Efficient variational synthesis of quantum circuits with coherent multi-start optimization
Nikita A. Nemkov, Evgeniy O. Kiktenko, Ilia A. Luchnikov, Aleksey K., Fedorov

TL;DR
This paper introduces a novel variational quantum circuit synthesis method that combines architecture search with gate optimization using coherent multi-start strategies, leading to more efficient quantum circuit decompositions.
Contribution
It proposes a continuous relaxation approach for architecture search in variational quantum circuits, improving synthesis efficiency and performance over traditional methods.
Findings
Achieved efficient decompositions of multi-qubit Toffoli gates with reduced CNOT counts.
Demonstrated the method's competitiveness on real quantum circuit benchmarks.
Provided a publicly available Python package for the proposed algorithm.
Abstract
We consider the problem of the variational quantum circuit synthesis into a gate set consisting of the CNOT gate and arbitrary single-qubit (1q) gates with the primary target being the minimization of the CNOT count. First we note that along with the discrete architecture search suffering from the combinatorial explosion of complexity, optimization over 1q gates can also be a crucial roadblock due to the omnipresence of local minimums (well known in the context of variational quantum algorithms but apparently underappreciated in the context of the variational compiling). Taking the issue seriously, we make an extensive search over the initial conditions an essential part of our approach. Another key idea we propose is to use parametrized two-qubit (2q) controlled phase gates, which can interpolate between the identity gate and the CNOT gate, and allow a continuous relaxation of the…
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Taxonomy
TopicsQuantum Computing Algorithms and Architecture · Quantum Information and Cryptography · Low-power high-performance VLSI design
