English

Finding many Collisions via Reusable Quantum Walks

Quantum Physics 2022-05-30 v1

Abstract

Given a random function ff with domain [2n][2^n] and codomain [2m][2^m], with mnm \geq n, a collision of ff is a pair of distinct inputs with the same image. Collision finding is an ubiquitous problem in cryptanalysis, and it has been well studied using both classical and quantum algorithms. Indeed, the quantum query complexity of the problem is well known to be Θ(2m/3)\Theta(2^{m/3}), and matching algorithms are known for any value of mm. The situation becomes different when one is looking for multiple collision pairs. Here, for 2k2^k collisions, a query lower bound of Θ(2(2k+m)/3)\Theta(2^{(2k+m)/3}) was shown by Liu and Zhandry (EUROCRYPT~2019). A matching algorithm is known, but only for relatively small values of mm, when many collisions exist. In this paper, we improve the algorithms for this problem and, in particular, extend the range of admissible parameters where the lower bound is met. Our new method relies on a chained quantum walk algorithm, which might be of independent interest. It allows to extract multiple solutions of an MNRS-style quantum walk, without having to recompute it entirely: after finding and outputting a solution, the current state is reused as the initial state of another walk. As an application, we improve the quantum sieving algorithms for the shortest vector problem (SVP), with a complexity of 20.2563d+o(d)2^{0.2563d + o(d)} instead of the previous 20.2570d+o(d)2^{0.2570d + o(d)}.

Keywords

Cite

@article{arxiv.2205.14023,
  title  = {Finding many Collisions via Reusable Quantum Walks},
  author = {Xavier Bonnetain and André Chailloux and André Schrottenloher and Yixin Shen},
  journal= {arXiv preprint arXiv:2205.14023},
  year   = {2022}
}
R2 v1 2026-06-24T11:31:02.530Z