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Context Engineering: Engineering Information for AI Systems

  • Author: J.C. Ködel
  • Format: PDF
  • Length: 371 pages
  • Source File: /library/Context Engineering/source-file.pdf
  • Top-Level Sections: 36
  • Note: Sections 1–2 are orientation/front matter; the main technical argument begins in Section 3.

Contents

  1. About the author
  2. Map of the trilogy
  3. How LLMs use context
  4. Tokens and context windows
  5. Memory and limits
  6. The context cycle
  7. Context rot: why large contexts degrade quality
  8. Token economics: the real cost of bad context
  9. Parametric calculation: cost of irrelevant context
  10. Prompt engineering vs context engineering: why the prompt became a second-order variable
  11. Specifications
  12. Living documentation
  13. ADRs
  14. Conventions
  15. Persistent context files
  16. Project organization
  17. Modularization
  18. Context for brownfield projects
  19. Context layers
  20. Context packing
  21. Context recovery
  22. Context validation
  23. Context compression
  24. Context isolation
  25. RAG vs direct context
  26. MCP and tools as dynamic context
  27. Context security and trust
  28. Where to start
  29. Development loops with AI
  30. Measuring context: how to evaluate whether your context improves results
  31. Principles applied: chat, IDE, terminal and CI
  32. Teams: context as a repository asset
  33. Preparing a project (from scratch and from a legacy system)
  34. A complete AI-guided implementation
  35. Post-mortem: where the context failed and how it was recovered
  36. References

Source Text Index

Extracted from source-file.pdf by tools/split_book.py. Read these instead of the PDF.

Folder Section PDF pages Pages without extractable text
Front-Matter Front matter 1–11 1
Chapter-01-About-the-author About the author 12–13 none
Chapter-02-Map-of-the-trilogy Map of the trilogy 14–15 none
Chapter-03-How-LLMs-use-context How LLMs use context 16–22 none
Chapter-04-Tokens-and-context-windows Tokens and context windows 23–30 none
Chapter-05-Memory-and-limits Memory and limits 31–36 none
Chapter-06-The-context-cycle The context cycle 37–42 none
Chapter-07-Context-rot-why-large-contexts-degrade-quality Context rot: why large contexts degrade quality 43–48 none
Chapter-08-Token-economics-the-real-cost-of-bad-context Token economics: the real cost of bad context 49–52 none
Chapter-09-Parametric-calculation-cost-of-irrelevant-context Parametric calculation: cost of irrelevant context 53–57 none
Chapter-10-Prompt-engineering-vs-context-engineering-why-the-prompt Prompt engineering vs context engineering: why the prompt became a second-order variable 58–64 none
Chapter-11-Specifications Specifications 65–73 none
Chapter-12-Living-documentation Living documentation 74–81 none
Chapter-13-ADRs ADRs 82–89 none
Chapter-14-Conventions Conventions 90–98 none
Chapter-15-Persistent-context-files Persistent context files 99–108 none
Chapter-16-Project-organization Project organization 109–117 none
Chapter-17-Modularization Modularization 118–129 none
Chapter-18-Context-for-brownfield-projects Context for brownfield projects 130–139 none
Chapter-19-Context-layers Context layers 140–150 144
Chapter-20-Context-packing Context packing 151–162 none
Chapter-21-Context-recovery Context recovery 163–176 none
Chapter-22-Context-validation Context validation 177–189 none
Chapter-23-Context-compression Context compression 190–203 none
Chapter-24-Context-isolation Context isolation 204–216 none
Chapter-25-RAG-vs-direct-context RAG vs direct context 217–232 none
Chapter-26-MCP-and-tools-as-dynamic-context MCP and tools as dynamic context 233–245 none
Chapter-27-Context-security-and-trust Context security and trust 246–254 none
Chapter-28-Where-to-start Where to start 255–256 none
Chapter-29-Development-loops-with-AI Development loops with AI 257–269 none
Chapter-30-Measuring-context-how-to-evaluate-whether-your-context Measuring context: how to evaluate whether your context improves results 270–284 none
Chapter-31-Principles-applied-chat-IDE-terminal-and-CI Principles applied: chat, IDE, terminal and CI 285–305 none
Chapter-32-Teams-context-as-a-repository-asset Teams: context as a repository asset 306–316 none
Chapter-33-Preparing-a-project-from-scratch-and-from-a-legacy-system Preparing a project (from scratch and from a legacy system) 317–333 none
Chapter-34-A-complete-AI-guided-implementation A complete AI-guided implementation 334–353 none
Chapter-35-Post-mortem-where-the-context-failed-and-how-it-was Post-mortem: where the context failed and how it was recovered 354–366 none
Chapter-36-References References 367–371 none

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