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                      | Detailed information | 
                     
                                
                    
                      | Original study plan | 
                      Master's programme Information Electronics 2015W | 
                     
                      
                    
                      | Objectives | 
                      Design of optimum estimation algorithms for signal processing problems, Design of optimum and adaptive filters, Design of Kalman filters.
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                      | Subject | 
                      - Design of optimum estimation algorithms (CRLB, MVU, BLUE, LS, MMSE, LMMSE, MAP; Applications: amplitude estimation, frequency estimation, power estimation, signal extraction, system identification)
 - Optimum filters (Wiener filter; Least squares filter; Applications: system identification, inverse system identification, noise cancellation, linear prediction)
 - Adaptive filters (LMS algorithm; RLS algorithm)
 - Kalman filter (Kalman filter for linear systems; Extended Kalman filter for non-linear systems)
 
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                      | Criteria for evaluation | 
                      Oral exam
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                      | Methods | 
                      Theory presented by lecturer, Matlab based presentations 
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                      | Language | 
                      German | 
                     
                      
                    
                      | Study material | 
                      - Lecture Slides
 - S. Kay, Fundamentals of Statistical Signal Processing: Estimation Theory, Prentice Hall, Rhode Island 1993.
 - D.G. Manolakis, V.K. Ingle, S.M. Kogon, Statistical and Adaptive Signal Processing, Artech House, 2005.
 
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                      | Changing subject? | 
                      No | 
                     
                                        
                      | Further information | 
                      Language can be switched to English if requested
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