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Color quantization by hierarchical octa-partition in RGB color space

机译:RGB颜色空间中的分层Octa分区颜色量化

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Digital color images are widely used in our daily life, especially for smart-phone users. However, the storage and processing of the digital images consume a lot of hardware resources. To reduce the data amount of a true-color image, the indexed image is one common solution. In transforming a true-color image into an indexed image, the true-color space should be quantized into 256 colors to meet the usual size of a color-map. In this paper, we propose a new method to analyze an image's color distribution and produce its color-map for transforming to an indexed image. In most natural images, the color distribution of the image pixels is highly concentrated in some restricted regions. Equally-spaced quantization, of course, does not produce satisfactory results. We propose a new method that iteratively partitions the color space cube into eight equally sized sub-cubes. However, in doing so, we apply a pre-defined criterion to decide whether each sub-cube will be further partitioned. The decision criterion is based on the population size of the sub-cube. In this way, the regions where the most pixels concentrate in will be partitioned into finer sub-cubes and thus increases their discrimination after quantization. We applied the new proposed method to several types of true-color images and analyzed the resulting numerical errors. In addition, we utilized the error diffusion dithering technique to improve their visual effect. Satisfactory results were obtained.
机译:数字彩色图像广泛用于我们日常生活中,特别是对于智能手机用户。但是,数字图像的存储和处理消耗了很多硬件资源。为了减少真彩色图像的数据量,索引图像是一个通用解决方案。在将真彩色图像转换为索引图像时,应将真色空间量化为256种颜色,以满足颜色图的通常大小。在本文中,我们提出了一种新方法来分析图像的颜色分布,并产生其颜色图以进行转换为索引图像。在大多数自然图像中,图像像素的颜色分布在一些限制区域中高度集中。当然,同样间隔量化不会产生令人满意的结果。我们提出了一种新方法,可迭代地将颜色空间立方体分为八个同等大小的子立方体。但是,在这样做时,我们应用预定义的标准来确定每个子立方体是否将进一步分区。判定标准基于子立方体的人口大小。以这种方式,将大多数像素集中的区域将被分成更精细的子立方体,因此在量化之后增加它们的辨别。我们将新的提出方法应用于几种类型的真彩色图像并分析了结果的数值误差。此外,我们利用误差扩散抖动技术来提高它们的视觉效果。获得了令人满意的结果。

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