cs.AI updates on arXiv.org 07月21日 12:06
A Comprehensive Review of Transformer-based language models for Protein Sequence Analysis and Design
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本文综述了基于Transformer的语言模型在生物信息学领域的应用,包括基因本体、功能与结构蛋白识别、新蛋白生成和蛋白结合等应用,分析了相关研究的优缺点,并探讨了未来研究方向。

arXiv:2507.13646v1 Announce Type: cross Abstract: The impact of Transformer-based language models has been unprecedented in Natural Language Processing (NLP). The success of such models has also led to their adoption in other fields including bioinformatics. Taking this into account, this paper discusses recent advances in Transformer-based models for protein sequence analysis and design. In this review, we have discussed and analysed a significant number of works pertaining to such applications. These applications encompass gene ontology, functional and structural protein identification, generation of de novo proteins and binding of proteins. We attempt to shed light on the strength and weaknesses of the discussed works to provide a comprehensive insight to readers. Finally, we highlight shortcomings in existing research and explore potential avenues for future developments. We believe that this review will help researchers working in this field to have an overall idea of the state of the art in this field, and to orient their future studies.

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Transformer模型 生物信息学 蛋白序列分析
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