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A Novel Definition of Robustness for Image Processing Algorithms

机译:图像处理算法的鲁棒性的新定义

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As image gains much wider importance in our society, image processing has found various applications since the 60's: biomedical imagery, security and many more. A highly common issue in those processes is the presence of an uncontrolled and destructive perturbation generally referred to "noise". The ability of an algorithm to resist to this noise has been referred to as "robustness"; but this notion has never been clearly defined for image processing techniques. A wide bibliographic study showed that this term "robustness" is largely mixed up with others as efficiency, quality, etc., leading to a disturbing confusion. In this article, we propose a completely new framework to define the robustness of image processing algorithms, by considering multiple scales of additive noise. We show the relevance of our proposition by evaluating and by comparing the robustness of recent and more classic algorithms designed to two tasks: still image denoising and background subtraction in videos.
机译:随着图像在我们社会中的地位越来越重要,自60年代以来,图像处理已发现了各种应用:生物医学图像,安全性等等。在这些过程中,一个非常普遍的问题是存在不受控制的破坏性干扰,通常被称为“噪声”。算法抵抗这种噪声的能力被称为“鲁棒性”。但是这个概念尚未为图像处理技术明确定义。广泛的书目研究表明,“健壮性”一词在效率,质量等方面已与其他方面大为混淆,导致令人不安的混乱。在本文中,我们提出了一个全新的框架,通过考虑多种尺度的加性噪声​​来定义图像处理算法的鲁棒性。通过评估和比较针对两个任务设计的最新算法和更经典算法的鲁棒性,我们证明了我们的命题的相关性:静止图像降噪和视频中的背景扣除。

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