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Course unit, curriculum year 2022–2023
COMP.SGN.200

Advanced Signal Processing, 5 cr

Tampere University
Teaching periods
Active in period 2 (24.10.2022–31.12.2022)
Active in period 3 (1.1.2023–5.3.2023)
Active in period 4 (6.3.2023–31.5.2023)
Course code
COMP.SGN.200
Language of instruction
English
Academic years
2021–2022, 2022–2023, 2023–2024
Level of study
Advanced studies
Grading scale
General scale, 0-5
Persons responsible
Responsible teacher:
Ioan Tabus
Responsible organisation
Faculty of Information Technology and Communication Sciences 100 %
Coordinating organisation
Computing Sciences Studies 100 %
Core content
  • 1. Deterministic and random signals: review of Fourier transform, Z transform, random variables, random signals, correlation, AR,MA, ARMA
  • 2. Optimal filter design (Wiener filter, Least squares, essentials of estimation, MLE, CramerRao)
  • 3. Adaptive filter design (LMS, NLMS, RLS )
  • 4. Application areas of Optimal filter design and Adaptive filter design
  • 5. Spectrum estimation:Frequency spectrum (needed in machine function regime diagnosis, finding periodicities in time series), Direction of Arrival spectrum
  • 6. Nonlinear filters (median and order statistics filter family)
Learning outcomes
Prerequisites
Recommended prerequisites
Further information
Learning material
Equivalences
Studies that include this course
Completion option 1
Completion of all options is required.

Participation in teaching

25.10.2022 08.12.2022
Active in period 2 (24.10.2022–31.12.2022)

Exam

12.12.2022 12.12.2022
Active in period 2 (24.10.2022–31.12.2022)
08.02.2023 08.02.2023
Active in period 3 (1.1.2023–5.3.2023)
14.03.2023 14.03.2023
Active in period 4 (6.3.2023–31.5.2023)