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  4. Semi-Infinite Optimization for Shape-Constrained Regression
 
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2025
Doctoral Thesis
Title

Semi-Infinite Optimization for Shape-Constrained Regression

Title Supplement
Feasible Point Algorithms with Applications in Parametric and Kernel-Based Shape-Constrained Regression
Abstract
Shape-constrained regression enhances traditional regression by incorporating prior knowledge through shape constraints like monotonicity and convexity. These constraints, often derived from physical laws, are beneficial in engineering fields where data is limited and noisy.
This thesis examines two optimization problems: shape-constrained parametric ridge regression and shape-constrained kernel ridge regression. By rigorously enforcing various shape constraints, these problems become convex semi-infinite optimization problems. To computationally tackle these problems, two adaptive discretization algorithms - the Core Algorithm and the Composite Algorithm - are developed. These efficiently compute approximate feasible solutions within finite iterations while controlling optimality errors. The research covers parametric regression with polynomial and posynomial models, and kernel methods using Gaussian kernels. Real-world manufacturing case studies demonstrate the practicality of these methods. This work advances the theory of shape-constrained regression and provides algorithms to compute interpretable predictive models in small data settings where shape knowledge is given.
Thesis Note
Zugl.: Kaiserslautern, TU, Diss., 2024
Author(s)
Poursanidis, Miltiadis
Fraunhofer-Institut für Techno- und Wirtschaftsmathematik ITWM  
Publisher
Fraunhofer Verlag  
Open Access
File(s)
Download (1.44 MB)
Link
Link
Rights
CC BY 4.0: Creative Commons Attribution
DOI
10.24406/publica-4431
Language
English
Fraunhofer-Institut für Techno- und Wirtschaftsmathematik ITWM  
Keyword(s)
  • Semi-Infinite Optimization

  • Shape-Constrained Regression

  • Informed Learning

  • Feasible-Point Algorithms

  • Small Data Sets

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