Active Regression for Single-Index Models with Unknown Link Functions
Chansophea Wathanak In, Yi Li, Wai Ming Tai, Xuan Wu
摘要
This paper studies active regression for single-index models under general -loss with an unknown -Lipschitz link function , formulated as with full access to but coordinate-query access to . Prior work established upper bounds for known link functions for all and for unknown link functions only in the case, together with lower bounds for . This work addresses the more challenging setting of unknown link functions and general . A non-adaptive sampling algorithm is presented that achieves a -approximation using queries. Nearly tight lower bounds are also established for non-adaptive queries when . These results close much of the remaining gap in active regression for single-index models.
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