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Dynamic Concatenation of Quantum Error Correction in Integrated Quantum Computing Architecture

机译:集成量子计算架构中量子纠错的动态串联

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Resource overhead problem caused by concatenation in quantum error correction (QEC) is of significant importance for the realization of fault-tolerant quantum computation (FTQC). To attack this problem, we propose a novel scheme by considering integrated FTQC architecture where the concatenation level is controlled dynamically; i.e., less (or more) concatenation levels are imposed by good (or poor) performance gates-we call this scheme "dynamic concatenation" in this sense. Such a dynamic concatenation is realizable in an integrated structure of FTQC, as the information of the concatenation can be communicated between classical system elements (e.g., compiler and system organizer) and the logical qubits in real-time. We derive the effective lower and upper bounds of the length of gate decomposition in order to achieve the practical advantage, namely of reduction of the overall operation time. By considering two non-trivial examples, it is shown that the aforementioned advantage can indeed be achieved in the presented scheme. Our result also provides an important scientific message, i.e., the interplay between "classical" and "quantum" can be helpful in QEC.
机译:在量子误差校正(QEC)中串联引起的资源开销问题对于实现容错量量子计算(FTQC)具有重要意义。要攻击此问题,我们通过考虑动态控制串联水平的集成FTQC架构提出了一种新颖的方案;即,通过良好(或差)绩效盖茨施加少(或更多)的级联水平 - 我们在这种意义上称这个计划“动态级联”。这种动态连接可在FTQC的集成结构中可实现,因为级联的信息可以在经典系统元素(例如,编译器和系统组织者)和实时逻辑Qubits之间传送。我们得出了栅极分解长度的有效下限和上限,以实现实际优势,即减少整体操作时间。通过考虑两个非琐碎的例子,示出了在所提出的方案中确实可以实现上述优势。我们的结果还提供了一个重要的科学消息,即“古典”和“量子”之间的相互作用可以在QEC中有所帮助。

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