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Hands-On Machine Learning with C++

You're reading from  Hands-On Machine Learning with C++

Product type Book
Published in May 2020
Publisher Packt
ISBN-13 9781789955330
Pages 530 pages
Edition 1st Edition
Languages
Author (1):
Kirill Kolodiazhnyi Kirill Kolodiazhnyi
Profile icon Kirill Kolodiazhnyi
Toc

Table of Contents (19) Chapters close

Preface 1. Section 1: Overview of Machine Learning
2. Introduction to Machine Learning with C++ 3. Data Processing 4. Measuring Performance and Selecting Models 5. Section 2: Machine Learning Algorithms
6. Clustering 7. Anomaly Detection 8. Dimensionality Reduction 9. Classification 10. Recommender Systems 11. Ensemble Learning 12. Section 3: Advanced Examples
13. Neural Networks for Image Classification 14. Sentiment Analysis with Recurrent Neural Networks 15. Section 4: Production and Deployment Challenges
16. Exporting and Importing Models 17. Deploying Models on Mobile and Cloud Platforms 18. Other Books You May Enjoy

An overview of classification methods

The classification task is one of the basic tasks of applied statistics and machine learning, as well as artificial intelligence (AI) as a whole. This is because classification is one of the most understandable and easy-to-interpret data analysis technologies, and classification rules can be formulated in a natural language. In machine learning, a classification task is solved using supervised algorithms because the classes are defined in advance, and the objects in the training set have class labels. Analytical models that solve a classification task are called classifiers.

Classification is the process of moving an object to a predetermined class based on its formalized features. Each object in this problem is usually represented as a vector in N-dimensional space. Each dimension in that space is a description of one of the features of the...

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