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Updated: Nov 21, 2025

Identifying Coronary Artery Calcification on Non-gated Computed Tomography Scans
Published on: August 28, 2018
Task-dependent estimability index to assess the quality of cardiac computed tomography angiography for quantifying
Ehsan Samei1, Taylor Richards1, William P Segars1
1Carl E Ravin Advanced Imaging Labs, Department of Radiology, Durham, North Carolina, United States.
Insights
A new computational framework objectively quantifies stenosis precision in cardiac CT angiography (CTA), improving image quality assessment for better coronary artery disease diagnosis.
Area of Science:
- Medical Imaging
- Cardiovascular Imaging
- Quantitative Imaging
Background:
- Quantifying coronary stenosis in cardiac computed tomography angiography (CTA) is challenging due to image noise and motion.
- Accurate stenosis quantification is crucial for diagnosing and managing coronary artery disease.
Purpose of the Study:
- To develop a computational framework for objectively assessing the precision of coronary stenosis quantification in cardiac CTA.
- To establish a task-based measure of image quality for cardiac CTA.
Main Methods:
- Integrated models of coronary vessels, plaques, motion, and CT image characteristics (blur, noise).
- Developed an estimability index () based on these factors.
- Validated the framework on 132 clinical cases from a major trial and assessed its applicability to Quantitative Imaging Biomarker Alliance (QIBA) objectives.
Main Results:
- The index achieved high performance in categorizing datasets (AUC 0.985, accuracy 0.977).
- An optimal threshold corresponded to a stenosis estimation precision of 3.91%.
- The framework demonstrated stable performance and successful application to QIBA objectives.
Conclusions:
- A computational framework was successfully implemented to objectively quantify stenosis estimation performance in cardiac CTA.
- The framework's results correlated with clinical evaluations, reflecting real-world performance across diverse settings.
- The framework can guide prospective optimization of imaging protocols for enhanced precision and consistency in cardiac CT analysis.
Abstract:
Purpose: Quantifying stenosis in cardiac computed tomography angiography (CTA) images remains a difficult task, as image noise and cardiac motion can degrade image quality and distort underlying anatomic information. The purpose of this study was to develop a computational framework to objectively assess the precision of quantifying coronary stenosis in cardiac CTA. Approach: The framework used models of coronary vessels and plaques, asymmetric motion point spread functions, CT image blur (task-based modulation transfer functions) and noise (noise-power spectrums), and an automated maximum-likelihood estimator implemented as a matched template squared-difference operator. These factors were integrated into an estimability index ( ) as a task-based measure of image quality in cardiac CTA. The index was applied to assess how well it can to predict the quality of 132 clinical cases selected from the Prospective Multicenter Imaging Study for Evaluation of Chest Pain trial. The cases were divided into two cohorts, high quality and low quality, based on clinical scores and the concordance of clinical evaluations of cases by experienced cardiac imagers. The framework was also used to ascertain protocol factors for CTA Biomarker initiative of the Quantitative Imaging Biomarker Alliance (QIBA). Results: The index categorized the patient datasets with an area under the curve of 0.985, an accuracy of 0.977, and an optimal threshold of 25.58 corresponding to a stenosis estimation precision (standard deviation) of 3.91%. Data resampling and training-test validation methods demonstrated stable classifier thresholds and receiver operating curve performance. The framework was successfully applicable to the QIBA objective. Conclusions: A computational framework to objectively quantify stenosis estimation task performance was successfully implemented and was reflective of clinical results in the context of a prominent clinical trial with diverse sites, readers, scanners, acquisition protocols, and patients. It also demonstrated the potential for prospective optimization of imaging protocols toward targeted precision and measurement consistency in cardiac CT images.
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