Machine Learning in Protein Science

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A01=Jinjin Li
A01=Yanqiang Han
Author_Jinjin Li
Author_Yanqiang Han
Category=PSB
Category=UYQM
eq_bestseller
eq_computing
eq_isMigrated=1
eq_isMigrated=2
eq_nobargain
eq_non-fiction
eq_science

Product details

  • ISBN 9783527352159
  • Weight: 680g
  • Dimensions: 170 x 244mm
  • Publication Date: 26 Nov 2025
  • Publisher: Wiley-VCH Verlag GmbH
  • Publication City/Country: DE
  • Product Form: Hardback
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Harness the power of machine learning for quick and efficient calculations of protein structures and properties

Machine Learning in Protein Science is a unique and practical reference that shows how to employ machine learning approaches for full quantum mechanical (FQM) calculations of protein structures and properties, thereby saving costly computing time and making this technology available for routine users.

Machine Learning in Protein Science provides comprehensive coverage of topics including:

  • Machine learning models and algorithms, from deep neural network (DNN) and transfer learning (TL) to hybrid unsupervised and supervised learning
  • Protein structure predictions with AlphaFold to predict the effects of point mutations
  • Modeling and optimization of the catalytic activity of enzymes
  • Property calculations (energy, force field, stability, protein-protein interaction, thermostability, molecular dynamics)
  • Protein design and large language models (LLMs) of protein systems

Machine Learning in Protein Science is an essential reference on the subject for biochemists, molecular biologists, theoretical chemists, biotechnologists, and medicinal chemists, as well as students in related programs of study.

Jinjin Li is a Professor at the School of Electronic Information and Electrical Engineering, Shanghai Jiao Tong University in Shanghai, China. She performed postdoctoral work at the University of Illinois, USA and was a Senior Research Fellow at the University of California, USA.

Yanqiang Han is an Assistant Professor at the School of Electronic Information and Electrical Engineering, Shanghai Jiao Tong University in Shanghai, China.

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