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Definition and Performance Evaluation of a Robust SVM Based Fall Detection Solution

机译:基于鲁棒SVM的秋季检测解决方案的定义与性能评估

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We propose an automatic approach to detect falls in home environment. A Support Vector Machine based classifier is fed by a set of selected features extracted from human body silhouette tracking. The classifier is followed by filtering operations taking into account the temporal nature of a video. The features are based on height and width of human body bounding box, the user's trajectory with her/his orientation, Projection Histograms and moments of order 0, 1 and 2. We study several combinations of usual transformations of the features (Fourier Transform, Wavelet transform, first and second derivatives), and we show experimentally that it is possible to achieve high performance using a single camera.We evaluated the robustness of our method using a realistic dataset. Experiments show that the best tradeoff between classification performance and time processing result is obtained combining the original data with their first derivative. The global error rate is lower than 1%, and the recall, specificity and precision are high (respectively 0.98, 0.996 and 0.942). The resulting system can therefore be used in a real environment. Hence, we also evaluated the robustness of our system regarding location changes. We proposed a realistic and pragmatic protocol which enables performance to be improved by updating the training in the current location, with normal activities records.
机译:我们提出了一种自动检测家庭环境下降的方法。支持向量机基机基于从人体剪影跟踪中提取的一组选定的功能馈送。分类器后面是考虑到视频的时间性的过滤操作。这些功能基于人体边界框的高度和宽度,用户的轨迹与她/他的方向,投影直方图和订单0,1和2.的时刻。我们研究了特征的常用转换的几种组合(傅里叶变换,小波转换,第一和第二衍生物),我们通过实验展示了使用单个Camera来实现高性能。我们使用逼真的数据集评估我们方法的稳健性。实验表明,将原始数据与其第一个衍生物相结合,获得了分类性能和时间处理结果之间的最佳权衡。全局错误率低于1%,召回,特异性和精度高(分别为0.98,0.996和0.942)。因此,所得到的系统可以在真实环境中使用。因此,我们还评估了我们系统关于位置变化的稳健性。我们提出了一种现实和务实的协议,通过更新当前位置的培训,可以通过正常的活动记录来改进性能。

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