Książka Mastering Java Machine Learning Dr. Uday Kamath

Mastering Java Machine Learning

Język: Angielski
Oprawa: Miękka
Dostępność: Dostępna u dostawcy
Wysyłamy za 14-21 dni
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Become an advanced practitioner with this progressive set of master classes on application-oriented...

Informacje o książce

Język
Angielski
Oprawa
Książka - Miękka
Data wydania
2017
strony
556
EAN
9781785880513
ISBN
1785880519
Enbook ID
16625959
Waga
1024
Wymiary
400 x 192 x 31

Pełny opis

Become an advanced practitioner with this progressive set of master classes on application-oriented machine learning

Key Features



  • Comprehensive coverage of key topics in machine learning with an emphasis on both the theoretical and practical aspects

  • More than 15 open source Java tools in a wide range of techniques, with code and practical usage.

  • More than 10 real-world case studies in machine learning highlighting techniques ranging from data ingestion up to analyzing the results of experiments, all preparing the user for the practical, real-world use of tools and data analysis.



Book Description


Java is one of the main languages used by practicing data scientists; much of the Hadoop ecosystem is Java-based, and it is certainly the language that most production systems in Data Science are written in. If you know Java, Mastering Machine Learning with Java is your next step on the path to becoming an advanced practitioner in Data Science.


This book aims to introduce you to an array of advanced techniques in machine learning, including classification, clustering, anomaly detection, stream learning, active learning, semi-supervised learning, probabilistic graph modeling, text mining, deep learning, and big data batch and stream machine learning. Accompanying each chapter are illustrative examples and real-world case studies that show how to apply the newly learned techniques using sound methodologies and the best Java-based tools available today.


On completing this book, you will have an understanding of the tools and techniques for building powerful machine learning models to solve data science problems in just about any domain.


What you will learn




  • Master key Java machine learning libraries, and what kind of problem each can solve, with theory and practical guidance.

  • Explore powerful techniques in each major category of machine learning such as classification, clustering, anomaly detection, graph modeling, and text mining.

  • Apply machine learning to real-world data with methodologies, processes, applications, and analysis.

  • Techniques and experiments developed around the latest specializations in machine learning, such as deep learning, stream data mining, and active and semi-supervised learning.

  • Build high-performing, real-time, adaptive predictive models for batch- and stream-based big data learning using the latest tools and methodologies.

  • Get a deeper understanding of technologies leading towards a more powerful AI applicable in various domains such as Security, Financial Crime, Internet of Things, social networking, and so on.



Who this book is for


This book will appeal to anyone with a serious interest in topics in Data Science or those already working in related areas: ideally, intermediate-level data analysts and data scientists with experience in Java. Preferably, you will have experience with the fundamentals of machine learning and now have a desire to explore the area further, are up to grappling with the mathematical complexities of its algorithms, and you wish to learn the complete ins and outs of practical machine learning.

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