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Resolution Enhancement of PMD Range Maps

机译:PMD范围图的分辨率增强

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Photonic mixer device (PMD) range cameras are becoming popular as an alternative to algorithmic 3D reconstruction but their main drawbacks are low-resolution (LR) and noise. Recently, some interesting works have stressed on resolution enhancement of PMD range data. These works use high-resolution (HR) CCD images or stereo pairs. But such a system requires complex setup and camera calibration. In contrast, we propose a super-resolution method through induced camera motion to create a HR range image from multiple LR range images. We follow a Bayesian framework by modeling the original HR range as a Markov random field (MRF). To handle discontinuities, we propose the use of an edge-adaptive MRF prior. Since such a prior renders the energy function non-convex, we minimize it by graduated non-convexity.
机译:光子混合器(PMD)测距相机已成为算法3D重建的替代方法,但其主要缺点是分辨率低(LR)和噪声小。最近,一些有趣的工作强调了PMD范围数据的分辨率增强。这些作品使用高分辨率(HR)CCD图像或立体声对。但是,这样的系统需要复杂的设置和摄像机校准。相比之下,我们提出了一种通过诱导相机运动来从多个LR范围图像创建HR范围图像的超分辨率方法。我们通过将原始HR范围建模为马尔可夫随机场(MRF)来遵循贝叶斯框架。为了处理不连续性,我们建议先使用边缘自适应MRF。由于这样的先验使能量函数不具有凸性,因此我们通过渐进的非凸性将其最小化。

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