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Title Fractional‑order least squares support vector regression to solve left‑sided Bessel fractional pantograph differential equations
Type JournalPaper
Keywords Fractional-order airfoil functions · Bessel fractional derivative · Least squares support vector regression · Numerical method · Convergence analysis
Abstract This study presents a machine learning approach using least squares support vector regression (LS-SVR) for solving fractional pantograph differential equations involving the left-sided Bessel fractional (LSBF) derivative. First, a new orthonormal basis, called the fractional-order airfoil functions (FAFs) is constructed. Then, the unknown function and its derivatives are approximated via FAFs. The collocation LS-SVR method is applied to train the network with the FAF kernel. The method’s formulation results in an optimization problem that an equivalent system of algebraic equations is derived. Finally, the error analysis of method is presented and numerical tests are provided to show the efficiency of the suggested technique.
Researchers Hossein Hassani (Third Researcher), Nasrin Samadyar (Second Researcher), Parisa Rahimkhani (First Researcher)