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Ziyuan Chen

5 accepted papers

2026

GUI-ARP: ENHANCING GROUNDING WITH ADAPTIVE REGION PERCEPTION FOR GUI AGENTS

ICASSP 2026poster

Existing GUI grounding methods often struggle with fine-grained localization in high-resolution screenshots. To address this, we propose GUI-ARP, a novel framework that enables adaptive multi-stage inference. Equipped with the proposed Adaptive Region Perception (ARP) and Adaptive Stage Controlling…

Cited by 0SourcePDFScholar
2026

RADAR: Defending RAG Dynamically against Retrieval Corruption

ICML 2026poster

While RAG systems are increasingly deployed in dynamic web search, temporal volatility amplifies their vulnerability to adversarial attacks. Existing static-oriented defenses struggle to handle evolving threats and incur prohibitive storage costs in dynamic settings. We propose RADAR, a framework th…

Cited by 0SourceScholar
2026

TGPO: TREE-GUIDED PREFERENCE OPTIMIZATION FOR ROBUST WEB AGENT REINFORCEMENT LEARNING

ICASSP 2026poster

With the rapid advancement of large language models and vision-language models, employing large models as Web Agents has become essential for automated web interaction. However, training Web Agents with reinforcement learning faces critical challenges including credit assignment misallocation, prohi…

Cited by 0SourcePDFScholar
2025

Spend Wisely: Maximizing Post-Training Gains in Iterative Synthetic Data Bootstrapping

NeurIPS 2025spotlight

Modern foundation models often undergo iterative ``bootstrapping'' in their post-training phase: a model generates synthetic data, an external verifier filters out low-quality samples, and the high-quality subset is used for further fine-tuning. Over multiple iterations, the model performance improv…

Cited by 0SourceScholar
2024

SeMOPO: Learning High-quality Model and Policy from Low-quality Offline Visual Datasets

ICML 2024poster

Model-based offline reinforcement Learning (RL) is a promising approach that leverages existing data effectively in many real-world applications, especially those involving high-dimensional inputs like images and videos. To alleviate the distribution shift issue in offline RL, existing model-based m…

Cited by 0SourcePDFScholar