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Parallel image processing algorithms for coincidence Doppler broadening spectra

机译:并行多普勒加宽光谱的图像处理算法

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There been a renewed interest in the technique of coincidence Doppler broadening spectroscopy (CDBS) in which one-dimensional electronic momenta in materials are studied by means of the energies of the two gamma-rays emitted in the process of positron annihilation. Advantages of CDBS over conventional positron Doppler spectroscopy are its 40% improved resolution and its much reduced background noise at high momenta. The present work capitalizes on the fact that CDBS raw data is in the form of a very large two-dimensional image, with excellent prospects for designing parallel deconvolution algorithms for the removal of the instrumental error of measurement that arises from the availability of an accurate point spread function in the reference gamma-ray line of Sr at 514 keV. The generalized least-square method with Tikhonov-Miller regularization is developed by incorporating a priori information of non-negativity into the mathematical regularization technique for the solution of blurring matrix equations. The paper reports the performance of the parallel image deconvolution algorithm on the IBM SP2 computer.
机译:巧合多普勒增宽光谱技术(CDBS)引起了人们的新兴趣,在该技术中,正电子ni灭过程中通过发射的两个伽马射线的能量研究了材料中的一维电子动量。与传统的正电子多普勒光谱法相比,CDBS的优势在于其分辨率提高了40%,并且在高动量时背景噪声大大降低。目前的工作是利用CDBS原始数据是非常大的二维图像的形式这一事实,对于设计并行去卷积算法以消除由于精确点的可用性而导致的仪器误差的研究具有极好的前景。在514 keV时在Sr的参考伽马射线线中的扩散函数。通过将非负性的先验信息合并到数学正则化技术中以解决矩阵矩阵方程的模糊问题,开发了具有Tikhonov-Miller正则化的广义最小二乘法。该白皮书报告了IBM SP2计算机上并行图像反卷积算法的性能。

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