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Butstrap simulacija sa podacima koji nedostaju×Monte Karlo simulacija sa podacima koji nedostaju×
OblastBajesovska statistikaBajesovska statistika
PorodicaBayesian methodsBayesian methods
Godina nastanka1979–1990s1987–2002
TvoracBradley Efron (bootstrap); missing-data extensions by Efron, Little, Rubin and othersRubin, D. B. / Little, R. J. A.
TipResampling simulationSimulation-based estimation
Temeljni izvorEfron, B. & Tibshirani, R. J. (1993). An Introduction to the Bootstrap. Chapman and Hall/CRC. ISBN: 978-0412042317Little, R. J. A. & Rubin, D. B. (2002). Statistical Analysis with Missing Data (2nd ed.). Wiley. ISBN: 978-0471183860
Drugi nazivibootstrap with missing data, bootstrap imputation simulation, resampling under missingness, bootstrap MIMC simulation missing data, Monte Carlo imputation, simulation-based missing data analysis, stochastic simulation with incomplete data
Srodne56
SažetakBootstrap simulation with missing data combines resampling-based variance estimation with principled handling of incomplete observations. Rather than deleting cases or assuming complete data, the method integrates imputation or weighting directly into the bootstrap loop, propagating the additional uncertainty due to missingness into the final standard errors and confidence intervals.Monte Carlo simulation with missing data combines stochastic simulation — drawing random values from probability distributions — with principled missing-data strategies such as multiple imputation. Instead of discarding incomplete records or substituting a single fill-in value, the method generates many simulated complete datasets, runs the target analysis on each, and pools the results to yield estimates that honestly reflect both sampling uncertainty and uncertainty due to missingness.
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ScholarGateUporedite metode: Bootstrap Simulation with Missing Data · Monte Carlo Simulation with Missing Data. Preuzeto 2026-06-15 sa https://scholargate.app/sr/compare