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DRGAN: a deep residual generative adversarial network for PET image reconstruction

机译:DRGAN:宠物图像重建的深度残留生成对抗网络

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Positron emission tomography (PET) image reconstruction from low-count projection data and physical effects is challenging because the inverse problem is ill-posed and the resultant image is usually noisy. Recently, generative adversarial networks (GANs) have also shown their superior performance in many computer vision tasks and attracted growing interests in medical imaging. In this work, the authors proposed a novel model [deep residual generative adversarial network (DRGAN)] based on GANs for the reduction of streaking artefacts and the improvement of PET image quality. An innovative feature of the proposed method is that the authors trained a generator to produce 'residual PET map' (RPM) for image representation, rather than generate PET images directly. DRGAN used two discriminators (critics) to enforce anatomically realistic PET images and RPM. To better boost the contextual information, the authors designed residual dense connections followed with pixel shuffle operations (RDPS blocks) that encourage feature reuse and prevent losing resolution. Both simulation data and real clinical PET data are used to evaluate the proposed method. Compared with other state-of-the-art methods, the quantification results show that DRGAN can achieve better performance in bias-variance trade-off and provide comparable image quality. Their results were rigorously evaluated by one radiologist at the Shanxi Cancer Hospital.
机译:来自低计数投影数据和物理效果的正电子发射断层扫描(PET)图像重建是具有挑战性的,因为逆问题没有构成,并且所得到的图像通常是嘈杂的。最近,生成的对抗性网络(GANs)还在许多计算机视觉任务中表现出了卓越的性能,并吸引了医学成像的日益增长的兴趣。在这项工作中,作者提出了一种基于GAN的新型模型[深度残余生成对抗性网络(DRGGAR)],用于减少条纹伪影和PET图像质量的提高。该方法的创新特征是作者培训了发电机以产生用于图像表示的“残留的PET地图”(RPM),而不是直接生成PET图像。 DRGAN使用了两种鉴别者(批评者)来强制执行解剖学上现实的宠物图像和转速。为了更好地提升上下文信息,作者设计了剩余密度连接,然后具有像素混洗操作(RDPS块),鼓励功能重用并防止失去分辨率。仿真数据和真实临床宠物数据都用于评估所提出的方法。与其他最先进的方法相比,量化结果表明,DRGAN可以在偏差折衷中实现更好的性能,并提供可比的图像质量。他们的结果由山西癌症医院的一个放射科医生严格评估。

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