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Dimensionality Reduction of High Dimensional Dataset

LAP LAMBERT Academic Publishing
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9786208119171
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ISBN13:
9786208119171
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Dimensionality reduction is the transformation of high-dimensional data into a meaningful representation of reduced dimensionality that corresponds to the intrinsic dimensionality of the data. Number of variables or attributes of any data set effect to a large extent clustering of that particular data. These attributes directly affect the dissimilarity or distance measures thereby effecting accuracy of data. So dimensionality reduction techniques can definitely improve clustering. Clustering is a division of data into groups of similar objects. Representing the data by fewer clusters necessarily loses certain fine details but achieves simplification. It models data by its clusters.


  • | Author: Juliet Rozario
  • | Publisher: LAP Lambert Academic Publishing
  • | Publication Date: Jan 22, 2025
  • | Number of Pages: 00104 pages
  • | Binding: Paperback or Softback
  • | ISBN-10: 6208119170
  • | ISBN-13: 9786208119171
Author:
Juliet Rozario
Publisher:
LAP Lambert Academic Publishing
Publication Date:
Jan 22, 2025
Number of pages:
00104 pages
Binding:
Paperback or Softback
ISBN-10:
6208119170
ISBN-13:
9786208119171