paper

The -Peak: Covariant Recovery on Four Organic Qubit Platforms

arXiv:2605.00026

Abstract

We characterize where, in the noise parameter space of the uniform dephasing--depolarizing channel , a deterministic, \emph{nonlinear, target-informed} denoising heuristic yields its largest fidelity gain. The procedure pulls the off-diagonal magnitudes of the noisy state toward those of a known target, with efficiency set by a SWAP-test-purified catalyst; it is not a quantum channel, and target access is an explicit classical resource, so the results describe a benchmark procedure, not blind error correction. Our main tool is the covariant purification map , an exact closed form for one SWAP-test purification round (a rederivation of symmetrization purification: Barenco \emph{et al.}, Cirac--Ekert--Macchiavello) that reduces the catalyst to a scalar eigenvalue iteration. With it we derive the fidelity-gain peak location on Haar-random pure states (Theorem~3): , with and limiting magnitude . Bootstrap-quantified sweeps to are consistent with both limits. The peak is resource- and protocol-dependent: a catalyst-only reference moves it from to , and one purification round instead of two to . Bell and uniform states admit unique-peak theorems for the , protocol member. All results are reproducible from the open-source \texttt{organic-qc-bench} package with seed~42.