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Accelerating defocus blur magnification

机译:加快散焦模糊放大率

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A shallow depth-of-field is often used as a creative element in photographs. This, however, comes at the cost of expensive and heavy camera equipment, such as large sensor DSLR bodies and fast lenses. In contrast, cheap small-sensor cameras with fixed lenses usually exhibit a larger depth-of-field than desirable. In this case a computational solution is suggesting, since a shallow depth-of-field cannot be achieved by optical means. One possibility is to algorithmically increase the defocus blur already present in the image. Yet, existing algorithmic solutions tackling this problem suffer from poor performance due to the ill-posedness of the problem: The amount of defocus blur can be estimated at edges only; homogeneous areas do not contain such information. However, to magnify the defocus blur we need to know the amount of blur at every pixel position. Estimating it requires solving an optimization problem with many unknowns. We propose a faster way to propagate the amount of blur from the edges to the entire image by solving the optimization problem on a small scale, followed by edge-aware upsampling using the original image as guide. The resulting approximate defocus map can be used to synthesize images with shallow depth-of-field with quality comparable to the original approach. This is demonstrated by experimental results.
机译:浅景深通常用作照片中的创意元素。但是,这是以昂贵且笨重的相机设备为代价的,例如大型传感器DSLR机身和快速镜头。相比之下,廉价的带有固定镜头的小传感器照相机通常表现出比期望的更大的景深。在这种情况下,提出了一种计算解决方案,因为不能通过光学手段实现浅景深。一种可能性是算法上增加图像中已经存在的散焦模糊。然而,由于问题的不适性,解决该问题的现有算法解决方案的性能较差:散焦模糊量只能在边缘估计;同类区域不包含此类信息。但是,要放大散焦模糊,我们需要知道每个像素位置的模糊量。估计它需要解决具有许多未知数的优化问题。我们提出了一种更快的方法,通过小规模解决优化问题,然后使用原始图像作为指导进行边缘感知的上采样,从而将模糊量从边缘传播到整个图像。所得的近似散焦图可用于合成景深较浅的图像,其质量可与原始方法媲美。实验结果证明了这一点。

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