卷积神经网络
条纹
断层摄影术
领域(数学)
计算机断层摄影术
计算机科学
物理
人工智能
光学
放射科
数学
医学
纯数学
作者
Tom Kumschier,Johannes Thalhammer,Clemens Schmid,Jakob Haeusele,Thomas Koehler,Franz Pfeiffer,Tobias Lasser,Florian Schaff
摘要
Computed tomography (CT) relies on the attenuation of x-rays, and is, hence, of limited use for weakly attenuating organs of the body, such as the lung. X-ray dark-field (DF) imaging is a recently developed technology that utilizes x-ray optical gratings to enable small-angle scattering as an alternative contrast mechanism. The DF signal provides structural information about the micromorphology of an object, complementary to the conventional attenuation signal. A first human-scale x-ray DF CT has been developed by our group. Despite specialized processing algorithms, reconstructed images remain affected by streaking artifacts, which often hinder image interpretation. In recent years, convolutional neural networks have gained popularity in the field of CT reconstruction, amongst others for streak artefact removal.
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