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Toh K. Analytic Learning Methods for Pattern Recognition 2025
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Category:Other Total size: 17.53 MB Added: 3 months ago (2025-06-02 08:55:01)
Share ratio:13 seeders, 0 leechers Info Hash:8878945D31C49C89E04A469461B9C45523260C4E Last updated: 10 hours ago (2025-09-13 12:53:00)
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Description:
Textbook in PDF format
Outlines the provision of a unified treatment for data with overwhelming samples or parameters for stable predictions.
Provides advanced solutions to regression and classification problems that are crucial for complex systems.
Includes examples coded in Python and MatLAB which provide students and instructors with mathematical insights.
This textbook is a consolidation of learning methods which comes in an analytic form. The covered learning methods include classical and advanced solutions to problems of regression, minimum classification error, maximum receiver operating characteristics, bridge regression, ensemble learning and network learning. Both the primal and dual solution forms are discussed for over-and under-determined systems. Such coverage provides an important perspective for handling systems with overwhelming samples or systems with overwhelming parameters. For goal driven classification, the solutions to minimum classification-error, maximum receiver operating characteristics, bridge regression, and ensemble learning represent recent advancements in the literature. In this book, the exercises offer instructors and students practical experience with real-world applications