Staggered Quantum Walks with Hamiltonians
arXiv:1605.02774 · doi:10.1103/PhysRevA.95.012328
Abstract
Quantum walks are recognizably useful for the development of new quantum algorithms, as well as for the investigation of several physical phenomena in quantum systems. Actual implementations of quantum walks face technological difficulties similar to the ones for quantum computers, though. Therefore, there is a strong motivation to develop new quantum-walk models which might be easier to implement. In this work, we present an extension of the staggered quantum walk model that is fitted for physical implementations in terms of time-independent Hamiltonians. We demonstrate that this class of quantum walk includes the entire class of staggered quantum walk model, Szegedy's model, and an important subset of the coined model.
6 pages, 7 figures
References in corpus (5)
Cited by in corpus (16)
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- Discretization of continuous-time quantum walks via the staggered model with Hamiltonians
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- Eigenbasis of the Evolution Operator of 2-Tessellable Quantum Walks