New generalized substantial fractional operators are introduced and used to prove well-posedness results for associated Cauchy problems in fractional differential equations.
New fractional integral unifying six existing fractional integrals
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abstract
In this paper we introduce a new fractional integral that generalizes six existing fractional integrals, namely, Riemann-Liouville, Hadamard, Erd\'elyi-Kober, Katugampola, Weyl and Liouville fractional integrals in to one form. Such a generalization takes the form \[ \left({}^{\rho}\mathcal{I}^{\alpha, \beta}_{a+;\eta, \kappa}f\right)(x)=\frac{\rho^{1-\beta}x^{\kappa}}{\Gamma(\alpha)}\int_a^x \frac{\tau^{\rho \eta +\rho-1}}{(x^\rho-\tau^\rho)^{1-\alpha}}f(\tau)\text{d}\tau, \quad 0\leq a < x < b \leq \infty. \] A similar generalization is not possible with the Erd\'elyi-Kober operator though there is a close resemblance with the operator in question. We also give semigroup, boundedness, shift and integration-by-parts formulas for completeness.
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math.CA 1years
2019 1verdicts
UNVERDICTED 1representative citing papers
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Generalized substantial fractional operators and well-posedness of Cauchy problem
New generalized substantial fractional operators are introduced and used to prove well-posedness results for associated Cauchy problems in fractional differential equations.