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FOCS2021顶会

Non-adaptive vs Adaptive Queries in the Dense Graph Testing Model

Oded Goldreich, Avi Wigderson

2021年份
7被引次数
2顶会引用

摘要

We study the relation between the query complexity of adaptive and non-adaptive testers in the dense graph model. It has been known for a couple of decades that the query complexity of non-adaptive testers is at most quadratic in the query complexity of adaptive testers. We show that this general result is essentially tight; that is, there exist graph properties for which any non-adaptive tester must have query complexity that is almost quadratic in the query complexity of the best general (i.e., adaptive) tester. More generally, for everyqq:N→N\mathbb{N}\rightarrow \mathbb{N}such thatq(n)≤nq(n)\leq \sqrt{n}and constantc∈[1,2]c\in[1,2], we show a graph property that is testable inΘ(q(n))\Theta(q(n))queries, but its non-adaptive query complexity isΘ(q(n)c)\Theta(q(n)^{c}), omitting poly(lognn) factors and ignoring the effect of the proximity parameterϵ\epsilon. Furthermore, the upper bounds hold for one-sided error testers, and are at most quadratic in1/ϵ1/\epsilon. These results are obtained through the use of general reductions that transport properties of ordered structured (like bit strings) to those of unordered structures (like unlabeled graphs). The main features of these reductions are query-efficiency and preservation of distance to the properties. This method was initiated in our prior work (ECCC, TR20-149), and we significantly extend it here.

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