Beginning with Machine Learning
Language: English
Published by BPB Publications, 2023
- Softcover
- New

Seller: Vedams eBooks (P) Ltd, New Delhi, IndiaVedams eBooks (P) Ltd
AbeBooks seller since January 30, 2009
Condition: New
US$ 22.90
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Add to basketItem description from seller
Description Should I choose supervised learning or reinforcement learning? Which algorithm is best suited for my application? How does deep learning advance the capacities of problem-solving? If you have found yourself asking these questions, this book is specially developed for you. The book will help readers understand the core concepts of machine learning and techniques to evaluate any machine learning model with ease. The book starts with the importance of machine learning by analyzing its impact on the global landscape. The book also covers Supervised and Unsupervised ML along with Reinforcement Learning. In subsequent chapters, the book explores these topics in even greater depth, evaluating the pros and cons of each and exploring important topics such as Bias-Variance Tradeoff, Clustering, and Dimensionality Reduction. The book also explains model evaluation techniques such as Cross-Validation and GridSearchCV. The book also features mind maps which help enhance the learning process by making it easier to learn and retain information. This book is a one-stop solution for covering basic ML concepts in detail and the perfect stepping stone to becoming an expert in ML and deep learning and even applying them to different professions. What you will learn ● Understand important concepts to fully grasp the idea of supervised learning. ● Get familiar with the basics of unsupervised learning and some of its algorithms. ● Learn how to analyze the performance of your Machine Learning models. ● Explore the different methodologies of Reinforcement Learning.…
Seller Inventory # 148628
- Title
- Beginning with Machine Learning
- Author
- Amit Dua and Umair Ayub
- Publisher
- BPB Publications
- Publication year
- 2023
- Condition
- New
- Binding
- Soft cover
- Language
- English
- ISBN 10
- 9355511043
- ISBN 13
- 9789355511041
A step-by-step guide to get started with Machine Learning
Key Features
● Understand different types of Machine Learning like Supervised, Unsupervised, Semi-supervised, and Reinforcement learning.
● Learn how to implement Machine Learning algorithms effectively and efficiently.
● Get familiar with the various libraries & tools for Machine Learning.
Description
Should I choose supervised learning or reinforcement learning? Which algorithm is best suited for my application? How does deep learning advance the capacities of problem-solving? If you have found yourself asking these questions, this book is specially developed for you.
The book will help readers understand the core concepts of machine learning and techniques to evaluate any machine learning model with ease. The book starts with the importance of machine learning by analyzing its impact on the global landscape. The book also covers Supervised and Unsupervised ML along with Reinforcement Learning. In subsequent chapters, the book explores these topics in even greater depth, evaluating the pros and cons of each and exploring important topics such as Bias-Variance Tradeoff, Clustering, and Dimensionality Reduction. The book also explains model evaluation techniques such as Cross-Validation and GridSearchCV. The book also features mind maps which help enhance the learning process by making it easier to learn and retain information.
This book is a one-stop solution for covering basic ML concepts in detail and the perfect stepping stone to becoming an expert in ML and deep learning and even applying them to different professions.
What you will learn
● Understand important concepts to fully grasp the idea of supervised learning.
● Get familiar with the basics of unsupervised learning and some of its algorithms.
● Learn how to analyze the performance of your Machine Learning models.
● Explore the different methodologies of Reinforcement Learning.
● Learn how to implement different types of Neural networks.
Who this book is for
This book is aimed at those who are new to machine learning and deep learning or want to extend their ML knowledge. Anyone looking to apply ML to data in their profession will benefit greatly from this book.
Table of Contents
1. Introduction to Machine Learning
2. Supervised Learning
3. Unsupervised Learning
4. Model Evaluation
5. Reinforcement Learning
6. Neural Networking and Deep Learning
7. Appendix: Machine Learning Questions
"Synopsis" may belong to another edition of this title.
Vedams eBooks (P) Ltd
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