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Image-Based 3D Model Retrieval for Indoor Scenes by Simulating Scene Context

机译:通过模拟场景上下文对室内场景进行基于图像的3D模型检索

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We propose a single image-based 3D model retrieval method for indoor scenes. By simulating the scene context of the input image, our method is able to handle several challenging scenarios featuring cluttered backgrounds and severe occlusions. To use our system, the user only needs to drag a few semantic bounding boxes for the query objects. The proposed approach then retrieves the most similar 3D models from the ShapeNet model repository, and aligns them with the corresponding objects automatically. This requires that the 3D models are represented by calibrated view-dependent visual elements learned from the rendered views. With the estimated occlusion relationships, the rendered model images are stacked at the corresponding locations to simulate the scene context. By conducting matching between these synthesized scenes and the input image, the most similar 3D models under the approximate poses are retrieved. Moreover, we show that the retrieving time can be significantly reduced based on a novel greedy algorithm. Experimental results demonstrate the effectiveness of our proposed method.
机译:我们针对室内场景提出了一种基于图像的3D模型检索方法。通过模拟输入图像的场景上下文,我们的方法能够处理背景复杂和严重遮挡的一些具有挑战性的场景。要使用我们的系统,用户只需要为查询对象拖动一些语义边界框即可。然后,所提出的方法从ShapeNet模型存储库中检索最相似的3D模型,并将它们与相应的对象自动对齐。这就要求3D模型由从渲染视图中学习的与视图相关的校准视觉元素来表示。利用估计的遮挡关系,将渲染的模型图像堆叠在相应的位置以模拟场景上下文。通过在这些合成场景和输入图像之间进行匹配,可以提取近似姿势下最相似的3D模型。此外,我们表明,基于一种新颖的贪婪算法,检索时间可以显着减少。实验结果证明了我们提出的方法的有效性。

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