N. Senu
0000-0001-8614-8281
Universiti Putra Malaysia
55 papers found
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Application of artificial neural network (ann) for prediction diameter of silver nanoparticles biosynthesized in curcuma longa extract
On the convergence rate of interval repeated midpoint zoro symmetric single-step procedure for simultaneous bounding the polynomial zeros
An improved 2–point block backward differentiation formula for solving stiff initial value problems
A fourth order phase-fitted Runge-Kutta-Nyström method for oscillatory problems
Artificial Intelligence in Numerical Modeling of Silver Nanoparticles Prepared in Montmorillonite Interlayer Space
Numerical solution of linear dirichlet two-point boundary value problems using block method
A three-stage explicit two-step Runge-Kutta-Nyström method for solving second-order ordinary differential equations
Solving second order linear dirichlet and Neumann boundary value problems by block method
Fifth order phase-fitted and amplification-fitted runge-kutta-nyström method for periodic IVPs
Solving Third Order Boundary Value Problem with Fifth Order Method
Numerical Solution of Fuzzy Fractional Pharmacokinetics Model Arising from Drug Assimilation into the Bloodstream
Solving third order boundary value problem using fourth order block method
Stagnation-point flow over a permeable stretching/shrinking sheet in a copper-water nanofluid
Directly solving special second order delay differential equations using Runge-Kutta-Nystrom method
A three-stage fifth-order Runge-Kutta method for directly solving special third-order differential equation with application to thin film flow problem
Semi Implicit Hybrid Methods with Higher Order Dispersion for Solving Oscillatory Problems
An embedded 5(4) explicit Runge-Kutta-Nyström method with dissipation of high order
A fifth order phase-fitted Runge-Kutta-Nyström method for periodic initial value problems
New Phase-Fitted and Amplification-Fitted Fourth-Order and Fifth-Order Runge-Kutta-Nyström Methods for Oscillatory Problems
Solving second order delay differential equations by direct two and three point one-step block method
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