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Model-Based Classification of Trajectories

机译:基于模型的轨迹分类

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We present algorithms for classifying trajectories based on a movement model parameterized by a single parameter, like the Brownian bridge movement model. Classification is the problem of assigning trajectories to classes of similar movement characteristics. For instance, the set of trajectories might be the subtrajectories resulting from segmenting a trajectory, thus identifying movement phases. We give an efficient algorithm to compute the optimal classification for a discrete set of parameter values. We also show that classification is NP-hard if the parameter values are allowed to vary continuously and present an algorithm that solves the problem in polynomial time under mild assumptions on the input.
机译:我们基于由单个参数参数化的运动模型来提供用于对轨迹进行分类轨迹的算法,如布朗桥式运动模型。分类是将轨迹分配给类似运动特征的课程的问题。例如,该组轨迹可能是由分割轨迹产生的子标注,从而识别运动阶段。我们提供了一种有效的算法来计算离散的参数值集的最佳分类。我们还表明,如果允许参数值连续变化并呈现在输入的温和假设下解决多项式时间中的问题的算法,则难以努力。

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