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Supporting data for "Euler Characteristic Curves and Profiles: a stable shape invariant for big data problems"

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DataCite Commons2025-05-26 更新2024-07-13 收录
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http://gigadb.org/dataset/102459
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资源简介:
Tools of Topological Data Analysis provide stable summaries encapsulating the shape of the considered data. Persistent homology, the most standard and well studied data summary, suffers a number of limitations; its computations are hard to distribute, it is hard to generalize to multifiltrations and is computationally prohibitive for big datasets. In this paper we study the concept of Euler Characteristics Curves, for one parameter filtrations and Euler Characteristic Profiles, for multi-parameter filtrations. While being a weaker invariant in one dimension, we show that Euler Characteristic based approaches do not possess some handicaps of persistent homology; we show efficient algorithms to compute them in a distributed way, their generalization to multifiltrations and practical applicability for big data problems. In addition we show that the Euler Curves and Profiles enjoys certain type of stability which makes them robust tools for data analysis. Lastly, to show their practical applicability, multiple use-cases are considered.
提供机构:
GigaScience Database
创建时间:
2023-10-02
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