Point Location and Active Learning: Learning Halfspaces Almost Optimally
Max Hopkins, Daniel Kane, Shachar Lovett, Gaurav Mahajan
Abstract
Given a finite set X ⊂ Rdand a binary linear classifier c: Rd→ 0,1, how many queries of the form c(x) are required to learn the label of every point in X? Known as point location, this problem has inspired over 35 years of research in the pursuit of an optimal algorithm. Building on the prior work of Kane, Lovett, and Moran (ICALP 2018), we provide the first nearly optimal solution, a randomized linear decision tree of depth Õ(dlog(|X|)), improving on the previous best of Õ(d2log(|X|)) from Ezra and Sharir (Discrete and Computational Geometry, 2019). As a corollary, we also provide the first nearly optimal algorithm for actively learning halfspaces in the membership query model. En route to these results, building on the work of Carlen, Lieb, and Loss (J. Geometric Analysis 2004), as well as Dvir, Saraf, and Wigderson (STOC 2014), we prove a novel characterization of Barthe's Theorem (Inventiones Mathematicae, 1998) of independent interest. In particular, we show that X may be transformed into approximate isotropic position if and only if there exists no k-dimensional subspace with more than a k/d-fraction of X, and provide a similar characterization for exact isotropic position. The below is an extended abstract. The full work can be found at https://arxiv.org/abs/2004.11380.
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Install the CLIlune papers fulltext 1c625324-4131-4e82-9b29-01ea3bad8f5bCited by top-tier papers10
- Active Learning of Convex Halfspaces on GraphsMaximilian Thiessen, Thomas GärtnerNeurIPS 2021 · 30 citations
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- ReLU Regression with Massart NoiseIlias Diakonikolas, Jongho Park, Christos TzamosNeurIPS 2021 · 14 citations
- Agnostic Active Learning Is Always Better Than Passive LearningSteve HannekeNeurIPS 2025 · 7 citations
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