cs.AI updates on arXiv.org 10月09日 12:07
IMPRESS:AI助力蛋白质结构设计
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本文介绍了IMPRESS,一种结合AI与高性能计算的方法,用于蛋白质结构设计,并通过自适应协议和计算基础设施,提高了设计质量和效率。

arXiv:2510.06396v1 Announce Type: cross Abstract: Computational protein design is experiencing a transformation driven by AI/ML. However, the range of potential protein sequences and structures is astronomically vast, even for moderately sized proteins. Hence, achieving convergence between generated and predicted structures demands substantial computational resources for sampling. The Integrated Machine-learning for Protein Structures at Scale (IMPRESS) offers methods and advanced computing systems for coupling AI to high-performance computing tasks, enabling the ability to evaluate the effectiveness of protein designs as they are developed, as well as the models and simulations used to generate data and train models. This paper introduces IMPRESS and demonstrates the development and implementation of an adaptive protein design protocol and its supporting computing infrastructure. This leads to increased consistency in the quality of protein design and enhanced throughput of protein design due to dynamic resource allocation and asynchronous workload execution.

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蛋白质设计 AI 高性能计算 IMPRESS 结构模拟
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