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FrameBreak: Dramatic Image Extrapolation by Guided Shift-Maps

机译:FrameBreak:通过导引移位图进行戏剧性图像外推

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We significantly extrapolate the field of view of a photograph by learning from a roughly aligned, wide-angle guide image of the same scene category. Our method can extrapolate typical photos into complete panoramas. The extrapolation problem is formulated in the shift-map image synthesis framework. We analyze the self-similarity of the guide image to generate a set of allowable local transformations and apply them to the input image. Our guided shift-map method reserves to the scene layout of the guide image when extrapolating a photograph. While conventional shift-map methods only support translations, this is not expressive enough to characterize the self-similarity of complex scenes. Therefore we additionally allow image transformations of rotation, scaling and reflection. To handle this increase in complexity, we introduce a hierarchical graph optimization method to choose the optimal transformation at each output pixel. We demonstrate our approach on a variety of indoor, outdoor, natural, and man-made scenes.
机译:通过从相同场景类别的大致对齐的广角引导图像中学习,我们可以显着推断照片的视野。我们的方法可以将典型照片推断为完整的全景图。外推问题是在移位图图像合成框架中提出的。我们分析引导图像的自相似性,以生成一组允许的局部变换,并将其应用于输入图像。当推断照片时,我们的导引移位图方法保留了导引图像的场景布局。尽管常规的移位映射方法仅支持翻译,但这种表达方式不足以表征复杂场景的自相似性。因此,我们还允许旋转,缩放和反射的图像变换。为了处理这种复杂性的增加,我们引入了一种层次图优化方法来选择每个输出像素处的最佳变换。我们在各种室内,室外,自然和人造场景中展示我们的方法。

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