Unstructured Hardness to Average-Case Randomness
Lijie Chen, Ron D. Rothblum, Roei Tell
摘要
The leading technical approach in uniform hardness-to-randomness in the last two decades faced several well-known barriers that caused results to rely on overly strong hardness assumptions, and yet still yield suboptimal conclusions. In this work we show uniform hardness-to-randomness results that simultaneously break through all of the known barriers. Specifically, consider any one of the following three assumptions:1)For some there exists a function f computable by uniform circuits of size and depth such that f is hard for probabilistic time .2)For every there exists a function f computable by logspace-uniform circuits of polynomial size and depth n2such that every probabilistic algorithm running in time ncfails to compute f on -fraction of the inputs.3)For every there exists a logspace-uniform family of arithmetic formulas of degree n2over a field of size poly such that no algorithm running in probabilistic time nccan evaluate the family on a worst-case input. Assuming any of these hypotheses, where the hardness is for every sufficiently large input length , we deduce that can be derandomized in polynomial time and on all input lengths, on average. Furthermore, under the first assumption we also show that can be derandomized in polynomial time, on average and on all input lengths, with logarithmically many advice bits. On the way to these results we also resolve two related open problems. First, we obtain an optimal worst-case to average-case reduction for computing problems in linear space by uniform probabilistic algorithms; this result builds on a new instance checker based on the doubly efficient proof system of Goldwasser, Kalai, and Rothblum (J. ACM, 2015). Secondly, we resolve the main open problem in the work of Carmosino, Impagliazzo and Sabin (ICALP 2018), by deducing derandomization from weak and general fine-grained hardness hypotheses. The full version of this paper is available online [5].
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引用它的顶会 Paper5
- Polynomial-Time Pseudodeterministic Construction of PrimesLijie Chen, Zhenjian Lu, Igor C. Oliveira, Hanlin Ren 等FOCS 2023 · 被引用 9 次
- Opening Up the Distinguisher: A Hardness to Randomness Approach for BPL=L That Uses Properties of BPLDean Doron, Edward Pyne, Roei TellSTOC 2024 · 被引用 5 次
- Distinguishing, Predicting, and Certifying: On the Long Reach of Partial Notions of PseudorandomnessJiatu Li, Edward Pyne, Roei TellFOCS 2024 · 被引用 3 次
- Fiat-Shamir in the Plain Model from Derandomization (Or: Do Efficient Algorithms Believe that NP = PSPACE?)Lijie Chen, Ron D. Rothblum, Roei TellSTOC 2025 · 被引用 2 次
- On the Complexity of Avoiding Heavy ElementsZhenjian Lu, Igor C. Oliveira, Hanlin Ren, Rahul SanthanamFOCS 2024 · 被引用 2 次
它引用的顶会 Paper1
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