrodynamic influence on a nano viscous fluid flow, Int. J. Intell. Syst. 2023 (2023) 7626478. [44] Z.I. Butt, I. Ahmad, S.I. Hussain, M.A.Z. Raja, M. Shoaib, H. Ilyas, Inverse multiquadric kernel-based neuro heuristic approach to analyze the unsteady MHD nanofluid flow via permeable elongating surface, ZAMM J. Appl. Math. Mech. 104 (2) (2024) e202300390. [45] Z.I. Butt, I. Ahmad, S.I. Hussain, M.A.Z. Raja, M. Shoaib, H. Ilyas, Intelligent computing paradigm for unsteady magneto nano-polymeric Casson nanofluid with Ohmic dissipation and thermal radiation, Chin. J. Phys. 88 (2024) 212-269. [46] I. Ahmad, S.I. Hussain, H. Ilyas, L. Zoubir, M. Javed, M.A. Zahoor Raja, Integrated stochastic investigation of singularly perturbed delay differential equations for the neuronal variability model, Int. J. Intell. Syst. 2023 (2023) 1918409. [47] I. Ahmad, H. Ilyas, S.I. Hussain, M.A.Z. Raja, Evolutionary techniques for the solution of bio-heat equation arising in human dermal region model, Arab. J. Sci. Eng. 49 (3) (2024) 3109-3134. [48] I. Ahmad, S.I. Hussain, H. Ilyas, M.A.Z. Raja, S. Afzal, M. Javed, Optimal control of thermoregulation in the human dermal regions investigated through the stochastic integrated techniques, Case Stud. Therm. Eng. 58 (2024) 104381. [49] S.I. Hussain, I. Ahmad, M.A.Z. Raja, C.M.Z. Umer, A computational convection analysis of SiO2/water and MoS2-SiO2/water based fluidic system in inverted cone, Eng. Rep. 5 (11) (2023) e12660. [50] I. Ahmad, S.I. Hussain, M.A.Z. Raja, M. Shoaib, Qurratulain, Transportation of hybrid MoS2-SiO2/EG nanofluidic system toward radially stretched surface, Arab. J. Sci. Eng. 48 (1) (2023) 953-966. [51] S.I. Hussain, E. Toscano, An extensive investigation into the use of machine learning tools and deep neural networks for the recognition of skin cancer: Challenges, future directions, and a comprehensive review, Symmetry 16 (3) (2024) 366. [52] I. Ahmad, H. Qureshi, M.A. Zahoor Raja, S.I. Hussain, S. Fatima, A novel design of stochastic approximation treatment of longitudinal rectangular fin dynamical model, Case Stud. Therm. Eng. 54 (2024) 104042. [53] D.A. Tiwari, RMCL: A deep learning based recursive malicious context learner in social networks, Comput. Intell. 38 (6) (2022) 1956-1989. [54] Z. Kowalczuk, M. Czubenko, W. Zmuda-Trzebiatowska, Categorization of emotions in dog behavior based on the deep neural network, Comput. Intell. 38 (6) (2022) 2116-2133. [55] R.J. Rajappan, T. Kondampatti Kandaswamy, A composite framework of deep multiple view human joints feature extraction and selection strategy with hybrid adaptive sunflower optimization-whale optimization algorithm for human action recognition in video sequences, Comput. Intell. 38 (2) (2022) 366-396. [56] F. Rustam, I. Ashraf, R. Shafique, A. Mehmood, S. Ullah, G. Sang Choi, Review prognosis system to predict employees job satisfaction using deep neural network, Comput. Intell. 37 (2) (2021) 924-950. [57] S. Ayub, N. Singh, M.Z. Hussain, M. Ashraf, D.K. Singh, A. Haldorai, Hybrid approach to implement multi-robotic navigation system using neural network, fuzzy logic, and bio-inspired optimization methodologies, Comput. Intell. 39 (4) (2023) 592-606. [58] A. Hussain, M.Y. Malik, M. Awais, T. Salahuddin, S. Bilal, Computational and physical aspects of MHD Prandtl-Eyring fluid flow analysis over a stretching sheet, Neural Comput. Appl. 31 (1) (2019) 425-433. [59] R. Eberhart, J. Kennedy, Particle swarm optimization, Proceedings of the IEEE international conference on neural networks, Perth, Australia, 1995, Vol. 4, pp. 1942-1948. [60] I. Ahmad, S.U.I. Ahmad, K. Kutlu, H. Ilyas, S.I. Hussain, F. Rasool, On the dynamical behavior of nonlinear Fitzhugh-Nagumo and Bateman-Burger equations in quantum model using Sinc collocation scheme, Eur. Phys. J. Plus 136 (11) (2021) 1108. [61] D.P. Rangasamy, S. Rajappan, A. Natarajan, R. Ramasamy, D. Vijayakumar, Variable population-sized particle swarm optimization for highly imbalanced dataset classification, Comput. Intell. 37 (2) (2021) 873-890. [62] T. Botmart, Z. Sabir, M. Asif Zahoor Raja, W. Weera, M.R. Ali, R. Sadat, A.A. Aly, Alosaimy, A. Saad, A hybrid swarming computing approach to solve the biological nonlinear Leptospirosis system, Biomed. Signal Process. Contr. 77 (2022) 103789. [63] I. Ahmad, S.I. Hussain, H. Ilyas, J.L. Garcia Guirao, A. Ahmed, S. Rehmat, T. Saeed, Numerical solutions of Schrodinger wave equation and Transport equation through Sinc collocation method, Nonlinear Dyn. 105 (1) (2021) 691-705. [64] F. Altaf, C.L. Chang, N.I. Chaudhary, K.M. Cheema, M.A.Z. Raja, C.M. Shu, A.H. Milyani, Novel fractional swarming with key term separation for input nonlinear control autoregressive systems, Fractal Fract. 6 (7) (2022) 348. [65] N.A. Malik, C.L. Chang, N.I. Chaudhary, M.A.Z. Raja, K.M. Cheema, C.M. Shu, S.S. Alshamrani, Knacks of fractional order swarming intelligence for parameter estimation of harmonics in electrical systems, Mathematics 10 (9) (2022) 1570. [66] J. Nocedal, S.J. Wright, Numerical Optimization, Springer, New York, 1999. [67] M. Shoaib, S. Kainat, M.A.Z. Raja, K.S. Nisar, Design of artificial neural networks optimized through genetic algorithms and sequential quadratic programming for tuberculosis model, Waves Random Complex Medium. (2022) 1-24. [68] Z.I. Butt, I. Ahmad, H. Ilyas, M. Shoaib, M.A.Z. Raja, Design of inverse multiquadric radial basis neural networks for the dynamical analysis of MHD casson nanofluid flow along a nonlinear stretchable porous surface with multiple slip conditions, Int. J. Hydrog. Energy 48 (42) (2023) 16100-16131. [69] Z.I. Butt, I. Ahmad, M. Shoaib, H. Ilyas, M.A.Z. Raja, A novel design of inverse multiquadric radial basis neural networks to analyze MHD nanofluid boundary layer flow past a wedge embedded in a porous medium under the influence of radiation and viscous effects, Int. Commun. Heat Mass Transf. 140 (2023) 106516. [70] Z.I. Butt, I. Ahmad, M. Shoaib, H. Ilyas, M.A.Z. Raja, Electro-magnetohydrodynamic impact on Darrcy-Forchheimer viscous fluid flow over a stretchable surface: Integrated intelligent Neuro-evolutionary computing approach, Int. Commun. Heat Mass Transf. 137 (2022) 106262. [71] W. da Silva Cotrim, J.C. Coimbra, K.C.F. Cotrim, Modeling and simulation of broiler carcass precooling by computational fluid dynamics, J. Food Process. Eng. 44 (6) (2021) e13693. [72] R. de Oliveira Vieira, J.L. Silva Jr, P.A. Meira, G.L. Bressan, P.V.C. Calvo, H.S. Santana, M.S. Palma, Experimental and numerical investigation of the reaction of 2,4-thiazolidinedione and p-methoxybenzaldehyde in microreactors for the production of drugs for diabetes mellitus type 2 treatment, Can. J. Chem. Eng. 101 (11) (2023) 6505-6520. [73] I. Ahmad, S.I. Hussain, M. Usman, H. Ilyas, On the solution of Zabolotskaya-Khokhlov and diffusion of oxygen equations using a Sinc collocation method, Partial. Differ. Equ. Appl. Math. 4 (2021) 100066. [74] M. Rezaeimanesh, S. Ali Asghar Ghoreyshi, S.M. Peyghambarzadeh, S.H. Hashemabadi, Coke deposition and run length in industrial naphtha thermal cracking furnaces via a quasi-steady state coupled CFD model, Can. J. Chem. Eng. 101 (7) (2023) 3856-3873. [75] L.J. Zhang, M.M. Bhatti, O.A. Beg, H.J. Leonard, S. Kuharat, Numerical study of natural convection dissipative electro-magnetic non-Newtonian flow through a non-Darcy channel, ZAMM J. Appl. Math. Mech. 102 (10) (2022) e202100608. [76] M.M. Bhatti, S.M. Sait, R. Ellahi, Magnetic nanoparticles for drug delivery through tapered stenosed artery with blood based non-Newtonian fluid, Pharmaceuticals 15 (11) (2022) 1352. [77] I. Ahmad, S. Ibrar Hussain, H. Ilyas, S. Jabeen, A. Iqrar, On the applications of collocation method for numerically analyzing the nonlinear Degasperis-Procesi and Benjamin-Bona-Mahony equations, Int. J. Mod. Phys. B 38 (20) (2024) 2450264. [78] E.F. Toro, M. Celant, Q. Zhang, C. Contarino, N. Agarwal, A. Linninger, L.O. Muller, Cerebrospinal fluid dynamics coupled to the global circulation in holistic setting: Mathematical models, numerical methods and applications, Int. J. Numer. Method. Biomed. Eng. 38 (1) (2022) e3532. |