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EchoNet-MS

Cedars-Sinai Medical Center (Smidt Heart Institute) / Ouyang Lab

Echocardiography video

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Echocardiography

Valvular disease

Filter catalog by Disease / Trait:
Structural Heart & Cardiomyopathy

Multi-class classification

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Classification

CNN (3D)

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Convolutional (CNN)

PyTorch

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PyTorch

Deep learning model for automated phenotyping of mitral stenosis (MS) from echocardiography. Uses video-based R(2+1)D convolutional networks on color Doppler and B-mode views to identify and grade mitral stenosis severity, following the multi-view valvular-assessment approach of the EchoNet family. Trained and validated on large clinical echocardiography cohorts from Kaiser Permanente Northern California with external testing at Stanford Healthcare and Cedars-Sinai. Developed by the Ouyang lab.

memory Specifications

category

Architecture

CNN (3D)

Multi-view R(2+1)D video CNN

code

Framework

PyTorch

calendar_month

Added to catalog

2026-07-22 21:02:46

description Publication

database Training & evaluation data

Cedars-Sinai Medical Center Echocardiography Dataset

test

USA · 2011-2023

CSMC (Cedars-Sinai Medical Center) clinical echocardiography cohort: 877,983 individual sonographer measurements spanning 9 B-mode and 9 Doppler measurement types, drawn from 155,215 studies.

Kaiser Permanente Northern California Echocardiography

train

USA

Large clinical transthoracic echocardiography cohort from Kaiser Permanente Northern California; 210,193 videos from 16,076 studies used to train EchoNet-AS. Detailed demographics not reported.

Stanford Healthcare Echocardiography

test

USA

Clinical transthoracic echocardiography cohort from Stanford Healthcare (SHC); used to train EchoNet-Labs (70,066 videos / 39,460 patients) and as an external validation set for several EchoNet valvular models. Detailed demographics not reported.

science Capabilities & performance

Mitral stenosis severity classification

Multi-class classification Valvular disease