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Updated: Jan 27, 2026

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Published on: July 20, 2022
Semiautomatic Estimation of Device Size for Left Atrial Appendage Occlusion in 3-D TEE Images
Insights
This study introduces a fast, semi-automatic method for measuring the left atrial appendage (LAA) to improve device selection for LAA occlusion in atrial fibrillation patients. The new technique reduces time and variability compared to manual measurements.
Area of Science:
- Cardiology
- Medical Imaging
- Computational Anatomy
Background:
- Left atrial appendage (LAA) occlusion is a key strategy to prevent thromboembolism in nonvalvular atrial fibrillation.
- Accurate device sizing for LAA occlusion is challenging due to manual measurement complexities and high interobserver variability.
Purpose of the Study:
- To develop and evaluate a semi-automatic solution for estimating critical clinical measurements required for LAA occlusion device selection.
- To enhance the speed and accuracy of LAA measurement compared to traditional manual methods.
Main Methods:
- 3-D segmentation of the LAA from transesophageal echocardiographic images using a blind-ended model.
- Template-based alignment of the segmented LAA surface, incorporating rigid alignment, orientation compensation, and anatomical refinement.
- Evaluation using a clinical database of 20 volumetric TEE images, comparing automated measurements against ground truth from two observers.
Main Results:
- The semi-automatic solution achieved measurement accuracy comparable to interobserver variability, with narrower limits of agreement.
- The method significantly reduced measurement time to approximately 40 seconds, compared to 3 minutes for manual analysis.
- The solution demonstrated robustness to variations in model parameters.
Conclusions:
- The proposed semi-automatic solution offers a fast, robust, and accurate method for estimating LAA measurements crucial for device selection in LAA occlusion procedures.
- This technique has the potential to significantly improve the efficiency and reliability of clinical practice for LAA occlusion.
Abstract:
Left atrial appendage (LAA) occlusion is used to reduce the risk of thromboembolism in patients with nonvalvular atrial fibrillation by obstructing the LAA through a percutaneously delivered device. Nonetheless, correct device sizing is complex, requiring the manual estimation of different measurements in preprocedural/periprocedural images, which is tedious and time-consuming and with high interobserver and intraobserver variability. In this paper, a semiautomatic solution to estimate the required relevant clinical measurements is described. This solution starts with the 3-D segmentation of the LAA in 3-D transesophageal echocardiographic images, using a constant blind-ended model initialized through a manually defined spline. Then, the segmented LAA surface is aligned with a set of templates, i.e., 3-D surfaces plus relevant measurement planes (manually defined by one observer), transferring the latter to the unknown situation. Specifically, the alignment is performed in three consecutive steps, namely: 1) rigid alignment using the LAA clipping plane position; 2) orientation compensation using the circumflex artery location; and 3) anatomical refinement through a weighted iterative closest point algorithm. The novel solution was evaluated in a clinical database with 20 volumetric TEE images. Two experiments were set up to assess: 1) the sensitivity of the model's parameters and 2) the accuracy of the proposed solution for the estimation of the clinical measurements. Measurement levels manually identified by two observers were used as ground truth. The proposed solution obtained results comparable to the interobserver variability, presenting narrower limits of agreement for all measurements. Moreover, this solution proved to be fast, taking nearly 40 s (manual analysis took 3 min) to estimate the relevant measurements while being robust to the variation of the model's parameters. Overall, the proposed solution showed its potential for fast and robust estimation of the clinical measurements for occluding device selection, proving its added value for clinical practice.
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