Tri-Netra-AI / src /research /__init__.py
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"""Research-grade extensions for NeuroLens AI.
Modules in this package contain novel methodological contributions on top
of the production segmentation/classification stack. They are deliberately
kept dependency-light (numpy + optional torch/onnxruntime) so they can run
on the HF Space inference container without GPU.
Currently implemented:
- conformal_counterfactual_seg: joint conformal + counterfactual brain
tumor segmentation with provable post-intervention coverage. Combines
CONSeg-style voxelwise conformal prediction sets with CausalX-Net-style
counterfactual segmentations under modality / intensity / contrast
interventions, using weighted conformal prediction (Tibshirani et al.
2019) to lift coverage from the factual to the post-intervention
distribution. As of the last literature pass (May 2026) the two are
not unified in a single segmentation framework anywhere we could find.
"""