Ensemble Methods for Machine Learning

Author:   Gautam Kunapuli
Publisher:   Manning Publications
ISBN:  

9781617297137


Pages:   350
Publication Date:   09 June 2023
Format:   Paperback
Availability:   Not yet available   Availability explained
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Ensemble Methods for Machine Learning


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Overview

"Many machine learning problems are too complex to be resolved by a single model or algorithm. Ensemble machine learning trains a group of diverse machine learning models to work together to solve a problem. By aggregating their output, these ensemble models can flexibly deliver rich and accurate results. Ensemble Methods for Machine Learning is a guide to ensemble methods with proven records in data science competitions and real world applications. Learning from hands-on case studies, you'll develop an under-the-hood understanding of foundational ensemble learning algorithms to deliver accurate, performant models. About the Technology Ensemble machine learning lets you make robust predictions without needing the huge datasets and processing power demanded by deep learning. It sets multiple models to work on solving a problem, combining their results for better performance than a single model working alone. This ""wisdom of crowds"" approach distils information from several models into a set of highly accurate results."

Full Product Details

Author:   Gautam Kunapuli
Publisher:   Manning Publications
Imprint:   Manning Publications
Dimensions:   Width: 18.60cm , Height: 2.40cm , Length: 23.40cm
Weight:   0.640kg
ISBN:  

9781617297137


ISBN 10:   1617297135
Pages:   350
Publication Date:   09 June 2023
Audience:   Professional and scholarly ,  Professional & Vocational
Format:   Paperback
Publisher's Status:   Active
Availability:   Not yet available   Availability explained
This item is yet to be released. You can pre-order this item and we will dispatch it to you upon its release.

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Reviews

The definitive and complete guide on ensemble learning. A must read! Al Krinker The examples are clear and easy to reproduce, the writing is engaging and clear, and the reader is not bogged down by details which might be unimportant for beginners in the field! Or Golan This book is a great tutorial on ensemble methods! Stephen Warnett The code examples as well as the case studies at the end of each chapter open many possibilities of using these techniques on your data/projects. Joaquin Beltran


"""The definitive and complete guide on ensemble learning. A must read!"" Al Krinker ""The examples are clear and easy to reproduce, the writing is engaging and clear, and the reader is not bogged down by details which might be unimportant for beginners in the field!"" Or Golan ""This book is a great tutorial on ensemble methods!"" Stephen Warnett ""The code examples as well as the case studies at the end of each chapter open many possibilities of using these techniques on your data/projects."" Joaquin Beltran"


Author Information

Gautam Kunapuli has over 15 years of experience in academia and the machine learning industry. He has developed several novel algorithms for diverse application domains including social network analysis, text and natural language processing, behaviour mining, educational data mining and biomedical applications. He has also published papers exploring ensemble methods in relational domains and with imbalanced data.

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