基于对象的视频中遮挡物体的二维网格检测与表示

Mete H. Gökçetekin, Isil Celasun, A. Tekalp
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引用次数: 0

摘要

在本研究中,提出了一种基于网格的遮挡检测算法,该算法涵盖了当前帧中存在的信息,并提出了一种基于网格的遮挡检测算法。在序列的第一帧上初步设计了二维Delaunay三角动态网格。然后将每个节点的运动与其平均运动进行比较。选取节点活跃度高、方向不同、形成区域的帧进行分析,检测新进入场景的物体。利用距离准则对检测到的不良运动矢量形成的区域进行放大。将检测到的帧与前一帧进行距离滤波,形成这两帧的亮度分量。考虑了距离滤波后各帧的亮度分量的差异。根据形成区域内的阈值检查差异。超过该阈值的像素构成新进入的对象。由于这些像素可能会形成单独的区域,因此可以完成这些区域的基于网格的合并。然后,根据被遮挡的物体,将检测到的新进入的物体作为场景中的新物体进行网格划分和跟踪。提出的基于二维网格的遮挡检测与表示方法可应用于基于对象的视频编码、存储和处理。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
2D mesh-based detection and representation of an occluding object for object-based video
In this study, an algorithm for mesh-based detection of occlusion caused by a newly entering object into the scene, which covers the information present in the current frame, and mesh-based representation of it is proposed. A 2D Delaunay triangulated dynamic mesh is initially designed on the first frame of the sequence. The motion of each node is then compared to its average motion. Frames with nodes of high activity, with different directions and forming a region are selected to be analyzed for detection of newly entering object(s) into the scene. A region formed by detection of bad motion vectors is enlarged using a distance criterion. The detected frame and the preceding one are range filtered, The luminance components of these two frames are formed. The difference of the range filtered frames and of their respective luminance components are taken into account. The differences are checked with respect to a threshold value inside the formed region. Pixels exceeding this threshold form the newly entering object. Since there may be separate regions formed by these pixels, mesh-based merging of these regions is then accomplished. The detected newly entering object is then meshed and tracked as a new object in the scene in accordance with the occluded object. The proposed 2D mesh-based occlusion detection and representation method can be applied in object-based video coding, storage and manipulation.
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