核医学
锥束ct
影像引导放射治疗
霍恩斯菲尔德秤
质子疗法
锥束ct
计算机科学
基本事实
放射治疗
医学
人工智能
数学
医学影像学
计算机断层摄影术
放射科
作者
Guillaume Landry,David C. Hansen,Florian Kamp,Minglun Li,B. Hoyle,J. Weller,Katia Parodi,Claus Belka,Christopher Kurz
标识
DOI:10.1088/1361-6560/aaf496
摘要
Image intensity correction is crucial to enable cone beam computed tomography (CBCT) based radiotherapy dose calculations. This study evaluated three different deep learning based correction methods using a U-shaped convolutional neural network architecture (Unet) in terms of their photon and proton dose calculation accuracy.
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