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Course Details
KTO KARATAY UNIVERSITY
Mühendislik ve Doğa Bilimleri Fakültesi
Programme of Electrical and Electronics Engineering
Course Details
Course Code Course Name Year Period Semester T+A+L Credit ECTS
05150501 Signals and Systems 3 Autumn 5 3+0+0 3 6
Course Type Compulsory
Course Cycle Bachelor's (First Cycle) (TQF-HE: Level 6 / QF-EHEA: Level 1 / EQF-LLL: Level 6)
Course Language Turkish
Methods and Techniques -
Mode of Delivery Face to Face
Prerequisites -
Coordinator -
Instructor(s) Asst. Prof. Saim ERVURAL
Instructor Assistant(s) -
Course Instructor(s)
Name and Surname Room E-Mail Address Internal Meeting Hours
Asst. Prof. Saim ERVURAL A-134 [email protected] 7602 Wednesday
13:00-14:00
Course Content
Introduction to Signals and Systems, Continuous-Discrete Time Signals, Continuous-Discrete Time LTI Systems, Properties of LTI Systems and Block Diagrams, Response of Continuous LTI Systems for Exponential Functions, Fourier Series in Non-Periodic Signals, Fourier Series Fourier Analysis in Periodic Signals - I, Periodic Signals and Fourier Transforms in Continuous Time, Exponential Functions -Response of Advanced LTI Systems, Fourier Series in Non-Periodic Signals, Fourier Series in Periodic Signals, Z-transform
Objectives of the Course
Starting from the identifier and carrier unit function, which we call the signal, by creating mathematical models, distributions and statistics, to provide a basis for signal and related signal systems by learning a basic theoretical content including all active communication technologies
Contribution of the Course to Field Teaching
Basic Vocational Courses X
Specialization / Field Courses
Support Courses
Transferable Skills Courses
Humanities, Communication and Management Skills Courses
Relationships between Course Learning Outcomes and Program Outcomes
Relationship Levels
Lowest Low Medium High Highest
1 2 3 4 5
# Program Learning Outcomes Level
P2 Ability to identify, describe, mathematically express, and solve challenging engineering problems; the capability to select and utilize appropriate analysis and modeling techniques for this purpose. 5
P5 Ability to plan experiments, conduct them, collect data, analyze and interpret results regarding complex engineering problems or discipline-specific research topics. 5
Course Learning Outcomes
Upon the successful completion of this course, students will be able to:
No Learning Outcomes Outcome Relationship Measurement Method **
O1 Explaining signals mathematically and performing mathematical operations on signals P.2.46 1
O2 Recognize basic signals such as sinusoidal signals, complex exponentials, delta and step functions, and classify signals as continuous-time or discrete-time, periodic or non-periodic, energy or power signal, even or odd symmetrical forms P.2.47 1
O3 Understand various system properties such as causality, time invariance, linearity, and stability P.2.48 1
O4 Understand the operations of convolution sum and convolution integral and their role in the analysis of linear time-invariant systems P.5.18 1
O5 Computing the Fourier series (and inverse) of periodic continuous time and discrete time signals from the definition equations and using the properties of the Fourier series P.5.19 1
O6 Calculating the Fourier transform (and inverse) of continuous time signals from the definition equations and using the properties of the Fourier transform P.5.20 1
** Written Exam: 1, Oral Exam: 2, Homework: 3, Lab./Exam: 4, Seminar/Presentation: 5, Term Paper: 6, Application: 7
Weekly Detailed Course Contents
Week Topics
1 Signals and Introduction to Systems
2 Continuous-Discrete Time Signals
3 Continuous-Discrete Time LTI Systems
4 Features of LTI Systems and Block Diagrams
5 Response of Continuous LTI Systems for Exponential Functions
6 Non-Periodic Signals Fourier Series
7 Fourier Series Fourier Analysis in Periodic Signals - I
8 Midterm Week
9 Periodic Signals and Fourier Transform in Continuous Time
10 For Exponential Functions -Response of Advanced LTI Systems
11 Non-Periodic Signals Fourier Series
12 Fourier Series in Periodic Signals
13 Z-transform
14 Final Week
Textbook or Material
Resources signals and systems ders kitabı
Evaluation Method and Passing Criteria
In-Term Studies Quantity Percentage
Attendance - -
Laboratory - -
Practice - -
Homework - -
Presentation - -
Projects - -
Quiz - -
Listening - -
Midterms 1 40 (%)
Final Exam 1 60 (%)
Total 100 (%)
ECTS / Working Load Table
Quantity Duration Total Work Load
Course Week Number and Time 14 3 42
Out-of-Class Study Time (Pre-study, Library, Reinforcement) 14 3 42
Midterms 1 40 40
Quiz 0 0 0
Homework 0 0 0
Practice 0 0 0
Laboratory 0 0 0
Project 0 0 0
Workshop 0 0 0
Presentation/Seminar Preparation 0 0 0
Fieldwork 0 0 0
Final Exam 1 42 42
Other 0 0 0
Total Work Load: 166
Total Work Load / 30 5,53
Course ECTS Credits: 6
Course - Learning Outcomes Matrix
Relationship Levels
Lowest Low Medium High Highest
1 2 3 4 5
# Learning Outcomes P2 P5
O1 Explaining signals mathematically and performing mathematical operations on signals 5 -
O2 Recognize basic signals such as sinusoidal signals, complex exponentials, delta and step functions, and classify signals as continuous-time or discrete-time, periodic or non-periodic, energy or power signal, even or odd symmetrical forms 5 -
O3 Understand various system properties such as causality, time invariance, linearity, and stability 4 -
O4 Understand the operations of convolution sum and convolution integral and their role in the analysis of linear time-invariant systems - 5
O5 Computing the Fourier series (and inverse) of periodic continuous time and discrete time signals from the definition equations and using the properties of the Fourier series - 4
O6 Calculating the Fourier transform (and inverse) of continuous time signals from the definition equations and using the properties of the Fourier transform - 5