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Caixing Wang

4 accepted papers

2024

Distributed High-Dimensional Quantile Regression: Estimation Efficiency and Support Recovery

ICML 2024spotlight

In this paper, we focus on distributed estimation and support recovery for high-dimensional linear quantile regression. Quantile regression is a popular alternative tool to the least squares regression for robustness against outliers and data heterogeneity. However, the non-smoothness of the check l…

2024

Towards Theoretical Understanding of Learning Large-scale Dependent Data via Random Features

ICML 2024spotlight

Random feature (RF) mapping is an attractive and powerful technique for solving large-scale nonparametric regression. Yet, the existing theoretical analysis crucially relies on the i.i.d. assumption that individuals in the data are independent and identically distributed. It is still unclear whether…

Cited by 0SourcePDFScholar
2023

Towards a Unified Analysis of Kernel-based Methods Under Covariate Shift

NeurIPS 2023poster

Covariate shift occurs prevalently in practice, where the input distributions of the source and target data are substantially different. Despite its practical importance in various learning problems, most of the existing methods only focus on some specific learning tasks and are not well validated t…