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3D Trajectory Recovery for Tracking Multiple Objects and Trajectory Guided Recognition of Actions

机译:用于跟踪多个对象的3D轨迹恢复和动作的轨迹引导识别

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摘要

A mechanism is proposed that integrates low-level (image processing), mid-level (recursive 3D trajectory estimation), and high-level (action recognition) processes. It is assumed that the system observes multiple moving objects via a single, uncalibrated video camera. A novel extended Kalman filter formulation is used in estimating the relative 3D motion trajectories up to a scale factor. The recursive estimation process provides a prediction and error measure that is exploited in higher-level stages of action recognition. Conversely, higher-level mechanisms provide feedback that allows the system to reliably segment and maintain the tracking of moving objects before, during, and after occlusion. The 3D trajectory, occlusion, and segmentation information are utilized in extracting stabilized views of the moving object. Trajectory-guided recognition (TGR) is proposed as a new and efficient method for adaptive classification of action. The TGR approach is demonstrated using "motion history images" that are then recognized via a mixture of Gaussian classifier. The system was tested in recognizing various dynamic human outdoor activities; e.g., running, walking, roller blading, and cycling. Experiments with synthetic data sets are used to evaluate stability of the trajectory estimator with respect to noise.
机译:提出了一种集成了低级(图像处理),中级(递归3D轨迹估计)和高级(动作识别)过程的机制。假定系统通过一个未经校准的摄像机观察多个运动物体。一种新颖的扩展卡尔曼滤波器公式可用于估算直至比例因子的相对3D运动轨迹。递归估计过程提供了一种预测和错误度量,可用于动作识别的更高级别。相反,更高级别的机制提供的反馈使系统能够在遮挡之前,期间和之后可靠地分割并保持对运动对象的跟踪。 3D轨迹,遮挡和分割信息用于提取运动对象的稳定视图。轨迹引导识别(TGR)被提出作为一种新的有效的动作自适应分类方法。使用“运动历史图像”演示了TGR方法,然后通过混合高斯分类器对其进行识别。该系统经过测试,可以识别各种动态的人类户外活动;例如跑步,步行,滚轴溜冰和骑自行车。使用合成数据集进行的实验用于评估轨迹估计器相对于噪声的稳定性。

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