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      Geometric flavours of Quantum Field theory on a Cauchy hypersurface. Part II: Methods of quantization and evolution

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          Abstract

          In this series of papers we aim to provide a mathematically comprehensive framework to the hamiltonian pictures of quantum field theory in curved spacetimes. Our final goal is to study the kinematics and the dynamics of the theory from the point of differential geometry in infinite dimensions. In this second part we use the tools of Gaussian analysis in infinite dimensional spaces introduced in the first part to describe rigorously the procedures of geometric quantization in the space of Cauchy data of a scalar theory. This leads us to discuss and establish relations between different pictures of QFT. We also apply these tools to describe the geometrization of the space of pure states of quantum field theory as a Kh\"aler manifold. We use this to derive an evolution equation that preserves the geomeric structure and avoid norm losses in the evolution. This leads us to a modification of the Schr\"odinger equation via a quantum connection that we discuss and exemplify in a simple case.

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          Author and article information

          Journal
          10 February 2024
          Article
          2402.07953
          40e489c3-f52b-418c-9bf2-53b65c8be839

          http://creativecommons.org/licenses/by/4.0/

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          Custom metadata
          43 pages no figures. arXiv admin note: text overlap with arXiv:2306.14844
          math-ph gr-qc hep-th math.MP

          Mathematical physics,General relativity & Quantum cosmology,High energy & Particle physics,Mathematical & Computational physics

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