首页> 外文期刊>International Journal of Artificial Intelligence Tools: Architectures, Languages, Algorithms >AUTOMATIC PEDESTRIAN SEGMENTATION COMBINING SHAPE, PUZZLE AND APPEARANCE
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AUTOMATIC PEDESTRIAN SEGMENTATION COMBINING SHAPE, PUZZLE AND APPEARANCE

机译:结合形状,拼图和外观的自动行人分割

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摘要

In this paper, we address the problem of automatically segmenting non-rigid pedestrians in still images. Since this task is well known difficult for any type of model or cue alone, a novel approach utilizing shape, puzzle and appearance cues is presented. The major contribution of this approach lies in the combination of multiple cues to refine pedestrian segmentation successively, which has two characterizations: (1) a shape guided puzzle integration scheme, which extracts pedestrians via assembling puzzles with constraint of a shape template; (2) a pedestrian refinement scheme, which is fulfilled by optimizing an automatically generated trimap that encodes both human silhouette and skeleton. Qualitative and quantitative evaluations on several public datasets verify the approach's effectiveness to various articulated bodies, human appearance and partial occlusion, and that this approach is able to segment pedestrians more accurately than methods based only on appearance or shape cue.
机译:在本文中,我们解决了在静止图像中自动分割非刚性行人的问题。由于众所周知,仅对于任何类型的模型或提示而言,这项任务都是困难的,因此提出了一种利用形状,拼图和外观提示的新颖方法。这种方法的主要贡献在于将多个线索相结合,以逐步完善行人分割,它具有两个特征:(1)形状引导的拼图整合方案,该方案通过在形状模板的约束下组装拼图来提取行人; (2)一种行人精细化方案,该方案可通过优化自动生成的同时对人的轮廓和骨骼进行编码的trimap来实现。对几个公共数据集的定性和定量评估证明了该方法对各种关节体,人体外观和部分遮挡的有效性,并且该方法比仅基于外观或形状提示的方法能够更准确地分割行人。

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