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Tuning for Quantum Speedup in Directed Lackadaisical Quantum Walks

Quantum Physics 2024-05-17 v3

Abstract

Quantum walks constitute an important tool for designing quantum algorithms and information processing tasks. In a lackadaisical walk, in addition to the possibility of moving out of a node, the walker can remain on the same node with some probability. This is achieved by introducing self-loops, parameterized by self-loop strength ll, attached to the nodes such that large ll implies a higher likelihood for the walker to be trapped at the node. In this work, {\it directed}, lackadaisical quantum walks is studied. Depending on ll, two regimes are shown to exist -- one in which classical walker dominates and the other dominated by the quantum walker. In the latter case, we also demonstrate the existence of two distinct scaling regimes with ll for quantum walker on a line and on a binary tree. Surprisingly, a significant quantum-induced speedup is realized for large ll. By tuning the initial state, the extent of this speedup can be manipulated.

Keywords

Cite

@article{arxiv.2211.06167,
  title  = {Tuning for Quantum Speedup in Directed Lackadaisical Quantum Walks},
  author = {Pranay Naredi and J. Bharathi Kannan and M. S. Santhanam},
  journal= {arXiv preprint arXiv:2211.06167},
  year   = {2024}
}
R2 v1 2026-06-28T05:40:11.086Z