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Updated: Jul 1, 2025

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Murine Fetal Echocardiography
Published on: February 15, 2013
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Active learning for left ventricle segmentation in echocardiography
Eman Alajrami1, Tiffany Ng2, Jevgeni Jevsikov3
1Intelligent Sensing and Vision, University of West London, London, UK.
Computer Methods and Programs in Biomedicine
|March 13, 2024
Summary
Active learning significantly reduces annotation needs for deep learning in echocardiography. Our method achieves 99% performance with 80% less data, cutting costs and improving segmentation efficiency.
Area of Science:
- Medical Imaging
- Deep Learning
- Computational Cardiology
Background:
- Deep learning for medical image segmentation demands extensive annotated datasets.
- Creating these datasets is costly and time-consuming.
- Active learning offers a solution by selecting informative samples.
Purpose of the Study:
- Investigate active learning for efficient left ventricle segmentation in echocardiography.
- Reduce the burden of sparse expert annotations.
- Introduce and evaluate a novel sampling strategy.
Main Methods:
- Adapt and evaluate various active learning sampling techniques.
- Introduce Optimised Representativeness Sampling (ORS) combining outlier and representative samples.
- Apply methods to echocardiography datasets with sparse annotations.
Main Results:
- Achieved 99% performance using only 20% of labelled data, reducing annotations by 1680 images.
- ORS demonstrated a 70% reduction in annotation effort on a public dataset, outperforming baseline active learning (50% reduction).
- Highlighted dataset-specific performance variations among sampling strategies.
Conclusions:
- Developed a cost-effective active learning approach for echocardiography segmentation.
- Publicly released a novel dataset to advance research in efficient medical image annotation.
- Contributed to understanding efficient annotation strategies in medical image segmentation.
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