A rotating and squashing projector-backprojector pair for fan-beam and cone-beam iterative algorithms

G. L. Zeng, Y. Hsieh, G. Gullberg
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引用次数: 6

Abstract

The authors propose and implement a rotating-and-squashing projector-backprojector pair for fan-beam and cone-beam iterative algorithms. The motivation of their investigation is to significantly reduce both computation time and reconstruction artifacts when implementing attenuation, geometric and scatter correction models. At each projection angle, the authors' projector/backprojector first rotates the image volume so that the front face of the volume is parallel to the detector, then squashes the image volume so that the fan-beam and cone-beam rays are converted into parallel rays. In the authors' implementation, these two steps are combined and they only interpolate the voxel values once. The projection operation is achieved by a simple summation, and the backprojection operation is achieved by copying the projection array to the image volume. Another advantage of this projector/backprojector is that the system point response function can be deconvolved via the fast Fourier transform using the shift-invariant property of the point response function when the voxel-to-detector distance is constant. At each projection angle, the authors rotate and squash the image volume using interpolations. This causes smoothing of the image. However, this smoothing can be modeled as a point spread function and be deconvolved. The fan-beam and cone-beam rotating-and-squashing projector/backprojector have been implemented on a SPECT system for the EM-ML algorithm.<>
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扇形波束和锥波束迭代算法的旋转和压缩投影-反向投影对
作者提出并实现了一种用于扇束和锥束迭代算法的旋转-压缩投影-反向投影对。他们研究的动机是在实现衰减、几何和散射校正模型时显著减少计算时间和重建伪影。在每个投影角度,作者的投影仪/背向投影仪首先旋转成像体,使成像体的正面与探测器平行,然后压扁成像体,使扇束和锥束光线转换成平行光线。在作者的实现中,这两个步骤是结合在一起的,它们只插值体素值一次。投影操作通过简单求和实现,反向投影操作通过将投影数组复制到图像体中实现。这种投影仪/背向投影仪的另一个优点是,当体素到检测器的距离恒定时,利用点响应函数的移位不变性,可以通过快速傅立叶变换对系统点响应函数进行反卷积。在每个投影角度,作者使用插值旋转和压缩图像体积。这会使图像平滑。然而,这种平滑可以建模为点扩展函数并进行反卷积。在EM-ML算法的SPECT系统上实现了扇形波束和锥形波束旋转和压缩投影仪/背向投影仪。
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