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Efficient Design of Quantum Circuits Using Nearest Neighbor Constraint in 3D Architecture

机译:使用3D架构中的最近邻约束的量子电路高效设计

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Synthesis and optimization of quantum circuits have received significant attention from researchers in recent years. Developments in the physical realization of qubits in quantum computing have led to new physical constraints to be addressed. One of the most important constraints that is considered by many researchers is the nearest neighbor constraint which limits the interaction distance between qubits for quantum gate operations. Various works have been reported in the literature that deal with nearest neighbor compliance in multi-dimensional (mostly 1D and 2D) qubit arrangements. This is normally achieved by inserting SWAP gates in the gate netlist to bring the interacting qubits closer together. The main objective function to minimize here is the number of SWAP gates. The present paper proposes an efficient qubit placement strategy in a three-dimensional (3D) grid that considers not only qubit interactions but also the relative positions of the gates in the circuit. Experimental evaluation on a number of benchmark circuits show that the proposed method reduces the number of SWAP gates by 16.2% to 47.0% on the average as compared to recently published works.
机译:近年来,量子电路的合成和优化受到研究人员的极大关注。量子计算中量子位的物理实现的发展导致了新的物理约束需要解决。许多研究人员考虑的最重要的约束条件之一是最近邻约束,它限制了量子门操作量子位之间的相互作用距离。文献中已经报道了涉及多维(主要是1D和2D)量子位排列中最接近邻居的各种工作。通常,这是通过在门网表中插入SWAP门以使相互作用的量子位更靠近在一起来实现的。在此要最小化的主要目标功能是SWAP门的数量。本文提出了一种在三维(3D)网格中的高效量子位放置策略,该策略不仅考虑了量子位交互作用,还考虑了电路中门的相对位置。对许多基准电路的实验评估表明,与最近发表的作品相比,该方法平均将SWAP门的数量平均减少了16.2%至47.0%。

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