从图像集合中表示场景

R. Kumar, P. Anandan, M. Irani, J. Bergen, K. Hanna
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引用次数: 131

摘要

计算机视觉的目标是从图像集合中提取有关世界的信息。这些信息可用于识别或操纵物体,控制在环境中的运动,测量或确定物体的状态,以及用于许多其他目的。本文的目标是考虑从图像集合中获得的信息的表示,以及它如何支持这些任务。我们所说的“图像集合”是指与给定场景相关的任何一组图像。这包括视频序列,来自单个静止相机的多个图像,或来自不同相机的多个图像。本文的中心论点是,通过将每个图像与抽象的三维坐标系统联系起来来表示场景信息的传统方法可能并不总是合适的。更直接地表示图像集合之间关系的方法有许多优点。这些关系也可以用实用和有效的算法来计算。我们提出了一个场景表示的层次框架。我们开发了用于构建这些表示的算法,并在实际图像序列上演示了结果。最后,讨论了这些表示在实际问题中的应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Representation of scenes from collections of images
The goal of computer vision is to extract information about the world from collections of images. This information might be used to recognize or manipulate objects, to control movement through the environment, to measure or determine the condition of objects, and for many other purposes. The goal of this paper is to consider the representation of information derived from a collection of images and how it may support some of these tasks. By "collection of images" we mean any set of images relevant to a given scene. This includes video sequences, multiple images from a single still camera, or multiple images from different cameras. The central thesis of this paper is that the traditional approach to representation of information about scenes by relating each image to an abstract three dimensional coordinate system may not always be appropriate. An approach that more directly represents the relationships among the collection of images has a number of advantages. These relationships can also be computed using practical and efficient algorithms. We present a hierarchical framework for scene representation. We develop the algorithms used to build these representations and demonstrate results on real image sequences. Finally, the application of these representations to real world problems is discussed.
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