ECTS - Digital Integrated Circuits and Systems

Digital Integrated Circuits and Systems (EE315) Course Detail

Course Name Course Code Season Lecture Hours Application Hours Lab Hours Credit ECTS
Digital Integrated Circuits and Systems EE315 Area Elective 3 0 0 3 6
Pre-requisite Course(s)
(EE212 veya EE236 veya EE216)
Course Language English
Course Type Elective Courses
Course Level Bachelor’s Degree (First Cycle)
Mode of Delivery Face To Face
Learning and Teaching Strategies Lecture, Discussion, Question and Answer, Problem Solving.
Course Coordinator
Course Lecturer(s)
  • Asst. Prof. Dr. Ali HOSSEINGHOLIPOORASL
Course Assistants
Course Objectives The aim of this course is to introduce the fundamentals of digital integrated circuit analysis
Course Learning Outcomes The students who succeeded in this course;
  • Design combinational and sequential CMOS circuits at the transistor level from given logical specifications
  • Find out the static and dynamic performance of digital CMOS circuits
  • Improve or optimize some static and dynamic properties of digital CMOS circuits by adjusting their parameters
  • Describe the relative merits of digital CMOS circuit families
  • Describe the details of operation for combinational and sequential CMOS circuits
  • Entegre devre tasarım ve üretiminin tarihsel gelişimini, kalite ölçütlerini ve meselelerini anlatmak
Course Content Quality metrics of a digital circuits, CMOS manufacturing process, review of diode and MOSFET, interconnects: electrical parameters, models, CMOS inverter: static and dynamic behavior, power and energy, static CMOS design: complementary CMOS, ratioed logic, pass-transistor logic, dynamic CMOS design, sequential CMOS logic: timing metrics, static

Weekly Subjects and Releated Preparation Studies

Week Subjects Preparation
1 Historical Perspective, Quality Metrics of a Digital Design, Issues in digital circuit design Review lecture notes
2 Diode characteristics, Static and Dynamic Behavior. Review lecture notes
3 MOSFET characteristics, MOSFET under Static Conditions Review lecture notes
4 Static CMOS Inverter operation, Switching Threshold, Noise Margins Review lecture notes
5 CMOS Inverter: The Dynamic Behavior, parasitic capacitances Review lecture notes
6 CMOS Inverter: Propagation Delay Review lecture notes
7 Interconnect parameters: capacitance, resistance, inductance, Electrical wire models, contemporary manufacturing processes Review lecture notes
8 CMOS Inverter: Power, Energy. Review of digital circuit simulation Review lecture notes
9 Complementary CMOS circuit design, static behavior Review lecture notes
10 Dynamic behavior of complementary CMOS circuits, Transistor sizing Review lecture notes
11 Ratioed Logic, Pass-Transistor Logic Review lecture notes
12 Timing Metrics for Sequential Circuits, Bistability Principle, SR latch Review lecture notes
13 Multiplexer-Based Latches Review lecture notes
14 Master-Slave Edge-Triggered flip flops Review lecture notes
15 Final Examination Review course material
16 Final Examination Review course material

Sources

Other Sources 1. Digital Integrated Circuits A Design Perspective, Second Edition J.M. Rabaey, A. Chandrakasan, B. Nikolic, Prentice Hall

Evaluation System

Requirements Number Percentage of Grade
Attendance/Participation - -
Laboratory - -
Application - -
Field Work - -
Special Course Internship - -
Quizzes/Studio Critics - -
Homework Assignments - -
Presentation - -
Project - -
Report - -
Seminar - -
Midterms Exams/Midterms Jury 2 60
Final Exam/Final Jury 1 40
Toplam 3 100
Percentage of Semester Work 60
Percentage of Final Work 40
Total 100

Course Category

Core Courses X
Major Area Courses
Supportive Courses
Media and Managment Skills Courses
Transferable Skill Courses

The Relation Between Course Learning Competencies and Program Qualifications

# Program Qualifications / Competencies Level of Contribution
1 2 3 4 5
1 Adequate knowledge in mathematics, science and engineering subjects pertaining to the relevant discipline; ability to use theoretical and applied knowledge in these areas in the solution of complex engineering problems.
2 Ability to formulate, and solve complex mechatronics engineering problems; ability to select and apply proper analysis and modeling methods for this purpose.
3 Ability to design a complex mechatronics engineering system, process, device or product under realistic constraints and conditions, in such a way as to meet the desired result; ability to apply modern design methods for this purpose.
4 Ability to select and use modern techniques and tools needed for analyzing and solving complex problems encountered in mechatronics engineering and robot technology practices; ability to employ information technologies effectively.
5 Ability to design and conduct experiments, gather data, analyze and interpret results for investigating complex mechatronics engineering and robot technology problems or research questions.
6 Ability to work efficiently in intra-disciplinary and multi-disciplinary teams; ability to work individually.
7 Ability to communicate effectively, both orally and in writing; knowledge of a minimum of one foreign language; ability to write effective reports and comprehend written reports, prepare design and production reports, make effective presentations, and give and receive clear and intelligible instructions.
8 Awareness of the need for lifelong learning; ability to access information, to follow developments in science and technology, and to continue to educate him/herself
9 a-) Knowledge on behavior according to ethical principles, professional and ethical responsibility b-) Knowledge on standards used in engineering practices.
10 a-) Knowledge about business life practices such as project management, risk management, and change management b-) Awareness in entrepreneurship, innovation; knowledge about sustainable development.
11 Knowledge about the global and social effects of engineering practices on health, environment, and safety, and contemporary issues of the century reflected into the field of engineering; awareness of the legal consequences of engineering solutions.
12 Competency on defining, analyzing and surveying databases and other sources, proposing solutions based on research work and scientific results and communicate and publish numerical and conceptual solutions in the field of mechatronics engineering.
13 Consciousness on the environment and social responsibility, competencies on observation, improvement and modify and implementation of projects for the society and social relations and be an individual within the society in such a way that planning, improving or changing the norms with a criticism.

ECTS/Workload Table

Activities Number Duration (Hours) Total Workload
Course Hours (Including Exam Week: 16 x Total Hours) 16 3 48
Laboratory
Application
Special Course Internship
Field Work
Study Hours Out of Class 16 5 80
Presentation/Seminar Prepration
Project
Report
Homework Assignments
Quizzes/Studio Critics
Prepration of Midterm Exams/Midterm Jury 2 5 10
Prepration of Final Exams/Final Jury 1 5 5
Total Workload 143