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Μέθοδος Monte Carlo Ακολουθίας Χρονοσειρών×Δυναμικό Δίκτυο Bayes×
ΠεδίοΜπεϋζιανή ΣτατιστικήΜπεϋζιανή Στατιστική
ΟικογένειαBayesian methodsBayesian methods
Έτος προέλευσης19931989
ΔημιουργόςGordon, Salmond & SmithThomas Dean & Keiji Kanazawa
ΤύποςSequential Bayesian filtering algorithmprobabilistic graphical model for sequences
Θεμελιώδης πηγήGordon, N. J., Salmond, D. J., & Smith, A. F. M. (1993). Novel approach to nonlinear/non-Gaussian Bayesian state estimation. IEE Proceedings F — Radar and Signal Processing, 140(2), 107–113. DOI ↗Dean, T. & Kanazawa, K. (1989). A model for reasoning about persistence and causation. Computational Intelligence, 5(3), 142–150. DOI ↗
Εναλλακτικές ονομασίεςparticle filter, time series SMC, sequential particle filtering, bootstrap particle filterDBN, temporal Bayesian network, dynamic probabilistic graphical model, two-slice temporal Bayesian network
Συναφείς55
ΣύνοψηTime series sequential Monte Carlo (SMC), commonly called the particle filter, is a Bayesian simulation method that tracks the hidden state of a dynamical system as observations arrive one at a time. A cloud of weighted random samples — particles — is propagated forward through the system dynamics, reweighted by how well each particle explains the new observation, and periodically resampled to keep the representation concentrated on plausible states.A Dynamic Bayesian Network (DBN) extends a standard Bayesian network over time by representing how a set of random variables evolve across discrete time steps. It captures both the conditional independence structure among variables at each instant and the probabilistic dependencies between consecutive time slices, enabling principled reasoning about temporal processes under uncertainty.
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ScholarGateΣύγκριση μεθόδων: Time series sequential Monte Carlo · Dynamic Bayesian Network. Ανακτήθηκε στις 2026-06-17 από https://scholargate.app/el/compare