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Markov Random Field Model-Based Edge-Directed Image Interpolation

机译:基于马尔可夫随机场模型的边缘定向图像插值

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摘要

This paper presents an edge-directed image interpolation algorithm. In the proposed algorithm, the edge directions are implicitly estimated with a statistical-based approach. In opposite to explicit edge directions, the local edge directions are indicated by length-16 weighting vectors. Implicitly, the weighting vectors are used to formulate geometric regularity (GR) constraint (smoothness along edges and sharpness across edges) and the GR constraint is imposed on the interpolated image through the Markov random field (MRF) model. Furthermore, under the maximum a posteriori-MRF framework, the desired interpolated image corresponds to the minimal energy state of a 2-D random field given the low-resolution image. Simulated annealing methods are used to search for the minimal energy state from the state space. To lower the computational complexity of MRF, a single-pass implementation is designed, which performs nearly as well as the iterative optimization. Simulation results show that the proposed MRF model-based edge-directed interpolation method produces edges with strong geometric regularity. Compared to traditional methods and other edge-directed interpolation methods, the proposed method improves the subjective quality of the interpolated edges while maintaining a high PSNR level.
机译:本文提出了一种边缘导向的图像插值算法。在提出的算法中,通过基于统计的方法隐式估计边缘方向。与显式边缘方向相反,局部边缘方向由长度为16的加权向量表示。隐式地,将加权矢量用于制定几何规则性(GR)约束(沿边缘的平滑度和跨边缘的锐度),并且通过Markov随机场(MRF)模型将GR约束施加到插值图像上。此外,在最大后验-MRF框架下,给定低分辨率图像,所需的内插图像对应于二维随机场的最小能量状态。模拟退火方法用于从状态空间中搜索最小能量状态。为了降低MRF的计算复杂度,设计了一种单遍实现,该实现的性能几乎与迭代优化一样好。仿真结果表明,基于MRF模型的边缘定向插值方法产生的几何规则性强。与传统方法和其他边缘定向插值方法相比,该方法提高了插值边缘的主观质量,同时保持了较高的PSNR水平。

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