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Self-Supervised Metric Learning in Multi-View Data: A Downstream Task Perspective

2021/06/14 by Shulei Wang, Wang, Shulei
Computer Science · Mathematics · #Domain Adaptation and Few-Shot Learning #FOS: Computer and information sciences #FOS: Mathematics #Face and Expression Recognition #Machine Learning (cs.LG) #Machine Learning (stat.ML) #Methodology (stat.ME) #Statistics Theory (math.ST) #Video Surveillance and Tracking Methods #cs.LG #math.ST #stat.ME #stat.ML #stat.TH

paper · pdf · doi:10.48550/arxiv.2106.07138

openalex publication_date 2021/06/14 · arxiv created 2022/03/17 · arxiv updated 2022/03/18 · openalex created_date 2022/07/25 · openalex updated_date 2026/07/28

Abstract

Self-supervised metric learning has been a successful approach for learning a distance from an unlabeled dataset. The resulting distance is broadly useful for improving various distance-based downstream tasks, even when no information from downstream tasks is utilized in the metric learning stage. To gain insights into this approach, we develop a statistical framework to theoretically study how self-supervised metric learning can benefit downstream tasks in the context of multi-view data. Under this framework, we show that the target distance of metric learning satisfies several desired properties for the downstream tasks. On the other hand, our investigation suggests the target distance can be further improved by moderating each direction's weights. In addition, our analysis precisely characterizes the improvement by self-supervised metric learning on four commonly used downstream tasks: sample identification, two-sample testing, k-means clustering, and k-nearest neighbor classification. When the distance is estimated from an unlabeled dataset, we establish the upper bound on distance estimation's accuracy and the number of samples sufficient for downstream task improvement. Finally, numerical experiments are presented to support the theoretical results in the paper.

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