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Hsiu-Yuan Huang

4 accepted papers

2025

Beyond Demonstrations: Dynamic Vector Construction from Latent Representations

EMNLP 2025

In-Context derived Vector (ICV) methods extract task-relevant representations from large language models (LLMs) and reinject them during inference, achieving comparable performance to few-shot In-Context Learning (ICL) without repeated demonstration processing. However, existing ICV methods remain s

Cited by 0SourcePDFScholar
2025

Beyond Spurious Signals: Debiasing Multimodal Large Language Models via Counterfactual Inference and Adaptive Expert Routing

EMNLP 2025

Multimodal Large Language Models (MLLMs) have shown substantial capabilities in integrating visual and textual information, yet frequently rely on spurious correlations, undermining their robustness and generalization in complex multimodal reasoning tasks. This paper addresses the critical challenge

Cited by 0SourcePDFScholar
2024

FPT: Feature Prompt Tuning for Few-shot Readability Assessment

NAACL 2024long

Prompt-based methods have achieved promising results in most few-shot text classification tasks. However, for readability assessment tasks, traditional prompt methods lack crucial linguistic knowledge, which has already been proven to be essential.Moreover, previous studies on utilizing linguistic f…

2024

Mixture-of-Prompt-Experts for Multi-modal Semantic Understanding

COLING 2024main

Deep multimodal semantic understanding that goes beyond the mere superficial content relation mining has received increasing attention in the realm of artificial intelligence. The challenges of collecting and annotating high-quality multi-modal data have underscored the significance of few-shot lear…

Cited by 5SourcePDFScholar