Grounded chat turns now run the agent loop (app/rag/agent.py) instead
of a bare chat_stream: while the per-turn budgets last
(BOR_AGENT_LIST_CALLS / BOR_AGENT_READ_CALLS, default 1 each) the model
gets list_documents (the indexed catalog, /api/docs order) and
read_document (full text, never truncated — A7-revised contract); once
both budgets are spent the tools key is dropped from the request and
the model must answer. Rejected calls (unknown tool, unknown/missing
path, document already in context, spent budget) consume no budget.
Budgets 0/0 make exactly one tools=None request — byte-identical to
the pre-phase path (budgets-as-kill-switch). Deflected turns keep the
direct chat_stream (A8 unchanged; the LOW prompt never carries the
<tools> section).
SSE contract gains {"type":"tool","name":...,"argument":
"source/path"|null} frames ahead of the answer deltas (PLAN §4
extension, owner permission 2026-08-26); done.sources, query_log.sources
and the per-turn log line (gains tool_calls=N) report the retrieval
docs + read docs, deduped. The UI shows a "calling tool"
button/label state and one visible .tool-call line per call above the
answer; the lines persist with the chat record and re-render on
reload. chat_stream passes tools through and accumulates streaming
tool_calls deltas into ToolCallPiece (tools=None stays byte-identical).
E2E: deterministic mock tool flow ("use your tools" + <tools> marker:
list -> read first catalog line -> quoted answer) plus the story suite
(marker flow, reload re-render, plain/deflected no-tool regressions).
Docs: .env.example + README (the two tools, the budgets, the SSE tool
frame, the "calling tool" UI state).
probe: turbo tool_calls=supported 2026-08-26 (uv run python -m
scripts.llm_probe --tools — non-streaming + streaming
finish_reason=tool_calls, indexed delta.tool_calls partials)
520 lines
19 KiB
Python
520 lines
19 KiB
Python
"""Unit: the grounded-turn agent loop (phase 37, ``app.rag.agent``).
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A scripted fake LLM (canned stream sequences) + monkeypatched
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``list_catalog`` / ``find_document`` — no database, no network. Covers
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the loop mechanics: the list → read → answer happy path (event order,
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holder state, the ``tools=None`` request after the budgets are spent,
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the assistant/tool message history), the 0/0 single-call path, budget
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exhaustion, dedupe, unknown tool / missing args / unknown path, the
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round cap, and the ``<tools>`` prompt section (HIGH only).
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"""
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from __future__ import annotations
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import asyncio
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import json
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import uuid
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from collections.abc import AsyncIterator
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from copy import deepcopy
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from typing import Any, cast
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import pytest
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from sqlalchemy.orm import Session
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from app.config import Settings
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from app.models import Document
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from app.rag import agent
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from app.rag.agent import (
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AGENT_TOOLS,
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AgentHolder,
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run_agent,
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)
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from app.rag.llm import LLMClient, StreamPiece, ToolCallPiece
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from app.rag.prompts import TOOLS_SECTION, _base, build_deflect_prompt, build_high_prompt
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def _settings(**kwargs: Any) -> Settings:
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kwargs.setdefault("_env_file", None)
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return Settings(**kwargs) # pyright: ignore[reportCallIssue]
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def _doc(source: str, path: str, title: str = "Title", content: str = "CONTENT") -> Document:
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return Document(
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id=uuid.uuid4(),
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source=source,
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path=path,
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full_path=f"/tmp/{path}",
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title=title,
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content=content,
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content_hash="0" * 64,
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)
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class ScriptedLLM:
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"""Canned stream sequences; records every ``chat_stream`` request so
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the tests can assert on the messages and the ``tools`` passthrough."""
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def __init__(self, *streams: list[StreamPiece | ToolCallPiece]) -> None:
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self.streams: list[list[StreamPiece | ToolCallPiece]] = list(streams)
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self.requests: list[tuple[list[dict[str, Any]], list[dict[str, Any]] | None]] = []
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async def chat_stream(
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self,
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messages: list[dict[str, str]],
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tools: list[dict[str, Any]] | None = None,
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) -> AsyncIterator[StreamPiece | ToolCallPiece]:
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self.requests.append((deepcopy(messages), tools))
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if not self.streams:
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raise AssertionError("ScriptedLLM ran out of canned streams")
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for piece in self.streams.pop(0):
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yield piece
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async def _run(
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llm: ScriptedLLM,
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holder: AgentHolder,
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settings: Settings,
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seed_docs: list[Document] | None = None,
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) -> list[StreamPiece | ToolCallPiece]:
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out: list[StreamPiece | ToolCallPiece] = []
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async for piece in run_agent(
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cast("LLMClient", llm),
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cast("Session", None),
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system_prompt="SYSTEM_PROMPT",
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user_message="QUESTION",
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seed_docs=seed_docs or [],
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settings=settings,
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holder=holder,
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):
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out.append(piece)
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return out
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# ---------- AGENT_TOOLS shape ----------
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def test_agent_tools_names_and_parameters() -> None:
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by_name = {t["function"]["name"]: t for t in AGENT_TOOLS}
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assert set(by_name) == {"list_documents", "read_document"}
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assert all(t["type"] == "function" for t in AGENT_TOOLS)
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list_params = by_name["list_documents"]["function"]["parameters"]
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assert list_params["type"] == "object"
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assert list_params["properties"] == {} # no parameters
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read_params = by_name["read_document"]["function"]["parameters"]
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assert read_params["required"] == ["source", "path"]
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assert set(read_params["properties"]) == {"source", "path"}
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# ---------- happy path: list → read → answer ----------
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def test_list_then_read_then_answer(
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monkeypatch: pytest.MonkeyPatch,
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) -> None:
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catalog = [
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("Deployments", "backups.md", "Backup Strategy"),
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("Homelab", "aws-route53.md", "AWS Route53 Records"),
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]
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monkeypatch.setattr(agent, "list_catalog", lambda db: catalog)
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target = _doc("Homelab", "aws-route53.md", "AWS Route53 Records", "R53-CONTENT")
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monkeypatch.setattr(agent, "find_document", lambda db, source, path: target)
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seed = [_doc("Homelab", "kubernetes.md", "Kubernetes", "K8S-CONTENT")]
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holder = AgentHolder()
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llm = ScriptedLLM(
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[ToolCallPiece(id="call_1", name="list_documents", arguments={})],
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[
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ToolCallPiece(
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id="call_2",
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name="read_document",
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arguments={"source": "Homelab", "path": "aws-route53.md"},
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)
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],
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[StreamPiece("thinking", "hmm "), StreamPiece("content", "Done! ")],
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)
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pieces = asyncio.run(_run(llm, holder, _settings(), seed_docs=seed))
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# Event order: tool pieces before the answer content/thinking.
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assert [type(p) for p in pieces] == [
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ToolCallPiece,
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ToolCallPiece,
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StreamPiece,
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StreamPiece,
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]
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assert pieces[0] == ToolCallPiece(id="call_1", name="list_documents", arguments={})
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assert isinstance(pieces[1], ToolCallPiece)
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assert pieces[1].name == "read_document"
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assert pieces[3] == StreamPiece("content", "Done! ")
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# The read document is recorded for done.sources / query_log (task 04).
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assert holder.read_docs == [target]
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assert holder.tool_calls == 2
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# Default budgets (1/1): tools offered while any budget remains…
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assert llm.requests[0][1] == AGENT_TOOLS
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assert llm.requests[1][1] == AGENT_TOOLS
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# …and dropped (tools=None) once both are spent.
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assert llm.requests[2][1] is None
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assert len(llm.requests) == 3
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# The follow-up request carries the assistant tool-call + tool result.
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msgs = llm.requests[1][0]
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assert msgs[0] == {"role": "system", "content": "SYSTEM_PROMPT"}
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assert msgs[1] == {"role": "user", "content": "QUESTION"}
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assert msgs[2] == {
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"role": "assistant",
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"content": None,
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"tool_calls": [
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{
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"id": "call_1",
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"type": "function",
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"function": {"name": "list_documents", "arguments": "{}"},
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}
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],
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}
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assert msgs[3] == {
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"role": "tool",
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"tool_call_id": "call_1",
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"content": (
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"2 documents:\n"
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"Deployments/backups.md — Backup Strategy\n"
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"Homelab/aws-route53.md — AWS Route53 Records"
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),
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}
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# The second follow-up request carries the read call + the FULL text.
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msgs = llm.requests[2][0]
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assert msgs[4]["role"] == "assistant"
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assert msgs[4]["tool_calls"][0]["id"] == "call_2"
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assert json.loads(msgs[4]["tool_calls"][0]["function"]["arguments"]) == {
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"source": "Homelab",
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"path": "aws-route53.md",
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}
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assert msgs[5] == {
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"role": "tool",
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"tool_call_id": "call_2",
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"content": "Document Homelab/aws-route53.md:\nR53-CONTENT", # full text, no cap
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}
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def test_empty_catalog_listing_says_zero_documents(monkeypatch: pytest.MonkeyPatch) -> None:
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monkeypatch.setattr(agent, "list_catalog", lambda db: [])
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holder = AgentHolder()
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llm = ScriptedLLM(
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[ToolCallPiece(id="call_1", name="list_documents", arguments={})],
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[StreamPiece("content", "ans")],
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)
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asyncio.run(_run(llm, holder, _settings()))
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assert llm.requests[1][0][3]["content"] == "0 documents:\n"
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assert holder.tool_calls == 1
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def test_content_and_tool_call_in_one_stream_keeps_both(
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monkeypatch: pytest.MonkeyPatch,
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) -> None:
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"""Rare stream with content AND a tool call: the content stays (it was
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already emitted) and the tool still runs."""
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monkeypatch.setattr(agent, "list_catalog", lambda db: [])
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holder = AgentHolder()
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llm = ScriptedLLM(
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[
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StreamPiece("content", "Let me check "),
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ToolCallPiece(id="call_1", name="list_documents", arguments={}),
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],
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[StreamPiece("content", "the answer")],
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)
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pieces = asyncio.run(_run(llm, holder, _settings()))
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assert [type(p) for p in pieces] == [StreamPiece, ToolCallPiece, StreamPiece]
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assert holder.tool_calls == 1 # the tool ran despite the content
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assert llm.requests[1][0][3]["content"] == "0 documents:\n"
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# ---------- budgets ----------
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def test_zero_budgets_is_one_request_without_tools() -> None:
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"""BOR_AGENT_LIST_CALLS=0 BOR_AGENT_READ_CALLS=0 → byte-identical
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single-call path: exactly one request, tools=None, no history growth."""
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holder = AgentHolder()
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llm = ScriptedLLM([StreamPiece("thinking", "t "), StreamPiece("content", "direct answer")])
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pieces = asyncio.run(
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_run(llm, holder, _settings(agent_list_calls=0, agent_read_calls=0))
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)
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assert [type(p) for p in pieces] == [StreamPiece, StreamPiece]
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assert len(llm.requests) == 1
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assert llm.requests[0][1] is None
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assert llm.requests[0][0] == [
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{"role": "system", "content": "SYSTEM_PROMPT"},
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{"role": "user", "content": "QUESTION"},
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]
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assert holder.read_docs == [] and holder.tool_calls == 0
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def test_read_budget_exhausted_refuses_and_appends_nothing(
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monkeypatch: pytest.MonkeyPatch,
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) -> None:
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a = _doc("S", "a.md", "A", "A-CONTENT")
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monkeypatch.setattr(
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agent, "find_document", lambda db, source, path: a if path == "a.md" else None
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)
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holder = AgentHolder()
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llm = ScriptedLLM(
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[
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ToolCallPiece(
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id="call_1", name="read_document", arguments={"source": "S", "path": "a.md"}
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)
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],
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[
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ToolCallPiece(
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id="call_2", name="read_document", arguments={"source": "S", "path": "b.md"}
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)
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],
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[StreamPiece("content", "ans")],
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)
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asyncio.run(_run(llm, holder, _settings(agent_list_calls=1, agent_read_calls=1)))
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assert holder.read_docs == [a] # the refused read appended nothing
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assert holder.tool_calls == 1 # …and consumed no budget
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refusal = llm.requests[2][0][5]
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assert refusal == {
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"role": "tool",
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"tool_call_id": "call_2",
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"content": agent.READ_EXHAUSTED,
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}
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# The list budget is still open, so tools stay offered after the refusal.
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assert llm.requests[2][1] == AGENT_TOOLS
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def test_list_budget_exhausted_refuses_with_its_own_message(
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monkeypatch: pytest.MonkeyPatch,
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) -> None:
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monkeypatch.setattr(agent, "list_catalog", lambda db: [])
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holder = AgentHolder()
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llm = ScriptedLLM(
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[ToolCallPiece(id="call_1", name="list_documents", arguments={})],
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[ToolCallPiece(id="call_2", name="list_documents", arguments={})],
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[StreamPiece("content", "ans")],
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)
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asyncio.run(_run(llm, holder, _settings(agent_list_calls=1, agent_read_calls=1)))
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assert holder.tool_calls == 1
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assert llm.requests[2][0][5]["content"] == agent.LIST_EXHAUSTED
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# The read budget is still open, so tools stay offered after the refusal.
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assert llm.requests[2][1] == AGENT_TOOLS
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# ---------- rejections (no budget consumed) ----------
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def test_reading_a_seed_doc_is_already_in_context(
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monkeypatch: pytest.MonkeyPatch,
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) -> None:
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seed = [_doc("Homelab", "kubernetes.md", "Kubernetes", "K8S-CONTENT")]
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def _boom(*_a: Any, **_k: Any) -> None:
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raise AssertionError("find_document must not be called for a seeded doc")
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monkeypatch.setattr(agent, "list_catalog", lambda db: [])
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monkeypatch.setattr(agent, "find_document", _boom)
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holder = AgentHolder()
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llm = ScriptedLLM(
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[
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ToolCallPiece(
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id="call_1",
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name="read_document",
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arguments={"source": "Homelab", "path": "kubernetes.md"},
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)
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],
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[StreamPiece("content", "ans")],
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)
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asyncio.run(_run(llm, holder, _settings(), seed_docs=seed))
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assert holder.read_docs == [] and holder.tool_calls == 0
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assert llm.requests[1][0][3]["content"] == agent.ALREADY_IN_CONTEXT
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# No budget consumed → tools are still offered on the next request.
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assert llm.requests[1][1] == AGENT_TOOLS
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def test_reading_an_already_read_doc_is_deduped(
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monkeypatch: pytest.MonkeyPatch,
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) -> None:
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doc = _doc("S", "a.md", "A", "A-CONTENT")
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monkeypatch.setattr(agent, "find_document", lambda db, source, path: doc)
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holder = AgentHolder()
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llm = ScriptedLLM(
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[
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ToolCallPiece(
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id="call_1", name="read_document", arguments={"source": "S", "path": "a.md"}
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)
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],
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[
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ToolCallPiece(
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id="call_2", name="read_document", arguments={"source": "S", "path": "a.md"}
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)
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],
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[StreamPiece("content", "ans")],
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)
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asyncio.run(_run(llm, holder, _settings(agent_list_calls=1, agent_read_calls=1)))
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assert holder.read_docs == [doc] # appended exactly once
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assert holder.tool_calls == 1
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assert llm.requests[2][0][5]["content"] == agent.ALREADY_IN_CONTEXT
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# The read budget is intact after the deduped refusal…
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assert llm.requests[2][1] == AGENT_TOOLS
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def test_unknown_path_refused_without_budget(
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monkeypatch: pytest.MonkeyPatch,
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) -> None:
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monkeypatch.setattr(agent, "find_document", lambda db, source, path: None)
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holder = AgentHolder()
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llm = ScriptedLLM(
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[
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ToolCallPiece(
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id="call_1",
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name="read_document",
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arguments={"source": "S", "path": "ghost.md"},
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)
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],
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[StreamPiece("content", "ans")],
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)
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asyncio.run(_run(llm, holder, _settings()))
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assert holder.read_docs == [] and holder.tool_calls == 0
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assert (
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llm.requests[1][0][3]["content"]
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== "No document at S/ghost.md — check the list_documents output."
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)
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assert llm.requests[1][1] == AGENT_TOOLS # budget intact
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|
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def test_unknown_tool_name_refused(
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monkeypatch: pytest.MonkeyPatch,
|
|
) -> None:
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monkeypatch.setattr(agent, "list_catalog", lambda db: [])
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|
holder = AgentHolder()
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|
llm = ScriptedLLM(
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[ToolCallPiece(id="call_1", name="delete_universe", arguments={"x": 1})],
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[StreamPiece("content", "ans")],
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)
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asyncio.run(_run(llm, holder, _settings()))
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assert holder.read_docs == [] and holder.tool_calls == 0
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assert llm.requests[1][0][3]["content"] == agent.UNKNOWN_TOOL
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assert llm.requests[1][1] == AGENT_TOOLS # nothing was consumed
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|
|
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|
@pytest.mark.parametrize(
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|
("arguments", "label"),
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[
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({}, "no arguments"),
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({"source": "S"}, "path missing"),
|
|
({"path": "p.md"}, "source missing"),
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({"source": "", "path": "p.md"}, "empty source"),
|
|
({"source": "S", "path": " "}, "blank path"),
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|
({"source": 7, "path": "p.md"}, "non-string source"),
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|
],
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|
)
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|
def test_read_document_missing_arguments_refused(
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|
monkeypatch: pytest.MonkeyPatch, arguments: dict[str, Any], label: str
|
|
) -> None:
|
|
def _boom(*_a: Any, **_k: Any) -> None:
|
|
raise AssertionError(f"find_document must not be called ({label})")
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|
|
|
monkeypatch.setattr(agent, "list_catalog", lambda db: [])
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|
monkeypatch.setattr(agent, "find_document", _boom)
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|
holder = AgentHolder()
|
|
llm = ScriptedLLM(
|
|
[ToolCallPiece(id="call_1", name="read_document", arguments=arguments)],
|
|
[StreamPiece("content", "ans")],
|
|
)
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|
asyncio.run(_run(llm, holder, _settings()))
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|
assert holder.read_docs == [] and holder.tool_calls == 0
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|
assert llm.requests[1][0][3]["content"] == agent.MISSING_READ_ARGS
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|
assert llm.requests[1][1] == AGENT_TOOLS
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|
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|
# ---------- round cap (pathological stream) ----------
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def test_round_cap_forces_a_final_no_tools_answer(
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monkeypatch: pytest.MonkeyPatch,
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) -> None:
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"""A model that keeps calling a budget-exhausted tool must be forced
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to answer at ``max_rounds = 2 + list + read`` (= 4 for 1/1)."""
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monkeypatch.setattr(agent, "list_catalog", lambda db: [])
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holder = AgentHolder()
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llm = ScriptedLLM(
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[ToolCallPiece(id="call_1", name="list_documents", arguments={})],
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[ToolCallPiece(id="call_2", name="list_documents", arguments={})],
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[ToolCallPiece(id="call_3", name="list_documents", arguments={})],
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[ToolCallPiece(id="call_4", name="list_documents", arguments={})],
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[StreamPiece("content", "forced answer")],
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)
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pieces = asyncio.run(_run(llm, holder, _settings(agent_list_calls=1, agent_read_calls=1)))
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assert [type(p) for p in pieces] == [
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ToolCallPiece,
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ToolCallPiece,
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ToolCallPiece,
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ToolCallPiece,
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StreamPiece,
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]
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assert len(llm.requests) == 5
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# The forced final request carries no tools, whatever is left.
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assert llm.requests[4][1] is None
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# Only the first call consumed budget; the three rejections did not.
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assert holder.tool_calls == 1
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# The 4th rejection sits at messages[2 + 4*2 - 1] of the final request.
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assert llm.requests[4][0][9]["content"] == agent.LIST_EXHAUSTED
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# ---------- settings ----------
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def test_agent_budget_settings_default_to_one_each() -> None:
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s = _settings()
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assert s.agent_list_calls == 1
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assert s.agent_read_calls == 1
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def test_agent_budget_settings_env_override(monkeypatch: pytest.MonkeyPatch) -> None:
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monkeypatch.setenv("BOR_AGENT_LIST_CALLS", "0")
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monkeypatch.setenv("BOR_AGENT_READ_CALLS", "2")
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s = _settings()
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assert s.agent_list_calls == 0
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assert s.agent_read_calls == 2
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# ---------- prompts: <tools> section (HIGH only) ----------
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def test_high_prompt_carries_tools_section_after_documents() -> None:
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prompt = build_high_prompt([_doc("S", "a.md", "A", "A-CONTENT")])
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assert TOOLS_SECTION in prompt
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assert "call `list_documents`" in prompt
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assert "then `read_document` to pull in exactly one more document" in prompt
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assert "do not read more than one extra document" in prompt
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# After the mode body: <tools> follows </documents>.
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assert prompt.index("</documents>") < prompt.index("<tools>")
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assert prompt.rstrip().endswith("</tools>")
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def test_high_prompt_tools_section_with_notes_and_kb() -> None:
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prompt = build_high_prompt(
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[_doc("S", "a.md", "A", "A-CONTENT")], notes=["be concise"], kb_overview="- KB"
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)
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assert prompt.index("<knowledge_base>") < prompt.index("<tuning>")
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assert prompt.index("<tuning>") < prompt.index("<documents>")
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assert prompt.index("<documents>") < prompt.index("<tools>")
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def test_low_prompt_is_byte_identical_and_tool_free() -> None:
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expected = (
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_base("LOW")
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+ "\nDEFLECT_MODE: retrieval was weak — the titles below are the closest "
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"your notes come to the question. They are titles only; do not pretend "
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"they answer it. Use them to propose 2-3 alternative questions.\n"
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+ "- T1\n- T2"
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)
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assert build_deflect_prompt(["T1", "T2"]) == expected
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for prompt in (
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build_deflect_prompt(["T1"]),
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build_deflect_prompt(["T1"], notes=["be concise"]),
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build_deflect_prompt(["T1"], kb_overview="- KB"),
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build_deflect_prompt(["T1"], notes=["be concise"], kb_overview="- KB"),
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):
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assert "<tools>" not in prompt
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assert TOOLS_SECTION not in prompt
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