论文标题
量子计算和通信的破坏性和量子误差校正
Decoherence and Quantum Error Correction for Quantum Computing and Communications
论文作者
论文摘要
量子技术已经显示出无可估量的潜力,可以有效解决多个信息处理任务,例如素数分解,非结构化数据库搜索或复杂的大分子模拟。由于这种能力解决了某些不可经典的问题的能力,量子机的潜力通过药物设计,过程优化,无法破坏的通信或机器学习来彻底改变现代世界。但是,量子信息容易遭受由所谓的破坏造成的错误,这描述了与其与周围环境相互作用相关的量子状态相干性的损失。每项量子信息任务中都存在这种破坏现象,无论是传输,处理甚至量子信息的存储。因此,通过量子误差校正代码(QECC)保护量子信息对于构建完全操作的量子计算机至关重要。了解环境的破坏过程及其建模的方式是至关重要的,以构建能够保护量子信息的有效误差校正方法。在本论文中,研究并通过数学建模进行了变形的性质。 QECC经过设计和优化,使它们具有更好的误差校正功能。
Quantum technologies have shown immeasurable potential to effectively solve several information processing tasks such as prime number factorization, unstructured database search or complex macromolecule simulation. As a result of such capability to solve certain problems that are not classically tractable, quantum machines have the potential revolutionize the modern world via applications such as drug design, process optimization, unbreakable communications or machine learning. However, quantum information is prone to suffer from errors caused by the so-called decoherence, which describes the loss in coherence of quantum states associated to their interactions with the surrounding environment. This decoherence phenomenon is present in every quantum information task, be it transmission, processing or even storage of quantum information. Consequently, the protection of quantum information via quantum error correction codes (QECC) is of paramount importance to construct fully operational quantum computers. Understanding environmental decoherence processes and the way they are modeled is fundamental in order to construct effective error correction methods capable of protecting quantum information. In this thesis, the nature of decoherence is studied and mathematically modelled; and QECCs are designed and optimized so that they exhibit better error correction capabilities.