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Supervised Machine Learning for Science: How to stop worrying and love your black box

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Management number 233372162 Release Date 2026/06/27 List Price $8.72 Model Number 233372162
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Machine learning has revolutionized science, from folding proteins and predicting tornadoes to studying human nature. While science has always had an intimate relationship with prediction, machine learning amplified this focus. But can this hyper-focus on prediction models be justified? Can a machine learning model be part of a scientific model? Or are we on the wrong track?In this book, we explore and justify supervised machine learning in science. However, a naive application of supervised learning won’t get you far because machine learning in raw form is unsuitable for science. After all, it lacks interpretability, uncertainty quantification, causality, and many more desirable attributes. Yet, we already have all the puzzle pieces needed to improve machine learning, from incorporating domain knowledge and ensuring the representativeness of the training data to creating robust, interpretable, and causal models. The problem is that the solutions are scattered everywhere.In this book, we bring together the philosophical justification and the solutions that make supervised machine learning a powerful tool for science.After the introduction, the book consists of two parts:Part 1 justifies the use of machine learning in science.Part 2 discusses how to integrate machine learning into science. Read more

ASIN B0DLLGLMZJ
XRay Not Enabled
ISBN13 978-3911578028
Language English
File size 14.4 MB
Page Flip Enabled
Word Wise Enabled
Print length 312 pages
Accessibility Learn more
Screen Reader Supported
Publication date October 30, 2024
Enhanced typesetting Enabled

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