English

A classical limit of Grover's algorithm induced by dephasing: Coherence vs entanglement

Quantum Physics 2019-03-27 v2

Abstract

A new approach to the classical limit of Grover's algorithm is discussed by assuming a very rapid dephasing of a system between consecutive Grover's unitary operations, which drives pure quantum states to decohered mixed states. One can identify a specific element among NN unsorted elements by a probability of the order of unity after kNk\sim N steps of classical amplification, which is realized by a combination of Grover's unitary operation and rapid dephasing, in contrast to kπN/4k\sim \pi \sqrt{N}/4 steps in quantum mechanical amplification. The initial two-state system with enormously unbalanced existence probabilities, which is realized by a chosen specific state and a superposition of all the rest of states among NN unsorted states, is crucial in the present analysis of classical amplification. This analysis illustrates Grover's algorithm in extremely noisy circumstances. A similar increase from kNk\sim \sqrt{N} to kNk\sim N steps due to the loss of quantum coherence takes place in the {\em analog} model of Farhi and Gutmann where the entanglement does not play an obvious role. This supports a view that entanglement is crucial in quantum computation to describe quantum states by a set of qubits, but the actual speedup of the quantum computation is based on quantum coherence.

Keywords

Cite

@article{arxiv.1804.10082,
  title  = {A classical limit of Grover's algorithm induced by dephasing: Coherence vs entanglement},
  author = {Kazuo Fujikawa and C. H. Oh and Koichiro Umetsu},
  journal= {arXiv preprint arXiv:1804.10082},
  year   = {2019}
}

Comments

15 pages. Substantially modified with an additional author and the change of the title. This version is going to be published in Mod. Phys. Lett. A

R2 v1 2026-06-23T01:37:00.341Z