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Related Experiment Videos

A Generative AI-Based Technical Data Extraction Tool for IoT Application Systems.

Dezheng Kong1, Nobuo Funabiki1, Htoo Htoo Sandi Kyaw1

  • 1Department of Information and Communication Systems, Okayama University, Okayama 700-8530, Japan.

Sensors (Basel, Switzerland)
|February 27, 2026
PubMed
Summary
This summary is machine-generated.

A new generative AI tool extracts technical data from IoT device documents, improving AI setup assistance reliability. This enhances support for new devices by integrating technical specifications into Retrieval-Augmented Generation (RAG).

Keywords:
AIdata sheetinternet of thingsretrieval-augmented generationschema-based extractiontechnical informationvector database

Related Experiment Videos

Area of Science:

  • Computer Science
  • Artificial Intelligence
  • Internet of Things

Background:

  • Internet of Things (IoT) systems are crucial for smart applications but challenging for non-experts to configure.
  • Current AI setup tools struggle with new or unseen devices, leading to configuration errors.
  • Retrieval-Augmented Generation (RAG) can improve AI reliability by incorporating technical document data.

Purpose of the Study:

  • To develop a generative AI tool for extracting technical data from IoT device datasheets.
  • To enhance AI-based setup assistance for IoT devices, especially novel ones.
  • To improve the reliability and accuracy of IoT configuration tasks.

Main Methods:

  • Proposed a generative AI tool using schema-based extraction for PDF/HTML datasheets.
  • Implemented a local vector database for semantic similarity retrieval and RAG.
  • Evaluated the tool on sensor and device datasheets, comparing extracted data against ground truth.
  • Assessed end-to-end configuration question-answering (QA) reliability against a commercial baseline (ChatPDF).

Main Results:

  • The tool reliably extracts key IoT device specifications.
  • Significantly improved end-to-end configuration QA reliability compared to ChatPDF.
  • Achieved higher Recall (0.926 vs. 0.636) and Accuracy (0.807 vs. 0.595) across 960 QA pairs.

Conclusions:

  • The generative AI technical data extraction tool effectively supplements AI knowledge for IoT configurations.
  • The proposed method ensures consistent support for previously unseen IoT devices.
  • This approach enhances the practical usability of AI in complex IoT system setups.