Bring the docs in line with the current two-stage code: energy ALR simplex output, 8D conditioning (n_sec/e_sec now predicted, not given), the SecondaryDecoder stage, and the shower rollout + geometry oracle. Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
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CLAUDE.md
This file provides guidance to Claude Code (claude.ai/code) when working with code in this repository.
Commands
uv sync --extra cpu # install dependencies with CPU-only torch (standard/default)
uv sync --extra cuda # install dependencies with CUDA 11.8 torch
uv sync --extra cpu --extra dev # add dev extras (pytest, etc.)
uv sync --extra cpu --extra geometry # add scikit-learn for the geometry oracle (giant rollout)
pytest # run tests
giant train path/to/steps.parquet --mode flow # train (flow matching)
giant train path/to/steps.parquet --mode ddpm # train (DDPM baseline)
giant predict path/to/steps.parquet --checkpoint ckpt/best.pt # per-step predictions
giant rollout path/to/steps.parquet --checkpoint ckpt/best.pt --geometry oracle.pkl # full showers
dwarf --help # dataset/tooling CLI: convert, migrate, bump-gen,
# bump-schema, status, update-manifest, create-manifest,
# make-root, build-geometry-oracle, hparam-scan
# (see scripts/dwarf.py)
cpu and cuda are mutually exclusive — pick one to select the torch build (pinned to 2.3.x; newer torch requires newer NVIDIA drivers). Plain uv sync with no extra will not install torch at all; uv has no concept of a "default extra", so --extra cpu should always be included unless you need GPU support.
Lint and type checking
uv run ruff check . # lint
uv run ruff format . # format
uv run ty check . # type check
Part of the dev extra. Run these periodically (not just at commit time) to catch drift early.
Architecture
GIANT is a conditional generative surrogate for the Geant4 step function. It replaces the stochastic physics engine: given a pre-step particle state (conditioning), it samples a post-step outcome — now including the variable-length list of secondary particles the step produces (Phase 2, see Roadmap).
Data pipeline (giant/data/): parquet files from miniCaloSim are loaded into numpy arrays (loader.py), then log-transformed and rotated into a local coordinate frame where pre_dir = ẑ (transforms.py), before being wrapped in a PyTorch Dataset (dataset.py). Train/val split is by event_id to avoid leaking correlated steps from the same shower.
Stage-1 output space (9D, giant/constants.py:LOCAL_TARGET_NAMES): log_step_length, two additive-log-ratio (ALR) coordinates edep_logit/sec_logit of a deposit / secondary / post-energy simplex, post_dir (post-scattering momentum direction, unit vector in the local frame), and travel_dir (direction of post_pos - pre_pos, unit vector in the local frame). The energy simplex decodes via softmax over [edep_logit, sec_logit, 0] × pre_E so edep + e_sec + post_E == pre_E holds by construction — energy conservation is architectural, not learned (see energy_simplex_decode). post_pos is not a raw target — it's reconstructed at inference as pre_pos + step_length * world_frame(travel_dir), since step_length already encodes that displacement's magnitude and duplicating it would let the two become inconsistent.
Conditioning vector (8D continuous, COND_DIM): pre-step position, log(pre-energy), pre-step direction, layer ID — plus PDG code and material as embeddings. n_sec and e_sec are no longer conditioning inputs (that was Phase 1 / the energy-conservation PoC); the model now predicts them.
Model (giant/model/network.py): a two-stage model, both checkpointed together.
- Stage 1 —
DenoisingMLP:ResBlockstack with aSinusoidalEmbeddingfor the flow/diffusion time variable and aConditionEncoderfusing the conditioning. Predicts the 9D primary vector field, plus ann_sec_headclassifier over{0..K_MAX}(K_MAX=15) that runs on the condition encoding alone (no diffusion noise), callable viapredict_n_sec. - Stage 2 —
SecondaryDecoder: a second flow-matching net (SecondaryConditionEncoderfuses the pre-step conditioning with the Stage-1 outcome) that generates allK_MAXsecondary slots at once. Each slot is(stick-breaking energy logit, local-frame direction 3D, continuous type embedding 16D)=SEC_SLOT_DIM=20, ordered by descending energy; slots beyond the predictedn_secare masked. Secondary energies are a stick-breaking partition of thee_secbudget from Stage 1 (they sum to it), so the whole chain conserves energy. The type embedding is trained against a detached PDG-embedding target (stops self-referential collapse) and snapped to the nearest PDG at inference (snap_type_to_pdg_idx).
schedule.py provides both a CosineSchedule for DDPM and the flow matching loss utilities (Lipman et al. 2022 conditional flow matching).
Samplers (giant/sample.py): DDPM, DDIM, and flow matching (ODE integration, ~10 steps). Flow matching is the primary mode.
Validation (giant/validate.py): step-level marginal comparisons. Shower-level (rollout) observables live in giant/analysis.py (compute_rollout_observables + plot_rollout_*), fed by giant rollout output.
Shower rollout (giant/rollout.py, giant rollout CLI): autoregressively steps the two-stage model into a full shower — each primary post-step becomes the next pre-step, secondaries are pushed as new tracks, and per-step material/layer_id come from a GeometryOracle (giant/geometry.py, built via dwarf build-geometry-oracle) that learns position → (material, layer_id) from data and flags detector escape by nearest-neighbour distance. Tracks terminate on energy cutoff, per-track max steps, escape, or natural end; energy is deposited locally on every stop except escape (leakage), so showers conserve energy by construction.
Roadmap
Phase 1 (done): number of secondaries and their total energy were conditioning inputs; the model predicted only the 9D primary post-step (energy-conservation PoC).
Phase 2 (implemented — baseline): the two-stage model above jointly predicts n_sec, the energy simplex (e_sec falls out of it), and each secondary's energy/direction/species, so a rollout is self-contained (no ground-truth secondary counts injected). This is the "get a baseline out" track agreed with Jan & Tobias (2026-07-07).
Next directions (parallel, not yet built): faster-eval architectures measured against a ~10× native-Geant4 budget — a Wasserstein-GAN throwaway (single-pass eval) and a mixture-of-experts / routing tree of small nets selected per call (pdg / energy / process), with soft/differentiable gating on continuous routing axes; a sampling-calorimeter (multi-material) dataset; and preferring material + particle physical properties over learned embeddings for conditioning. See the knowledge base (/home/lars/knowledge-base/meta/roadmap.md).