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# GNN4Colliders

GNN4Colliders is a collider-machine-learning toolkit. The repository name
reflects its first production model family, ROOT-GNN; the Python package is
`gnn4colliders`, and the configuration identifier is `root_gnn`. Shared ROOT
ingestion, collider features, metadata, tasks, training, inference, and
distributed utilities are designed so that a future sequence model can reuse
them without requiring every event to be a graph.

```text
ROOT files -> EventSample -> shared collider features
                              ├── GraphSample -> ROOT-GNN
                              └── future SequenceSample -> ROOT-Transformer
```

The new implementation lives under [`src/gnn4colliders`](src/gnn4colliders/).
Historical behavior is preserved by the
[`root-gnn-parity-baseline`](https://huggingface.co/HWresearch/GNN4Colliders/tree/root-gnn-parity-baseline)
tag and committed reference fixtures, not by a supported historical runtime
backend.

## Installation

The supported development environment is Python 3.12 (`>=3.12,<3.13`). Core
development is supported on macOS and Linux:

```bash
# macOS (Apple Silicon): CPU ROOT-GNN development and tests
uv sync --dev --extra root-gnn

# Linux x86_64 with an NVIDIA GPU: validated ROOT-GNN development
uv sync --dev --extra root-gnn
```

The core package can be installed without DGL when only shared data or task
code is needed. ROOT-GNN models, graph construction, and ROOT-GNN reference tests
require the `root-gnn` extra. On Linux x86_64, it uses the validated CUDA 12.1
wheels configured in `pyproject.toml`; a compatible NVIDIA driver is still
required. On Apple Silicon macOS, it installs the CPU DGL wheel, supporting
local graph/cache development. The default ROOT-GNN backend performs training
with native PyTorch graph tensors, so it runs on Apple MPS, NVIDIA CUDA, and
CPU; DGL remains a cache and graph compatibility adapter. Do not add
site-specific CUDA, Slurm, or filesystem paths to model or task configuration.

Use the MPS profile on an Apple Silicon Mac:

```bash
uv run gnn4colliders train environment=macos
```

## Data samples

ROOT inputs are available from the
[HWresearch/Delphes dataset](https://huggingface.co/datasets/HWresearch/Delphes).
Download the 64-event smoke-test sample with the Hugging Face CLI:

```bash
hf download HWresearch/Delphes testing/ttH_NLO_64.root \
  --repo-type dataset --local-dir data/raw
```

The sample is `data/raw/testing/ttH_NLO_64.root`, has tree name `output`, and
is suitable for checking the prepare/train workflow. The dataset also provides
larger process-specific ROOT samples under `samples/`, derived datasets under
`derived/`, and analysis-specific ntuples under `analyses/`. These data are
intentionally ignored by Git; inspect a selected ROOT file's tree and branches
before writing its preparation configuration.

## Quick start

Prepare a graph cache from a ROOT tree. The feature specifications below are
illustrative placeholders; replace them with the branches in the input tree.
The full preparation interface is documented in
[`docs/configuration.md`](docs/configuration.md).

```bash
uv run gnn4colliders prepare \
  data.files=[data/events.root] \
  data.tree_name=Events \
  data.cache.path=cache/events.pt \
  'data.feature_branches=[["jet_pt"],["jet_eta"],["jet_phi"],CALC_E,[1.0],[0.0],NODE_TYPE]' \
  data.object_types=[vector] \
  data.scales=[1,1,1,1,1,1,1]
```

Train, evaluate, and predict from that cache:

```bash
uv run gnn4colliders train \
  data.cache.path=cache/events.pt \
  trainer.max_epochs=1 \
  environment.output_root=outputs/pretraining_multiclass

uv run gnn4colliders evaluate \
  data.cache.path=cache/events.pt \
  inference.checkpoint=outputs/pretraining_multiclass/checkpoints/epoch_0000.pt

uv run gnn4colliders predict \
  data.cache.path=cache/events.pt \
  inference.checkpoint=outputs/pretraining_multiclass/checkpoints/epoch_0000.pt \
  inference.output=outputs/pretraining_multiclass/predictions.npz
```

For a dependency-complete, temporary-data version of this flow, run
`uv run python scripts/dev/smoke_end_to_end.py`.

Preparation can use local worker processes for larger inputs. Workers write
ordered temporary shards and the application merges them into one cache:

```bash
uv run gnn4colliders prepare --config-name config_hf_smoke data.num_workers=4
```

Benchmark worker counts on the target machine with
`uv run python benchmarks/benchmark_prepare.py --workers 4`; small fixtures
may be slower because process startup dominates.

## Core concepts

`EventSample` is the architecture-neutral event boundary. It contains the
selected `objects`, `label`, `global_features`, and named `EventMetadata`.
Metadata includes `fold`, `weight`, and stable `sample_id`; callers should not
interpret public `tracking[:, N]` columns. Legacy tracking mappings exist only
at compatibility boundaries.

The ROOT-GNN adapter converts shared features to a directed, fully connected
graph with no self-loops: an event with `N` nodes has `N * (N - 1)` edges.
Node columns are, in order, `pt`, `eta`, `phi`, `energy`, `btag`, `charge`,
and `node_type`. Edge columns are `deta`, wrapped `dphi`, and `dR`.
Object collections are concatenated in configured object-type order. The
compatibility energy is `pt * cosh(eta)` before per-column scaling.

`GraphSampleCache` stores processed graph samples and schema metadata. It is a
Level-2 graph cache, not the universal event cache. Feature, graph, and cache
schema versions are checked when loading; incompatible versions fail before
training.

## ROOT-GNN training and transfer

`EdgeNetwork` encodes node, edge, and global features, performs iterative
edge/node/global message passing, decodes a graph representation, and applies
the classifier. Its output is raw logits; sigmoid or softmax is task-owned.

Multiclass pretraining uses the semantic `model=root_gnn/edge_network` and
`task=pretraining_multiclass` groups:

```bash
uv run gnn4colliders train \
  data.cache.path=cache/events.pt \
  model=root_gnn/edge_network task=pretraining_multiclass \
  trainer.max_epochs=20 data.batch_size=64 \
  environment.output_root=outputs/pretraining_multiclass
```

Fine-tuning is a separate workflow. It loads a pretrained backbone, replaces
the classifier, and creates a new task/head optimizer:

```bash
uv run gnn4colliders train \
  data.cache.path=cache/target.pt \
  model=root_gnn/fine_tuned_edge_network \
  task=binary_classification \
  checkpoint.pretrained=/path/to/pretrained.pt \
  model.freeze_backbone=true \
  trainer.max_epochs=10
```

Set `model.freeze_backbone=false` to train the reused backbone as well.
Transfer learning is not resume training:

| Workflow | Meaning | Restored state |
| --- | --- | --- |
| Resume | Continue the same task/run | model, optimizer, scheduler, trainer, early stopping, and RNG state when present |
| Transfer | Start a new task from a pretrained backbone | model weights only; new classifier and optimizer |

Resume example:

```bash
uv run gnn4colliders train \
  data.cache.path=cache/events.pt \
  checkpoint.resume=outputs/pretraining_multiclass/checkpoints/epoch_0000.pt \
  trainer.max_epochs=20
```

Validation is evaluated each epoch and drives scheduling/early stopping;
`test` remains held out. Evaluation computes task metrics over the complete
selected split, including weighted ROC AUC where defined:

```bash
uv run gnn4colliders evaluate \
  data.cache.path=cache/events.pt \
  inference.split=test \
  inference.checkpoint=/path/to/checkpoint.pt
```

Prediction writes a named compressed NPZ. Labeled data includes `labels`;
`fold` and `weight` are included when available. Every result includes
`sample_id`, `logits`, `scores`, and `predictions`:

```bash
uv run gnn4colliders predict \
  data.cache.path=cache/events.pt \
  inference.checkpoint=/path/to/checkpoint.pt \
  inference.output=outputs/predictions.npz
```

Optional Python-level ROOT writing is provided by
`gnn4colliders.inference.write_root_scores`. It clones the selected tree,
adds `score` (or `score_class_N`), and writes `selection_pass`; IDs ending in
`:<entry>` preserve alignment and unselected entries receive NaN scores. The
CLI currently exposes NPZ output only.

The supported legacy checkpoint, metadata, and output boundary is documented
in [`docs/compatibility.md`](docs/compatibility.md). New code should use named
metadata fields; positional tracking is accepted only by the explicit
compatibility adapter.

### ONNX export

Install the optional export dependencies and export a prepared graph-cache
checkpoint with numerical ONNX validation:

```bash
uv sync --extra root-gnn --extra onnx
uv run gnn4colliders export \
  export.checkpoint=/path/to/checkpoint.pt \
  export.output=model.onnx \
  data.cache.path=/path/to/graph-cache.pt
```

The model accepts processed graph tensors and returns raw logits. See
[`docs/export.md`](docs/export.md) for the tensor contract and limitations.

## Configuration and environments

Hydra groups are `data`, `model`, `task`, `trainer`, `checkpoint`,
`inference`, `environment`, and `distributed`. Use configuration for a new
experiment and Python for new behavior. Examples:

```bash
uv run gnn4colliders train trainer.max_epochs=50 data.batch_size=64
uv run gnn4colliders train environment=perlmutter environment.device=cuda
uv run gnn4colliders train distributed=ddp environment=perlmutter
```

Each run writes a resolved configuration to
`<environment.output_root>/resolved_config.yaml`. See
[`docs/configuration.md`](docs/configuration.md) for the group reference and
[`docs/perlmutter.md`](docs/perlmutter.md) for launch examples.

## Distributed execution and reproducibility

Launch DDP with `torchrun` or the provided Slurm wrappers. `data.batch_size`
and `data.num_workers` are per process, so the ordinary effective batch size
is `batch_size * world_size`. Training shards may be padded for equal steps;
validation and prediction are unpadded. Rank 0 writes shared checkpoints,
configs, and predictions, and metrics/results are gathered across ranks.

The configured seed controls initialization and deterministic local loader
ordering; distributed process seeds are rank-offset and samplers use
`set_epoch`. CPU runs are reproducible for fixed inputs and environment. GPU
kernels, DGL, and distributed scheduling can remain nondeterministic, so the
project does not promise bitwise GPU reproducibility.

## Development and validation

```bash
uv run pytest
uv run pytest tests/unit
GNN4COLLIDERS_REQUIRE_ROOT_GNN=1 uv run pytest tests/parity -v
uv run ruff check .
uv run ruff format --check .
uv run python benchmarks/benchmark_preprocessing.py
uv run python benchmarks/benchmark_training.py --device cpu
```

Unit tests cover isolated components, integration tests cover small workflows,
and parity tests compare deterministic behavior with the frozen legacy
reference. Performance guidance and measured caveats are in
[`docs/performance.md`](docs/performance.md) and
[`benchmarks/README.md`](benchmarks/README.md).
See [`docs/testing.md`](docs/testing.md) for test layers, optional dependency
markers, and package smoke validation.

## Architecture and migration status

See [`docs/architecture.md`](docs/architecture.md) for responsibility
boundaries and the future sequence-model extension point. See
[`docs/migration.md`](docs/migration.md) for the migration matrix,
intentional redesigns, compatibility limits, and deferred work.

ROOT-GNN v1 covers ROOT preparation, validated feature/graph/model/task
behavior, training, fine-tuning, checkpoint resume, evaluation, prediction,
single-process/DDP execution, and validated ONNX export. Streaming distributed
output, legacy cleanup, and ROOT-Transformer remain follow-up work.