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From Self-Dual to Physical CPN1\mathbb{C}P^{N-1}: Anomalies, Boundary Stokes Phenomenon, and Global Structure of θθ-vacua

Published 31 Aug 2026 in hep-th and hep-lat | (2608.30160v1)

Abstract: We introduce a two-coupling generalization of CP<sup>N1\mathbb{C}P<sup>{N-1} model that continuously interpolates between the self-dual (ε=0ε=0) and the physical (ε=gε=g) theories as a useful nonperturbative tool. At εgε\neq g, this model possesses a chiral imbalance, which may be viewed as a real topological deformation (imaginary-θθ). We demonstrate that exact quantum equivalence between first- and second-order formulations strictly requires a topological counterterm sourced by a bosonic chiral anomaly. Solving this deformed theory at large NN yields two primary results. First, we analytically determine the nonperturbative vacuum structure of the self-dual theory, a self-dual vacuum with a dynamically generated field-strength condensate. Second, we resolve a fundamental paradox where saddles with (θ+2πn)O(N)(θ+ 2πn) \sim O(N) (nn is branch number) spuriously yield lower energy densities than the physical ground state. Because the effective action possesses an essential singularity at F=0F=0, we show that the Lefschetz thimble analysis must be generalized to include boundary thimbles. A boundary Stokes phenomenon renders the problematic saddles topologically inactive, fully restoring the validity of the large-NN expansion for strongly coupled theories.

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