CVAI Catalog

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DCL (Dynamic Causal Learning)

Echocardiography video

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Echocardiography

Cardiac MRI

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Cardiac MRI

CT angiography

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Cardiac CT

Multimodal

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Multimodal

Cardiac chamber segmentation

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Structural Heart & Cardiomyopathy

Segmentation

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Segmentation & Detection

Hybrid

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Hybrid / Multi-branch

PyTorch

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PyTorch

code View code

Model weights not public. Contact creators for more information.

Cross-modality cardiac image segmentation model that addresses spatial-temporal confounding -- where the anatomy and imaging-modality elements of cardiac images are intertwined across space and time. DCL performs multi-dimensional causal intervention, modeling causal relationships between images and labels as well as causality along the time and space dimensions, integrating historical optimal interventions to transfer knowledge across temporal contexts. A diffusion mechanism further keeps extracted anatomical elements causally invariant across modalities. On cross-modality cardiac images (MR, CT, and ultrasound), DCL achieved a mean Dice of 0.951, outperforming other advanced segmentation methods.

memory Specifications

category

Architecture

Hybrid

Multi-dimensional causal-intervention framework that models causality across image/label, time, and space dimensions, integrating historical optimal interventions and a diffusion mechanism to keep anatomical features causally invariant across imaging modalities

code

Framework

PyTorch

calendar_month

Added to catalog

2026-08-14

description Publication

database Training & evaluation data

public 60 subjects

Multi-Modality Whole Heart Segmentation challenge: 60 cardiac CT/CTA and 60 cardiac MRI volumes from multiple clinical sites, anonymized.

science Capabilities & performance

Cross-modality (MR/CT/US) cardiac chamber segmentation with causally invariant anatomy representations

Segmentation Cardiac chamber segmentation