A classical limit of Grover’s algorithm induced by dephasing: Coherence versus entanglement

Author:

Fujikawa Kazuo1,Oh C. H.2,Umetsu Koichiro3

Affiliation:

1. Interdisciplinary Theoretical and Mathematical Sciences Program, RIKEN, Wako 351-0198, Japan

2. Centre for Quantum Technologies and Physics Department, National University of Singapore, Singapore 117543, Singapore

3. Laboratory of Physics, College of Science and Technology, and Junior College, Funabashi Campus, Nihon University, Funabashi, Chiba 274-8501, Japan

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 [Formula: see text] unsorted elements by a probability of the order of unity after [Formula: see text] steps of classical amplification, which is realized by a combination of Grover’s unitary operation and rapid dephasing, in contrast to [Formula: see text] 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 the states among [Formula: see text] 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 [Formula: see text] to [Formula: see text] steps due to the loss of quantum coherence takes place in the 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.

Publisher

World Scientific Pub Co Pte Lt

Subject

General Physics and Astronomy,Astronomy and Astrophysics,Nuclear and High Energy Physics

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