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Wonbin Kweon

5 accepted papers

2026

Harmonic Dataset Distillation for Time Series Forecasting

AAAI 2026technical

Time Series forecasting (TSF) in the modern era faces significant computational and storage cost challenges due to the massive scale of real-world data. Dataset Distillation (DD), a paradigm that synthesizes a small, compact dataset to achieve training performance comparable to that of the original

Cited by 0SourcePDFScholar
2025

Topic Coverage-based Demonstration Retrieval for In-Context Learning

EMNLP 2025

The effectiveness of in-context learning relies heavily on selecting demonstrations that provide all the necessary information for a given test input.To achieve this, it is crucial to identify and cover fine-grained knowledge requirements. However, prior methods often retrieve demonstrations based s

2025

Verbosity-Aware Rationale Reduction: Sentence-Level Rationale Reduction for Efficient and Effective Reasoning

ACL 2025finding

Large Language Models (LLMs) rely on generating extensive intermediate reasoning units (e.g., tokens, sentences) to enhance final answer quality across a wide range of complex tasks. While this approach has proven effective, it inevitably increases substantial inference costs. Previous methods adopt…

Cited by 0SourcePDFScholar
2024

Rectifying Demonstration Shortcut in In-Context Learning

NAACL 2024long

Large language models (LLMs) are able to solve various tasks with only a few demonstrations utilizing their in-context learning (ICL) abilities.However, LLMs often rely on their pre-trained semantic priors of demonstrations rather than on the input-label relationships to proceed with ICL prediction.…

2022

Obtaining Calibrated Probabilities with Personalized Ranking Models

AAAI 2022technical

For personalized ranking models, the well-calibrated probability of an item being preferred by a user has great practical value. While existing work shows promising results in image classification, probability calibration has not been much explored for personalized ranking. In this paper, we aim t…