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基于马尔可夫链的 MAP 图像插值方法及其 Viterbi 解码。

A MAP-based image interpolation method via Viterbi decoding of Markov chains of interpolation functions.

出版信息

IEEE Trans Image Process. 2014 Jan;23(1):424-38. doi: 10.1109/TIP.2013.2290586.

Abstract

A new method of image resolution up-conversion (image interpolation) based on maximum a posteriori sequence estimation is proposed. Instead of making a hard decision about the value of each missing pixel, we estimate the missing pixels in groups. At each missing pixel of the high resolution (HR) image, we consider an ensemble of candidate interpolation methods (interpolation functions). The interpolation functions are interpreted as states of a Markov model. In other words, the proposed method undergoes state transitions from one missing pixel position to the next. Accordingly, the interpolation problem is translated to the problem of estimating the optimal sequence of interpolation functions corresponding to the sequence of missing HR pixel positions. We derive a parameter-free probabilistic model for this to-be-estimated sequence of interpolation functions. Then, we solve the estimation problem using a trellis representation and the Viterbi algorithm. Using directional interpolation functions and sequence estimation techniques, we classify the new algorithm as an adaptive directional interpolation using soft-decision estimation techniques. Experimental results show that the proposed algorithm yields images with higher or comparable peak signal-to-noise ratios compared with some benchmark interpolation methods in the literature while being efficient in terms of implementation and complexity considerations.

摘要

提出了一种基于最大后验序列估计的新的图像分辨率上转换(图像插值)方法。我们不是对每个缺失像素的值进行硬判决,而是对缺失像素进行分组估计。在高分辨率(HR)图像的每个缺失像素处,我们考虑一组候选插值方法(插值函数)。插值函数被解释为马尔可夫模型的状态。换句话说,所提出的方法经历了从一个缺失像素位置到下一个位置的状态转换。因此,插值问题被转化为估计与缺失 HR 像素位置序列相对应的最佳插值函数序列的问题。我们为这个要估计的插值函数序列推导出一个无参数的概率模型。然后,我们使用网格表示和维特比算法来解决估计问题。通过使用方向插值函数和序列估计技术,我们将新算法归类为使用软判决估计技术的自适应方向插值。实验结果表明,与文献中的一些基准插值方法相比,所提出的算法在实现和复杂度方面都具有效率优势,能够生成具有更高或可比峰值信噪比的图像。

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