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Draft:Elastic-net distribution

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  • Comment: There is already a page Elastic net regression at most you could add to that page, but beware of conflict of interest in adding your own papers. Ldm1954 (talk) 15:01, 15 March 2025 (UTC)
  • Comment: The cited sources appear to be authored by those close to the subject, making them non-independent. ~Liancetalk 22:11, 14 March 2025 (UTC)

Elastic-net distribution

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In statistics , particularly in fitting linear or logistic regression models, the elastic net is a regularized regression method that linearly combines the L1 and L2 penalties of the lasso and ridge methods. Hui Zou and Trevor Hastie[1] introduce this penalty. Then Hassan M. Aljohani and his supervisor Dr. Robert G. Aykroyd wrote the penalty as distribution.

Definitions

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The elastic net distribution is combined between LASSO and RIDGE, which can be written as

where

The elastic net method includes LASSO and ridge regression; in other words, each is a special case where, , or.

Examples of where the elastic net method has been applied are:

  • Processing image[2]
  • Vibration[3]

Reference

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  1. ^ Zou, Hui; Hastie, Trevor (2005-04-01). "Regularization and Variable Selection Via the Elastic Net". Journal of the Royal Statistical Society Series B: Statistical Methodology. 67 (2): 301–320. doi:10.1111/j.1467-9868.2005.00503.x. ISSN 1369-7412.
  2. ^ Aljohani, Hassan (28 Nov 2017). Wavelet Methods and Inverse Problems (Thesis). University of Leeds.
  3. ^ Aloafi, Tahani A.; Aljohani, Hassan M. (2022). "An Overview of Composite Standard Elastic-Net Distribution Based on Complex Wavelet Coefficients". Journal of Mathematics. 2022 (1): 9005413. doi:10.1155/2022/9005413. ISSN 2314-4785.