Extractor-Based Time-Space Lower Bounds for Learning

August 08, 2017 ยท Declared Dead ยท ๐Ÿ› Electron. Colloquium Comput. Complex.

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Authors Sumegha Garg, Ran Raz, Avishay Tal arXiv ID 1708.02639 Category cs.LG: Machine Learning Cross-listed cs.CC Citations 51 Venue Electron. Colloquium Comput. Complex. Last Checked 5 months ago
Abstract
A matrix $M: A \times X \rightarrow \{-1,1\}$ corresponds to the following learning problem: An unknown element $x \in X$ is chosen uniformly at random. A learner tries to learn $x$ from a stream of samples, $(a_1, b_1), (a_2, b_2) \ldots$, where for every $i$, $a_i \in A$ is chosen uniformly at random and $b_i = M(a_i,x)$. Assume that $k,\ell, r$ are such that any submatrix of $M$ of at least $2^{-k} \cdot |A|$ rows and at least $2^{-\ell} \cdot |X|$ columns, has a bias of at most $2^{-r}$. We show that any learning algorithm for the learning problem corresponding to $M$ requires either a memory of size at least $ฮฉ\left(k \cdot \ell \right)$, or at least $2^{ฮฉ(r)}$ samples. The result holds even if the learner has an exponentially small success probability (of $2^{-ฮฉ(r)}$). In particular, this shows that for a large class of learning problems, any learning algorithm requires either a memory of size at least $ฮฉ\left((\log |X|) \cdot (\log |A|)\right)$ or an exponential number of samples, achieving a tight $ฮฉ\left((\log |X|) \cdot (\log |A|)\right)$ lower bound on the size of the memory, rather than a bound of $ฮฉ\left(\min\left\{(\log |X|)^2,(\log |A|)^2\right\}\right)$ obtained in previous works [R17,MM17b]. Moreover, our result implies all previous memory-samples lower bounds, as well as a number of new applications. Our proof builds on [R17] that gave a general technique for proving memory-samples lower bounds.
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