This video discusses three important classes of random processes: the Gaussian process, white noise, and auto-regressive moving average processes.
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Pencase: calculation autocorrelation function and PSD
Pencast: spectral factorization
Random processes
Random Vectors
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Linear Estimators: MVUE and BLUE
Derivation of the MLE for Linear Signal Model and AWGN
t-statistics for Hypothesis Testing
Numerical Methods for Solving Estimators
Introduction to Likelihood Function
Introduction to Binary Hypothesis Testing and Receiver Operating Characteristics
Introduction to Least Squares Estimation
Estimator Bias, Variance, CRLB
Bayesian Estimation: MAP and MMSE
Pencast: estimation AR model parameters
Spectral analysis: parametric methods
Non-parametric spectral estimation
Energy and power signal
Windowing and zero-padding
Spectral Factorization
Continuous random variables
LTI with random inputs
Special random processes
Random signal models