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Krahasoni metodat

Shqyrtoni metodat e zgjedhura krah për krah; rreshtat që ndryshojnë janë të theksuar.

Gabimi Mesatar Katror (MSE)×Gabimi Mesatar Katror i Rrënjëzuar (RMSE)×
FushaVlerësimi i modeleveVlerësimi i modeleve
FamiljaMCDMMCDM
Viti i origjinës18091809
KrijuesiCarl Friedrich GaussCarl Friedrich Gauss
LlojiSquared-error loss functionDistance-based evaluation metric
Burimi themeluesGauss, C. F. (1809). Theoria Motus Corporum Coelestium in Sectionibus Conicis Solem Ambientium. Hamburg: Perthes and Besser. link ↗Gauss, C. F. (1809). Theoria Motus Corporum Coelestium in Sectionibus Conicis Solem Ambientium. Hamburg: Perthes and Besser. link ↗
Emërtime të tjeraMSE, L2 error, quadratic errorRMSE, RMS error, quadratic mean error
Të lidhura44
PërmbledhjaMean Squared Error is the foundational loss function for regression models, measuring the average squared deviation between predictions and observations. Originating from Gauss and Legendre's method of least squares (1805-1809), MSE is the basis for ordinary least squares regression and remains central to modern machine learning optimization.Root Mean Squared Error is a widely used metric that measures the average magnitude of prediction errors in regression models. Originating from Carl Friedrich Gauss's work on least-squares estimation (1809), RMSE quantifies how far predictions deviate from observed values by averaging the squared differences and taking the square root.
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  2. 3 Burimet
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ScholarGateKrahasoni metodat: Mean Squared Error · Root Mean Squared Error. Marrë më 2026-06-15 nga https://scholargate.app/sq/compare