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      A Distance-preserving Matrix Sketch

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          Abstract

          Visualizing very large matrices involves many formidable problems. Various popular solutions to these problems involve sampling, clustering, projection, or feature selection to reduce the size and complexity of the original task. An important aspect of these methods is how to preserve relative distances between points in the higher-dimensional space after reducing rows and columns to fit in a lower dimensional space. This aspect is important because conclusions based on faulty visual reasoning can be harmful. Judging dissimilar points as similar or similar points as dissimilar on the basis of a visualization can lead to false conclusions. To ameliorate this bias and to make visualizations of very large datasets feasible, we introduce a new algorithm that selects a subset of rows and columns of a rectangular matrix. This selection is designed to preserve relative distances as closely as possible. We compare our matrix sketch to more traditional alternatives on a variety of artificial and real datasets.

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          Author and article information

          Journal
          08 September 2020
          Article
          2009.03979
          02731871-e5da-4d6e-9789-16fac0073d18

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

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          Custom metadata
          44 pages, 11 figures, submitted
          cs.HC cs.LG stat.ML

          Machine learning,Artificial intelligence,Human-computer-interaction
          Machine learning, Artificial intelligence, Human-computer-interaction

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