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在图采样中保留少数结构

Preserving Minority Structures in Graph Sampling.

作者信息

Zhao Ying, Jiang Haojin, Chen Qi'an, Qin Yaqi, Xie Huixuan, Wu Yitao, Liu Shixia, Zhou Zhiguang, Xia Jiazhi, Zhou Fangfang

出版信息

IEEE Trans Vis Comput Graph. 2021 Feb;27(2):1698-1708. doi: 10.1109/TVCG.2020.3030428. Epub 2021 Jan 28.

Abstract

Sampling is a widely used graph reduction technique to accelerate graph computations and simplify graph visualizations. By comprehensively analyzing the literature on graph sampling, we assume that existing algorithms cannot effectively preserve minority structures that are rare and small in a graph but are very important in graph analysis. In this work, we initially conduct a pilot user study to investigate representative minority structures that are most appealing to human viewers. We then perform an experimental study to evaluate the performance of existing graph sampling algorithms regarding minority structure preservation. Results confirm our assumption and suggest key points for designing a new graph sampling approach named mino-centric graph sampling (MCGS). In this approach, a triangle-based algorithm and a cut-point-based algorithm are proposed to efficiently identify minority structures. A set of importance assessment criteria are designed to guide the preservation of important minority structures. Three optimization objectives are introduced into a greedy strategy to balance the preservation between minority and majority structures and suppress the generation of new minority structures. A series of experiments and case studies are conducted to evaluate the effectiveness of the proposed MCGS.

摘要

采样是一种广泛使用的图约简技术,用于加速图计算并简化图可视化。通过全面分析关于图采样的文献,我们假设现有算法无法有效保留图中罕见且规模小但在图分析中非常重要的少数结构。在这项工作中,我们首先进行了一项初步用户研究,以调查对人类观察者最具吸引力的代表性少数结构。然后,我们进行了一项实验研究,以评估现有图采样算法在保留少数结构方面的性能。结果证实了我们的假设,并为设计一种名为以少数结构为中心的图采样(MCGS)的新图采样方法提出了关键点。在这种方法中,提出了一种基于三角形的算法和一种基于割点的算法来有效地识别少数结构。设计了一组重要性评估标准来指导重要少数结构的保留。将三个优化目标引入贪心策略,以平衡少数结构和多数结构之间的保留,并抑制新的少数结构的产生。进行了一系列实验和案例研究,以评估所提出的MCGS的有效性。

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