Deep Learning Analysis of Prenatal Ultrasound for Identification of Ventriculomegaly
Youssef Megahed, Inok Lee, Robin Ducharme, Aylin Erman, Olivier X. Miguel, Kevin Dick, Adrian D. C. Chan, Steven Hawken, Mark Walker, Felipe Moretti

TL;DR
This study developed a deep learning model using a Vision Transformer architecture to accurately detect ventriculomegaly in prenatal ultrasound images, outperforming baseline models and providing explainable results.
Contribution
The paper introduces a fine-tuned USF-MAE model based on a Vision Transformer pretrained on ultrasound images, achieving high accuracy in ventriculomegaly detection.
Findings
F1-score of 91.78% on test set
Model outperforms baseline CNN and ViT models significantly
High precision (94.47%) and accuracy (97.24%)
Abstract
The proposed study aimed to develop a deep learning model capable of detecting ventriculomegaly on prenatal ultrasound images. Ventriculomegaly is a prenatal condition characterized by dilated cerebral ventricles of the fetal brain and is important to diagnose early, as it can be associated with an increased risk for fetal aneuploidies and/or underlying genetic syndromes. An Ultrasound Self-Supervised Foundation Model with Masked Autoencoding (USF-MAE), recently developed by our group, was fine-tuned for a binary classification task to distinguish fetal brain ultrasound images as either normal or showing ventriculomegaly. The USF-MAE incorporates a Vision Transformer encoder pretrained on more than 370,000 ultrasound images from the OpenUS-46 corpus. For this study, the pretrained encoder was adapted and fine-tuned on a curated dataset of fetal brain ultrasound images to optimize its…
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Taxonomy
TopicsFetal and Pediatric Neurological Disorders · Prenatal Screening and Diagnostics · Neonatal and fetal brain pathology
