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Extended Object Tracking with Random Hypersurface Models

机译:随机超曲面模型的扩展对象跟踪

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摘要

The random hypersurface model (RHM) is introduced for estimating a shape approximation of an extended object in addition to its kinematic state. An RHM represents the spatial extent by means of randomly scaled versions of the shape boundary. In doing so, the shape parameters and the measurements are related via a measurement equation that serves as the basis for a Gaussian state estimator. Specific estimators are derived for elliptic and star-convex shapes.
机译:引入随机超曲面模型(RHM)来估计扩展物体的运动状态以及其形状近似值。 RHM通过形状边界的任意缩放形式表示空间范围。这样做时,形状参数和测量值之间通过一个测量方程式相关,该测量方程式是高斯状态估计器的基础。得出椭圆和星形凸出形状的特定估计量。

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