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Haoming Wang

5 accepted papers

2026

InfiniBench: Infinite Benchmarking for Visual Spatial Reasoning with Customizable Scene Complexity

CVPR 2026

Modern vision-language models (VLMs) are expected to have abilities of spatial reasoning with diverse scene complexities, but evaluating such abilities is difficult due to the lack of benchmarks that are not only diverse and scalable but also fully customizable. Existing benchmarks offer limited cus

Cited by 0SourcecodeScholar
2025

Evolution in Simulation: AI-Agent School with Dual Memory for High-Fidelity Educational Dynamics

EMNLP 2025

Large language models (LLMs) based Agents are increasingly pivotal in simulating and understanding complex human systems and interactions. We propose the AI-Agent School (AAS) system, built around a self-evolving mechanism that leverages agents for simulating complex educational dynamics. Addressing

Cited by 0SourcePDFScholar
2025

Tackling Intertwined Data and Device Heterogeneities in Federated Learning with Unlimited Staleness

AAAI 2025technical

Federated Learning (FL) can be affected by data and device heterogeneities, caused by clients' different local data distributions and latencies in uploading model updates (i.e., staleness). Traditional schemes consider these heterogeneities as two separate and independent aspects, but this assumptio…

2024

Beyond Single Stationary Policies: Meta-Task Players as Naturally Superior Collaborators

NeurIPS 2024poster

In human-AI collaborative tasks, the distribution of human behavior, influenced by mental models, is non-stationary, manifesting in various levels of initiative and different collaborative strategies. A significant challenge in human-AI collaboration is determining how to collaborate effectively wit…

Cited by 0SourcePDFScholar
2022

How to Stop an Avalanche? JoDeM: Joint Decision Making through Compare and Contrast for Dialog State Tracking

EMNLP 2022finding

Dialog state tracking (DST) is a core component in task-oriented dialog systems. Existing state-of-the-art DST model incorporates insight and intuition from the human experience into design of supplementary labels, which greatly assisted the training process of turn-by-turn DST model. Though the tur…

Cited by 2SourcePDFScholar