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Weijun Xie

5 accepted papers

2026

A Federated Generalized Expectation-Maximization Algorithm for Mixture Models with an Unknown Number of Components

ICLR 2026poster

We study the problem of federated clustering when the total number of clusters $K$ across clients is unknown, and the clients have heterogeneous but potentially overlapping cluster sets in their local data. To that end, we develop FedGEM: a federated generalized expectation-maximization algorithm fo…

Cited by 0SourceScholar
2025

A Spatio-temporal Cluster-aware Supervised Learning Framework for Predicting County-level Drug Overdose Deaths

AAAI 2025technical

The soaring drug overdose crisis in the United States has claimed more than half a million lives in the past decade and remains a major public health threat. The ability to predict drug overdose deaths at the county level can help local communities develop action plans in response to emerging change…

2025

FDR-SVM: A Federated Distributionally Robust Support Vector Machine via a Mixture of Wasserstein Balls Ambiguity Set

UAI 2025

We study a federated classification problem over a network of multiple clients and a central server, in which each client’s local data remains private and is subject to uncertainty in both the features and labels. To address these uncertainties, we develop a novel Federated Distributionally Robust S

Cited by 0SourcePDFScholar
2024

Learning Fair Policies for Multi-Stage Selection Problems from Observational Data

AAAI 2024technical

We consider the problem of learning fair policies for multi-stage selection problems from observational data. This problem arises in several high-stakes domains such as company hiring, loan approval, or bail decisions where outcomes (e.g., career success, loan repayment, recidivism) are only observe…

Cited by 3SourcePDFScholar