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Augmenting Large Language Models via Vector Embeddings to Improve Domain-Specific Responsiveness
Published on: December 6, 2024
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Subset selection for domain adaptive pre-training of language model.
JunHa Hwang1, SeungDong Lee1, HaNeul Kim1
1Department of Computer Engineering, Chungbuk National University, Cheongju, 28644, Republic of Korea.
Scientific Reports
|March 20, 2025
Summary
Efficiently pre-training large language models (LLMs) is crucial. AlignSet selects informative data subsets, enabling faster LLM learning with fewer computational resources.
Area of Science:
- Natural Language Processing
- Machine Learning
- Artificial Intelligence
Background:
- Pre-trained language models (PLMs) significantly enhance natural language understanding (NLU).
- Domain-adaptive PLMs excel in specific fields but require extensive data and computational resources for training.
- Efficient pre-training methods are needed to reduce the computational burden.
Purpose of the Study:
- To propose an efficient method for pre-training domain-adaptive language models.
- To introduce AlignSet, a novel subset selection technique for optimizing pre-training data.
- To enable faster and more resource-efficient learning of language models.
Main Methods:
- Developed AlignSet, a novel subset selection method.
- Extracted informative subsets from domain-specific datasets for pre-training.
- Conducted experiments across multiple domains to evaluate subset performance.
Main Results:
- AlignSet successfully identifies informative data subsets.
- Subsets generated by AlignSet facilitate faster language model learning compared to using entire datasets.
- Experimental results demonstrate the superiority of AlignSet over existing methods.
Conclusions:
- AlignSet offers an efficient approach to pre-training domain-adaptive language models.
- The method reduces the need for large computational budgets.
- AlignSet enables effective model training with curated, informative data subsets.
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