• Smoothing Techniques With Implementation in S

Smoothing Techniques With Implementation in S

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The author has attempted to present a book that provides a non-technical introduction into the area of non-parametric density and regression function estimation. The application of these methods is discussed in terms of the S computing environment. Smoothing in high dimensions faces the problem of data sparseness. A principal feature of smoothing, the averaging of data points in a prescribed neighborhood, is not really practicable in dimensions greater than three if we have just one hundred data points. Additive models provide a way out of this dilemma; but, for their interactiveness and recursiveness, they require highly effective algorithms. For this purpose, the method of WARPing (Weighted Averaging using Rounded Points) is described in great detail.

  • Author(s): Wolfgang H rdle
  • Publisher: Springer Science & Business Media
  • Language: en
  • Pages: 261
  • Binding: Hardcover
  • Edition: 1991
  • Published: 1991
  • Dimensions: Height: 9.21 Inches, Length: 6.14 Inches, Weight: 2.7998707274 Pounds, Width: 0.69 Inches
  • Estimated Delivery: Nov 30, 2025
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