Vector Databases for Intelligent Data Retrieval: The Complete Guide for Developers and Engineers
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- English
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Non-fiction
"Vector Databases for Intelligent Data Retrieval"
"Vector Databases for Intelligent Data Retrieval" is a comprehensive guide that illuminates the pivotal role of vector representations and databases in powering the next generation of intelligent data retrieval systems. Drawing from foundational principles in linear algebra, information theory, and machine learning, this book methodically unpacks how high-dimensional embedding spaces enable more nuanced semantic search across text, images, audio, and mixed-modality data. Readers are equipped with a deep understanding of embedding construction, similarity metrics, and the advanced learning frameworks that underpin effective vector-based retrieval.
The book seamlessly transitions from theory to practice, exploring the architectural core, indexing techniques, and distributed design patterns that provide the backbone for scalable, performant vector database systems. Pragmatic discussions on storage optimization, query interfaces, hybrid filter models, and performance tuning are coupled with advanced topics like GPU acceleration, privacy-preserving computations, and regulatory compliance. Special focus is given to the operational challenges of real-time and batch retrieval, as well as integrating machine learning at every stage—from model deployment and active learning loops to explainable retrieval.
In its final sections, "Vector Databases for Intelligent Data Retrieval" looks forward, profiling cutting-edge applications such as conversational AI, enterprise semantic search, recommender systems, and anomaly detection. The narrative culminates with a thoughtful survey of future research directions, including exascale and edge scenarios, federation models, responsible AI, and the open-source ecosystem. Suitable for engineers, researchers, and technical leaders, this work serves as both a definitive reference and an inspiration for the evolution of intelligent data retrieval technologies.
© 2025 HiTeX Press (Ebook): 6610001027599
Release date
Ebook: 20 August 2025
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