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arXiv:2607.26681·v4·High Energy Physics — Phenomenology

An Exact Geometric Framework for Flavor Mixing and CP Violation in the Standard Model

Chilong Lin🇰🇷

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Abstract

Flavor mixing and CP violation in the Standard Model are conventionally parameterized by Euler angles that entangle the physical contributions of the up- and down-type quark sectors, obscuring the origin of CP violation itself. We present a non-perturbative geometric framework that resolves this entanglement through the commutativity condition for the Hermitian components of the mass-squared matrices, reducing the 18 real degrees of freedom of a general Yukawa matrix to five independent parameters and yielding an exact Cartesian-like parameterization. Explicit diagonalization directly gives fermion masses, CKM matrix elements, and the CP phase in closed form, cleanly separating the distinct physical contributions of the up- and down-type sectors. Mapping flavor space onto a two-dimensional vector geometry, we derive the Jarlskog invariant in exact closed form and show that CP violation is governed by a discrete topological selection rule () together with the vector cross-product . Across all 36 flavor topologies, this yields an exact classification into CP-violating () and CP-conserving () cases, associated with two distinct CP-suppression mechanisms: geometric alignment through a vanishing vector cross-product and algebraic cancellation of imaginary contributions under permutation. At tree level, fitting to experimental CKM elements yields agreement at the level, establishing this framework as a transparent analytical baseline for future non-commutative flavor extensions.

Comments: 20 pages, no figures

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