Kele Xu Xu Data Mining Competition Practices

Data Mining Competition Practices

von Kele Xu

Methods and Cases

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Beschreibung

This book aims to provide readers with a clear implementation process for data mining competition solutions and explains the key details involved. In addition to offering the necessary theoretical knowledge, it also provides plug-and-play code. By reading this book, readers will learn how to design a solution for a data mining competition, understand the various details and specific implementation methods of the solution, and learn how to continually refine and optimize it. The book also includes practical case studies to help readers grasp and reinforce these concepts. Data mining competitions offer datasets that closely resemble real-world scenarios, making this book an excellent choice for those who want to learn data mining techniques through hands-on practice.

At the same time, this book can also serve as a reference guide, providing various methods and techniques for the entire process from data input to obtaining final results in different scenarios, including structured data, natural language processing, computer vision, video understanding, and reinforcement learning. These practical methods and techniques can help readers significantly improve their performance on datasets and are applicable not only in data mining competitions but also in research and real-world business applications.

The translation was done with the help of artificial intelligence. A subsequent human revision was done primarily in terms of content.


This book aims to provide readers with a clear implementation process for data mining competition solutions and explains the key details involved. In addition to offering the necessary theoretical knowledge, it also provides plug-and-play code. By reading this book, readers will learn how to design a solution for a data mining competition, understand the various details and specific implementation methods of the solution, and learn how to continually refine and optimize it. The book also includes practical case studies to help readers grasp and reinforce these concepts. Data mining competitions offer datasets that closely resemble real-world scenarios, making this book an excellent choice for those who want to learn data mining techniques through hands-on practice.

At the same time, this book can also serve as a reference guide, providing various methods and techniques for the entire process from data input to obtaining final results in different scenarios, including structured data, natural language processing, computer vision, video understanding, and reinforcement learning. These practical methods and techniques can help readers significantly improve their performance on datasets and are applicable not only in data mining competitions but also in research and real-world business applications.

The translation was done with the help of artificial intelligence. A subsequent human revision was done primarily in terms of content.

For the English version of this book, please visit: https://github.com/anyawangqy/DataMiningCompetitionInActionEn


Offers a clear, step-by-step implementation process for data mining competition solutions Provides a wide range of methods and techniques applicable to different data mining challenges Includes practical case studies across various domains of data mining competition

Autor*in

Kele Xu

Themen in »Data Mining Competition Practices«

Data Mining Gradient Boosting Trees Ensemble Learning Deep Learning Reinforcement Learning AI Competitions

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Details

ISBN: 9789819534456
Verlag: Springer Singapore
Erscheinung: 24.02.2026

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