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Programming ML.NET

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SKU 9780137383658 Categories ,
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With .NET 5''s ML.NET and Programming ML.NET, any Microsoft .NET developer can solve serious machine learning problems, increasing their value and competitiveness in some of today''s fastest-growing areas of software development. World-renowned Mic...

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Description

Product ID:9780137383658
Product Form:Paperback / softback
Country of Manufacture:US
Series:Developer Reference
Title:Programming ML.NET
Authors:Author: Dino Esposito, Francesco Esposito
Page Count:256
Subjects:Microsoft programming, Microsoft programming, Data mining, Artificial intelligence, Data mining, Artificial intelligence
Description:Select Guide Rating

With .NET 5''s ML.NET and Programming ML.NET, any Microsoft .NET developer can solve serious machine learning problems, increasing their value and competitiveness in some of today''s fastest-growing areas of software development. World-renowned Microsoft development expert Dino Esposito covers everything students need to know about ML.NET, the machine learning pipeline, and real-world machine learning solutions development.

  • Modeled on Esposito''s popular Programming ASP.NET books
  • Use the same scenario-based approach Microsoft''s team used to build the ML.NET framework itself
  • Discover ML.NET''s dedicated mini-frameworks (“ML Tasks”) for specific classes of problems
  • Draw on Esposito''s personal experience to apply these problems in the real world
  • Learn key concepts and realistic examples related to ML.NET neural networks
  • Leverage powerful Python-based machine learning tools in the .NET environment

Programming ML.NET will help students add machine learning and artificial intelligence to their tool belt, whether they have a background in these high-demand technologies or not.


The expert guide to creating production machine learning solutions with ML.NET!

ML.NET brings the power of machine learning to all .NET developers— and Programming ML.NET helps you apply it in real production solutions. Modeled on Dino Esposito’s best-selling Programming ASP.NET, this book takes the same scenario-based approach Microsoft’s team used to build ML.NET itself. After a foundational overview of ML.NET’s libraries, the authors illuminate mini-frameworks (“ML Tasks”) for regression, classification, ranking, anomaly detection, and more. For each ML Task, they offer insights for overcoming common real-world challenges. Finally, going far beyond shallow learning, the authors thoroughly introduce ML.NET neural networking. They present a complete example application demonstrating advanced Microsoft Azure cognitive services and a handmade custom Keras network— showing how to leverage popular Python tools within .NET.

14-time Microsoft MVP Dino Esposito and son Francesco Esposito show how to:

  • Build smarter machine learning solutions that are closer to your user’s needs
  • See how ML.NET instantiates the classic ML pipeline, and simplifies common scenarios such as sentiment analysis, fraud detection, and price prediction
  • Implement data processing and training, and “productionize” machine learning–based software solutions
  • Move from basic prediction to more complex tasks, including categorization, anomaly detection, recommendations, and image classification
  • Perform both binary and multiclass classification
  • Use clustering and unsupervised learning to organize data into homogeneous groups
  • Spot outliers to detect suspicious behavior, fraud, failing equipment, or other issues
  • Make the most of ML.NET’s powerful, flexible forecasting capabilities
  • Implement the related functions of ranking, recommendation, and collaborative filtering
  • Quickly build image classification solutions with ML.NET transfer learning
  • Move to deep learning when standard algorithms and shallow learning aren’t enough
  • “Buy” neural networking via the Azure Cognitive Services API, or explore building your own with Keras and TensorFlow

Imprint Name:Addison Wesley
Publisher Name:Pearson Education (US)
Country of Publication:GB
Publishing Date:2022-05-23