Analyzing Quantum Error Resilience for Quantum Communication in Guided and Unguided Media

IF 4.4 Q1 OPTICS
Shyam R. Sihare
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Abstract

This research examines quantum key distribution and its applications in guided and unguided quantum communication. The importance of secure communication in the quantum era requires a thorough exploration of both guided and unguided quantum communication strategies. The research aims to address the challenges posed by guided channels, such as fiber optics, and unguided channels, such as free-space quantum communication. This study addresses existing knowledge gaps in quantum error resilience management and signal processing techniques in unguided quantum communication. Advanced quantum gate analysis, environmental noise analysis, and quantum channel modeling techniques are employed. The research presents key findings on the impact of gate imperfections on quantum error resilience in guided media, the influence of noise-induced errors in unguided media, and a unified metric for assessing various error sources in guided channels. Additionally, the study analyses stabilizer codes and surface codes for error mitigation through quantum error correction strategies. Simulation results provide a benchmark for theoretical predictions and guide the refinement of quantum communication protocols. In this context, machine learning-based error prediction is introduced as a cutting-edge approach to enhance the robustness of quantum communication systems.

分析导引和非导引介质中量子通信的量子抗错能力
这项研究探讨了量子密钥分配及其在有引导和无引导量子通信中的应用。量子时代安全通信的重要性要求对有引导和无引导量子通信策略进行深入探讨。这项研究旨在应对光纤等有引导信道和自由空间量子通信等无引导信道带来的挑战。这项研究填补了非制导量子通信中量子纠错管理和信号处理技术方面的现有知识空白。研究采用了先进的量子门分析、环境噪声分析和量子信道建模技术。研究提出了关于栅极缺陷对制导介质中量子误差弹性的影响、非制导介质中噪声诱发误差的影响以及用于评估制导信道中各种误差源的统一度量的主要发现。此外,该研究还分析了通过量子纠错策略减少误差的稳定器代码和表面代码。模拟结果为理论预测提供了基准,并指导量子通信协议的完善。在此背景下,基于机器学习的误差预测被作为一种前沿方法引入,以增强量子通信系统的鲁棒性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
7.90
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0.00%
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