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cs.CL2025

DARWIN 1.5: Large Language Models as Materials Science Adapted Learners

Tong Xie, Yuwei Wan, Yixuan Liu +8

Materials discovery and design aim to find compositions and structures with desirable properties over highly complex and diverse physical spaces. Traditional solutions, such as hig…

cs.CL2025

Construction and Application of Materials Knowledge Graph in Multidisciplinary Materials Science via Large Language Model

Yanpeng Ye, Jie Ren, Shaozhou Wang +6

Knowledge in materials science is widely dispersed across extensive scientific literature, posing significant challenges to the efficient discovery and integration of new materials…

cs.CL2024

ByteScience: Bridging Unstructured Scientific Literature and Structured Data with Auto Fine-tuned Large Language Model in Token Granularity

Tong Xie, Hanzhi Zhang, Shaozhou Wang +5

Natural Language Processing (NLP) is widely used to supply summarization ability from long context to structured information. However, extracting structured knowledge from scientif…

cs.CL2024

From Tokens to Materials: Leveraging Language Models for Scientific Discovery

Yuwei Wan, Tong Xie, Nan Wu +3

Exploring the predictive capabilities of language models in material science is an ongoing interest. This study investigates the application of language model embeddings to enhance…

cs.CL2024

SciQAG: A Framework for Auto-Generated Science Question Answering Dataset with Fine-grained Evaluation

Yuwei Wan, Yixuan Liu, Aswathy Ajith +6

We introduce SciQAG, a novel framework for automatically generating high-quality science question-answer pairs from a large corpus of scientific literature based on large language…