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Generative-model-based tracking by cluster analysis of image differences

机译:通过基于图像差异的聚类分析的基于生成模型的跟踪

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摘要

The EM algorithm is used to track moving objects as clusters of pixels significantly different from the corresponding pixels in a reference image. The underlying cluster model is Gaussian in image space, but not in grey-level difference distribution. The generative model is used to derive criteria for the elimination and merging of clusters, while simple heuristics are used for the initialisation and splitting of clusters. The system is competitive with other tracking algorithms based on image differencing.
机译:EM算法用于将运动对象跟踪为与参考图像中的相应像素明显不同的像素簇。底层聚类模型在图像空间中是高斯模型,但在灰度差异分布中则不是。生成模型用于导出消除和合并聚类的标准,而简单的启发式方法用于聚类的初始化和拆分。该系统与其他基于图像差分的跟踪算法相比具有竞争力。

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