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Experiment Layout Conventions

This is the working convention for cleanup after the chapter1/context pilot. It is intentionally small: chapter experiments stay independent teaching projects, and only shared plumbing belongs in agentbook/.

Target Shape

Use this shape for runnable Python experiments when it fits the project:

experiment-name/
├── README.md
├── main.py
├── agent.py
├── config.py
├── fixtures/
├── tests/
│   └── manual/
├── requirements.txt
└── env.example

Not every experiment needs every file. Prefer the smallest structure that makes the runnable entry point, tests, fixtures, and generated outputs obvious.

Entry Points

  • Prefer one documented command-line entry point, usually main.py.
  • Keep helper modules next to the entry point when they are part of the teaching code, for example agent.py, tools.py, config.py, or sources.py.
  • Keep setup helpers at the experiment root only when they are part of normal local use, for example create_sample_pdf.py.
  • Move old quick checks or provider smoke scripts to tests/manual/ unless they are the primary way readers run the experiment.
  • Do not move teaching logic into agentbook/; shared provider/dependency plumbing can live there.

Provider Portability

  • A vendor-specific reference implementation may remain canonical when an experiment measures that exact model or native tool protocol, but ordinary readers should not need that vendor's credential merely to exercise the chapter's mechanism.
  • Document a provider-portable path when an equivalent endpoint exists. Prefer an explicit base URL, requested model ID, and API-key variable over a hidden fallback. For visual Computer Use, retain at least one open-weight model API path plus a generic self-hosted OpenAI-compatible path.
  • A fallback model is a separate experimental arm, not a reproduction of the reference model. Store the requested model, provider-reported model, endpoint, raw credential-free response, and behavior evidence for each arm.
  • Fail closed when an endpoint drops required modalities, schemas, or tools. Successful authentication, model listing, installation, or browser launch is not task-completion evidence.
  • Never put API-key values in receipts. Record only the environment-variable name used, and scan retained requests/responses before committing evidence.

Installation Docs

  • README setup should prefer the root chapter extra, for example uv sync --locked --python 3.12 --extra chN.
  • Activate the root .venv before changing into the experiment directory.
  • Keep the pip fallback: python -m pip install -e ".[chN]".
  • Keep python -m pip install -r requirements.txt as a commented compatibility path while the migration is active.
  • Document platform-specific or isolated environments explicitly instead of pretending one root extra covers incompatible stacks.

Tests

  • Automated regression tests go under tests/ and should run with python -m pytest tests from the experiment directory.
  • When documenting pytest commands for a clean environment, include the dev extra from the repository root, for example uv sync --locked --python 3.12 --extra chN --extra dev.
  • The equivalent pip testing fallback is python -m pip install -e ".[chN,dev]".
  • Automated tests should avoid live API calls, network dependence, GPU-only paths, and heavyweight model downloads unless they are explicitly marked and isolated.
  • Use fixtures and mocks for deterministic behavior.
  • If tests import root-level experiment modules after being moved, add a small tests/conftest.py path bootstrap rather than changing user-facing imports.
  • Manual/live smoke scripts go under tests/manual/ and should not be named test_*.py or *_test.py, so pytest does not collect them by default.
  • Manual scripts should state which API keys or external tools they require.

Fixtures

  • Put deterministic local data under fixtures/, with subdirectories by type when useful, for example fixtures/pdfs/.
  • Keep tracked fixtures small and stable.
  • If a helper can regenerate a fixture, document both the helper and the fixture location in the README.
  • Update code paths and README examples together when moving fixtures.

Generated Outputs

  • Do not track normal run outputs unless the file is a deliberate fixture or golden example.
  • Prefer a documented output directory such as output/, outputs/, or results/, or an explicit --output PATH option.
  • Make generated-output defaults consistent within an experiment before applying that convention to other experiments.
  • Add or update ignore rules before changing commands that create new output paths.

README Checklist

Each runnable experiment README should answer:

  • What concept does this experiment teach?
  • What is the one recommended install path?
  • What is the compatibility install path during migration?
  • What command runs the default demo?
  • Which commands are offline/no-key and which need credentials?
  • Where are tests, fixtures, manual smoke scripts, and generated outputs?
  • Which platform/system dependencies are separate from Python dependencies?

Migration Checklist

When cleaning an existing experiment:

  • Move the smallest set of files needed to clarify the layout.
  • Preserve direct execution from the experiment directory.
  • Rename manual checks away from test_*.py if they need live credentials.
  • Keep automated tests runnable through python -m pytest tests.
  • Update code paths, README commands, and project structure diagrams in the same change.
  • Run targeted validation for the experiment plus repository docs checks.

Baseline validation for a layout-only change:

git diff --check
python scripts/check_i18n_consistency.py
uv lock --check

Then add experiment-specific checks, for example:

uv sync --locked --python 3.12 --extra chN --extra dev
python -m pytest tests
python main.py --help
python tests/manual/show_sample_tasks.py