Extractors for adversarial sources via extremal hypergraphs
Eshan Chattopadhyay, Jesse Goodman, Vipul Goyal, Xin Li
Abstract
Randomness extraction is a fundamental problem that has been studied for over three decades. A well-studied setting assumes that one has access to multiple independent weak random sources, each with some entropy. However, this assumption is often unrealistic in practice. In real life, natural sources of randomness can produce samples with no entropy at all or with unwanted dependence. Motivated by this and applications from cryptography, we initiate a systematic study of randomness extraction for the class of adversarial sources defined as follows.
A weak source X of the form X 1 , ..., X N , where each X i is on n bits, is an (N, K, n, k)-source of locality d if the following hold:
- Somewhere good sources: at least K of the X i 's are independent, and each contains min-entropy at least k. We call these X i 's good sources, and their locations are unknown.
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Install the CLIlune papers fulltext aab73f4e-c045-44cd-866e-feb66cdfa751Cited by top-tier papers5
- Extractors and Secret Sharing Against Bounded Collusion ProtocolsEshan Chattopadhyay, Jesse Goodman, Vipul Goyal, Ashutosh Kumar et al.FOCS 2020 · 18 citations
- Multi-source Non-malleable Extractors and ApplicationsVipul Goyal, Akshayaram Srinivasan, Chenzhi ZhuEUROCRYPT 2021 · 14 citations
- Improved Extractors for Small-Space SourcesEshan Chattopadhyay, Jesse GoodmanFOCS 2021 · 6 citations
- Disincentivize Collusion in Verifiable Secret SharingTiantian Gong, Aniket Kate, Hemanta K. Maji, Hai H. NguyenEUROCRYPT 2025 · 3 citations
- Leakage-Resilient Extractors against Number-on-Forehead ProtocolsEshan Chattopadhyay, Jesse GoodmanSTOC 2025 · 1 citation
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