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Iterative Refinement of Uniformly Focused Image Set for Accurate Depth from Focus

机译:从焦点精确深度的均匀聚焦图像集的迭代细化

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摘要

Estimating the 3D shape of a scene from differently focused set of images has been a practical approach for 3D reconstruction with color cameras. However, reconstructed depth with existing depth from focus (DFF) methods still suffer from poor quality with textureless and object boundary regions. In this paper, we propose an improved depth estimation based on depth from focus iteratively refining 3D shape from uniformly focused image set (UFIS). We investigated the appearance changes in spatial and frequency domains in iterative manner. In order to achieve sub-frame accuracy in depth estimation, optimal location of focused frame in DFF is estimated by fitting a polynomial curve on the dissimilarity measurements. In order to avoid wrong depth values on texture-less regions we propose to build a confidence map and use it to identify erroneous depth estimations. We evaluated our method on public and our own datasets obtained from different types of devices, such as smartphones, medical, and normal color cameras. Quantitative and qualitative evaluations on various test image sets show promising performance of the proposed method in depth estimation.
机译:估计来自不同聚焦图像集的场景的3D形状是用彩色相机进行三维重建的实用方法。然而,具有焦点(DFF)方法的现有深度的重建深度仍然具有劣质的质量与织物和物体边界区域。在本文中,我们提出了基于从均匀聚焦图像集(UFIS)的聚焦迭代精制3D形状的深度改进的深度估计。我们以迭代方式调查了空间和频域的外观变化。为了在深度估计中实现子帧精度,通过在不同测量中拟合多项式曲线来估计DFF中聚焦帧的最佳位置。为了避免错误的纹理区域的错误深度值,我们建议建立一个置信度图并使用它来识别错误的深度估计。我们在公共和我们自己的数据集中评估了我们自己的数据集,从不同类型的设备获得,例如智能手机,医疗和普通彩色摄像头。各种测试图像集的定量和定性评估显示了深度估计中提出的方法的有希望的性能。

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