Conspiracies between Learning Algorithms, Circuit Lower Bounds and Pseudorandomness

I. Oliveira, R. Santhanam
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引用次数: 70

Abstract

We prove several results giving new and stronger connections between learning, circuit lower bounds and pseudorandomness. Among other results, we show a generic learning speedup lemma, equivalences between various learning models in the exponential time and subexponential time regimes, a dichotomy between learning and pseudorandomness, consequences of non-trivial learning for circuit lower bounds, Karp-Lipton theorems for probabilistic exponential time, and NC$^1$-hardness for the Minimum Circuit Size Problem.
学习算法,电路下界和伪随机之间的阴谋
我们证明了几个结果,给出了学习、电路下界和伪随机性之间新的更强的联系。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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