Normalization and Linear Regression of Data

A simple piece of code including a function for linear regression lin_fit(...) for data points X and y
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Aggiornato 21 dic 2020

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the function calculates theta(1) and theta(2) for input data X and output data y to fit a linear function h = theta(1)*X(1) + theta(2) with minimum MSE of h - y through the given data points. Elements of theta are
determined using the gradient descent method, computed iteratively until the convergence criterion is met that is when absolute relative increment of the cost function J is less or equal to the value of tolerance tol,
where J = 1/m sum((h - y).^2);

Cita come

Alexander Babin (2024). Normalization and Linear Regression of Data (https://www.mathworks.com/matlabcentral/fileexchange/84520-normalization-and-linear-regression-of-data), MATLAB Central File Exchange. Recuperato .

Compatibilità della release di MATLAB
Creato con R2019b
Compatibile con qualsiasi release
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Versione Pubblicato Note della release
1.0.1

- normalization removed as it resulted in data change

1.0.0