Paper Detail

Private communication via zero-private-capacity quantum channels

Chengkai Zhu, Xin Wang

arxiv Score 6.7

Published 2026-09-09 · First seen 2026-09-10

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Abstract

Private communication over a noisy quantum channel requires reliable transmission to the receiver and secrecy from the environment. Whether two channels with zero private capacity can jointly enable private communication is a longstanding open problem in quantum information theory. Here we resolve this problem by exhibiting a four-level channel and a qubit erasure channel with half erasure probability, each with zero private capacity, whose joint use achieves more than 0.0001903 private bits per product use. The encoding gives the receiver a linear information gain with at most quadratic environmental leakage, enabling privacy through a fixed joint measurement and classical coding. This superactivation, impossible for independent classical memoryless wiretap channels, shows that a channel's private capacity alone does not determine its value for secure communication. The initial activation example was identified through interactions with large language models, and the result has been formalized in Lean 4.

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BibTeX

@article{zhu2026private,
  title = {Private communication via zero-private-capacity quantum channels},
  author = {Chengkai Zhu and Xin Wang},
  year = {2026},
  abstract = {Private communication over a noisy quantum channel requires reliable transmission to the receiver and secrecy from the environment. Whether two channels with zero private capacity can jointly enable private communication is a longstanding open problem in quantum information theory. Here we resolve this problem by exhibiting a four-level channel and a qubit erasure channel with half erasure probability, each with zero private capacity, whose joint use achieves more than 0.0001903 private bits per},
  url = {https://arxiv.org/abs/2609.10520},
  keywords = {quant-ph, cs.IT},
  eprint = {2609.10520},
  archiveprefix = {arXiv},
}

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