基于特征向量的模糊图像点源定位方法

Metin Gunsay, B. Jeffs
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引用次数: 0

摘要

我们解决了强度图像中模糊点源的解决和定位问题。提出了一种新的图像恢复方法,该方法是对DOA方向估计(direction of arrival estimation, DOA)技术的二维推广。结果表明,在频域,模糊的点源图像可以用类似线性传感器阵列对相干源的响应的结构来建模。因此,该问题可以转化为DOA估计的形式,并且可以采用基于特征向量的子空间分解算法(如MUSIC)来搜索这些点源。为了在协方差矩阵的信号空间中实现秩增强,提出了一种基于正则化算子的二维阵列平滑的推广方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An eigenvector based method for point source localization in blurred images
We address the problem of resolving and localizing blurred point sources in intensity images. A new approach to image restoration is introduced which is a 2-D generalization of techniques originating from the field of direction of arrival estimation (DOA). It is shown that in the frequency domain, blurred point source images can be modeled with a structure analogous to the response of linear sensor arrays to coherent sources. Thus the problem may be cast into the form of DOA estimation, and modern eigenvector based subspace decomposition algorithms, such as MUSIC, may be adapted to search for these point sources. A generalization of array smoothing based on a regularization operator is introduced for 2-D arrays in order to achieve rank enhancement in the signal space of the covariance matrix.<>
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