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Optimized aperture shapes for depth estimation

机译:优化的光圈形状用于深度估计

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The finite depth of field of a real camera can be used to estimate the depth structure of a scene. The distance of an object from the plane in focus determines the defocus blur size. The shape of the blur depends on the shape of the aperture. The blur shape can be designed by masking the main lens aperture. In fact, aperture shapes different from the standard circular aperture give improved accuracy of depth estimation from defocus blur. We introduce an intuitive criterion to design aperture patterns for depth from defocus. The criterion is independent of a specific depth estimation algorithm. We formulate our design criterion by imposing constraints directly in the data domain and optimize the amount of depth information carried by blurred images. Our criterion is a quadratic function of the aperture transmission values. As such, it can be numerically evaluated to estimate optimized aperture patterns quickly. The proposed mask optimization procedure is applicable to different depth estimation scenarios. We use it for depth estimation from two images with different focus settings, for depth estimation from two images with different aperture shapes as well as for depth estimation from a single coded aperture image. In this work we show masks obtained with this new evaluation criterion and test their depth discrimination capability using a state-of-the-art depth estimation algorithm.
机译:真实摄像机的有限景深可用于估计场景的深度结构。物体与聚焦平面的距离决定了散焦模糊大小。模糊的形状取决于光圈的形状。可以通过遮盖主镜头光圈来设计模糊形状。实际上,不同于标准圆形光圈的光圈形状可提高散焦模糊深度估计的准确性。我们引入了一种直观的标准来设计用于散焦深度的光圈图案。该标准独立于特定的深度估计算法。我们通过直接在数据域中施加约束来制定设计标准,并优化模糊图像所承载的深度信息量。我们的标准是孔径传输值的二次函数。这样,可以对其进行数值评估以快速估计优化的孔径图案。所提出的掩模优化程序适用于不同的深度估计方案。我们将其用于从具有不同焦点设置的两个图像进行深度估计,从具有不同孔径形状的两个图像进行深度估计,以及从单个编码孔径图像进行的深度估计。在这项工作中,我们展示了使用此新评估标准获得的面罩,并使用最新的深度估计算法测试其深度识别能力。

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