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Initial boundary value problems for time-fractional evolution equations in Banach spaces

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arxiv 2502.06554 v1 pith:37VENEN3 submitted 2025-02-10 math.AP

classification math.AP
keywords initialvalueevolutionoperatorproblemtime-fractionalbanachequations
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abstract

We consider an initial value problem for time-fractional evolution equation in Banach space $X$: $$ \pppa (u(t)-a) = Au(t) + F(t), \quad 0<t<T. \eqno{(*)} $$ Here $u: (0,T) \rrrr X$ is an $X$-valued function defined in $(0,T)$, and $a \in X$ is an initial value. The operator $A$ satisfies a decay condition of resolvent which is common as a generator of analytic semigroup, and in particular, we can treat a case $X=L^p(\OOO)$ over a bounded domain $\OOO$ and a uniform elliptic operator $A$ within our framework. First we construct a solution operator $(a, F) \rrrr u$ by means of $X$-valued Laplace transform, and we establish the well-posedness of (*) in classes such as weak solution and strong solutions. We discuss also mild solutions local in time for semilinear time-fractional evolution equations. Finally we apply the result on the well-posedness to an inverse problem of determining an initial value and we establish the uniqueness for the inverse problem.

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    math.AP 2025-07 conditional novelty 6.0 of 10

    For fractional-in-time subdiffusion with multiple spatial operators, the unknown constant coefficients are uniquely determined by n energy measurements at one time instant.

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