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Tianlong Gu

6 accepted papers

2026

FairGSE: Fairness-Aware Graph Neural Network Without High False Positive Rates

AAAI 2026technical

Graph neural networks (GNNs) have emerged as the mainstream paradigm for graph representation learning due to their effective message aggregation. However, this advantage also amplifies biases inherent in graph topology, raising fairness concerns. Existing fairness-aware GNNs provide satisfactory pe

Cited by 0SourcePDFScholar
2026

FlowMAP: Flow Matching for Generalizable Agent Planning

ICML 2026poster

Agent planning faces dynamic heterogeneity—nonstationary observations, dynamics, and objectives with sparse, delayed rewards—which dominant methods largely ignore, leading to poor generalization under environment shifts. We propose Flow-Matching for Agent Planning (FlowMAP), which formulates plannin…

Cited by 0SourceScholar
2025

BID-Net: Balanced Incremental Distillation Network for Fair Dermatological Disease Diagnosis

ICASSP 2025accepted

Given the increasing prevalence of deep learning applications in dermatological disease diagnosis, the pursuit of diagnostic accuracy needs to be accompanied by a focus on decision-making fairness to avoid unfair discrimination against under-represented demographic groups. This requires a tradeoff b…

Cited by 0SourceScholar
2025

Learning from Mistakes: Self-correct Adversarial Training for Chinese Unnatural Text Correction

AAAI 2025technical

Unnatural text correction aims to automatically detect and correct spelling errors or adversarial perturbation errors in sentences. Existing methods typically rely on fine-tuning or adversarial training to correct errors, which have achieved significant success. However, these methods exhibit poor g…

2025

Modeling Inter-Intra Heterogeneity for Graph Federated Learning

AAAI 2025technical

Heterogeneity is a fundamental and challenging issue in federated learning, especially for the graph data due to the complex relationships among the graph nodes. To deal with the heterogeneity, lots of existing methods perform the weighted federation based on their calculated similarities between pa…