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NOTEARS: Optimizim i Vazhdueshëm për Mësimin e Strukturës Shkakore×Rrjeti Bajesian×
FushaInferenca kauzaleStatistika bajesiane
FamiljaMachine learningBayesian methods
Viti i origjinës20181988
KrijuesiZheng, Aragam, Ravikumar & XingJudea Pearl
LlojiContinuous optimization algorithm for causal DAG discoveryProbabilistic graphical model
Burimi themeluesZheng, X., Aragam, B., Ravikumar, P., & Xing, E. P. (2018). DAGs with NO TEARS: Continuous optimization for structure learning. Advances in Neural Information Processing Systems, 31. link ↗Pearl, J. (1988). Probabilistic Reasoning in Intelligent Systems: Networks of Plausible Inference. Morgan Kaufmann. ISBN: 978-1558604797
Emërtime të tjeraDAGs with NO TEARS, Continuous Structure Learning, Continuous DAG Optimization, Sürekli DAG Yapı ÖğrenimiBayes network, belief network, probabilistic graphical model, directed graphical model
Të lidhura14
PërmbledhjaNOTEARS (No Tears: Acyclicity Regression Structure) is a causal structure learning algorithm introduced by Zheng, Aragam, Ravikumar, and Xing in 2018 at NeurIPS. It reformulates the combinatorially hard problem of learning a directed acyclic graph (DAG) from observational data as a continuous, smooth optimization problem, enabling the use of standard gradient-based solvers and removing the need for exhaustive combinatorial search over graph space.A Bayesian network is a probabilistic graphical model, introduced by Judea Pearl in 1988, that encodes a set of variables and their conditional dependencies as a directed acyclic graph (DAG). Each node represents a variable; each directed edge encodes a direct probabilistic influence. By combining Bayes' rule with the graph's conditional independence structure, the model supports reasoning under uncertainty — computing the probability of any variable given observed evidence about others.
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ScholarGateKrahasoni metodat: NOTEARS · Bayesian Network. Marrë më 2026-06-15 nga https://scholargate.app/sq/compare