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Jack Baskin School of EngineeringUC Santa Cruz

AMS 223


Graduate level introductory course on time series data and models in
the time and frequency domains: descriptive time series methods; the
periodogram; basic theory of stationary processes; linear filters;
spectral analysis; time series analysis for repeated measurements;
ARIMA models; introduction to Bayesian spectral analysis; Bayesian
learning, forecasting, and smoothing; introduction to Bayesian Dynamic
Linear Models (DLMs); DLM mathematical structure; DLMs for trends and
seasonal patterns; and autoregression and time series regression
models. (Formerly Engineering 223.) Prerequisite: course 206.
Enrollment restricted to graduate students. R. Prado 

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