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4 stimulus integration, we used nonparametric maximum a posteriori decoding to compare the ability of
5 takes-all (WTA) models and a Bayesian model, maximum a posteriori estimate (MAP), to determine which
6 graph formulation can be used for obtaining maximum a posteriori estimates from models or optimizati
8 in a corresponding one-dimensional family of maximum a posteriori estimates that interpolate smoothly
9 fice uncertainty quantification by computing maximum a posteriori estimates, or quantify the uncertai
10 clique potential functions in the MRF so its maximum a posteriori estimation can be reduced to the we
12 izing it for global sensitivity analysis and maximum a posteriori estimation in a synthetic metabolic
14 matrix can be used as a structured prior for maximum a posteriori estimation of neural activity patte
15 entation to segment the minimum distance and maximum a posteriori estimation to infer de novo CNVs fr
17 ithm aims at robustness by using a priorless maximum a posteriori estimator and at efficiency by a dy
19 s used to analyze the parametric behavior of maximum a posteriori inference calculations for graphica
20 an algorithm that provably reaches the MAP (maximum a posteriori) inference solution, but does so us
21 te graphical models that learn via an online maximum a posteriori learning algorithm could provide su
23 n correction and a two-dimensional iterative maximum a posteriori (MAP) algorithm using attenuation c
24 e estimation process of parameters through a maximum a posteriori (MAP) Bayesian method to facilitate
29 tions on the time-frequency plane that yield maximum a posteriori (MAP) spectral estimates that are c
30 e reconstructed with the fully 3-dimensional maximum a posteriori method, and CT images were reconstr
32 Second, we demonstrate that the Pointwise Maximum a posteriori (PMAP) HMM decoding procedure yield
34 iterative reconstruction algorithm utilizing maximum-a-posteriori principles and integrating the stat
36 ng randomized data to determine the critical maximum a posteriori probability (MAP) values for statis
37 s expectation maximization and 3-dimensional maximum a posteriori probability (MAP3D) algorithms.
38 dexamethasone plasma concentrations by using maximum a posteriori probability estimation; we evaluate