Resource-Efficient Teleportation of High-Dimensional Quantum Coherence via Initial Phase Engineering
Long Huang, Cai-Hong Liao, Yan-Ling Li, Xing Xiao

TL;DR
This paper introduces a resource-efficient protocol for high-dimensional quantum coherence teleportation that reduces measurement complexity and classical communication, utilizing initial phase engineering for near-perfect fidelity and robustness against operational errors.
Contribution
The study presents a novel high-dimensional coherence teleportation protocol that significantly reduces resource requirements and achieves near-perfect fidelity through initial phase engineering.
Findings
50% reduction in classical communication overhead
Achieves theoretically perfect teleportation with phase alignment
Maintains high robustness under operational errors and various noise models
Abstract
High-dimensional quantum systems leverage an expanded Hilbert space to enhance resilience against decoherence and noise. However, standard quantum teleportation is fundamentally limited by the quadratic growth of measurement complexity and high classical communication overhead, requiring the resolution of Bell states and classical bits. In this study, we propose a resource-efficient high-dimensional coherence teleportation (REHDCT) protocol. By designing sets of specialized positive operator-valued measure (POVM) bases, our protocol achieves a 50\% reduction in classical communication by utilizing one of the designed POVM sets, which effectively scales the measurement complexity from to . Furthermore, we demonstrate that by utilizing initial phase engineering to align the target qudit with the measurement basis, theoretically perfect…
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Taxonomy
TopicsQuantum Information and Cryptography · Quantum Computing Algorithms and Architecture · Quantum Mechanics and Applications
