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Adaptive reconstruction of intermediate views from stereoscopic images

机译:从立体图像自适应重建中间视图

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This paper deals with disparity estimation and the reconstruction of intermediate views from stereoscopic images. Using block-wise maximum-likelihood (ML) disparity estimation, it was found that the Laplacian model outperformed the Cauchy and Gaussian models in terms of disparity compensation errors and the number of correspondence matches. The disparity values in occluded regions were then determined using both object-based and reliability-based interpolation. Finally, an adaptive technique was used to interpolate the intermediate views. One distinguishing characteristic of this algorithm is that the left and right-eye images were projected onto the plane of the intermediate view to be reconstructed. This resulted in two projected images. The intermediate view was created using a weighted average of these two projected images with the weights based on the quality of the corresponding areas of the projected images. Subjective examination of the reconstructed images indicate that they have high image quality and good stable depth when viewed stereoscopically. An objective evaluation with the test image sequence "Flower Garden" shows that the proposed algorithm can achieve a peak signal-to-noise ratio gain of around 1 dB, when compared to a reference algorithm.
机译:本文涉及视差估计和立体图像的中间视图的重建。使用块状最大似然(ML)视差估计,发现在视差补偿误差和对应匹配数方面,拉普拉斯模型优于柯西模型和高斯模型。然后使用基于对象和基于可靠性的插值确定被遮挡区域中的视差值。最后,使用自适应技术对中间视图进行插值。该算法的一个显着特征是将左眼图像和右眼图像投影到要重构的中间视图的平面上。这产生了两个投影图像。中间视图是使用这两个投影图像的加权平均值创建的,其权重基于投影图像相应区域的质量。对重建图像的主观检查表明,从立体观看时,它们具有较高的图像质量和良好的稳定深度。使用测试图像序列“花卉园”进行的客观评估表明,与参考算法相比,该算法可以实现约1 dB的峰值信噪比增益。

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