Lantao Hu Yueting Li Guangfan Cui Kexin Yi Hu Industrial Recommender System

Industrial Recommender System

von Lantao Hu Yueting Li Guangfan Cui Kexin Yi

Principles, Technologies and Enterprise Applications

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Beschreibung

Recommender systems, as a highly popular AI technology in recent years, have been widely applied across various industries. They have transformed the way we interact with technology, influencing our choices and shaping our experiences. This book provides a comprehensive introduction to industrial recommender systems, starting with the overview of the technical framework, gradually delving into each core module such as content understanding, user profiling, recall, ranking, re-ranking and so on, and introducing the key technologies and practices in enterprises.

The book also addresses common challenges in recommendation cold start, recommendation bias and debiasing. Additionally, it introduces advanced technologies in the field, such as reinforcement learning, causal inference.

Professionals working in the fields of recommender systems, computational advertising, and search will find this book valuable. It is also suitable for undergraduate, graduate, and doctoral students majoring in artificial intelligence, computer science, software engineering, and related disciplines. Furthermore, it caters to readers with an interest in recommender systems, providing them with an understanding of the foundational framework, insights into core technologies, and advancements in industrial recommender systems.

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


Recommender systems, as a highly popular AI technology in recent years, have been widely applied across various industries. They have transformed the way we interact with technology, influencing our choices and shaping our experiences. This book provides a comprehensive introduction to industrial recommender systems, starting with the overview of the technical framework, gradually delving into each core module such as content understanding, user profiling, recall, ranking, re-ranking and so on, and introducing the key technologies and practices in enterprises.

The book also addresses common challenges in recommendation cold start, recommendation bias and debiasing. Additionally, it introduces advanced technologies in the field, such as reinforcement learning, causal inference.

Professionals working in the fields of recommender systems, computational advertising, and search will find this book valuable. It is also suitable for undergraduate, graduate, and doctoral students majoring in artificial intelligence, computer science, software engineering, and related disciplines. Furthermore, it caters to readers with an interest in recommender systems, providing them with an understanding of the foundational framework, insights into core technologies, and advancements in industrial recommender systems.

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

 


Provides a comprehensive introduction to almost all aspects of Industrial Recommender System Incorporates practical business issues from real word, providing general optimization strategies and techniques Easy to understand, helps readers build a comprehensive knowledge of recommender systems from scratch

Autor*in

Lantao Hu

Themen in »Industrial Recommender System«

Recommender System Personalized recommendation Deep Learning Machine Learning Artificial Intelligence Data Science

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Details

ISBN: 9789819725809
Verlag: Springer Singapore
Erscheinung: 01.06.2024

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