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Weiqing Luo

3 accepted papers

2026

Not All Answers Are Contextually Persuadable: Inference Dynamics in Large Language Models under Contextual Influence

ICML 2026poster

At the core of modern prompting techniques is contextual sensitivity, the ability of large language models to adapt their predictions based on inference-time context. Despite its central role, inference behavior under strong contextual influence remains poorly understood, particularly at the level o…

Cited by 0SourceScholar
2025

Task-Aware Resolution Optimization for Visual Large Language Models

EMNLP 2025

Real-world vision-language applications demand varying levels of perceptual granularity. However, most existing visual large language models (VLLMs), such as LLaVA, pre-assume a fixed resolution for downstream tasks, which leads to subpar performance. To address this problem, we first conduct a comp

2023

An Empirical Investigation of Implicit and Explicit Knowledge-Enhanced Methods for Ad Hoc Dataset Retrieval

EMNLP 2023long findings

Ad hoc dataset retrieval has become an important way of finding data on the Web, where the underlying problem is how to measure the relevance of a dataset to a query. State-of-the-art solutions for this task are still lexical methods, which cannot capture semantic similarity. Semantics-aware knowled…

Cited by 0SourceScholar