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An edge-guided image interpolation algorithm via directional filtering and data fusion

机译:通过方向滤波和数据融合的边缘引导图像插值算法

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Preserving edge structures is a challenge to image interpolation algorithms that reconstruct a high-resolution image from a low-resolution counterpart. We propose a new edge-guided nonlinear interpolation technique through directional filtering and data fusion. For a pixel to be interpolated, two observation sets are defined in two orthogonal directions, and each set produces an estimate of the pixel value. These directional estimates, modeled as different noisy measurements of the missing pixel are fused by the linear minimum mean square-error estimation (LMMSE) technique into a more robust estimate, using the statistics of the two observation sets. We also present a simplified version of the LMMSE-based interpolation algorithm to reduce computational cost without sacrificing much the interpolation performance. Experiments show that the new interpolation techniques can preserve edge sharpness and reduce ringing artifacts.
机译:保留边缘结构是图像插值算法的一个挑战,该算法需要从低分辨率的对应图像中重建高分辨率的图像。我们通过定向滤波和数据融合提出了一种新的边缘引导非线性内插技术。对于要插值的像素,在两个正交方向上定义了两个观察集,并且每个观察集都会产生像素值的估计值。使用两个观测集的统计数据,通过线性最小均方误差估计(LMMSE)技术将这些定向估计(建模为丢失像素的不同噪声测量值)融合为更可靠的估计。我们还提出了一种基于LMMSE的插值算法的简化版本,以减少计算成本,而不会牺牲很多插值性能。实验表明,新的插值技术可以保留边缘清晰度并减少振铃伪影。

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