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Kangsan Kim

4 accepted papers

2025

VideoICL: Confidence-based Iterative In-context Learning for Out-of-Distribution Video Understanding

CVPR 2025poster

Recent advancements in video large multimodal models (LMMs) have significantly improved their video understanding and reasoning capabilities. However, their performance drops on out-of-distribution (OOD) tasks that are underrepresented in training data. Traditional methods like fine-tuning on OOD da…

2025

VideoRAG: Retrieval-Augmented Generation over Video Corpus

ACL 2025finding

Retrieval-Augmented Generation (RAG) is a powerful strategy for improving the factual accuracy of models by retrieving external knowledge relevant to queries and incorporating it into the generation process. However, existing approaches primarily focus on text, with some recent advancements consider…

2024

BlendX: Complex Multi-Intent Detection with Blended Patterns

COLING 2024main

Task-oriented dialogue (TOD) systems are commonly designed with the presumption that each utterance represents a single intent. However, this assumption may not accurately reflect real-world situations, where users frequently express multiple intents within a single utterance. While there is an emer…