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Makale detayı · 2019 · article

New computational methods for classification problems in the existence of outliers based on conic quadratic optimization

Dergi Communications in Statistics - Simulation and Computation
OpenAlex
Yıl2019
Atıf9OpenAlex
Yüzdelik%82,0
FWCI1,251,00 = dünya ortalaması

Veri kaynağı ayrımı

  • YÖKSİS dergi adıCommunications in Statistics - Simulation and Computation
  • OpenAlexOpenAlex zenginleştirmesi (özet, atıf, konular)

Özet

OpenAlex İngilizce

Most of the statistical research involves classification which is a procedure utilized to establish prediction models to set apart and classify new observations in the dataset from every fields of science, technology, and economics. However, these models may give misclassification results when dataset contains outliers (extreme data points). Therefore, we dealt with outliers in classification problem: firstly, by combining robustness of mean-shift outlier model and then stability of Tikhonov regularization based on continuous optimization method called Conic Quadratic Programming. These new methodologies are performed on classification dataset within the existence of outliers, and the results are compared with parametric model by using well-known performance measures.

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OpenAlex cited_by_count. WoS veya Scopus atıf sayısı değildir; o kaynaklar için ayrı kolon yoktur.

9atıfOpenAlex · cited_by_count (önbellek / veritabanı)

Yerel katalogda bu makaleye atıf yapan 4 yayın (OpenAlex referans eşleşmesi; tam dünya listesi değildir).

  1. 2025 Enhancing classification modeling through feature selection and smoothness: A conic-fused lasso approach integrated with mean shift outlier modellingAtıf 1 · OpenAlex
  2. 2024 Enhancing classification modeling through feature selection and smoothness: A conic-fused lasso approach integrated with mean shift outlier modellingAtıf 1 · OpenAlex
  3. 2020 On the grey Baker-Thompson ruleAtıf 1 · OpenAlex
  4. 2020 On the grey Baker-Thompson ruleAtıf 1 · OpenAlex

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