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Component evolution analysis in descriptor graphs for descriptor ranking

机译:描述符图中的成分演化分析用于描述符排名

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摘要

This paper presents a method based on graph behaviour analysis for the evaluation of descriptor graphs (applied to image/video datasets) for descriptor performance analysis and ranking. Starting from the Erdos-Rényi model on uniform random graphs, the paper presents results of investigating random geometric graph behaviour in relation with the appearance of the giant component as a basis for ranking descriptors based on their clustering properties. We analyse the phase transition and the evolution of components in such graphs, and based on their behaviour, the corresponding descriptors are compared, ranked, and validated in retrieval tests. The goal is to build an evaluation framework where descriptors can be analysed for automatic feature selection.
机译:本文提出了一种基于图行为分析的描述符图评估方法(应用于图像/视频数据集),用于描述符性能分析和排名。从统一随机图上的Erdos-Rényi模型开始,本文提出了调查与巨型组件的外观有关的随机几何图行为的结果,以此作为基于其聚类属性对描述符进行排名的基础。我们分析了此类图中组件的相变和演化,并基于它们的行为,在检索测试中对相应的描述符进行了比较,排名和验证。目标是建立一个评估框架,可以在其中分析描述符以进行自动特征选择。

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