Evaluation of fully automated commercial software for Agatston calcium scoring on non-ECG-gated low-dose chest CT with different slice thickness.

Kang, Hyun Woo; Ahn, Woo Jin; Jeong, Ju Hyun; Suh, Young Joo; Yang, Dong Hyun; Choi, Hangseok; Hwang, Sung Ho; Yong, Hwan Seok et al. · Eur Radiol · 2023

retrospective_cohort · Level III

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Abstract

To evaluate commercial deep learning-based software for fully automated coronary artery calcium (CAC) scoring on non-electrocardiogram (ECG)-gated low-dose CT (LDCT) with different slice thicknesses compared with manual ECG-gated calcium-scoring CT (CSCT). This retrospective study included 567 patients who underwent both LDCT and CSCT. All LDCT images were reconstructed with a 2.5-mm slice thickness (LDCT<sub>2.5-mm</sub>), and 453 LDCT scans were reconstructed with a 1.0-mm slice thickness (LDCT<sub>1.0-mm</sub>). Automated CAC scoring was performed on CSCT (CSCT<sub>auto</sub>), LDCT<sub>1.0-mm</sub>, and LDCT<sub>2.5-mm</sub> images. The reliability of CSCT<sub>auto</sub>, LDCT<sub>1.0-mm</sub>, and LDCT<sub>2.5-mm</sub> was compared with manual CSCT scoring (CSCT<sub>manual</sub>) using intraclass correlation coefficients (ICCs) and Bland-Altman analysis. Agreement, in CAC severity category, was analyzed using weighted kappa statistics. Diagnostic performance at various Agatston score cutoffs was also calculated. CSCT<sub>auto</sub>, LDCT<sub>1.0-mm</sub>, and LDCT<sub>2.5-mm</sub> demonstrated excellent agreement with CSCT<sub>manual</sub> (ICC [95% confidence interval, CI]: 1.000 [1.000, 1.000], 0.937 [0.917, 0.952], and 0.955 [0.946, 0.963], respectively). The mean difference with 95% limits of agreement was lower with LDCT<sub>1.0-mm</sub> than with LDCT<sub>2.5-mm</sub> (19.94 [95% CI, -244.0, 283.9] vs. 45.26 [-248.2, 338.7]). Regarding CAC severity, LDCT<sub>1.0-mm</sub> achieved almost perfect agreement, and LDCT<sub>2.5-mm</sub> achieved substantial agreement (kappa [95% CI]: 0.809 [0.776, 0.838], 0.776 [0.740, 0.809], respectively). Diagnostic performance for detecting Agatston score ≥ 400 was also higher with LDCT<sub>1.0-mm</sub> than with LDCT<sub>2.5-mm</sub> (F1 score, 0.929 vs. 0.855). Fully automated CAC-scoring software with both CSCT and LDCT yielded excellent reliability and agreement with CSCT<sub>manual</sub>. LDCT<sub>1.0-mm</sub> yielded more accurate Agatston scoring than LDCT<sub>2.5-mm</sub> using fully automated commercial software. • Total Agatston scores and all vessels of CSCT<sub>auto</sub>, LDCT<sub>1.0-mm</sub>, and LDCT<sub>2.5-mm</sub> demonstrated excellent agreement with CSCT<sub>manual</sub> (all ICC > 0.85). • The diagnostic performance for detecting all Agatston score cutoffs was better with LDCT<sub>1.0-mm</sub> than with LDCT<sub>2.5-mm</sub>. • This automated software yielded a lower degree of underestimation compared with methods described in previous studies, and the degree of underestimation was lower with LDCT<sub>1.0-mm</sub> than with LDCT<sub>2.5-mm</sub>.

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