论文标题

可靠量子计算的误差校正

Error Correction for Reliable Quantum Computing

论文作者

Fuentes, Patricio

论文摘要

量子计算机预示着一个新时代的到来,在该时代,以前棘手的计算问题将有效地解决。但是,量子技术是通过腐烂而降低的,这种现象在量子范式中无所不在,并且在不受欢迎时使量子信息无用。量子误差校正的科学是一种旨在使用称为代码的结构来结合和保护量子信息免受破坏性影响的学科,以应对这一挑战。稳定器代码是量子代码的特定子类,通过允许与经典误差校正的广泛研究领域绘制相似之处,从而在量子误差校正领域实现了快速进步。这导致构建了众所周知的具有稀疏代码和量子涡轮代码的量子同行。但是,以这种方式获得的量子代码并不能完全唤起其经典同行的纠正能力的巨大错误。之所以发生这种情况,是因为经典策略忽略了量子和经典范式之间的重要差异,如果量子误差校正是在其磨损战斗中取得成功,则需要解决这个问题。在本文中,我们研究了一种独有的量子范式(称为退化性)的现象及其对稀疏量子代码性能的影响。此外,我们还分析并提出了在各种不同情况下提高特定稀疏量子代码家族的性能的方法。

Quantum computers herald the arrival of a new era in which previously intractable computational problems will be solved efficiently. However, quantum technology is held down by decoherence, a phenomenon that is omnipresent in the quantum paradigm and that renders quantum information useless when left unchecked. The science of quantum error correction, a discipline that seeks to combine and protect quantum information from the effects of decoherence using structures known as codes, has arisen to meet this challenge. Stabilizer codes, a particular subclass of quantum codes, have enabled fast progress in the field of quantum error correction by allowing parallels to be drawn with the widely studied field of classical error correction. This has resulted in the construction of the quantum counterparts of well-known capacity-approaching classical codes like sparse codes and quantum turbo codes. However, quantum codes obtained in this manner do not entirely evoke the stupendous error correcting abilities of their classical counterparts. This occurs because classical strategies ignore important differences between the quantum and classical paradigms, an issue that needs to be addressed if quantum error correction is to succeed in its battle with decoherence. In this dissertation we study a phenomenon exclusive to the quantum paradigm, known as degeneracy, and its effects on the performance of sparse quantum codes. Furthermore, we also analyze and present methods to improve the performance of a specific family of sparse quantum codes in various different scenarios.

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