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Color image lossy compression based on blind evaluation and prediction of noise characteristics

机译:基于盲估计和噪声特征预测的彩色图像有损压缩

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The paper deals with JPEG adaptive lossy compression of color images formed by digital cameras. Adaptation to noise characteristics and blur estimated for each given image is carried out. The dominant factor degrading image quality is determined in a blind manner. Characteristics of this dominant factor are then estimated. Finally, a scaling factor that determines quantization steps for default JPEG table is adaptively set (selected). Within this general framework, two possible strategies are considered. A first one presumes blind estimation for an image after all operations in digital image processing chain just before compressing a given raster image. A second strategy is based on prediction of noise and blur parameters from analysis of RAW image under quite general assumptions concerning characteristics parameters of transformations an image will be subject to at further processing stages. The advantages of both strategies are discussed. The first strategy provides more accurate estimation and larger benefit in image compression ratio (CR) compared to super-high quality (SHQ) mode. However, it is more complicated and requires more resources. The second strategy is simpler but less beneficial. The proposed approaches are tested for quite many real life color images acquired by digital cameras and shown to provide more than two time increase of average CR compared to SHQ mode without introducing visible distortions with respect to SHQ compressed images.
机译:本文涉及由数码相机形成的彩色图像的JPEG自适应有损压缩。对每个给定图像进行噪声特征和估计的模糊适应。降低图像质量的主要因素是盲目确定的。然后估计该主导因素的特征。最后,自适应地设置(选择)确定默认JPEG表量化步长的比例因子。在此总体框架内,考虑了两种可能的策略。在压缩给定光栅图像之前,第一个假设是在数字图像处理链中的所有操作之后对图像进行盲估计。第二种策略是基于在有关图像转换的特征参数的更一般的假设下,根据对RAW图像的分析对噪声和模糊参数进行预测的基础。讨论了这两种策略的优点。与超高质量(SHQ)模式相比,第一种策略在图像压缩率(CR)方面提供了更准确的估计并带来了更大的收益。但是,它更复杂并且需要更多资源。第二种策略较为简单,但效益较低。所提出的方法已针对由数码相机获取的许多现实生活中的彩色图像进行了测试,并且显示出与SHQ模式相比,平均CR可以增加两倍以上,而不会对SHQ压缩图像造成明显的失真。

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