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Optimized Estimation of Scattered Radiation for X-ray Image Improvement: Realistic Simulation

机译:X射线图像改进散射辐射的优化估计:现实模拟

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摘要

Image processing algorithms for compensation of the scattered radiation influence in X-ray imaging are proposed, studied and optimized by numerical simulation. These algorithms include the scattering estimation by convolution (superposition) technique, estimation of kernel functions by Monte Carlo (MC) simulation, the determination of the optimal number and shape of kernel functions and image segmentation. The determination of the number and shape of kernel functions was performed by the MC simulation of the realistic Zubal phantom and the clustering analysis of shape features of kernel functions. Testing simulation study of the algorithms for chest images at 75 keV proves that the optimal number of kernel functions is equal to 8. This number provides the three-fold contrast enhancement without using the anti-scatter grids. The achieved contrast is about 95% of the primary image contrast that exceeds contrast enhancements achieved with anti-scatter grids. An increased number of used kernel functions provides a better image contrast and better resolution of scattered radiation image, but estimation errors also increase due to the segmentation and deconvolution errors.
机译:用数值模拟提出了用于补偿X射线成像中散射辐射影响的图像处理算法。这些算法包括卷积(叠加)技术的散射估计,通过蒙特卡罗(MC)模拟来估计内核功能,确定内核功能的最佳数量和形状和图像分割。通过逼真的拟象幻影的MC模拟来执行核函数的数量和形状,以及内核功能的形状特征的聚类分析。 75 keV的胸部图像算法测试模拟研究证明了内核函数的最佳数量等于8。此数字提供三倍的对比度增强,而无需使用防散网。实现的对比度是初级图像对比度的95%,其超过通过防散射网格实现的对比度增强。增加的核心函数的增加提供了更好的图像对比度和散射辐射图像的更好分辨率,但由于分段和解卷积误差,估计误差也增加。

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