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Hybrid Integrated Dimensionality Reduction Method Based on Conformal Homeomorphism Mapping

  • 2024
  • OriginalPaper
  • Chapter
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Abstract

This chapter introduces a hybrid integrated dimensionality reduction method that leverages conformal homeomorphism mapping to address the challenges of maintaining geometric structure and reversibility in data reduction. The method combines linear, nonlinear, and hybrid dimensionality reduction techniques to ensure that the intrinsic rigidity and geometric topology structure of the data are preserved. The chapter discusses various dimensionality reduction methods, including Principal Component Analysis (PCA), Locally Linear Embedding (LLE), and Laplacian Eigenmap (LE), highlighting their advantages and limitations. The proposed method integrates these techniques to create a robust dimensionality reduction framework that is both efficient and interpretable. The chapter also includes a detailed explanation of the conformal homeomorphism mapping process and its application to text data, demonstrating the method's effectiveness through experimental results. By reading this chapter, professionals in the field of data science and machine learning will gain valuable insights into advanced dimensionality reduction techniques and their practical applications.

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Title
Hybrid Integrated Dimensionality Reduction Method Based on Conformal Homeomorphism Mapping
Authors
Bianping Su
Chaoyin Liang
Chunkai Wang
Yufan Guo
Shicong Wu
Yan Chen
Longqing Zhang
Jiao Peng
Copyright Year
2024
DOI
https://doi.org/10.1007/978-3-031-57808-3_11
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