Comparison of automated segmentation techniques for magnetic resonance images of the prostate

分割 基本事实 计算机科学 人工智能 轮廓 Sørensen–骰子系数 深度学习 像素 磁共振成像 豪斯多夫距离 图像分割 百分位 标准差 模式识别(心理学) 计算机视觉 医学 放射科 数学 统计 计算机图形学(图像)
作者
Lars Johannes Isaksson,Matteo Pepa,Paul Summers,Mattia Zaffaroni,Maria Giulia Vincini,Giulia Corrao,Giovanni Mazzola,Marco Rotondi,Giuliana Lo Presti,Sara Raimondi,Sara Gandini,Stefania Volpe,Zaharudin Haron,Sarah Alessi,Paola Pricolo,Francesco Alessandro Mistretta,Stefano Luzzago,Federica Cattani,Gennaro Musi,Ottavio De Cobelli
出处
期刊:BMC Medical Imaging [BioMed Central]
卷期号:23 (1) 被引量:10
标识
DOI:10.1186/s12880-023-00974-y
摘要

Abstract Background Contouring of anatomical regions is a crucial step in the medical workflow and is both time-consuming and prone to intra- and inter-observer variability. This study compares different strategies for automatic segmentation of the prostate in T2-weighted MRIs. Methods This study included 100 patients diagnosed with prostate adenocarcinoma who had undergone multi-parametric MRI and prostatectomy. From the T2-weighted MR images, ground truth segmentation masks were established by consensus from two expert radiologists. The prostate was then automatically contoured with six different methods: (1) a multi-atlas algorithm, (2) a proprietary algorithm in the Syngo.Via medical imaging software, and four deep learning models: (3) a V-net trained from scratch, (4) a pre-trained 2D U-net, (5) a GAN extension of the 2D U-net, and (6) a segmentation-adapted EfficientDet architecture. The resulting segmentations were compared and scored against the ground truth masks with one 70/30 and one 50/50 train/test data split. We also analyzed the association between segmentation performance and clinical variables. Results The best performing method was the adapted EfficientDet (model 6), achieving a mean Dice coefficient of 0.914, a mean absolute volume difference of 5.9%, a mean surface distance (MSD) of 1.93 pixels, and a mean 95th percentile Hausdorff distance of 3.77 pixels. The deep learning models were less prone to serious errors (0.854 minimum Dice and 4.02 maximum MSD), and no significant relationship was found between segmentation performance and clinical variables. Conclusions Deep learning-based segmentation techniques can consistently achieve Dice coefficients of 0.9 or above with as few as 50 training patients, regardless of architectural archetype. The atlas-based and Syngo.via methods found in commercial clinical software performed significantly worse (0.855 $$-$$ - 0.887 Dice).
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