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Magic state distillation and gate compilation in quantum algorithms for quantum chemistry

机译:量子化学的量子算法中的魔术状态蒸馏和门编译

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Quantum algorithms for quantum chemistry map the dynamics of electrons in a molecule to the dynamics of a coupled spin system. To reach chemical accuracy for interesting molecules, a large number of quantum gates must be applied which implies the need for quantum error correction and fault-tolerant quantum computation. Arbitrary fault-tolerant operations can be constructed from a small, universal set of fault-tolerant operations by gate compilation. Quantum chemistry algorithms are compiled by decomposing the dynamics of the coupled spin-system using a Trotter formula, synthesizing the decomposed dynamics using Clifford operations and single-qubit rotations, and finally approximating the single-qubit rotations by a sequence of fault-tolerant single-qubit gates. Certain fault-tolerant gates rely on the preparation of specific single-qubit states referred to as magic states. As a result, gate compilation and magic state distillation are critical for solving quantum chemistry problems on a quantum computer. We review recent progress that has improved the efficiency of gate compilation and magic state distillation by orders of magnitude. (c) 2015 Wiley Periodicals, Inc.
机译:用于量子化学的量子算法将分子中电子的动力学映射到耦合自旋系统的动力学。为了使感兴趣的分子达到化学准确性,必须应用大量的量子门,这意味着需要进行量子误差校正和容错量子计算。可以通过门编译从一小套通用的容错操作中构造任意容错操作。通过使用Trotter公式分解耦合自旋系统的动力学,使用Clifford运算和单量子位旋转合成分解的动力学,并最终通过一系列容错的单原子序列逼近单量子位旋转,来编译量子化学算法。量子比特门。某些容错门依赖于称为魔术状态的特定单量子位状态的准备。结果,门编译和魔术状态蒸馏对于解决量子计算机上的量子化学问题至关重要。我们回顾了最近的进展,这些进展将门编译和魔术状态蒸馏的效率提高了几个数量级。 (c)2015年威利期刊有限公司

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