2021
DOI: 10.1137/17m1145707
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Targeted Pseudorandom Generators, Simulation Advice Generators, and Derandomizing Logspace

Abstract: Assume that for every derandomization result for logspace algorithms, there is a pseudorandom generator strong enough to nearly recover the derandomization by iterating over all seeds and taking a majority vote. We prove under a precise version of this assumption that BPL ⊆ α>0 DSPACE(log 1+α n). We strengthen the theorem to an equivalence by considering two generalizations of the concept of a pseudorandom generator against logspace. A targeted pseudorandom generator against logspace takes as input a short uni… Show more

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Cited by 3 publications
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