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Detection and Classification of Invariant Blurs

机译:不变模糊的检测与分类

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摘要

A new algorithm for simultaneously detecting and identifying invariant blurs is proposed. This is mainly based on the behavior of extrema values in an image. It is computationally simple and fast thereby making it suitable for preprocessing especially in practical imaging applications. Benefits of employing this method includes the elimination of unnecessary processes since unblurred images will be separated from the blurred ones which require deconvolution. Additionally, it can improve reconstruction performance by proper identification of blur type so that a more effective blur specific deconvolution algorithm can be applied. Experimental results on natural images and its synthetically blurred versions show the characteristics and validity of the proposed method. Furthermore, it can be observed that feature selection makes the method more efficient and effective.
机译:提出了一种同时检测和识别不变模糊的新算法。这主要基于图像中极值的行为。它的计算简单而又快速,从而使其特别适用于实际成像应用中的预处理。采用这种方法的好处包括消除了不必要的过程,因为未模糊的图像将与需要反卷积的模糊图像分开。另外,它可以通过正确识别模糊类型来提高重建性能,从而可以应用更有效的模糊特定反卷积算法。在自然图像及其综合模糊版本上的实验结果表明了该方法的特点和有效性。此外,可以观察到特征选择使该方法更加有效。

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