论文标题
使用挤压的schrödinger猫状态校正量子误差
Quantum error correction using squeezed Schrödinger cat states
论文作者
论文摘要
玻色量量子代码在量子谐波振荡器状态下冗余地编码量子信息,从而可以检测和纠正错误。 SchrödingerCAT代码 - 基于两个具有相反位移的连贯状态的叠加的叠加 - 可以纠正dephasing引起的相流误差,但它们容易受到粒子损失引起的位叉误差的影响。在这里,我们开发了一个依靠挤压猫状态的玻色量量子代码,即由位移斑块状态的线性叠加制成的猫状态。挤压的猫状态允许部分纠正粒子损失引起的错误,同时改善防止脱位的保护。我们对挤压猫代码进行了全面分析,包括用于代码生成和基本量子门的协议。我们表征了粒子丢失和脱缘的效果,并开发了适合在当前可用的量子硬件上实现的最佳恢复协议。我们表明,随着中等的压缩,并使用最先进的量子硬件平台的典型参数,挤压猫代码具有对粒子损失误差的韧性,从而极大地超过了传统的CAT代码的损失。
Bosonic quantum codes redundantly encode quantum information in the states of a quantum harmonic oscillator, making it possible to detect and correct errors. Schrödinger cat codes -- based on the superposition of two coherent states with opposite displacements -- can correct phase-flip errors induced by dephasing, but they are vulnerable to bit-flip errors induced by particle loss. Here, we develop a bosonic quantum code relying on squeezed cat states, i.e. cat states made of a linear superposition of displaced-squeezed states. Squeezed cat states allow to partially correct errors caused by particle loss, while at the same time improving the protection against dephasing. We present a comprehensive analysis of the squeezed cat code, including protocols for code generation and elementary quantum gates. We characterize the effect of both particle loss and dephasing and develop an optimal recovery protocol that is suitable to be implemented on currently available quantum hardware. We show that with moderate squeezing, and using typical parameters of state-of-the-art quantum hardware platforms, the squeezed cat code has a resilience to particle loss errors that significantly outperforms that of the conventional cat code.