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Lossless image coding based on minimum mean absolute error predictors

机译:基于最小平均绝对误差预测器的无损图像编码

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For prediction-based lossless image coding, the coding performance depends largely on the efficiency of predictors. In general, mmse predictors are well used, but these predictors suffer from large errors at edges. In response, the authors have proposed minimum mean absolute error (mmae) predictors which are less sensitive to edges. Mmae predictors provide accurate prediction and entropy of prediction errors is reduced. In this paper we infer prediction errors based on mmae and mmse predictors can be modeled by the Laplacian and Gaussian function, respectively, and conclude mmae predictors are superior to mmse predictors in terms of coding performance.
机译:对于基于预测的无损图像编码,编码性能在很大程度上取决于预测器的效率。通常,MMSE预测器使用得很好,但这些预测因子在边缘处受到大的误差。作为回应,作者提出了对边缘敏感的最小平均值误差(MMAE)预测器。 MMAE预测器提供准确的预测和预测误差的熵减少。在本文中,我们可以分别通过Laplacian和高斯函数来建模基于MMAE和MMSE预测器的预测误差,并且在编码性能方面,基于LAPLACIAN和高斯函数分别模拟MMAE预测器优于MMSE预测因子。

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