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Integrating Machine Learning Into HPC-Based Simulations and Analytics

Integrating Machine Learning Into HPC-Based Simulations and Analytics

No customer reviews yet ISBN 9781668437957 Engineering Science Reference

Researchers are increasingly using machine learning (ML) models to analyze data and simulate complex systems and phenomena. Small-scale computing systems used for training, validation, and testing of these ML models are no longer sufficient for grand-challenge problems characterized by large volumes of data generated at a much higher rate than before, surpassing by far the computing capabilities currently available in many cyberinfrastructure platforms. By associating high-performance computing (HPC) with ML environments, scientists and engineers would be able to enhance not only the scalability but also the performance of their predictive ML models. The Handbook of Research on Integrating Machine Learning Into HPC-Based Simulations and Analytics presents recent research efforts in designing and using ML techniques on HPC systems and discusses some of the results achieved thus far by cutting-edge relevant contributions. Covering topics such as data analytics, deep learning, and networking, this major reference work is ideal for computer scientists, academicians, engineers, researchers, scholars, practitioners, librarians, instructors, and students.

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BrandEngineering Science Reference
Pub dateDec 13, 2024
ISBN-101668437953
ISBN-139781668437957
Hardcover400.0 pages
LanguageEnglish
Dimensions11 × 1.19 × 8.5 in
Weight3 lb
Last updated 2026-04-25 20:09
$444.69
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