Weight Vector Optimization of the Hinge Loss Function

Weight Vector Optimization of the Hinge Loss Function

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For Educational Purposes and better understanding of Weight Vector Optimization and Linear Binary Classification based on the Gradient Descent optimization algorithm
-Weight Optimization of the Hinge Loss Function
Tasks:
-Modify the number of inputs adding f(5,:), f(6,:)..
-Add more features for each input: 3 features: f(1,:)=[1.5 0 6]...
-Change the number of iterations
-Modify the Learning Rate
-Change the initialized values of the weight vector
-Change the Loss Function and the corresponding Gradient

Cite As

pbarmpoutis (2026). Weight Vector Optimization of the Hinge Loss Function (https://www.mathworks.com/matlabcentral/fileexchange/101313-weight-vector-optimization-of-the-hinge-loss-function), MATLAB Central File Exchange. Retrieved .

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General Information

MATLAB Release Compatibility

  • Compatible with any release

Platform Compatibility

  • Windows
  • macOS
  • Linux
Version Published Release Notes Action
1.0.0