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Improving Low-dose Cardiac CT Images based on 3D Sparse Representation

机译:基于3D稀疏表示的低剂量心脏CT图像改善

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摘要

Cardiac computed tomography (CCT) is a reliable and accurate tool for diagnosis of coronary artery diseases and is also frequently used in surgery guidance. Low-dose scans should be considered in order to alleviate the harm to patients caused by X-ray radiation. However, low dose CT (LDCT) images tend to be degraded by quantum noise and streak artifacts. In order to improve the cardiac LDCT image quality, a 3D sparse representation-based processing (3D SR) is proposed by exploiting the sparsity and regularity of 3D anatomical features in CCT. The proposed method was evaluated by a clinical study of 14 patients. The performance of the proposed method was compared to the 2D spares representation-based processing (2D SR) and the state-of-the-art noise reduction algorithm BM4D. The visual assessment, quantitative assessment and qualitative assessment results show that the proposed approach can lead to effective noise/artifact suppression and detail preservation. Compared to the other two tested methods, 3D SR method can obtain results with image quality most close to the reference standard dose CT (SDCT) images.
机译:心脏计算机断层扫描(CCT)是诊断冠状动脉疾病的可靠且准确的工具,并且也经常用于手术指导中。为了减轻X射线对患者的伤害,应考虑进行小剂量扫描。但是,低剂量CT(LDCT)图像往往会因量子噪声和条纹伪影而劣化。为了提高心脏LDCT图像质量,通过利用CCT中3D解剖特征的稀疏性和规律性,提出了一种基于3D稀疏表示的处理(3D SR)。通过对14例患者的临床研究评估了提出的方法。将该方法的性能与基于2D备件表示的处理(2D SR)和最新的降噪算法BM4D进行了比较。视觉评估,定量评估和定性评估结果表明,该方法可以有效地抑制噪声/伪像并保留细节。与其他两种测试方法相比,3D SR方法可获得的图像质量最接近参考标准剂量CT(SDCT)图像的结果。

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