Langgraph guide knowledge driven llms de zhang carter (9 resultados)

Idioma: Inglés
Editorial: Independently published, 2025
Serie: Libro 2 de 4 - Applied LLM Systems: Production Patterns for Agents, Context, and Knowledge Graphs
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Idioma: Inglés
Editorial: Independently published, 2025
Serie: Libro 2 de 4 - Applied LLM Systems: Production Patterns for Agents, Context, and Knowledge Graphs
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Idioma: Inglés
Editorial: Amazon Digital Services LLC - Kdp, 2025
Serie: Libro 2 de 4 - Applied LLM Systems: Production Patterns for Agents, Context, and Knowledge Graphs
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Librería: PBShop.store US, Wood Dale, IL, Estados Unidos de AmericaPBShop.store US
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Idioma: Inglés
Editorial: Amazon Digital Services LLC - Kdp, 2025
Serie: Libro 2 de 4 - Applied LLM Systems: Production Patterns for Agents, Context, and Knowledge Graphs
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Librería: PBShop.store UK, Fairford, GLOS, Reino UnidoPBShop.store UK
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Idioma: Inglés
Editorial: Independently published, 2025
Serie: Libro 2 de 4 - Applied LLM Systems: Production Patterns for Agents, Context, and Knowledge Graphs
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Idioma: Inglés
Editorial: Independently published, 2025
Serie: Libro 2 de 4 - Applied LLM Systems: Production Patterns for Agents, Context, and Knowledge Graphs
- Tapa blanda
Librería: GreatBookPricesUK, Woodford Green, Reino UnidoGreatBookPricesUK
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Idioma: Inglés
Editorial: Independently published, 2025
Serie: Libro 2 de 4 - Applied LLM Systems: Production Patterns for Agents, Context, and Knowledge Graphs
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Librería: California Books, Miami, FL, Estados Unidos de AmericaCalifornia Books
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Idioma: Inglés
Editorial: Independently Published, 2025
Serie: Libro 2 de 4 - Applied LLM Systems: Production Patterns for Agents, Context, and Knowledge Graphs
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Librería: Grand Eagle Retail, Bensenville, IL, Estados Unidos de AmericaGrand Eagle Retail
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Paperback. Condición: new. Paperback. LangGraph for Knowledge-Driven LLMs shows how to combine graph-structured knowledge with large language models to produce more accurate, explainable, and maintainable AI systems. The book introduces LangGraph concepts, data models, and connectors, and walks through full ingestion pipelines that convert raw documents into triples, entities, and canonical nodes. Learn entity resolution and linking techniques that reduce ambiguity, maintain provenance, and make knowledge updates straightforward.A major focus is on converting graph structure into vector representations and building hybrid retrieval flows that combine graph queries with vector similarity search. You'll learn how to craft graph-aware context assembly and prompting strategies so LLMs can reason with structured knowledge and return traceable answers. The book also covers graph embeddings, graph neural nets, explainability patterns, and operational best practices for indexing, monitoring, and schema evolution. Real-world case studies demonstrate customer-support assistants, domain expert systems, and product catalogs that use LangGraph for domain grounding and faster iteration.What's inside: LangGraph architecture explained with connector and transform examples.Pipelines from documents to triples, to graph stores, to vector indexes.Entity linking, canonicalization, deduplication, and schema evolution patterns.Graph vector conversion: embedding strategies, batching, and incremental updates.Hybrid retrieval recipes: combining SPARQL/Cypher-like graph constraints with vector similarity.Prompting patterns that leverage graph provenance and traceability.Agents that consult LangGraph for planning, grounding, and action execution.Monitoring, explainability, and provenance tooling for regulated domains.Integration examples with Neo4j, ArangoDB, and common vector DBs.Performance tuning, consistency approaches, and operational checklists.Who this book is for: Data engineers, knowledge engineers, and ML engineers building knowledge-first LLM applications.Teams seeking explainability, auditability, and updatability in AI systems.Product managers and architects planning hybrid retrieval or graph-backed assistants. This item is printed on demand. Shipping may be from multiple locations in the US or from the UK, depending on stock availability.…

Idioma: Inglés
Editorial: Independently Published, 2025
Serie: Libro 2 de 4 - Applied LLM Systems: Production Patterns for Agents, Context, and Knowledge Graphs
- Tapa blanda
- Impresión bajo demanda
Librería: CitiRetail, Stevenage, Reino UnidoCitiRetail
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EUR 24,89
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Paperback. Condición: new. Paperback. LangGraph for Knowledge-Driven LLMs shows how to combine graph-structured knowledge with large language models to produce more accurate, explainable, and maintainable AI systems. The book introduces LangGraph concepts, data models, and connectors, and walks through full ingestion pipelines that convert raw documents into triples, entities, and canonical nodes. Learn entity resolution and linking techniques that reduce ambiguity, maintain provenance, and make knowledge updates straightforward.A major focus is on converting graph structure into vector representations and building hybrid retrieval flows that combine graph queries with vector similarity search. You'll learn how to craft graph-aware context assembly and prompting strategies so LLMs can reason with structured knowledge and return traceable answers. The book also covers graph embeddings, graph neural nets, explainability patterns, and operational best practices for indexing, monitoring, and schema evolution. Real-world case studies demonstrate customer-support assistants, domain expert systems, and product catalogs that use LangGraph for domain grounding and faster iteration.What's inside: LangGraph architecture explained with connector and transform examples.Pipelines from documents to triples, to graph stores, to vector indexes.Entity linking, canonicalization, deduplication, and schema evolution patterns.Graph vector conversion: embedding strategies, batching, and incremental updates.Hybrid retrieval recipes: combining SPARQL/Cypher-like graph constraints with vector similarity.Prompting patterns that leverage graph provenance and traceability.Agents that consult LangGraph for planning, grounding, and action execution.Monitoring, explainability, and provenance tooling for regulated domains.Integration examples with Neo4j, ArangoDB, and common vector DBs.Performance tuning, consistency approaches, and operational checklists.Who this book is for: Data engineers, knowledge engineers, and ML engineers building knowledge-first LLM applications.Teams seeking explainability, auditability, and updatability in AI systems.Product managers and architects planning hybrid retrieval or graph-backed assistants. This item is printed on demand. Shipping may be from our UK warehouse or from our Australian or US warehouses, depending on stock availability.…