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Fractional calculus

Branch of mathematical analysis with fractional applications of derivatives and integrals

Nº Q1339058 ★

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Fractional calculus

Branch of mathematical analysis with fractional applications of derivatives and integrals

Fractional calculus is a branch of mathematical analysis that studies the several different possibilities of defining real number powers or complex number powers of the differentiation operator D {\displaystyle D} D f ( x ) = d d x f ( x ) , {\displaystyle Df(x)={\frac {d}{dx}}f(x)\,,} and of the integration operator J {\displaystyle J} J f ( x ) = ∫ 0 x f ( s ) d s , {\displaystyle Jf(x)=\int _{0}^{x}f(s)\,ds\,,} and developing a calculus for such operators generalizing the classical one. In this context, the term powers refers to iterative ap...

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From Wikipedia

Fractional calculus is a branch of mathematical analysis that studies the several different possibilities of defining real number powers or complex number powers of the differentiation operator D {\displaystyle D} D f ( x ) = d d x f ( x ) , {\displaystyle Df(x)={\frac {d}{dx}}f(x)\,,} and of the integration operator J {\displaystyle J} J f ( x ) = ∫ 0 x f ( s ) d s , {\displaystyle Jf(x)=\int _{0}^{x}f(s)\,ds\,,} and developing a calculus for such operators generalizing the classical one. In this context, the term powers refers to iterative application of a linear operator D {\displaystyle D} to a function f {\displaystyle f} , that is, repeatedly composing D {\displaystyle D} with itself, as in D n ( f ) = ( D ∘ D ∘ D ∘ ⋯ ∘ D ⏟ n ) ( f ) = D ( D ( D ( ⋯ D ⏟ n ( f ) ⋯ ) ) ) . {\displaystyle {\begin{aligned}D^{n}(f)&=(\underbrace {D\circ D\circ D\circ \cdots \circ D} _{n})(f)\\&=\underbrace {D(D(D(\cdots D} _{n}(f)\cdots ))).\end{aligned}}} For example, one may ask for a meaningful interpretation of D = D 1 2 {\displaystyle {\sqrt {D}}=D^{\frac {1}{2}}} as an analogue of the functional square root for the differentiation operator, that is, an expression for some linear operator that, when applied twice to any function, will have the same effect as differentiation. More generally, one can look at the question of defining a linear operator D a {\displaystyle D^{a}} for every real number a {\displaystyle a} in such a way that, when a {\displaystyle a} takes an integer value n ∈ Z {\displaystyle n\in \mathbb {Z} } , it coincides with the usual n {\displaystyle n} -fold differentiation D {\displaystyle D} if n > 0 {\displaystyle n>0} , and with the n {\displaystyle n} -th...

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