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Updated: May 31, 2026

Ultrasonic Assessment of Myocardial Microstructure
Published on: January 14, 2014
Cardiac echocardiographic analysis with multi-scale effective fusion module: a novel stroke prediction approach
Jiachun Xie1, Dianhuan Tan1, Tingting Zheng2
1Shenzhen Key Laboratory for Drug Addiction and Medication Safety, Department of Ultrasound, Institute of Ultrasonic Medicine, Peking University Shenzhen Hospital, Shenzhen Peking University-The Hong Kong University of Science and Technology Medical Center, Shenzhen, Guangdong, 518036, P. R. China.
Insights
This study developed a new multimodal model using echocardiography and clinical data to predict stroke risk. The combined approach significantly improved stroke risk prediction accuracy compared to models using only clinical factors.
Area of Science:
- Cardiology
- Medical Imaging
- Artificial Intelligence
Background:
- Stroke is a major cause of death and disability.
- Early stroke risk stratification is crucial for prevention.
- Clinical models may miss key cardiac information detectable via echocardiography.
Purpose of the Study:
- To develop a multimodal stroke prediction model.
- Integrate multi-view echocardiographic images with clinical indicators.
- Enhance early stroke risk identification.
Main Methods:
- Retrospective study of 712 hypertensive patients.
- Analysis of long-axis, short-axis, and four-chamber echocardiographic views.
- Development of a Multi-Scale Effective Fusion (MSEF) module for feature representation.
- Integration of imaging and clinical data into multimodal models.
Main Results:
- The MSEF-based imaging model achieved 76.8% accuracy and 64.7% F1 score.
- Integrating clinical indicators further improved performance to 80.2% accuracy and 72.1% F1 score on the test set.
- The multimodal model demonstrated superior performance over imaging-only models.
Conclusions:
- The MSEF-based multimodal framework enhances stroke risk prediction.
- Effective combination of echocardiographic and clinical information supports earlier risk identification.
- The model can aid clinical decision-making for stroke prevention.
Background:
Stroke remains a leading cause of death and disability, and early risk stratification is critical for prevention. Existing models based only on clinical factors may miss subtle cardiac structural and hemodynamic information visible on echocardiography. We aimed to develop a multimodal stroke prediction model integrating multi-view echocardiographic images and clinical indicators.
Methods:
In this retrospective study, 712 hypertensive patients (10,992 echocardiographic images; 27 clinical variables) were included. Long-axis, short-axis, and apical four-chamber views were analyzed. We developed a Multi-Scale Effective Fusion (MSEF) module combining Global Feature Fusion, Multi-Feature Reconstruction, Channel Attention, and Positional Attention to improve multi-scale feature representation. Imaging features were integrated with clinical variables to build multimodal models. Model performance was evaluated on validation and test sets using accuracy, precision, recall, and F1 score.
Results:
The MSEF-based imaging model outperformed comparator fusion variants and achieved an accuracy of 76.8% and an F1 score of 64.7% on the test set. After integrating clinical indicators, performance further improved, with a test accuracy of 80.2% and an F1 score of 72.1%.
Conclusions:
The proposed MSEF-based multimodal framework improves stroke risk prediction by effectively combining echocardiographic and clinical information, and may support earlier risk identification and clinical decision-making.
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