In Machine Learning Using C# Succinctly, you’ll learn several different approaches to applying machine learning to data analysis and prediction problems.
Author James McCaffrey demonstrates different clustering and classification techniques, and explains the many decisions that must be made during development that determine how effective these techniques can be. McCaffrey provides thorough examples of applying k-means clustering to group strictly numerical data, calculating category utility to cluster both qualitative and quantitative information, and even using neural network classification to predict the output of previously unseen data.
Author James McCaffrey demonstrates different clustering and classification techniques, and explains the many decisions that must be made during development that determine how effective these techniques can be. McCaffrey provides thorough examples of applying k-means clustering to group strictly numerical data, calculating category utility to cluster both qualitative and quantitative information, and even using neural network classification to predict the output of previously unseen data.
Title Machine Learning Using C# Succinctly
Author(s) James McCaffrey
Publisher: Syncfusion Inc. (2014)
Paperback N/A
eBook PDF (148 pages, 2.11 MB) and Mobi
Language: English
Author(s) James McCaffrey
Publisher: Syncfusion Inc. (2014)
Paperback N/A
eBook PDF (148 pages, 2.11 MB) and Mobi
Language: English
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