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Silhouette-Based Action Recognition Using Simple Shape Descriptors

机译:基于剪影的动作识别使用简单的形状描述符

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This paper presents human action recognition method based on silhouette sequences and simple shape descriptors. The proposed solution uses single scalar shape measures to represent each silhouette from an action sequence. Scalars are then combined into a vector that represents the entire sequence. In the following step, vectors are transformed into sequence representations and matched with the use of leave-one-out cross-validation technique and selected similarity or dissimilarity measure. Additionally, action sequences are pre-classified using the information about centroid trajectory into two subgroups - actions that are performed in place and actions during which a person moves in the frame. The average percentage accuracy is 80% - the result is very satisfactory taking into consideration the very small amount of data used. The paper provides information on the approach, some key definitions as well as experimental results.
机译:本文介绍了基于剪影序列和简单形状描述符的人为行动识别方法。所提出的解决方案使用单个标量形状测量来表示动作序列的每个轮廓。然后将标量组合成表示整个序列的载体。在下一步骤中,将载体转换为序列表示,并与使用休留一次交叉验证技术和选择的相似性或不相似度量匹配。另外,使用关于CentroID轨迹的信息分为两个子组的动作序列 - 在其在帧中移动的地方和动作执行的动作。平均百分比精度为80% - 考虑到非常少量的数据,结果非常令人满意。本文提供了有关该方法的信息,一些关键定义以及实验结果。

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