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The Algebraic Index Theorem and Fedosov Quantization of Lagrange-Finsler and Einstein Spaces

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arxiv 1005.3647 v2 pith:BXSZXEVD submitted 2010-05-20 math-ph gr-qcmath.MPmath.QA

classification math-phgr-qcmath.MPmath.QA
keywords einsteinquantizationgeometricindexlagrange-finslertheoremadaptedalgebraic
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Various types of Lagrange and Finsler geometries and the Einstein gravity theory, and modifications, can be modelled by nonholonomic distributions on tangent bundles/ manifolds when the fundamental geometric objects are adapted to nonlinear connection structures. We can convert such geometries and physical theories into almost Kahler/ Poisson structures on (co)tangent bundles. This allows us to apply the Fedosov quantization formalism to almost symplectic connections induced by Lagrange-Finsler and/or Einstein fundamental geometric objects. There are constructed respective nonholonomic versions of the trace density maps for the zeroth Hochschild homology of deformation quantization of distinguished algebras (in this work, adapted to nonlinear connection structure). Our main result consists in an algebraic index theorem for Lagrange-Finsler and Einstein spaces. Finally, we show how the Einstein field equations for gravity theories and geometric mechanics models can be imbedded into the formalism of deformation quantization and index theorem.

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  1. Nonassociative gauge gravity theories with R-flux star products and Batalin-Vilkovisky quantization in algebraic quantum field theory

    hep-th 2024-11 conditional novelty 5.0 of 10

    The Batalin-Vilkovisky formalism is extended to nonassociative R-flux gauge gravity on cotangent Lorentz bundles, yielding formal classical and quantum master equations for parametric star product truncations.

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