arXiv · 2109.08470
Quantum Newton's method for solving system of nonlinear algebraic equations
Abstract
While quantum computing provides an exponential advantage in solving system of linear equations, there is little work to solve system of nonlinear equations with quantum computing. We propose quantum Newton's method (QNM) for solving $N$-dimensional system of nonlinear equations based on Newton's method. In QNM, we solve the system of linear equations in each iteration of Newton's method with quantum linear system solver. We use a specific quantum data structure and $l_{\infty}$ tomography with sample error $\epsilon_s$ to implement the classical-quantum data conversion process between the two iterations of QNM, thereby constructing the whole process of QNM. The complexity of QNM in each iteration is $O(\log^4N/\epsilon_s^2)$. Through numerical simulation, we find that when $\epsilon_s>>1/\sqrt{N}$, QNM is still effective, so the complexity of QNM is sublinear with $N$, which provides quantum advantage compared with the optimal classical algorithm.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Cheng Xue, Yu-Chun Wu, Guo-Ping Guo. 2021-09-17. Quantum Newton's method for solving system of nonlinear algebraic equations. https://doi.org/10.1142/s201032472140004x
Cite the original work for its findings. Save a collection to share your selection of sources.