Adds the "directed sex" operator (E10) the moe regime-flip pointed to: don't
commit to one a-priori blend — breed a population of recombinant offspring
(specialists merged at Dirichlet-sampled weights), score each on a held-out
validation split with the verifier, and keep the fittest, reported on a fresh
test split. Two breeding objectives: best-overall and best-worst-family.
src/llm/directed.py + kind llm_directed, reusing the cached specialists.
Result — refinements pay off in proportion to how far the uniform soup is from
optimal:
- 0.5B (soup dilutes): directed selection beats soup on the bred objective —
directed_overall 0.69 > soup 0.64; directed_balanced worst-family 0.37 > 0.26.
Riders: single-objective selection trades off the other axis (overall-breed
tanks lists to 0.17); a global blend still trails per-input routing (0.74).
- 7B (Imperial CX3, soup already composes to ceiling on near-saturated families,
strings/arith 1.00): directed ~= soup (0.868 ~ 0.873, marginally below via a
val/test overfit gap) — no fitter offspring to breed.
Through-line across all four LLM runs: "merge, don't average" and its refinements
(routing, directed selection) are weak-base / suboptimal-default phenomena — they
help at 0.5B and are inert at 7B. Honest limitation kept in the writeup: the 7B
families are near-saturated, which caps the headroom; a harder unsaturated
benchmark is the fair next test.
Also folds in the two llm_moe local manifest/config files missed in
|
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|---|---|---|
| .. | ||
| llm_directed.pbs | ||
| llm_merge.pbs | ||
| llm_moe.pbs | ||
| llm_smoke.pbs | ||
| probe.pbs | ||
| README.md | ||
Running the Lamarckian Society on Imperial's HPC (CX3, PBS Pro)
The LLM experiments are the only part that wants more than a laptop GPU. This directory holds the
PBS job scripts for Imperial's CX3 cluster (scheduler: PBS Pro — qsub, not Slurm). The
analytic (Layer 1) and small-neural (Layer 1.5) tiers all run locally and need nothing here.
Confirmed facts (Imperial RCS user guide)
- Submit / monitor / cancel:
qsub <script>·qstat -u $USER(Q=queued, R=running) ·qdel <jobid>. Output lands in<script>.o<jobid>(stdout) and.e<jobid>(stderr). - GPU resource line:
#PBS -l select=1:ncpus=4:mem=24gb:ngpus=1:gpu_type=L40S(leave:gpu_type=…off for the default). GPUs: L40S 48 GB (default), RTX6000 24 GB, A100 40 GB (scarce). Queue gpu72 (~72 h), up to 8 GPUs/node. - Filesystem: jobs start in
$HOME;$PBS_O_WORKDIR= the submit directory;$TMPDIR= fast node-local scratch (copy large inputs in, results out); keep a job under ~100 GB. - Modules: e.g.
module load Python/3.12.3-GCCcore-13.3.0(we useuvinstead — see below).
Two unknowns the docs don't cover — resolved by probe.pbs
- Do compute nodes have internet? If not, models and packages must be fetched on the login node and used offline on the compute node.
- What CUDA version does the L40S driver support? Our env ships torch cu13; an older driver needs a pinned torch (cu124/cu121).
Run the probe first: git pull on the login node, then qsub hpc/probe.pbs, then read
probe.o<jobid>. It prints the GPU + driver CUDA, the internet test, $TMPDIR/disk, and the
available python/cuda modules. (Paste that output back and the real scripts get finalised.)
One-time setup on the LOGIN node (which has internet)
git clone <this repo> && cd LamarckianAI
curl -LsSf https://astral.sh/uv/install.sh | sh # uv -> ~/.local/bin (no sudo)
uv sync --extra dev --extra neural --extra llm # builds .venv (Python 3.14 + torch + transformers/peft)
# If the probe shows the L40S driver is < CUDA 13, pin torch to match first, e.g.:
# uv pip install --python .venv "torch==2.*" --index-url https://download.pytorch.org/whl/cu124
# Pre-download the base model into a cache the compute node can read:
HF_HOME=$HOME/hf_cache uv run python -c "from transformers import AutoModelForCausalLM, AutoTokenizer as T; \
n='Qwen/Qwen2.5-7B-Instruct'; T.from_pretrained(n); AutoModelForCausalLM.from_pretrained(n)"
Run the experiment
qsub hpc/llm_merge.pbs # L40S, ~4 h; runs configs/llm/merge_hpc.yaml
qstat -u $USER # watch it
Results are written to results/llm_merge_hpc/ (the .parquet is gitignored). Sync it back to a
machine with the plotting env to analyse:
rsync -avz <user>@login.hpc.ic.ac.uk:'~/LamarckianAI/results/llm_merge_hpc/' results/llm_merge_hpc/
python figures/plot_llm_merge.py results/llm_merge_hpc
Notes
- Why
uv, not the Python module:uvinstalls its own Python 3.14 and the exact pinned deps, so the HPC env matches the laptop env reproducibly and is independent of the cluster's module set. The only cluster-specific adjustment is the torch CUDA build if the driver is old (above). HF_HUB_OFFLINE=1is set inllm_merge.pbson the assumption compute nodes are offline; delete that line if the probe shows internet works.- The definitive "firm up the sign" run (not yet coded) also wants: several seeds with mean±CI;
more task families; and a dilution-resistant / offspring-selected ("directed sex") merge.
merge_hpc.yamlonly bumps the base model for now — enough to reduce noise, but the code changes are the real fix.