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Visibly accurate model-based binary image compression scheme

机译:基于明显准确的模型的二元图像压缩方案

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In this paper we propose a model-based binary image compression scheme. In this scheme, we merge one-dimensional (1-D) blocks of black pixels of the input binary image with those in consecutive rows into larger blocks using mathematical models that preserve the quality of the image. This process reduces the number of vertices when the image is segmented into rectangles for compression. The top-left and the bottom-right vertices of each generated rectangle are then identified and the coordinates of which are efficiently encoded. The model for merging the blocks was obtained through extracting the data values involving the blocks of various widths and the subjective tolerance of an average viewer. The data values are then plotted on a Cartesian plane and approximated with linear, logarithmic, and polynomial functions. Simulation results show that the images after merging using the proposed model have less number of rectangles without any obvious image distortion and have higher compression ratio those rectangular partitioning methods in the literature.
机译:在本文中,我们提出了一种基于模型的二进制图像压缩方案。在该方案中,我们将输入二进制图像的一维(1-D)块与连续行中的那些与保持图像质量的数学模型的数学模型中的连续行中的那些相结合到更大的块中。当图像被分割成矩形时,该过程减少了顶点的数量以进行压缩。然后识别每个生成的矩形的左上角和右下角,并且有效地编码其坐标。通过提取涉及各种宽度块和平均观看者的主观公差的数据值来获得用于合并块的模型。然后在笛卡尔平面上绘制数据值并用线性,对数和多项式函数近似。仿真结果表明,使用所提出的模型合并后的图像具有较少数量的矩形,而没有任何明显的图像失真,并且文献中具有更高的压缩比这些矩形隔置方法。

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