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Fusheng Liu

6 accepted papers

2025

Autocorrelation Matters: Understanding the Role of Initialization Schemes for State Space Models

ICLR 2025poster

Current methods for initializing state space model (SSM) parameters primarily rely on the HiPPO framework \citep{gu2023how}, which is based on online function approximation with the SSM kernel basis. However, the HiPPO framework does not explicitly account for the effects of the temporal structures…

Cited by 0SourcePDFScholar
2025

Leveraging Diffusion Model as Pseudo-Anomalous Graph Generator for Graph-Level Anomaly Detection

ICML 2025spotlight

A fundamental challenge in graph-level anomaly detection (GLAD) is the scarcity of anomalous graph data, as the training dataset typically contains only normal graphs or very few anomalies. This imbalance hinders the development of robust detection models. In this paper, we propose **A**nomalous **G…

Cited by 0SourcePDFScholar
2025

Paid with Models: Optimal Contract Design for Collaborative Machine Learning

AAAI 2025technical

Collaborative machine learning (CML) provides a promising paradigm for democratizing advanced technologies by enabling cost-sharing among participants. However, the potential for rent-seeking behaviors among parties can undermine such collaborations. Contract theory presents a viable solution by rew…

Cited by 0SourcePDFScholar
2024

Cross-Domain Feature Augmentation for Domain Generalization

IJCAI 2024poster

Domain generalization aims to develop models that are robust to distribution shifts. Existing methods focus on learning invariance across domains to enhance model robustness, and data augmentation has been widely used to learn invariant predictors, with most methods performing augmentation in the in…