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Properties and decompositions of domains for powers of the Jacobi differential operator
Stockholms universitet, Naturvetenskapliga fakulteten, Matematiska institutionen.
Antal upphovsmän: 22020 (Engelska)Ingår i: Journal of Mathematical Analysis and Applications, ISSN 0022-247X, E-ISSN 1096-0813, Vol. 489, nr 1, artikel-id 124155Artikel i tidskrift (Refereegranskat) Published
Abstract [en]

We set out to build a framework for self-adjoint extension theory for powers of the Jacobi differential operator that does not make use of classical deficiency elements. Instead, we rely on simpler functions that capture the impact of these elements on extensions but are defined by boundary asymptotics. This new perspective makes calculations much more accessible and allows for a more nuanced analysis of the associated domains. The maximal domain for n-th composition of the Jacobi operator is characterized in terms of a smoothness condition for each derivative, and the endpoint behavior of functions in the underlying Hilbert space can then be classified, for j is an element of N-0, by (1 - x)(j), (1 + x)(j), (1 - x)(-alpha+j) and (1 + x)(beta+j). Most of these behaviors can only occur when functions are in the associated minimal domain, and this leads to a formulation of the defect spaces with a convenient basis. Self-adjoint extensions, including the important left-definite domain, are then given in terms of the new basis functions for the defect spaces using GKN theory. Comments are made for the Laguerre operator as well.

Ort, förlag, år, upplaga, sidor
2020. Vol. 489, nr 1, artikel-id 124155
Nyckelord [en]
Self-adjoint extension theory, Sturm-Liouville operators, Left-definite theory, Boundary conditions, Maximal domain, Minimal domain
Nationell ämneskategori
Matematik
Identifikatorer
URN: urn:nbn:se:su:diva-182816DOI: 10.1016/j.jmaa.2020.124155ISI: 000534403700036OAI: oai:DiVA.org:su-182816DiVA, id: diva2:1457440
Tillgänglig från: 2020-08-11 Skapad: 2020-08-11 Senast uppdaterad: 2022-02-26Bibliografiskt granskad

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Frymark, Dale

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