THE BOOK

AI for Embedded Engineers and Makers

The complete authored chapters, practical labs and supporting references.

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  1. 1. AI at the Embedded Workbench
  2. 2. How LLMs Work: The Useful Mental Model
  3. 3. Give AI an Engineering Brief
  4. 4. Set Up Your AI Workbench
  5. 5. Git Without the Mystery
  6. 6. Put Your Project on GitHub
  7. 7. Experiment, Review, and Recover
  8. 8. Markdown as an Engineering Notebook
  9. 9. Build a Useful Project Knowledge Base
  10. 10. Write AGENTS.md for an Embedded Project
  11. 11. Turn a Repeated Procedure into a Skill
  12. Read Datasheets and Plan Interfaces with AI
  13. Build Firmware in Small, Verifiable Steps
  14. Debug with Evidence
  15. Test, Review, and Measure
  16. 16. Build Your Reusable Engineering Toolkit
  17. 17. Capstone: Ship a Documented Sensor Monitor
  18. 18. Maintain the Workflow and Choose What Comes Next

Appendices, glossary and front matter