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Uedu Open / Signals, Systems and Inference
6.011

Signals, Systems and Inference

Prof. George Verghese, Prof. Alan V. Oppenheim, Prof. Peter Hagelstein | Spring 2018
Engineering Electrical Engineering Robotics and Control Systems Signal Processing Telecommunications
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CC BY-NC-SA 4.0
Course introduction
This course covers signals, systems and inference in communication, control and signal processing. Topics include input-output and state-space models of linear systems driven by deterministic and random signals; time- and transform-domain representations in discrete and continuous time; and group delay. State feedback and observers. Probabilistic models; stochastic processes, correlation functions, power spectra, spectral factorization. Least-mean square error estimation; Wiener filtering. Hypothesis testing; detection; matched filters.
Course Information
SourceMIT 開放式課程
DepartmentElectrical Engineering and Computer Science
LanguageEnglish
Number of videos0
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