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Chern-Simons "ground state" from the path integral

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arxiv 2503.18039 v2 pith:6JTS646G submitted 2025-03-23 hep-th gr-qc

classification hep-thgr-qc
keywords frachbarstatesquantumtheorychern-simonsdiscussequation
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

We consider a path integral representation of the time evolution $\exp(-\frac{i}{\hbar}tH)$ for Lagrangians of the variable $A$ which can be represented in the form (quadratic in $Q$) ${\cal L}(A)=\frac{1}{2}Q(A){\cal M}Q(A)+\partial_{\mu}L^{\mu}$. We show that $\exp(-\frac{i}{\hbar}tH)\exp(\frac{i}{\hbar}\int d{\bf x}L^{0}) =\exp(\frac{i}{\hbar}\int d{\bf x}L^{0})$ up to an $A$-independent factor. We discuss examples of the states $\exp(\frac{i}{\hbar}\int d{\bf x}L^{0})$ in quantum mechanics and in quantum field theory (the Chern-Simons states in Yang-Mills theory, Kodama states in quantum gravity). We show the relevance of these states for a determination of the dynamics in terms of stochastic perturbations of self-duality equations. The solution of the Schr\"odinger equation can be expressed by the solution of the self-duality equation in the leading order of $\hbar$ expansion. We discuss applications to gauge theory on a Lorentzian manifold and gauge theories of gravity.

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  1. Chern-Simons States in $SO(1,n)$ Yang-Mills Gauge Theory of Quantum Gravity

    hep-th 2025-08 reject novelty 3.0 of 10

    The paper claims Einstein gravity emerges from an SO(1,4) Yang-Mills theory at one loop, but the derivation requires dropping the Yang-Mills term and fixing the coupling to match Newton's constant.

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