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Quantum lower bounds for the collision and the element distinctness problems

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arxiv quant-ph/0112086 v1 pith:HH2Z6I4C submitted 2001-12-15 quant-ph

classification quant-ph
keywords loweromegaquantumcollisionboundfunctioninputsproblem
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Given a function f as an oracle, the collision problem is to find two distinct inputs i and j such that f(i)=f(j), under the promise that such inputs exist. Since the security of many fundamental cryptographic primitives depends on the hardness of finding collisions, quantum lower bounds for the collision problem would provide evidence for the existence of cryptographic primitives that are immune to quantum cryptanalysis. In this paper, we prove that any quantum algorithm for finding a collision in an r-to-one function must evaluate the function Omega((n/r)^{1/3}) times, where n is the size of the domain and r|n. This improves the previous best lower bound of Omega((n/r)^{1/5}) evaluations due to Aaronson [quant-ph/0111102], and is tight up to a constant factor. Our result also implies a quantum lower bound of Omega(n^{2/3}) queries to the inputs for the element distinctness problem, which is to determine whether or not the given n real numbers are distinct. The previous best lower bound is Omega(sqrt{n}} queries in the black-box model; and Omega(sqrt{n}log{n}) comparisons in the comparisons-only model, due to H{\o}yer, Neerbek, and Shi [ICALP'01, quant-ph/0102078].

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score.

  1. Quantum Communication Lower Bounds for Search Problems via Matrix Discrepancy

    quant-ph 2026-07 accept novelty 7.5 of 10

    A matrix-discrepancy argument proves tight one-way quantum lower bounds for collision finding (Ω(N^{1/4})) and for streaming triangle finding (Ω(√Δ_V)) where Boolean-Hidden-Matching reductions fail.

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