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March 17, 2026Scientific Reports0 citationsOpen Access

Non-Hermitian quantum state discrimination and information flow

QDQINLIANG DongZLZhihang LiuCZChao Zheng

Key Points

  • This research aims to explore quantum state discrimination within non-Hermitian systems and extend understanding beyond existing boundaries.
  • Analyze quantum state discrimination using non-Hermitian Hamiltonians
  • Demonstrate unambiguous discrimination with P-pseudo-Hermitian and PT-symmetric Hamiltonians
  • Establish criteria for constructing P-pseudo-Hermitian Hamiltonians
  • Discuss the role of exceptional points in QSD
  • Unambiguous discrimination of non-orthogonal quantum states is achievable with specified Hamiltonians
  • Evolution times for unambiguous discrimination can be arbitrarily small
  • Criteria established allow for superior discrimination capabilities compared to fixed PT-symmetric systems
  • Exceptional points significantly impact quantum state discrimination and information flow

Abstract

As a fundamental and challenging problem in quantum information processing, quantum state discrimination (QSD) has recently been revisited from the perspective of non-Hermitian (NH) physics. The existing work about QSD in NH systems is mostly limited to PT-symmetric or pseudo-Hermitian systems with real spectra, while generic NH Hamiltonians possess complex spectra. To explore the underlying physics of quantum state discrimination in NH systems, we first demonstrate that the unambiguous discrimination of non-orthogonal quantum states can be realized with P-pseudo-Hermitian and PT-symmetric Hamiltonians in the broken phase and the required evolution time can be arbitrarily small. We further extend the regime to generic non-Hermitian Hamiltonians and demonstrate the feasibility of unambiguous discrimination. Under the same energy constraint, we establish the criteria for constructing P-pseudo-Hermitian Hamiltonians that enable unambiguous discrimination of quantum states with smaller angular separation or within shorter evolution time than any fixed PT-symmetric system. Furthermore, we also discuss the potential impact of exceptional points (EPs) on QSD. Our results suggest that the non-orthogonal eigenstates of NH Hamiltonians, rather than PT symmetry or pseudo-Hermitian symmetry, are fundamental to unambiguous discrimination and information flow in NH systems.

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Cite This Study

Dong et al. (2026) studied this question.

synapsesocial.com/papers/69b8f10fdeb47d591b8c5d85https://doi.org/10.1038/s41598-026-43224-1
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