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Non-Uniform Contrast and Noise Correction for Coded Source Neutron Imaging

机译:编码源中子成像的非均匀对比度和噪声校正

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Since the first application of neutron radiography in the 1930s, the field of neutron radiography has matured enough to develop several applications. However, advances in the technology are far from concluded. In general, the resolution of scintillator-based detection systems is limited to the 10μm range, and the relatively low neutron count rate of neutron sources compared to other illumination sources restricts time resolved measurement. One path toward improved resolution is the use of magnification; however, to date neutron optics are inefficient, expensive, and difficult to develop. There is a clear demand for cost-effective scintillator-based neutron imaging systems that achieve resolutions of 1μm or less. Such imaging system would dramatically extend the application of neutron imaging. For such purposes a coded source imaging system is under development. The current challenge is to reduce artifacts in the reconstructed coded source images. Artifacts are generated by non-uniform illumination of the source, gamma rays, dark current at the imaging sensor, and system noise from the reconstruction kernel. In this paper, we describe how to pre-process the coded signal to reduce noise and non-uniform illumination, and how to reconstruct the coded signal with three reconstruction methods correlation, maximum likelihood estimation, and algebraic reconstruction technique. We illustrates our results with experimental examples.
机译:自1930年代首次应用中子射线照相以来,中子射线照相领域已经足够成熟,可以开发出多种应用程序。但是,该技术的进步远未得出结论。通常,基于闪烁体的检测系统的分辨率限制在10μm范围内,与其他照明源相比,中子源的中子计数率相对较低,这限制了时间分辨的测量。使用放大倍数是提高分辨率的一条途径。然而,迄今为止,中子光学器件效率低下,价格昂贵并且难以开发。显然需要具有成本效益的基于闪烁体的中子成像系统,该系统可实现1μm或更小的分辨率。这样的成像系统将极大地扩展中子成像的应用。为此目的,正在开发编码源成像系统。当前的挑战是减少重构的编码源图像中的伪像。伪影是由光源的不均匀照明,伽玛射线,成像传感器处的暗电流以及来自重建内核的系统噪声产生的。在本文中,我们描述了如何对编码信号进行预处理以减少噪声和不均匀照明,以及如何使用三种重建方法相关性,最大似然估计和代数重建技术来重建编码信号。我们通过实验示例来说明我们的结果。

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