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Edge-preserving image decomposition via joint weighted least squares

机译:通过联合加权最小二乘法进行边缘保留图像分解

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摘要

Abstract Recent years have witnessed the emergence of image decomposition techniques which effectively separate an image into a piecewise smooth base layer and several residual detail layers. However, the intricacy of detail patterns in some cases may result in side-effects including remnant textures, wrongly-smoothed edges, and distorted appearance. We introduce a new way to construct an edge-preserving image decomposition with properties of detail smoothing, edge retention, and shape fitting. Our method has three main steps: suppressing high-contrast details via a windowed variation similarity measure, detecting salient edges to produce an edge-guided image, and fitting the original shape using a weighted least squares framework. Experimental results indicate that the proposed approach can appropriately smooth non-edge regions even when textures and structures are similar in scale. The effectiveness of our approach is demonstrated in the contexts of detail manipulation, HDR tone mapping, and image abstraction.
机译:摘要近年来目睹了图像分解技术的出现,该技术有效地将图像分为分段的平滑基础层和几个剩余的细节层。但是,在某些情况下,细节图案的复杂性可能会导致副作用,包括残留的纹理,错误的平滑边缘和扭曲的外观。我们引入了一种新的方式来构造具有细节平滑,边缘保留和形状拟合特性的保留边缘的图像分解。我们的方法包括三个主要步骤:通过加窗变化相似度度量抑制高对比度细节;检测显着边缘以生成边缘引导图像;以及使用加权最小二乘框架拟合原始形状。实验结果表明,即使纹理和结构的比例相似,该方法也可以适当地平滑非边缘区域。在细节处理,HDR色调映射和图像抽象的上下文中证明了我们方法的有效性。

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