Isbn: 9798291317402 - vector database engineering: building scalable ai search & retrieval systems with faiss, milvus, pinecone, weaviate, rag pipelines, embeddings, high dimension indexing (with mathematical equations) (11 risultati)

Lingua: Inglese
Editore: Independently published, 2025
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Lingua: Inglese
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Lingua: Inglese
Editore: Amazon Digital Services LLC - Kdp, 2025
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Lingua: Inglese
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Lingua: Inglese
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Lingua: Inglese
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Lingua: Inglese
Editore: Independently published, 2025
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Lingua: Inglese
Editore: Independently Published, 2025
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Da: Rarewaves.com UK, London, Regno UnitoRarewaves.com UK
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Lingua: Inglese
Editore: Independently Published, 2025
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Paperback. Condizione: new. Paperback. Vector Database Engineering is the ultimate guide to designing, building, and deploying scalable vector search systems using tools like FAISS, Milvus, Pinecone, Weaviate, and Qdrant. Whether you're building a semantic search engine, a personalized recommendation system, or an AI-powered chatbot, this book gives you the theoretical foundations, mathematical insights, and production-ready Python code you need to succeed.What You'll LearnVector Embeddings & Similarity Search: Represent text, images, and data as vectors and retrieve results using cosine, Euclidean, and inner product distances.Vector Indexing at Scale: Implement FAISS HNSW, IVF, and PQ structures. Learn trade-offs between recall and latency.Managed & Distributed Databases: Use managed services like Pinecone and self-hosted options like Milvus, Weaviate, and Qdrant.Real-World Applications: Build semantic search engines, RAG pipelines, multimodal retrieval, recommendation systems, and edge deployments.Security & Compliance: Add RBAC, TLS encryption, audit logging, and GDPR-compliant deletion.Advanced Topics: Explore neural search, adaptive indexing, multimodal embeddings (e.g., CLIP), and federated search.Key Use CasesSemantic Search: Go beyond keywords using AI vector queries.Recommendations: Suggest content and products based on behavior.Multimedia Retrieval: Search images, audio, and video using embeddings.RAG: Feed live vector data into LLMs for better answers.Fraud & Anomaly Detection: Identify outliers with proximity-based search.NLP & Generative AI: Embed, retrieve, and generate content with LLMs.Why This Book?Hands-On Python: 40+ real-world examples with FAISS, Qdrant, Pinecone, Milvus, and Weaviate.Math-Based Optimization: Understand latency, memory, and performance trade-offs.Production Ready: Secure, scalable design patterns with best practices.Future Trends: Includes neural retrievers, adaptive indexing, and multimodal workflows.Who It's ForEngineers building real-time search and recommendation enginesML and Data Scientists integrating vector search in pipelinesDevOps deploying scalable and secure AI infrastructureAI researchers exploring retrieval-augmented generationStudents and builders learning practical vector searchThis is your in-depth, code-first guide to building intelligent, scalable vector database systems. Start using vector search to power the next generation of AI.Get your copy now. This item is printed on demand. Shipping may be from multiple locations in the US or from the UK, depending on stock availability.…

Lingua: Inglese
Editore: Independently published, 2025
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Da: California Books, Miami, FL, U.S.A.California Books
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Lingua: Inglese
Editore: Independently Published, 2025
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Da: CitiRetail, Stevenage, Regno UnitoCitiRetail
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Paperback. Condizione: new. Paperback. Vector Database Engineering is the ultimate guide to designing, building, and deploying scalable vector search systems using tools like FAISS, Milvus, Pinecone, Weaviate, and Qdrant. Whether you're building a semantic search engine, a personalized recommendation system, or an AI-powered chatbot, this book gives you the theoretical foundations, mathematical insights, and production-ready Python code you need to succeed.What You'll LearnVector Embeddings & Similarity Search: Represent text, images, and data as vectors and retrieve results using cosine, Euclidean, and inner product distances.Vector Indexing at Scale: Implement FAISS HNSW, IVF, and PQ structures. Learn trade-offs between recall and latency.Managed & Distributed Databases: Use managed services like Pinecone and self-hosted options like Milvus, Weaviate, and Qdrant.Real-World Applications: Build semantic search engines, RAG pipelines, multimodal retrieval, recommendation systems, and edge deployments.Security & Compliance: Add RBAC, TLS encryption, audit logging, and GDPR-compliant deletion.Advanced Topics: Explore neural search, adaptive indexing, multimodal embeddings (e.g., CLIP), and federated search.Key Use CasesSemantic Search: Go beyond keywords using AI vector queries.Recommendations: Suggest content and products based on behavior.Multimedia Retrieval: Search images, audio, and video using embeddings.RAG: Feed live vector data into LLMs for better answers.Fraud & Anomaly Detection: Identify outliers with proximity-based search.NLP & Generative AI: Embed, retrieve, and generate content with LLMs.Why This Book?Hands-On Python: 40+ real-world examples with FAISS, Qdrant, Pinecone, Milvus, and Weaviate.Math-Based Optimization: Understand latency, memory, and performance trade-offs.Production Ready: Secure, scalable design patterns with best practices.Future Trends: Includes neural retrievers, adaptive indexing, and multimodal workflows.Who It's ForEngineers building real-time search and recommendation enginesML and Data Scientists integrating vector search in pipelinesDevOps deploying scalable and secure AI infrastructureAI researchers exploring retrieval-augmented generationStudents and builders learning practical vector searchThis is your in-depth, code-first guide to building intelligent, scalable vector database systems. Start using vector search to power the next generation of AI.Get your copy now. This item is printed on demand. Shipping may be from our UK warehouse or from our Australian or US warehouses, depending on stock availability.…