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Data processing and image reconstruction methods for pixel detectors

机译:像素检测器的数据处理和图像重建方法

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摘要

Semiconductor single-particle-counting pixel detectors offer many advantages for radiation imaging: high detection efficiency, energy discrimination, noiseless digital integration (counting), high frame rate and virtually unlimited dynamic range. All these properties allow to achieve high quality images. Examples of transmission images and 3D tomographic reconstruction using X-rays and slow neutrons are presented demonstrating effects that can affect the quality of images. A number of obstacles can limit detector performance if not handled. The pixel detector is in fact an array of individual detectors (pixels), each of them has its own efficiency, energy calibration and also noise. The common effort is to make all these parameters uniform for all pixels. However, an ideal uniformity can be never reached. Moreover, it is often seen that the signal in one pixel affects neighboring pixels due to various reasons (charge sharing, crosstalk, etc.). All such effects have to be taken into account during data processing to avoid false data interpretation. The main intention of this contribution is to summarize techniques of data processing and image correction to eliminate residual drawbacks of pixel detectors. It is shown how to extend these methods to handle further physical effects such as hardening of the beam and edge enhancement by deflection. Besides, more advanced methods of data processing such as tomographic 3D reconstruction are discussed. All methods are demonstrated on real experiments from biology and material science performed mostly with the Medipix2 pixel device. A brief view to the future of pixel detectors and their applications also including spectroscopy and particle tracking is given too.
机译:半导体单粒子计数像素检测器为放射线成像提供了许多优势:检测效率高,能量辨别,无噪声数字积分(计数),高帧频和几乎无限的动态范围。所有这些特性都可以实现高质量的图像。给出了透射图像和使用X射线和慢速中子进行3D层析成像重建的示例,展示了可能影响图像质量的效果。如果不处理,许多障碍会限制检测器的性能。像素检测器实际上是单个检测器(像素)的阵列,每个检测器都有自己的效率,能量校准以及噪声。共同的努力是使所有像素的所有这些参数统一。但是,永远不可能达到理想的均匀性。此外,经常看到一个像素中的信号由于各种原因(电荷共享,串扰等)而影响相邻像素。在数据处理期间必须考虑所有这些影响,以避免错误的数据解释。该贡献的主要目的是总结数据处理和图像校正技术,以消除像素检测器的残留缺陷。显示了如何扩展这些方法以处理进一步的物理效果,例如光束硬化和通过偏转增强边缘。此外,还讨论了更先进的数据处理方法,例如断层扫描3D重建。所有方法都在主要由Medipix2像素设备执行的生物学和材料科学的真实实验中得到证明。还简要介绍了像素检测器及其应用的未来,包括光谱学和粒子跟踪。

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