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Combining Compressed Sensing with motion correction in acquisition and reconstruction for PET/MR

机译:在宠物/先生的采集与重建中与运动校正组合压缩传感

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In the field of oncology, simultaneous Positron-Emission-Tomography/Magnetic Resonance (PET/MR) scanners offer a great potential for improving diagnostic accuracy. However, to achieve a high Signal-to-Noise Ratio (SNR) for an accurate lesion detection and quantification in the PET/MR images, one has to overcome the induced respiratory motion artifacts. The simultaneous acquisition allows performing a MR-based non-rigid motion correction of the PET data. It is essential to acquire a 4D (3D + time) motion model as accurate and fast as possible to minimize additional MR scan time overhead. Therefore, a Compressed Sensing (CS) acquisition by means of a variable-density Gaussian subsampling is employed to achieve high accelerations. Reformulating the sparse reconstruction as a combination of the inverse CS problem with a non-rigid motion correction improves the accuracy by alternately projecting the reconstruction results on either the motion-compensated CS reconstruction or on the motion model optimization. In-vivo patient data substantiates the diagnostic improvement.
机译:在肿瘤学领域,同时正电子发射断层扫描/磁共振(PET / MR)扫描仪提供了提高诊断准确性的巨大潜力。然而,为了在PET / MR图像中实现高信噪比(SNR),用于宠物/ MR图像中的精确病变检测和定量,必须克服诱导的呼吸运动伪影。同时采集允许执行PET数据的基于MR的非刚性运动校正。必须尽可能最大限度地获得4D(3D +时间)运动模型,以便最小化额外的MR扫描时间开销。因此,采用了通过可变密度高斯的数据采样来获取的压缩感测(CS)采集来实现高加速度。作为非刚性运动校正的逆CS问题的组合重新重新稀疏重建,通过交替地将重建结果或运动模型优化进行重建来提高精度来提高精度。体内患者数据证实了诊断改进。

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