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TaeHee Kim

3 accepted papers

2022

Reweighting Strategy Based on Synthetic Data Identification for Sentence Similarity

COLING 2022main

Semantically meaningful sentence embeddings are important for numerous tasks in natural language processing. To obtain such embeddings, recent studies explored the idea of utilizing synthetically generated data from pretrained language models(PLMs) as a training corpus. However, PLMs often generate…

2021

AVocaDo: Strategy for Adapting Vocabulary to Downstream Domain

EMNLP 2021main

During the fine-tuning phase of transfer learning, the pretrained vocabulary remains unchanged, while model parameters are updated. The vocabulary generated based on the pretrained data is suboptimal for downstream data when domain discrepancy exists. We propose to consider the vocabulary as an opti…

2021

Unsupervised Neural Machine Translation for Low-Resource Domains via Meta-Learning

ACL 2021long

Unsupervised machine translation, which utilizes unpaired monolingual corpora as training data, has achieved comparable performance against supervised machine translation. However, it still suffers from data-scarce domains. To address this issue, this paper presents a novel meta-learning algorithm f…