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FabledScribe/tests/test_mcp_tool_search.py
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bvandeusenandClaude Opus 5 1361ed7200
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feat(lessons): the document shape is the stored record, and it travels (#3730)
Milestone 385 step 3 — the step where the kind either works or is cosmetic.

THE DOCUMENT, and why there is no `lesson_document()` beside `rule_document()`
in embeddings. The step expected one. The difference is where the sharp shape
LIVES. A rule keeps its trigger in a column and its title is a plain name, so
`{title} — {trigger}` has to be synthesised at embed time and exists nowhere
else. A snippet — the only sharp record in the corpus by #2485's measurement,
0.153 top-to-second against 0.010–0.023 — gets there the other way: its STORED
title is already the join and its stored body already opens with the trigger,
so the ordinary `title\nbody` join IS the sharp document. Step 1 chose the
snippet route and step 2 built it, so `lessons.lesson_document` composes what
is STORED and the generic chunker does the rest.

The consequence the step asked about: `chunk_document` is untouched, so
CHUNKER_VERSION does not move and NOTHING re-embeds. The step's "Re-embed"
section describes a change this design does not make.

THE NARRATIVE stays in the body, departing from the step's instruction to keep
it out. `rule_document` excludes `why` because long dated narrative made
sixteen dev-logs land on the centroid of "development" — but that finding
predates chunking (#280). A body over budget is now split, and every chunk is
prefixed with the title, which for a lesson carries the trigger. The story
occupies its own vectors instead of averaging itself into the trigger's, and
each of those is still anchored to when the lesson applies. A guard asserts
exactly that. Holding the story out would cost the reader the only part that
explains the insight, to buy a sharpness the chunker already provides.

GLOBAL IN THE SEARCH is the real new code: `GLOBAL_NOTE_TYPES` and
`include_global_kinds` on `semantic_search_notes`, widening the PROJECT filter
alone. Off by default, because two callers depend on that filter holding — the
near-duplicate gate compares a record only against its own project on purpose,
and a globally visible kind there would let a lesson block an unrelated note's
create on a project its author never touched. It composes with `note_type`
rather than overriding it, so narrowing to snippets does not quietly acquire
lessons, and it changes nothing about the ACL: `notes_visibility_clause` still
gates every row.

Wired into the explicit MCP search only — the operator asked, and there is no
budget to spend. The unasked-for injection arms are step 5's subject (#3732)
and the legibility of a lesson appearing on a foreign project is step 7's
(#3734), so neither is turned on here.

Co-Authored-By: Claude Opus 5 <noreply@anthropic.com>
Claude-Session: https://claude.ai/code/session_01821k5B3Ysecp9fNYs92Kuy
2026-09-18 16:13:15 -04:00

162 lines
6.2 KiB
Python

"""search tool — proves the tool pattern (context + service call + dict shape).
Service call is mocked; no DB needed."""
from unittest.mock import AsyncMock, patch
import pytest
from scribe.mcp._context import _user_id_ctx
from scribe.mcp.tools.search import search
from tests.helpers import fake_note
@pytest.fixture(autouse=True)
def _reset_user_ctx():
"""Each test starts with no MCP context. Tests set it explicitly."""
token = _user_id_ctx.set(None)
yield
_user_id_ctx.reset(token)
@pytest.mark.asyncio
async def test_fable_search_raises_without_context():
with pytest.raises(RuntimeError, match="no MCP user context"):
await search(q="anything")
@pytest.mark.asyncio
async def test_fable_search_returns_repackaged_results():
_user_id_ctx.set(7)
fake = fake_note(id=1, title="kafka rebalance", is_task=False, body="HPA details", tags=["ops"])
with patch(
"scribe.mcp.tools.search.semantic_search_notes",
AsyncMock(return_value=[(0.93, fake)]),
):
out = await search(q="kafka")
assert out["total"] == 1
assert len(out["results"]) == 1
r = out["results"][0]
assert r["id"] == 1
assert r["title"] == "kafka rebalance"
assert r["body"] == "HPA details"
assert r["is_task"] is False
assert r["tags"] == ["ops"]
assert r["similarity"] == pytest.approx(0.93)
@pytest.mark.asyncio
async def test_fable_search_body_is_truncated_to_240_chars():
_user_id_ctx.set(7)
long_body = "x" * 500
fake = fake_note(id=1, title="t", body=long_body)
with patch(
"scribe.mcp.tools.search.semantic_search_notes",
AsyncMock(return_value=[(0.5, fake)]),
):
out = await search(q="x")
assert len(out["results"][0]["body"]) == 240
@pytest.mark.asyncio
async def test_fable_search_content_type_filters_at_service_layer():
"""content_type maps to the is_task kwarg passed to the service."""
_user_id_ctx.set(7)
mock_search = AsyncMock(return_value=[])
with patch("scribe.mcp.tools.search.semantic_search_notes", mock_search):
await search(q="x", content_type="task")
assert mock_search.call_args.kwargs["is_task"] is True
mock_search.reset_mock()
await search(q="x", content_type="note")
assert mock_search.call_args.kwargs["is_task"] is False
mock_search.reset_mock()
await search(q="x", content_type="all")
assert mock_search.call_args.kwargs["is_task"] is None
@pytest.mark.asyncio
async def test_an_explicit_search_reaches_a_lesson_from_any_project():
"""The wiring half of milestone 385 step 3.
A lesson records an insight that transfers, so a project filter that hid it
would hide it precisely on the project that has not learned it yet. This is
the EXPLICIT search — the operator asked — so it opts in; the unasked-for
injection arms decide their own budget separately (step 5).
Asserted on the kwarg rather than on results, because what can regress here
is the wiring: the service grew the capability and a call site that never
passes it leaves the whole kind unreachable, with every unit test still
green.
"""
_user_id_ctx.set(7)
mock_search = AsyncMock(return_value=[])
with patch("scribe.mcp.tools.search.semantic_search_notes", mock_search):
await search(q="x", project_id=3)
assert mock_search.call_args.kwargs["include_global_kinds"] is True
@pytest.mark.asyncio
async def test_fable_search_limit_is_clamped():
_user_id_ctx.set(7)
mock_search = AsyncMock(return_value=[])
with patch("scribe.mcp.tools.search.semantic_search_notes", mock_search):
await search(q="x", limit=999)
assert mock_search.call_args.kwargs["limit"] == 50
mock_search.reset_mock()
await search(q="x", limit=0)
assert mock_search.call_args.kwargs["limit"] == 1
@pytest.mark.asyncio
@pytest.mark.parametrize("project_id, scope", [
(5, {"project_id": 5}),
# No project: the explicit question is asked of the whole rulebook.
(0, {"everywhere": True}),
])
async def test_rule_search_scopes_to_the_project_it_is_given(project_id, scope):
"""With a project: global rules plus that project's (milestone 414).
Without one: every rule, because an unscoped "is there a rule about this"
is asking the whole rulebook — unlike a hook, which speaks unasked."""
_user_id_ctx.set(7)
found = AsyncMock(return_value=[])
with patch("scribe.mcp.tools.search.semantic_search_rules", found):
await search(q="release tagging", content_type="rule", project_id=project_id)
kwargs = found.await_args.kwargs
assert {k: kwargs[k] for k in scope} == scope
assert set(kwargs) & {"project_id", "everywhere"} == set(scope)
def test_a_milestone_is_embedded_by_what_it_is_for_then_its_plan():
from scribe.services.embeddings import milestone_document
assert milestone_document("M3", "metadata providers", "## Goal\nx") == (
"M3 — metadata providers", "metadata providers\n\n## Goal\nx")
# A roadmap milestone written with no description is still findable by its plan.
assert milestone_document("M3", None, "the plan") == ("M3", "the plan")
assert milestone_document(None, None, None) == (None, None)
@pytest.mark.asyncio
async def test_milestone_search_is_its_own_shape_and_scopes_to_the_project():
"""milestone 415: 'is there already a plan for this?' has a tool."""
from unittest.mock import MagicMock
_user_id_ctx.set(7)
ms = MagicMock(id=339, title="M3 — Metadata", description="works, editions",
status="active", project_id=30)
found = AsyncMock(return_value=[(0.81, ms)])
summary = AsyncMock(return_value=[{"id": 339, "total": 0, "completed": 0}])
with patch("scribe.mcp.tools.search.semantic_search_milestones", found), \
patch("scribe.services.milestones.get_project_milestone_summary", summary):
out = await search(q="book metadata", content_type="milestone", project_id=30)
assert found.await_args.kwargs["project_id"] == 30
assert out["results"] == [{
"id": 339, "title": "M3 — Metadata", "description": "works, editions",
"status": "active", "project_id": 30, "total": 0, "completed": 0,
"similarity": 0.81,
}]