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Chabiniok, R; Zou, Q; Hussain, T; Nguyen, H; Zaha, V; Gusseva, M (Ed.)Free, publicly-accessible full text available May 29, 2026
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Delavald_Marques, Augusto; Naqizadeh_Jahromi, Mohammad; Wellner, Luigi; Hannum, Ariel J; Liu, Zhan-Qiu; Wu, Dazhong; Ennis, Daniel B; Perotti, Luigi E (, Springer, Cham)Chabiniok, R; Zou, Q; Hussain, T; Nguyen, H; Zaha, V; Gusseva, M (Ed.)Free, publicly-accessible full text available May 29, 2026
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Delavald_Marques, Augusto; Naqizadeh_Jahromi, Mohammad; Wellner, Luigi; Hannum, Ariel J; Liu, Zhan-Qiu; Wu, Dazhong; Ennis, Daniel B; Perotti, Luigi E (, Springer, Cham)Free, publicly-accessible full text available May 29, 2026
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Jahromi, Mohammad Naqizadeh; Marques, Augusto Delavald; Ahmed, Mehlil; Liu, Zhan-Qiu; Hannum, Ariel J; Ennis, Daniel B; Perotti, Luigi E; Wu, Dazhong (, IEEE)This study explores the application of deep learning to the segmentation of DENSE cardiovascular magnetic resonance (CMR) images, which is an important step in the analysis of cardiac deformation and may help in the diagnosis of heart conditions. A self-adapting method based on the nnU-Net framework is introduced to enhance the accuracy of DENSE-MR image segmentation, with a particular focus on the left ventricle myocardium (LVM) and left ventricle cavity (LVC), by leveraging the phase information in the cine DENSE-MR images. Two models are built and compared: 1) ModelM, which uses only the magnitude of the DENSE-MR images; and 2) ModelMP, which incorporates magnitude and phase images. DENSE-MR images from 10 human volunteers processed using the DENSE-Analysis MATLAB toolbox were included in this study. The two models were trained using a 2D UNet-based architecture with a loss function combining the Dice similarity coefficient (DSC) and cross-entropy. The findings show the effectiveness of leveraging the phase information with ModelMP resulting in a higher DSC and improved image segmentation, especially in challenging cases, e.g., at early systole and with basal and apical slices.more » « less
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