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Updated: May 10, 2026

Assessing Cortical Cerebral Microinfarcts on High Resolution MR Images
Published on: November 20, 2015
Semi-Automated Detection of Cerebral Microbleeds on 3.0 T MR Images
Hugo J Kuijf1, Manon Brundel, Jeroen de Bresser
1Image Sciences Institute, University Medical Center Utrecht, Utrecht, The Netherlands.
Abstract:
Cerebral microbleeds are associated with vascular disease and dementia. They can be detected on MRI and receive increasing attention. Visual rating is the current standard for microbleed detection, but is rater dependent, has limited reproducibility, modest sensitivity, and can be time-consuming. The goal of the current study is to present a tool for semi-automated detection of microbleeds that can assist human raters in the rating procedure. The radial symmetry transform is originally a technique to highlight circular-shaped objects in two-dimensional images. In the current study, the three-dimensional radial symmetry transform was adapted to detect spherical microbleeds in a series of 72 patients from our hospital, for whom a ground truth visual rating was made by four raters. Potential microbleeds were automatically identified on T2*-weighted 3.0 T MRI scans and the results were visually checked to identify microbleeds. Final ratings of the radial symmetry transform were compared to human ratings. After implementing and optimizing the radial symmetry transform, the method achieved a high sensitivity, while maintaining a modest number of false positives. Depending on the settings, sensitivities ranged from 65%-84% compared to the ground truth rating. Rating of the processed images required 1-2 minutes per participant, in which 20-96 false positive locations per participant were censored. Sensitivities of individual raters ranged from 39%-86% compared to the ground truth and required 5-10 minutes per participant per rater. The sensitivities that were achieved by the radial symmetry transform are similar to those of individual experienced human raters, demonstrating its feasibility and usefulness for semi-automated microbleed detection.
Insights
A new semi-automated tool using the radial symmetry transform aids in detecting cerebral microbleeds on MRI scans. This method shows sensitivity comparable to human raters, improving efficiency in diagnosing vascular disease and dementia markers.
Area of Science:
- Neuroimaging
- Medical image analysis
- Radiology
Background:
- Cerebral microbleeds are linked to vascular disease and dementia.
- Current visual rating for microbleed detection on MRI is subjective, time-consuming, and lacks reproducibility.
- There is a need for more efficient and reliable microbleed detection methods.
Purpose of the Study:
- To present a semi-automated tool for detecting cerebral microbleeds using the 3D radial symmetry transform.
- To assess the feasibility and usefulness of this tool in assisting human raters.
Main Methods:
- Adapted the 3D radial symmetry transform to detect spherical microbleeds on T2*-weighted 3.0 T MRI scans.
- Utilized data from 72 patients with ground truth ratings from four human raters.
- Compared the performance (sensitivity, time) of the automated tool against human ratings.
Main Results:
- The radial symmetry transform achieved sensitivities of 65%-84% compared to ground truth.
- Automated processing required 1-2 minutes per participant, with 20-96 false positives.
- Individual human raters had sensitivities of 39%-86% and required 5-10 minutes per participant.
Conclusions:
- The radial symmetry transform demonstrates high sensitivity and modest false positives for microbleed detection.
- The tool's performance is comparable to experienced human raters.
- This semi-automated approach is feasible and useful for improving microbleed detection efficiency and consistency.
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