- paper/pnas -> paper/manuscript (venue-neutral)
- configs/layer1 -> configs/inheritance, src/knowledge -> src/inheritance
(imported as `inheritance`), make layer1 -> make inheritance; layer2 alias dropped
- inheritance and trained-network bundles named after the manuscript figure
they feed (fig2_grounding_sweep, figS3_rebaselining, ...), or descriptively
where they feed none; configs keep their `experiment:` value so parquet
hashes are unchanged, only output.dir moves
- figure scripts, SI figure sources, notebooks, REPRODUCING.md, README and the
SI Methods/tables updated; make clean no longer deletes tracked manifests;
reproduce.sh hashes the s{seed}/ layouts too
Co-Authored-By: Claude Fable 5.1 <noreply@anthropic.com>
Claude-Session: https://claude.ai/code/session_01Y64o8FKP7rCuXzC48pxpMm
4.8 KiB
The evolution of sex for artificial intelligence
A population-genetic framework for multigenerational model populations. Knowledge transmission
between generations of learning agents is modelled literally as a Wright–Fisher process, not by
analogy: a model's knowledge is a distribution p_t over K discrete items, a fixed true
distribution p* has a rare tail, and each generational step is "sample from the parent (drift) +
mix in fresh real samples (grounding/immigration) + refit". Model collapse is the loss of rare
alleles under drift — and the remedies population genetics knows for drift (immigration,
recombination, selection, population structure) become engineering levers for model populations.
The framework is developed at three tiers of increasing realism:
| Tier | What it is | Hardware |
|---|---|---|
| Inheritance model | Wright–Fisher simulator over knowledge distributions; closed forms, bitwise reproducible | laptop |
| Trained networks | RNN / MLP / VAE on a synthetic mode universe with an exact oracle; convolutional VAE on MNIST | one GPU |
| Language models | LoRA specialists on Qwen2.5-Instruct (0.5B / 7B) with an exact-match verifier | one GPU / L40S |
Reproduce
Start here: REPRODUCING.md — the authoritative map from every manuscript
figure panel back to the artifact, config, and seed that produced it, plus the determinism policy
and artifact-hash verification.
curl -LsSf https://astral.sh/uv/install.sh | sh # one-time, if needed
./reproduce.sh # env -> tests -> inheritance-model tier at committed seeds -> figures
./reproduce.sh --with-gpu # ... and the trained-network + language-model tiers
Or tier by tier:
make env # build .venv from the committed, hash-pinned uv.lock
make test # correctness + closed-form scientific validation (the spine of trust)
make inheritance # the inheritance model, every experiment at its committed seed
make figures # per-experiment figures, from committed parquets (no re-simulation)
make paper-figures # the manuscript's Fig. 1-5 + rebuild the PDF bodies
make help is not defined, but every target carries a ## description — grep '##' Makefile.
Notebooks
make env-notebooks && jupyter lab notebooks/
01_biological_model.ipynb— builds the Wright–Fisher model from scratch, checks it against the closed forms (geometric diversity decay, the immigration–drift equilibrium), and derives the grounding threshold and its per-item observation floor. Runs on a laptop in under a minute.02_paper_figures.ipynb— verifies artifact hashes, then regenerates and displays every manuscript figure from the committed artifacts.
Layout
src/inheritance/ inheritance-model tier (imported as `inheritance`)
src/neural/ trained-network tier
src/llm/ language-model tier
configs/ one YAML per experiment: inheritance/ neural/ llm/ (each declares its master seed)
figures/ plot_*.py — per-experiment diagnostics, read results.parquet only
paper/manuscript/ the manuscript: main.md, si.md, make_figs.py (Fig. 1-5), si_figures.py, build.py
notebooks/ executable walkthroughs
hpc/ PBS job scripts for the 7B tier (Imperial CX3)
tests/ correctness + test_scientific_validation.py (the closed forms as assertions)
results/ run artifacts: results.parquet (gitignored) + resolved_config.yaml + manifest.json;
bundles are named after the manuscript figure they feed (fig2_*, figS4_*)
Development history, design documents, pre-registrations and exploratory experiments that did not
reach the manuscript live on the dev branch; main holds only what reproduces the paper.
The engineering contract
- Reproducibility is a requirement, not a preference. The environment is a
uvvenv built from a committed, hash-pinneduv.lock; the biological-model tier is bitwise reproducible from a single master seed, and the GPU tiers are statistically reproducible with per-seed points reported. - One master seed per config, with all sub-randomness derived via
SeedSequence.spawn. No code touches global RNG state; a run is a pure function of its resolved config. - No magic numbers in code. Every parameter lives in a YAML resolved at run time, and the resolved config is written next to the results.
- Every run writes the same triple:
results.parquet+resolved_config.yaml+manifest.json(seed, git commit, library versions, row count, SHA-256 of the results). - Every figure is a pure function of a committed artifact — figure scripts never re-simulate.
- The scientific-validation tests are the spine of trust. They assert that the simulator reproduces the closed forms to within 0.5%. If they fail, the science is wrong, not just the code.