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Data visualization with category the...
~
Barth, Lukas Silvester.
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Data visualization with category theory and geometry = with a critical analysis and refinement of UMAP /
Record Type:
Electronic resources : Monograph/item
Title/Author:
Data visualization with category theory and geometry/ by Lukas Silvester Barth ... [et al.].
Reminder of title:
with a critical analysis and refinement of UMAP /
other author:
Barth, Lukas Silvester.
Published:
Cham :Springer Nature Switzerland : : 2025.,
Description:
xiii, 272 p. :ill. (chiefly col.), digital ;24 cm.
[NT 15003449]:
Chapter 1. Introduction -- Chapter 2. Illustrating UMAP on some simple data sets -- Chapter 3. Metrics and Riemannian manifolds -- Chapter 4. Merging fuzzy simplicial sets and metric spaces: A category theoretical approach -- Chapter 5. UMAP -- Chapter 6. IsUMap: An alternative to the UMAP embedding.
Contained By:
Springer Nature eBook
Subject:
Information visualization. -
Online resource:
https://doi.org/10.1007/978-3-031-97973-6
ISBN:
9783031979736
Data visualization with category theory and geometry = with a critical analysis and refinement of UMAP /
Data visualization with category theory and geometry
with a critical analysis and refinement of UMAP /[electronic resource] :by Lukas Silvester Barth ... [et al.]. - Cham :Springer Nature Switzerland :2025. - xiii, 272 p. :ill. (chiefly col.), digital ;24 cm. - Mathematics of data,v. 32731-4111 ;. - Mathematics of data ;v. 3..
Chapter 1. Introduction -- Chapter 2. Illustrating UMAP on some simple data sets -- Chapter 3. Metrics and Riemannian manifolds -- Chapter 4. Merging fuzzy simplicial sets and metric spaces: A category theoretical approach -- Chapter 5. UMAP -- Chapter 6. IsUMap: An alternative to the UMAP embedding.
Open access.
This open access book provides a robust exposition of the mathematical foundations of data representation, focusing on two essential pillars of dimensionality reduction methods, namely geometry in general and Riemannian geometry in particular, and category theory. Presenting a list of examples consisting of both geometric objects and empirical datasets, this book provides insights into the different effects of dimensionality reduction techniques on data representation and visualization, with the aim of guiding the reader in understanding the expected results specific to each method in such scenarios. As a showcase, the dimensionality reduction method of "Uniform Manifold Approximation and Projection" (UMAP) has been used in this book, as it is built on theoretical foundations from all the areas we want to highlight here. Thus, this book also aims to systematically present the details of constructing a metric representation of a locally distorted metric space, which is essentially the problem that UMAP is trying to address, from a more general perspective. Explaining how UMAP fits into this broader framework, while critically evaluating the underlying ideas, this book finally introduces an alternative algorithm to UMAP. This algorithm, called IsUMap, retains many of the positive features of UMAP, while improving on some of its drawbacks.
ISBN: 9783031979736
Standard No.: 10.1007/978-3-031-97973-6doiSubjects--Topical Terms:
615673
Information visualization.
LC Class. No.: QA76.9.I52
Dewey Class. No.: 001.4226
Data visualization with category theory and geometry = with a critical analysis and refinement of UMAP /
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Chapter 1. Introduction -- Chapter 2. Illustrating UMAP on some simple data sets -- Chapter 3. Metrics and Riemannian manifolds -- Chapter 4. Merging fuzzy simplicial sets and metric spaces: A category theoretical approach -- Chapter 5. UMAP -- Chapter 6. IsUMap: An alternative to the UMAP embedding.
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This open access book provides a robust exposition of the mathematical foundations of data representation, focusing on two essential pillars of dimensionality reduction methods, namely geometry in general and Riemannian geometry in particular, and category theory. Presenting a list of examples consisting of both geometric objects and empirical datasets, this book provides insights into the different effects of dimensionality reduction techniques on data representation and visualization, with the aim of guiding the reader in understanding the expected results specific to each method in such scenarios. As a showcase, the dimensionality reduction method of "Uniform Manifold Approximation and Projection" (UMAP) has been used in this book, as it is built on theoretical foundations from all the areas we want to highlight here. Thus, this book also aims to systematically present the details of constructing a metric representation of a locally distorted metric space, which is essentially the problem that UMAP is trying to address, from a more general perspective. Explaining how UMAP fits into this broader framework, while critically evaluating the underlying ideas, this book finally introduces an alternative algorithm to UMAP. This algorithm, called IsUMap, retains many of the positive features of UMAP, while improving on some of its drawbacks.
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Mathematics and Statistics (SpringerNature-11649)
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