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Regularization technique for restoration of x-ray fluoroscopic images

机译:X射线透视图像恢复的正则化技术

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Abstract: X-ray fluoroscopic images are degraded by x-ray scattering within the subject and veiling glare in the image intensifer. Densitometric accuracy is further degraded by beam hardening. Scattering, veiling glare, or both are modeled as a blurred representation of the primary image plus an offset. If the image can be represented by convolution of the primary with a known response function, then an estimate of the primary component of the image can be computed by deconvolution. We describe a technique for estimating a parameterized response function so that a good estimate of the subject density profile can be recovered even if the response function parameters are not known in advance. This is important for x-ray imaging (particularly fluoroscopy) since the acquisition parameters are variable. A reference object designed to be uncorrelated with the subject is imaged in superposition with the subject. The unknown parameters are then adjusted to minimize a cost function subject to the constraint that the correlation between the known reference density and the estimated subject density be zero. The method can be extended to include a correction for beam hardening. !5
机译:摘要:X射线透视图像会由于对象内部的X射线散射和图像增强器中的面纱眩光而退化。光束硬化会进一步降低光密度测量的准确性。散射,遮盖眩光或两者均建模为原始图像的模糊表示加上偏移量。如果图像可以通过主卷积与已知响应函数的卷积来表示,则可以通过解卷积来计算图像主成分的估计值。我们描述了一种估计参数化响应函数的技术,以便即使事先不知道响应函数参数,也可以恢复对对象密度分布的良好估计。这对于X射线成像(尤其是荧光检查)很重要,因为采集参数是可变的。设计成与对象不相关的参考对象与对象重叠成像。然后,在已知参考密度与估计主体密度之间的相关性为零的约束条件下,调整未知参数以最小化成本函数。该方法可以扩展为包括用于束硬化的校正。 !5

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