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Silhouette Extraction with Random Pattern Backgrounds for the Volume Intersection Method

机译:体交法的随机图案背景轮廓提取

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In this paper, we present a novel approach for extracting silhouettes by using a particular pattern that we call the random pattern. The volume intersection method reconstructs the shapes of 3D objects from their silhouettes obtained with multiple cameras. With the method, if some parts of the silhouettes are missed, the corresponding parts of the reconstructed shapes are also missed. When colors of the objects and the backgrounds are similar, many parts of the silhouettes are missed. We adopt random pattern backgrounds to extract correct silhouettes. The random pattern has many small regions with randomly-selected colors. By using the random pattern backgrounds, we can keep the rate of missing parts below a specified percentage, even for objects of unknown color. To refine the silhouettes, we detect and fill in the missing parts by integrating multiple images. From the images captured by multiple cameras used to observe the object, the object''s colors can be estimated. The missing parts can be detected by comparing the object''s color with its corresponding background''s color. In our experiments, we con- firmed that this method effectively extracts silhouettes and reconstructs 3D shapes.
机译:在本文中,我们通过使用我们称呼随机模式的特定模式提出了一种提取轮廓的新方法。体积交叉点方法从多个摄像机获得的剪影中重建3D对象的形状。通过该方法,如果错过了剪影的某些部分,则也会错过重建形状的相应部分。当对象和背景的颜色相似时,剪影的许多部分都会错过。我们采用随机图案背景来提取正确的剪影。随机模式的随机图案具有许多小区域,具有随机选择的颜色。通过使用随机图案背景,我们可以将缺失部分的速率保持在指定百分比以下,即使对于未知颜色的对象。为了改进剪影,我们通过集成多个图像来检测和填充缺失部件。从用于观察对象的多个摄像机捕获的图像,可以估计对象的颜色。通过将物体的颜色与其相应的背景“的颜色进行比较,可以检测到缺失的部件。在我们的实验中,我们坚定地确定了该方法有效提取剪影并重建3D形状。

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