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Linear Dimensionality Reduction

Klaus Nordhausen
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      In almost all fields of applications, statisticians are confronted with highly complex data sets with large dimensions. Dimension reduction methods naturally provide a better understanding of the data and reveal hidden structures. The book provides tools with a unifying statistical theory to recover hidden structures, latent variables, or latent subspaces in multivariate and dependent data. Throughout the book, the theory is illustrated with examples on practical data sets.
      Format: CONTRIBUTORS: Klaus Nordhausen EAN: 9781118494622 COUNTRY: United States PAGES: WEIGHT: 0 g HEIGHT: 0 cm
      PUBLISHED BY: John Wiley & Sons Inc DATE PUBLISHED: 2021-05-07 CITY: GENRE: MATHEMATICS / Probability & Statistics / General WIDTH: 0 cm SPINE:

      Book Themes:

      Electronics and communications engineering

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      In almost all fields of applications, statisticians are confronted with highly complex data sets with large dimensions. Dimension reduction methods naturally provide a better understanding of the data and reveal hidden structures. The book provides tools with a unifying statistical theory to recover hidden structures, latent variables, or latent subspaces in multivariate and dependent data. Throughout the book, the theory is illustrated with examples on practical data sets.
      Format: CONTRIBUTORS: Klaus Nordhausen EAN: 9781118494622 COUNTRY: United States PAGES: WEIGHT: 0 g HEIGHT: 0 cm
      PUBLISHED BY: John Wiley & Sons Inc DATE PUBLISHED: 2021-05-07 CITY: GENRE: MATHEMATICS / Probability & Statistics / General WIDTH: 0 cm SPINE:

      Book Themes:

      Electronics and communications engineering

      Customer Reviews

      Be the first to write a review
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