Applied Deep Learning - Paul Fergus, Carl Chalmers

Applied Deep Learning

tools, techniques, and implementation
Buch | Softcover
XXVII, 341 Seiten
2023 | 1st ed. 2022
Springer International Publishing (Verlag)
978-3-031-04422-9 (ISBN)
53,49 inkl. MwSt
lt;p>This book focuses on the applied aspects of artificial intelligence using enterprise frameworks and technologies. The book is applied in nature and will equip the reader with the necessary skills and understanding for delivering enterprise ML technologies. It will be valuable for undergraduate and postgraduate students in subjects such as artificial intelligence and data science, and also for industrial practitioners engaged with data analytics and machine learning tasks. The book covers all of the key conceptual aspects of the field and provides a foundation for all interested parties to develop their own artificial intelligence applications.

lt;p>Prof. Paul Fergus is a Professor in Machine Learning and Dr. Carl Chambers is a Senior Lecturer in the Dept. of Computer Science of Liverpool John Moores University. Their teaching responsibilities include Machine Learning and Data Science. Their research interest includes Applied Machine Learning, Computer Vision, Signal Processing, and Pattern Recognition.

Part 1 Introduction and Overview.- Introduction.- Part 2 Foundations of Mashine Learning.- Fundamentals of Machine Learning.- Supervised Learning.- Un-Supervised Learning.- Performance Evaluation Metrics.- Part 3 Deep Learning Concepts and Techniques.-  Introduction to Deep Learning.- Image Classification and Object Detection.- Deep Learning Techniques for Time Series Modelling.- Natural Language Processing.- Deep Generative Models.- Deep Reinforcement Learning.- Part 4 Enterprise Machine Learning.- Accelerated Machine Learning.- Deploying and Hosting Machine Learning Models.- Enterprise Machine Learning Serving. 

Erscheinungsdatum
Reihe/Serie Computational Intelligence Methods and Applications
Zusatzinfo Illustration
Verlagsort Cham
Sprache englisch
Maße 155 x 235 mm
Gewicht 565 g
Themenwelt Informatik Theorie / Studium Künstliche Intelligenz / Robotik
Schlagworte Accelerated Learning • Deep learning • machine learning • Neural networks • RAPIDS (Open GPU Data Science) • tensorflow
ISBN-10 3-031-04422-3 / 3031044223
ISBN-13 978-3-031-04422-9 / 9783031044229
Zustand Neuware
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