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首页> 外文期刊>Journal of optical technology >Clustering of a set of identified points on images of dynamic scenes, based on the principle of minimum description length
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Clustering of a set of identified points on images of dynamic scenes, based on the principle of minimum description length

机译:基于最小描述长度的原理,对动态场景图像上的一组已识别点进行聚类

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摘要

This paper discusses the task of separating a set of identified reference points on a pair of images of a dynamic scene, using clusters that correspond to observed moving objects. Based on the principle of minimum description length, a criterion is proposed that makes it possible to choose between different classes of transformations and to estimate the clustering quality. This criterion can be used to choose the optimum model of a spatial transformation for each discriminated cluster and to avoid being influenced by outliers in the form of incorrectly identified points.
机译:本文讨论了使用对应于观察到的运动对象的聚类在动态场景的一对图像上分离一组已识别参考点的任务。基于最小描述长度的原则,提出了一个准则,该准则使得可以在不同类别的转换之间进行选择并估计聚类质量。此标准可用于为每个已区分的聚类选择空间变换的最佳模型,并避免以错误识别的点的形式受到异常值的影响。

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