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theme, title, info, author, transition, mdc, lineNumbers, monaco, aspectRatio, canvasWidth, layout, class
| theme | title | info | author | transition | mdc | lineNumbers | monaco | aspectRatio | canvasWidth | layout | class |
|---|---|---|---|---|---|---|---|---|---|---|---|
| seriph | Lesson 13 — When Should the Agent Decide What to Retrieve? | English video course for AI Agents in Depth | Bojie Li | slide-left | true | false | false | 16/9 | 980 | cover | cover |
Build · Chapter 3 · Memory and Knowledge
When Should the Agent Decide What to Retrieve?
Agentic RAG, contextual retrieval, and two-tier memory
Lesson 13 of 42 · 19 minutes · Agentic RAG; Contextual Retrieval; Deep Knowledge Extraction
Why this problem matters
Search decision
The Agent decides whether retrieval is needed.
Query reformulation
New evidence changes the next search.
Stopping
The Agent judges whether evidence is sufficient.
Three ideas to keep in view
Agentic RAG
Retrieval becomes a tool inside ReAct
Contextual retrieval
Restore document context before indexing each chunk
Two-tier memory
Resident overview + retrieved detail
The book's visual model
Agentic RAG architecture
Retrieve once vs. Agentic retrieval
Retrieve once
- Fixed query
- Fixed top-k
- One chance to find evidence
Agentic retrieval
- Iterative queries
- Evidence-aware decisions
- Explicit stopping
Autonomy adds flexibility and a new metacognition failure mode.
Retrieval becomes an action
while not evidence_sufficient(context):
query = agent.formulate_search(context)
passages = search(query)
context.add(passages)
return agent.answer_with_citations(context)
Test the claim
3-82 min
Compare fixed and Agentic RAG offline
Observe: Query count, evidence coverage, answer quality, and cost
3-102 min
Compare plain and contextual chunks
Observe: Failures repaired by adding document-level context
3-112 min
Compare two-tier user memory
Observe: Resident overview plus on-demand conversation detail
Demo budget: 6 minutes · one contiguous terminal block
class: course-terminal
Live demo
Switching to the terminal
$ uv run python chapter3/agentic-rag/compare_offline.py
$ uv run python chapter3/contextual-retrieval/compare_retrieval.py --per-query
$ uv run python chapter3/contextual-retrieval-for-user-memory/contextual_compare.py
Run the command(s), narrate decisions, and point to the observation—not just the output.
What the evidence supports
Finding 1
Iterative retrieval helps when later queries depend on earlier evidence.
Finding 2
Contextual prefixes repair semantic loss introduced by chunking.
Finding 3
Overview and detail require different storage and access strategies.
Boundary → design rule
An Agent cannot retrieve what it does not realize it is missing.
Use Agentic retrieval for genuinely multi-step evidence gathering; keep simple questions on a simple path.
Continue the experiment
Experiment 3-9: Agentic RAG for memory
chapter3/agentic-rag-for-user-memory/
Experiment 3-12: structured knowledge extraction
chapter3/structured-knowledge-extraction/
Contextual retrieval diagram
book-en/images/fig3-14.svg
Knowledge extraction pipeline
book-en/images/fig3-15.svg
layout: center class: text-center
Pause and apply
Your turn
What independent signal can tell an Agent that its evidence is insufficient?
layout: center class: text-center
Chapter 3 complete · Next · Lesson 14
Turn knowledge into actions through carefully designed tools.
→