Diagnostic Performance of Universal-Learning Ultrasound AI Across Multiple Organs and Tasks: the UUSIC25 Challenge
Zehui Lin, Luyi Han, Xin Wang, Ying Zhou, Yanming Zhang, Tianyu Zhang, Lingyun Bao, Jiarui Zhou, Yue Sun, Jieyun Bai, Shuo Li, Shandong Wu, Dong Ni, Ritse Mann, Wendie Berg, Dong Xu, Tao Tan, the UUSIC25 Challenge Consortium

TL;DR
This study evaluates the diagnostic accuracy and versatility of a single deep learning ultrasound AI model across multiple organs and tasks, highlighting its potential and current limitations in generalization for clinical use.
Contribution
Introduces a multi-organ, multi-task ultrasound AI challenge demonstrating that a single model can perform well but faces challenges in generalizing to unseen data.
Findings
Top model achieved DSC of 0.854 and AUC of 0.766.
High accuracy in anatomical segmentation tasks.
Performance drops on unseen data, indicating domain shift challenges.
Abstract
IMPORTANCE: Modern ultrasound systems are universal diagnostic tools capable of imaging the entire body. However, current AI solutions remain fragmented into single-task tools. This critical gap between hardware versatility and software specificity limits workflow integration and clinical utility. OBJECTIVE: To evaluate the diagnostic accuracy, versatility, and efficiency of single general-purpose deep learning models for multi-organ classification and segmentation. DESIGN: The Universal UltraSound Image Challenge 2025 (UUSIC25) involved developing algorithms on 11,644 images aggregated from 12 sources (9 public, 3 private). Evaluation used an independent, multi-center private test set of 2,479 images, including data from a center completely unseen during training to assess generalization. OUTCOMES: Diagnostic performance (Dice Similarity Coefficient [DSC]; Area Under the Receiver…
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Taxonomy
TopicsUltrasound Imaging and Elastography · AI in cancer detection · Fetal and Pediatric Neurological Disorders
