...
首页> 外文期刊>BioMedical Engineering OnLine >A method of extending the depth of focus of the high-resolution X-ray imaging system employing optical lens and scintillator: a phantom study
【24h】

A method of extending the depth of focus of the high-resolution X-ray imaging system employing optical lens and scintillator: a phantom study

机译:扩展使用光学透镜和闪烁体的高分辨率X射线成像系统的焦深的方法:幻像研究

获取原文
           

摘要

The high-resolution X-ray imaging system employing synchrotron radiation source, thin scintillator, optical lens and advanced CCD camera can achieve a resolution in the range of tens of nanometers to sub-micrometer. Based on this advantage, it can effectively image tissues, cells and many other small samples, especially the calcification in the vascular or in the glomerulus. In general, the thickness of the scintillator should be several micrometers or even within nanometers because it has a big relationship with the resolution. However, it is difficult to make the scintillator so thin, and additionally thin scintillator may greatly reduce the efficiency of collecting photons. In this paper, we propose an approach to extend the depth of focus (DOF) to solve these problems. We develop equation sets by deducing the relationship between the high-resolution image generated by the scintillator and the degraded blur image due to defect of focus first, and then we adopt projection onto convex sets (POCS) and total variation algorithm to get the solution of the equation sets and to recover the blur image. By using a 20 μm thick unmatching scintillator to replace the 1 μm thick matching one, we simulated a high-resolution X-ray imaging system and got a degraded blur image. Based on the algorithm proposed, we recovered the blur image and the result in the experiment showed that the proposed algorithm has good performance on the recovery of image blur caused by unmatching thickness of scintillator. The method proposed is testified to be able to efficiently recover the degraded image due to defect of focus. But, the quality of the recovery image especially of the low contrast image depends on the noise level of the degraded blur image, so there is room for improving and the corresponding denoising algorithm is worthy for further study and discussion.
机译:采用同步加速器辐射源,薄闪烁体,光学透镜和先进的CCD相机的高分辨率X射线成像系统可以实现数十纳米至亚微米的分辨率。基于此优势,它可以对组织,细胞和许多其他小样本进行有效成像,尤其是血管或肾小球中的钙化。通常,闪烁体的厚度应为几微米甚至几纳米,因为它与分辨率有很大关系。但是,很难使闪烁体如此薄,另外,薄的闪烁体会大大降低收集光子的效率。在本文中,我们提出了一种扩展焦深(DOF)的方法来解决这些问题。我们先推导闪烁体生成的高分辨率图像与由于聚焦缺陷而导致的降级模糊图像之间的关系,从而开发方程组,然后采用凸集投影(POCS)和总变分算法来求解等式设置并恢复模糊图像。通过使用20μm厚的不匹配闪烁体替换1μm厚的匹配闪烁体,我们模拟了高分辨率X射线成像系统,并得到了退化的模糊图像。基于提出的算法,对模糊图像进行了恢复,实验结果表明,该算法在闪烁体厚度不匹配的情况下具有良好的图像模糊恢复性能。经证明,所提出的方法能够有效地恢复由于聚焦缺陷而导致的劣化图像。但是,恢复图像的质量,特别是低对比度图像的质量,取决于降级模糊图像的噪声水平,因此有改进的空间,相应的降噪算法值得进一步研究和讨论。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号