Learning and recognition of 3D objects from appearance

H. Murase, S. Nayar
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引用次数: 252

Abstract

The authors address the problem of automatically learning object models for recognition and pose estimation. In contrast to the traditional approach, they formulate the recognition problem as one of matching visual appearance rather than shape. The appearance of an object in a two-dimensional image depends on its shape, reflectance properties, pose in the scene, and the illumination conditions. While shape and reflectance are intrinsic properties of an object and are constant, pose and illumination vary from scene to scene. They present a new compact representation of object appearance that is parameterized by pose and illumination. They have conducted experiments using several objects with complex appearance characteristics.<>
从外观学习和识别三维物体
作者解决了用于识别和姿态估计的自动学习对象模型的问题。与传统方法相反,他们将识别问题表述为匹配视觉外观而不是形状的问题。物体在二维图像中的外观取决于其形状、反射特性、在场景中的姿态和照明条件。虽然形状和反射率是物体的固有属性,并且是恒定的,但姿态和照明因场景而异。他们提出了一种新的物体外观的紧凑表示,它是由姿态和照明参数化的。他们用几种具有复杂外观特征的物体进行了实验。
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