ADASPUN research package for ADAS perception, stereo depth, risk scoring, QUBO warning selection, and NeuroSentinel V9 execution.
Project description
ADASPUN
ADASPUN is a research-oriented Python package for ADAS perception, stereo depth, risk estimation, QUBO warning selection, and NeuroSentinel-4D++ V9 execution.
Install
Install from PyPI:
pip install adaspun
For local development with YOLO extras:
python -m pip install -e ".[yolo]"
Quick checks
adaspun-doctor
adaspun-v9-robust --help
adaspun-native-video --help
Robust V9 source-of-truth runner
The robust V9 command delegates to a local NeuroSentinel V9 research workspace. A full V9 run requires local assets such as the V9 script, helper backbone, model weights, and input videos.
Example:
adaspun-v9-robust --project-root D:\Puneeth_Adas --v9-script D:\Puneeth_Adas\final_video_pipeline\run_neurosentinel_ddpm_ensemble_v9_sota_clean_ui_DISTANCE_LABELS.py --cuda --doctor-first --copy-output D:\Puneeth_Adas\outputs\adaspun_v9_demo.mp4
Native modular commands
adaspun-native-video --help
adaspun-risk-smoke --help
adaspun-qubo-smoke --help
Research preview note
ADASPUN is currently a research preview package. The modular native commands are included for package development and experimentation. The robust V9 command is a bridge to the complete local NeuroSentinel V9 source-of-truth pipeline and does not bundle model weights, datasets, videos, or private research assets.
Citation
If you use ADASPUN in academic work, cite the repository/package metadata in CITATION.cff.
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