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Query Digital Twins with LLMs · LearnSpace
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Query Digital Twins with LLMs

Курс от Coursera
Средний≈ 3.1 чАнглийский
О курсеНавыкиПрограммаПреподаватели

О курсе

This Short Course was created to help Machine Learning and Artificial Intelligence professionals accomplish end-to-end integration of LLMs with digital twin environments using Azure Digital Twins as the reference implementation and a retrieval-augmented generation (RAG) pattern. . By completing this course, you'll be able to convert plain-language prompts into ADTQL statements, wire up a live-data RAG pipeline, and confidently validate outputs against schema and permission rules on the job. By the end of this course, you will be able to: Apply the provided tool-calling prompt to convert a natural-language query into an Azure Digital Twins Query Language statement Configure a retrieval-augmented generation pipeline that enriches LLM responses with live twin state and metadata citations Evaluate the generated twin responses for schema compliance and permission adherence using the guardrail checklist This course is unique because it goes deep on one high-leverage integration pattern — Azure Digital Twins plus LLM tool-calling plus RAG — rather than surveying the full digital twin landscape, giving you a repeatable workflow that demonstrates how LLMs can query and retrieve information from digital twin environments using tool-calling and RAG techniques. To be successful in this course, you should have a background in Python programming, REST APIs, and foundational knowledge of LLMs and cloud platforms at a CB2 intermediate level.

Навыки, которые вы освоите

Restful APIPython ProgrammingLLM ApplicationResponsible AIData AccessData ValidationPrompt PatternsRetrieval-Augmented GenerationMicrosoft AzureAI SecurityLarge Language ModelingAuthorization (Computing)Azure DevOpsModel EvaluationTool CallingReal Time DataVerification And ValidationCloud ComputingPrompt EngineeringLangChain

Программа курса

3 модулей · 21 учебных материалов

01Convert Natural-Language Queries to Azure Digital Twins Query Language8 материалов
Getting Ready to Query Digital Twins with LLMsDIALOGUEWhen Plain Language Meets Operational DataВидеоTool-Calling Architecture: How LLMs Generate ADTQL StatementsЧтениеFrom Prompt Intent to Query Structure: A Guided DiscoveryDIALOGUE

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Преподаватель курса

Query Digital Twins with LLMs
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Обучение откроется на Coursera
в новой вкладке

Обучение на Coursera

≈ 3.1 ч

3 модулей

Язык: Английский

Часть программы вашего университета
Executing a Tool-Calling Prompt Against an Azure Digital Twins EndpointВидео
Designing the Tool-Calling Prompt: Trade-offs and Decision PointsDIALOGUE
Capture and Validate an ADTQL Statement from an HVAC Natural-Language QueryЗадание
Knowledge Check: Convert Natural-Language Queries to ADTQLЗадание
02Configure a RAG Pipeline Enriching LLM Responses with Live Twin State and Metadata Citations6 материалов
Why RAG Changes What LLMs Can Do with Live DataDIALOGUERAG Pipeline Architecture for Azure Digital Twins: Components, Data Flow, and CitationsЧтениеWiring a LangChain RAG Module to a Live Azure Digital Twins Graph: Step-by-StepЧтениеEvaluating Retrieval Quality: Deciding When Citations Are TrustworthyDIALOGUEMap Twin IDs to Metadata Tables with Cited Property Values and TimestampsЗаданиеKnowledge Check: Configure a RAG Pipeline for Azure Digital TwinsЗадание
03Evaluate Generated Twin Responses for Schema Compliance and Permission Adherence7 материалов
When an LLM Response Fails Compliance: A Production IncidentВидеоSchema Compliance and Permission Guardrails: The Evaluation FrameworkЧтениеApplying the Guardrail Checklist: Step-by-Step Schema and Permission EvaluationЧтениеDefending Your Guardrail Report: A Compliance Review ConversationDIALOGUEComplete a Guardrail Report Logging Schema Compliance and Permission Pass/Fail ResultsЗаданиеKnowledge Check: Evaluate Twin Responses for Schema Compliance and Permission AdherenceЗаданиеCourse Assessment: Query Digital Twins with LLMsЗадание