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Automatic segmentation and quantification of the cardiac structures from non-contrast-enhanced cardiac CT scans
Rahil Shahzad1,2, Daniel Bos3,4, Ricardo P J Budde3,5
1Division of Image Processing, Department of Radiology, Leiden University Medical Center, 2300 RC Leiden, Netherlands.
Insights
This study presents an automatic method to segment cardiac structures from non-contrast computed tomography calcium scoring (CTCS) scans. This technique allows for large-scale heart assessments using lower-dose CTCS imaging, aiding in early detection of heart disease.
Area of Science:
- Medical Imaging
- Cardiology
- Computational Anatomy
Background:
- Early detection of pre-clinical heart disease relies on assessing structural heart changes.
- Contrast-enhanced cardiac computed tomography angiography (CCTA) is standard but involves contrast agents and higher radiation.
- Non-contrast CT calcium scoring (CTCS) scans are common, offering lower radiation and no contrast, but lack detail for cardiac structure quantification.
Purpose of the Study:
- To investigate the feasibility of automatic segmentation and quantification of cardiac structures from CTCS scans.
- To enable population-based studies using only CTCS imaging.
- To develop a method for assessing cardiac structures without contrast agents.
Main Methods:
- A fully automatic multi-atlas-based segmentation approach was employed.
- Cardiac structures segmented include the whole heart, left atrium, left ventricle, right atrium, right ventricle, and aortic root.
- Segmentation accuracy was evaluated using Dice similarity coefficient and surface-to-surface distance.
Main Results:
- The automatic segmentation achieved an average Dice similarity coefficient of 0.91 for cardiac chambers.
- The mean surface-to-surface distance error across all segmented cardiac structures was [Formula: see text] mm.
- Automatically derived cardiac chamber volumes from CTCS scans showed excellent correlation (Pearson's R = 0.95) with volumes from CCTA scans.
Conclusions:
- Fully automatic segmentation and quantification of cardiac structures from non-contrast CTCS scans is feasible.
- This method facilitates large-scale cardiac assessments using readily available, lower-dose CTCS data.
- The approach holds promise for population studies and early detection of cardiac conditions.
Abstract:
Early structural changes to the heart, including the chambers and the coronary arteries, provide important information on pre-clinical heart disease like cardiac failure. Currently, contrast-enhanced cardiac computed tomography angiography (CCTA) is the preferred modality for the visualization of the cardiac chambers and the coronaries. In clinical practice not every patient undergoes a CCTA scan; many patients receive only a non-contrast-enhanced calcium scoring CT scan (CTCS), which has less radiation dose and does not require the administration of contrast agent. Quantifying cardiac structures in such images is challenging, as they lack the contrast present in CCTA scans. Such quantification would however be relevant, as it enables population based studies with only a CTCS scan. The purpose of this work is therefore to investigate the feasibility of automatic segmentation and quantification of cardiac structures viz whole heart, left atrium, left ventricle, right atrium, right ventricle and aortic root from CTCS scans. A fully automatic multi-atlas-based segmentation approach is used to segment the cardiac structures. Results show that the segmentation overlap between the automatic method and that of the reference standard have a Dice similarity coefficient of 0.91 on average for the cardiac chambers. The mean surface-to-surface distance error over all the cardiac structures is [Formula: see text] mm. The automatically obtained cardiac chamber volumes using the CTCS scans have an excellent correlation when compared to the volumes in corresponding CCTA scans, a Pearson correlation coefficient (R) of 0.95 is obtained. Our fully automatic method enables large-scale assessment of cardiac structures on non-contrast-enhanced CT scans.
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