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Machine learning in business finance using Python / Kian Guan Lim

By: Material type: TextSeries: World Scientific series on financial data analytics ; V.2Publication details: New Jersey : World Scientific, 2026Description: xxiii, 290 pISBN:
  • 9789819811236
Subject(s): DDC classification:
  • 006.31 LIM-M
Summary: This book is an introduction to machine learning using Python programming language with applications in finance and business. Coverages include the prediction methods of logistic regression, Naïve Bayes, k-Nearest Neighbor, Support Vector Machine, Random Forest, Gradient Boosting, and various types of Neural Networks. Performance measurements and assessments of feature importance are also explained. The book also contains detailed examples of the applications with data. Python codes are explained in a step-by-step manner using Jupyter Notebook so that the readers can practise on their own
Item type: Books
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UMT Main Campus 006.31 LIM-M (Browse shelf(Opens below)) Available 153680

Includes bibliographical references and index.

This book is an introduction to machine learning using Python programming language with applications in finance and business. Coverages include the prediction methods of logistic regression, Naïve Bayes, k-Nearest Neighbor, Support Vector Machine, Random Forest, Gradient Boosting, and various types of Neural Networks. Performance measurements and assessments of feature importance are also explained. The book also contains detailed examples of the applications with data. Python codes are explained in a step-by-step manner using Jupyter Notebook so that the readers can practise on their own

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