遇见数据集

Summary of this paper’s investigation of different forms of our graph dissimilarity measure.

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Figshare2021-04-27 更新2026-04-28 收录
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In this work, we systematically explore properties of this measure given sparsity parameter s = 0, and various regimes of t (fixed at some early time, or maximized over all t) and α (fixed at α = 1, fixed at a constant power r of the ratio of graph sizes, or minimized over all α. We leave exploration of nonzero values of the sparsity parameter to future work. Variants not explicitly called out are not considered. In the case where α and t are both optimized and s > 0, it is unclear which of the metric conditions GDD satisfies, hence the corresponding classification is left blank.

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2021-04-27
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