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Linganisha mbinu

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Kushuka kwa Gradient kwa Bahati Nasibu (SGD)×Regresheni ya Logistiki×
NyanjaUjifunzaji wa MashineTakwimu za Utafiti
FamiliaMachine learningProcess / pipeline
Mwaka wa asili19511958
MwanzilishiRobbins, H. & Monro, S.David Roxbee Cox
AinaFirst-order iterative optimization algorithmMethod
Chanzo asiliaRobbins, H. & Monro, S. (1951). A Stochastic Approximation Method. The Annals of Mathematical Statistics, 22(3), 400–407. DOI ↗Cox, D. R. (1958). The regression analysis of binary sequences. Journal of the Royal Statistical Society, Series B, 20(2), 215–242. DOI ↗
Majina mbadalaSGD, online gradient descent, incremental gradient descent, mini-batch gradient descentlogit model, binomial logistic regression, LR
Zinazohusiana33
MuhtasariStochastic Gradient Descent (SGD) is a first-order iterative optimization algorithm, rooted in the stochastic approximation framework introduced by Robbins and Monro in 1951, that minimizes an objective function by updating model parameters using the gradient computed on a single randomly selected training example (or a small mini-batch) at each step. It is the core optimization engine behind modern machine learning and deep learning, enabling the training of models on datasets too large to fit in memory.Logistic regression is a statistical method for modeling the probability of a binary outcome (disease present/absent, success/failure) as a function of continuous and categorical predictors. Developed by David Roxbee Cox (1958), it solves the problem of predicting categorical outcomes by applying a logistic transformation to constrain predictions to the [0,1] probability interval, enabling accurate risk stratification, diagnostic prediction, and causal inference in epidemiology, medicine, and social science.
ScholarGateSeti ya data
  1. v1
  2. 2 Vyanzo
  3. PUBLISHED
  1. v1
  2. 2 Vyanzo
  3. PUBLISHED

Nenda kwenye utafutaji Pakua slaidi

ScholarGateLinganisha mbinu: Stochastic Gradient Descent · Logistic Regression. Imepatikana 2026-06-18 kutoka https://scholargate.app/sw/compare