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Screen content image segmentation using least absolute deviation fitting

机译:使用最小绝对偏差拟合的屏幕内容图像分割

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We propose an algorithm for separating the foreground (mainly text and line graphics) from the smoothly varying background in screen content images. The proposed method is designed based on the assumption that the background part of the image is smoothly varying and can be represented by a linear combination of a few smoothly varying basis functions, while the foreground text and graphics create sharp discontinuity and cannot be modeled by this smooth representation. The algorithm separates the background and foreground using a least absolute deviation method to fit the smooth model to the image pixels. This algorithm has been tested on several images from HEVC standard test sequences for screen content coding, and is shown to have superior performance over other popular methods, such as k-means clustering based segmentation in DjVu and shape primitive extraction and coding (SPEC) algorithm. Such background/foreground segmentation are important pre-processing steps for text extraction and separate coding of background and foreground for compression of screen content images.
机译:我们提出了一种用于将前景(主要是文本和线条图形)与屏幕内容图像中平滑变化的背景分开的算法。基于以下假设设计提出的方法:图像的背景部分是平滑变化的,并且可以由一些平滑变化的基函数的线性组合表示,而前景文本和图形会产生尖锐的不连续性,因此无法建模平滑的表示。该算法使用最小绝对偏差法将背景和前景分开,以使平滑模型适合图像像素。该算法已在来自HEVC标准测试序列的几幅图像上进行了屏幕内容编码测试,并且显示出优于其他流行方法的性能,例如DjVu中基于k均值聚类的分割以及形状原始提取和编码(SPEC)算法。这样的背景/前景分割是用于文本提取和背景和前景的单独编码以压缩屏幕内容图像的重要预处理步骤。

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