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      A persistence landscapes toolbox for topological statistics

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          Abstract

          Topological data analysis provides a multiscale description of the geometry and topology of quantitative data. The persistence landscape is a topological summary that can be easily combined with tools from statistics and machine learning. We give efficient algorithms for calculating persistence landscapes, their averages, and distances between such averages. We discuss an implementation of these algorithms and some related procedures. These are intended to facilitate the combination of statistics and machine learning with topological data analysis. We present an experiment showing that the low-dimensional persistence landscapes of points sampled from spheres (and boxes) of varying dimensions differ.

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          Author and article information

          Journal
          2014-12-31
          2015-08-28
          Article
          1501.00179
          1c7d1a74-74fe-4988-bbde-7d29f24b89d0

          http://arxiv.org/licenses/nonexclusive-distrib/1.0/

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          Custom metadata
          24 pages
          cs.CG cs.MS math.AT stat.CO

          Mathematical software,Theoretical computer science,Geometry & Topology,Mathematical modeling & Computation

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