Quantum Simulation of Electronic Structure with Linear Depth and Connectivity 论文

2018Physical Review Letters引用 434
Quantum Computing Algorithms and ArchitectureQuantum many-body systemsQuantum Information and Cryptography

详细信息

发表期刊/会议
Physical Review Letters
发表日期
2018-03-13
发表年份
2018

关键词

Quantum Computing Algorithms and ArchitectureQuantum many-body systemsQuantum Information and Cryptography

摘要

As physical implementations of quantum architectures emerge, it is increasingly important to consider the cost of algorithms for practical connectivities between qubits. We show that by using an arrangement of gates that we term the fermionic swap network, we can simulate a Trotter step of the electronic structure Hamiltonian in exactly N depth and with N^{2}/2 two-qubit entangling gates, and prepare arbitrary Slater determinants in at most N/2 depth, all assuming only a minimal, linearly connected architecture. We conjecture that no explicit Trotter step of the electronic structure Hamiltonian is possible with fewer entangling gates, even with arbitrary connectivities. These results represent significant practical improvements on the cost of most Trotter-based algorithms for both variational and phase-estimation-based simulation of quantum chemistry.