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Optimized Surface Code Communication in Superconducting Quantum Computers

机译:超导量子计算机中的优化表面代码通信

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Quantum computing (QC) is at the cusp of a revolution. Machines with 100 quantum bits (qubits) are anticipated to be operational by 2020 [30, 73], and several-hundred-qubit machines are around the corner. Machines of this scale have the capacity to demonstrate quantum supremacy, the tipping point where QC is faster than the fastest classical alternative for a particular problem. Because error correction techniques will be central to QC and will be the most expensive component of quantum computation, choosing the lowest-overhead error correction scheme is critical to overall QC success. This paper evaluates two established quantum error correction codes-planar and double-defect surface codes-using a set of compilation, scheduling and network simulation tools. In considering scalable methods for optimizing both codes, we do so in the context of a full microarchitectural and compiler analysis. Contrary to previous predictions, we find that the simpler planar codes are sometimes more favorable for implementation on superconducting quantum computers, especially under conditions of high communication congestion.
机译:量子计算(QC)位于革命的尖端。预计具有100个量子位(QUBITS)的机器将在2020 [30,73]中运行,并且几百个QUBBit机器在拐角处。该规模的机器具有展示量子至上的能力,其中QC的尖端比特定问题的最快经典替代品更快。由于纠错技术将是QC的核心,并且将是量子计算最昂贵的组件,选择最低架空纠错方案对于总体QC成功至关重要。本文评估了两个建立的量子误差校正码平面和双缺陷表面代码 - 使用一组编译,调度和网络仿真工具。考虑到可扩展方法来优化两种代码,我们在完整的微架构和编译分析的上下文中执行此操作。与以前的预测相反,我们发现更简单的平面码有时对超导量子计算机的实现有时更有利,尤其是在高通信拥塞的条件下。

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