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Course

EEE2112504

DIGITAL LOGIC DESIGN

Electrical and Electronics Engineering

LECTURE
3
LAB
2
CREDITS
4
ECTS
8
LANGUAGEEnglishLEVELFirst Cycle (Bachelor's Degree)TYPERequired

AIM

This lecture involves basic digital circuit theory. At the end of the semester, the students will be able to: Conduct an experiment to learn the logic design and prototyping process Write an effective technical report for the lab experiments. Design a digital circuit with combinational and sequential logic components to address a problem Build a prototype of a digital logic circuit and demonstrate that it meets performance specifications. Design an experiment to validate through empirical means one of the following: a hypothesis, a Boolean logic law or identity, dependency among variables, etc. Use state-of-the-art combinational and sequential logic design methodologies, techniques, and paradigms.

CONTENT

This course contains; Course Overview,Number Systems,Addition/Subtraction of Signed Numbers,Logic Gates, Boolean Algebra,Synthesis,Karnaugh Maps,First Half Review,Addition, Subtraction, Multiplication,Combinational Circuits,Sequential Circuits,Registers and Counters,Memory and Programmable Logic,Implementation Technology,Hardware Description Language.

LEARNING OUTCOMES

  1. 1

    Students will be able to design digital logic design circuit using simulation tools, test with measurement tools in lab, and evaluate the results orally and written reports.

    Taught by: Question - Answer Technique, Experimental Technique, Project Based Learning Model, Simulation Technique, Lecture Method · Assessed by: Traditional Written Exam, Homework, Project Task

  2. 2

    Students will be able to design synchronous circuit design using sequential logic circuits (registers and flip-flops).

    Taught by: Question - Answer Technique, Experimental Technique, Project Based Learning Model, Simulation Technique, Lecture Method · Assessed by: Traditional Written Exam, Homework, Project Task

  3. 3

    Students will be able to design large and complex circuits using combinational logic circuits (adders/subtractors, code converters, comparators, multiplexors/demultiplexors, and decoders/encoders).

    Taught by: Question - Answer Technique, Experimental Technique, Project Based Learning Model, Simulation Technique, Lecture Method · Assessed by: Traditional Written Exam, Homework, Project Task

  4. 4

    Students will be able design and analyze circuits using combinational design techniques (K-maps, tabulation method).

    Taught by: Question - Answer Technique, Experimental Technique, Project Based Learning Model, Simulation Technique, Lecture Method · Assessed by: Traditional Written Exam, Homework, Project Task

  5. 5

    Students will be able to set and solve functions using Boolean algebra.

    Taught by: Question - Answer Technique, Experimental Technique, Project Based Learning Model, Simulation Technique, Lecture Method · Assessed by: Traditional Written Exam, Homework, Project Task

  6. 6

    Students will be able to understand and use number representation, number bases and base conversions, and binary codes.

    Taught by: Question - Answer Technique, Experimental Technique, Project Based Learning Model, Simulation Technique, Lecture Method · Assessed by: Traditional Written Exam, Homework, Project Task

WEEKLY PLAN

  1. WEEK 1

    Course Overview

    Preparation: Lecture Notes, Related Book Chapter

  2. WEEK 2

    Number Systems

    Preparation: Lecture Notes, Related Book Chapter

  3. WEEK 3

    Addition/Subtraction of Signed Numbers

    Preparation: Lecture Notes, Related Book Chapter

  4. WEEK 4

    Logic Gates, Boolean Algebra

    Preparation: Lecture Notes, Related Book Chapter

  5. WEEK 5

    Synthesis

    Preparation: Lecture Notes, Related Book Chapter

  6. WEEK 6

    Karnaugh Maps

    Preparation: Lecture Notes, Related Book Chapter

  7. WEEK 7

    First Half Review

    Preparation: Lecture Notes, Related Book Chapter

  8. WEEK 8

    Addition, Subtraction, Multiplication

    Preparation: Lecture Notes, Related Book Chapter

  9. WEEK 9

    Combinational Circuits

    Preparation: Lecture Notes, Related Book Chapter

  10. WEEK 10

    Sequential Circuits

    Preparation: Lecture Notes, Related Book Chapter

  11. WEEK 11

    Registers and Counters

    Preparation: Lecture Notes, Related Book Chapter

  12. WEEK 12

    Memory and Programmable Logic

    Preparation: Lecture Notes, Related Book Chapter

  13. WEEK 13

    Implementation Technology

    Preparation: Lecture Notes, Related Book Chapter

  14. WEEK 14

    Hardware Description Language

    Preparation: Lecture Notes, Related Book Chapter

ASSESSMENT

  • Rate of Midterm Exam to Success30%
  • Rate of Final Exam to Success70%

WORKLOAD

ACTIVITYCOUNTHOURSTOTAL
Course Hours14342
Guided Problem Solving6318
Resolution of Homework Problems and Submission as a Report8864
Term Project000
Presentation of Project / Seminar12424
Quiz8216
Midterm Exam12626
General Exam15050
Performance Task, Maintenance Plan000

READING

  • Textbook: Digital Design, 5/E (6/E), M. Morris Mano, Michael D. Ciletti, ISBN-10:0132774208, Tools: Tinkercad

TEACHING STAFF

  • Assist.Prof. Bilge Ebru AKGÜLCOORDINATOR
  • Assist.Prof. Mustafa AKTAN
  • Assist.Prof. Bilge Ebru AKGÜL