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Statistical motion model based on the change of feature relationships: human gait-based recognition

机译:基于特征关系变化的统计运动模型:基于人的步态的识别

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We offer a novel representation scheme for view-based motion analysis using just the change in the relational statistics among the detected image features, without the need for object models, perfect segmentation, or part-level tracking. We model the relational statistics using the probability that a random group of features in an image would exhibit a particular relation. To reduce the representational combinatorics of these relational distributions, we represent them in a Space of Probability Functions (SoPF), where the Euclidean distance is related to the Bhattacharya distance between probability functions. Different motion types sweep out different traces in this space. We demonstrate and evaluate the effectiveness of this representation in the context of recognizing persons from gait. In particular, on outdoor sequences: (1) we demonstrate the possibility of recognizing persons from not only walking gait, but running and jogging gaits as well; (2) we study recognition robustness with respect to view-point variation; and (3) we benchmark the recognition performance on a database of 71 subjects walking on soft grass surface, where we achieve around 90 percent recognition rates in the presence of viewpoint variation.
机译:我们提供了一种新颖的表示方案,用于基于视图的运动分析,仅使用检测到的图像特征之间的关系统计量的变化即可,而无需对象模型,完美的分割或零件级跟踪。我们使用图像中特征的随机组将表现出特定关系的概率对关系统计进行建模。为了减少这些关系分布的代表性组合,我们在概率函数空间(SoPF)中表示它们,其中欧几里得距离与概率函数之间的Bhattacharya距离有关。不同的运动类型会清除该空间中的不同轨迹。我们在识别步态的背景下证明并评估了这种表示的有效性。特别是在户外运动中:(1)我们证明了不仅可以识别步行步态,而且可以识别跑步和慢跑步态的人; (2)我们研究了关于视点变化的识别鲁棒性; (3)我们以71位在柔软草地上行走的对象的数据库为基准,对识别性能进行了基准测试,在存在视点变化的情况下,该数据库的识别率约为90%。

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