Visit of broadAngle in Izmir University of Economics
The founder and CEO of broadAngle, a software company operating in the United States and Izmir, Garrison Atkisson, along with ...
Course Name |
Computer Networks
|
Code
|
Semester
|
Theory
(hour/week) |
Application/Lab
(hour/week) |
Local Credits
|
ECTS
|
CE 326
|
Fall/Spring
|
2
|
2
|
3
|
6
|
Prerequisites |
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Course Language |
English
|
|||||||
Course Type |
Elective
|
|||||||
Course Level |
First Cycle
|
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Mode of Delivery | - | |||||||
Teaching Methods and Techniques of the Course | DiscussionProblem SolvingQ&AApplication: Experiment / Laboratory / WorkshopLecture / Presentation | |||||||
National Occupation Classification | - | |||||||
Course Coordinator | ||||||||
Course Lecturer(s) | ||||||||
Assistant(s) |
Course Objectives | The goal of this course is to familiarize students with the concepts of data communication, computer networks, and Internetworking. At the end of this course, students will be able to understand the principles of computer networking, including protocol features, protocol layering, addressing, routing, and basic network security issues. Students will be able to enumerate the architectural structures of the ISO/OSI and TCP/IP and explain functions of each layer. TCP/IP layers and their network traffic will be analyzed using dedicated tools such as TCPDUMP and Wireshark. Client-server programs will be developed by using Java socket library. | |||||||||||||||||||||||||||||||||||||||||||||||||||||
Learning Outcomes |
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Course Description | Alongside each layer and protocols of computer networks, the following topics will also be discussed: OSI model of network; MAC protocol; TCP and UDP protocols; error control, detection and correction; IPv4; routing; socket programming; network security. |
|
Core Courses | |
Major Area Courses | ||
Supportive Courses | ||
Media and Management Skills Courses | ||
Transferable Skill Courses |
Week | Subjects | Related Preparation | Learning Outcome |
1 | Introduction to Computer Networks: Tools, techniques and methodologies used in analyzing and implementing computer networks | Computer Networking, J. F. Kurose & K.W. Ross: Chapter 1, pages 31-108 | |
2 | Application Layer: Socket programming, Connection-oriented and Connectionless client-server programming | Computer Networking, J. F. Kurose & K.W. Ross: Chapter 2, pages 111-208 | |
3 | Transport Layer: Connection-oriented and Connectionless networking. TCP and UDP protocols | Computer Networking, J. F. Kurose & K.W. Ross: Chapter 3, pages 211-331 | |
4 | Network Layer: IPv4 Addressing, Dynamic Addressing BOOTP, DHCP | Computer Networking, J. F. Kurose & K.W. Ross: Chapter 4, pages 333-405 | |
5 | Network Layer: Subnetworking, ICMP, NAT | Computer Networking, J. F. Kurose & K.W. Ross: Chapter 4, pages 333-405 | |
6 | Network Layer: Routing Information Exchange, Routing Algorithms | Computer Networking, J. F. Kurose & K.W. Ross: Chapter 5, pages 407-476 | |
7 | Lecture Review I | ||
8 | Midterm Exam I | ||
9 | Data Link Layer: Link-Layer Addressing, ARP, RARP | Computer Networking, J. F. Kurose & K.W. Ross: Chapter 6, pages 479-558 | |
10 | Data Link Layer: Multiple Access Protocols | Computer Networking, J. F. Kurose & K.W. Ross: Chapter 6, pages 479-558 | |
11 | Data Link Layer: Error Detection and Correction | Computer Networking, J. F. Kurose & K.W. Ross: Chapter 6, pages 479-558 | |
12 | Lecture Review II | ||
13 | Midterm Exam II | ||
14 | Wireless and Mobile Networks | Computer Networking, J. F. Kurose & K.W. Ross: Chapter 7, pages 561-633 | |
15 | Semester Review | ||
16 | Final Exam |
Course Notes/Textbooks | Computer Networking: A Top Down Approach, 8th Edition, 2020. James Kurose, Keith Ross © | Pearson | ISBN-13: 9780136681557 |
Suggested Readings/Materials | Computer Networks, 4th Edition, 2003. Andrew Tanenbaum © | Prentice Hall | ISBN: 0130384887 Computer Networks And Internets, 5th Edition, 2009. | Prentice Hall | ISBN 0136061273. |
Semester Activities | Number | Weighting | LO 1 | LO 2 | LO 3 | LO 4 | LO 5 |
Participation | |||||||
Laboratory / Application |
1
|
10
|
|||||
Field Work | |||||||
Quizzes / Studio Critiques | |||||||
Portfolio | |||||||
Homework / Assignments | |||||||
Presentation / Jury | |||||||
Project | |||||||
Seminar / Workshop | |||||||
Oral Exams | |||||||
Midterm |
2
|
50
|
|||||
Final Exam |
1
|
40
|
|||||
Total |
Weighting of Semester Activities on the Final Grade |
3
|
60
|
Weighting of End-of-Semester Activities on the Final Grade |
1
|
40
|
Total |
Semester Activities | Number | Duration (Hours) | Workload |
---|---|---|---|
Theoretical Course Hours (Including exam week: 16 x total hours) |
16
|
2
|
32
|
Laboratory / Application Hours (Including exam week: '.16.' x total hours) |
16
|
2
|
32
|
Study Hours Out of Class |
14
|
3
|
42
|
Field Work |
0
|
||
Quizzes / Studio Critiques |
0
|
||
Portfolio |
0
|
||
Homework / Assignments |
0
|
||
Presentation / Jury |
0
|
||
Project |
0
|
||
Seminar / Workshop |
0
|
||
Oral Exam |
0
|
||
Midterms |
2
|
20
|
40
|
Final Exam |
1
|
34
|
34
|
Total |
180
|
#
|
PC Sub | Program Competencies/Outcomes |
* Contribution Level
|
||||
1
|
2
|
3
|
4
|
5
|
|||
1 |
Engineering Knowledge: Knowledge of mathematics, science, basic engineering, computer computation, and topics specific to related engineering disciplines; the ability to use this knowledge in solving complex engineering problems |
-
|
-
|
-
|
-
|
-
|
|
1 |
Mathematics |
-
|
-
|
-
|
-
|
-
|
|
2 |
Science |
-
|
-
|
-
|
-
|
-
|
|
3 |
Basic engineering |
-
|
-
|
-
|
-
|
-
|
|
4 |
Computer computation |
-
|
-
|
-
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-
|
-
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|
5 |
Topics specific to related engineering disciplines |
-
|
-
|
-
|
-
|
-
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|
6 |
The ability to use this knowledge in solving complex engineering problems |
-
|
-
|
-
|
-
|
-
|
|
2 |
Problem Analysis: The ability to define, formulate, and analyze complex engineering problems by using fundamental science, mathematics, and engineering knowledge, while considering the relevant UN Sustainable Development Goals (SDGs) related to the problem. |
-
|
-
|
-
|
-
|
X
|
|
3 |
Engineering Design: The ability to design creative solutions to complex engineering problems; the ability to design complex systems, processes, devices, or products that meet present and future requirements, considering realistic constraints and conditions. |
-
|
X
|
-
|
-
|
-
|
|
1 |
The ability to design creative solutions to complex engineering problems |
-
|
-
|
-
|
-
|
-
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|
2 |
Considering realistic constraints and conditions in designing complex systems, processes, devices, or products |
-
|
-
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-
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-
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-
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3 |
The ability to design in a way that meets current and future requirements |
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-
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-
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-
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4 |
Use of Techniques and Tools: The ability to select and use appropriate techniques, resources, and modern engineering and information technology tools, including prediction and modeling, for the analysis and solution of complex engineering problems, while being aware of their limitations |
-
|
-
|
-
|
X
|
-
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|
5 |
Research and Investigation: The ability to use research methods, including literature review, designing experiments, conducting experiments, collecting data, analyzing and interpreting results, for the investigation of complex engineering problems. |
-
|
-
|
-
|
X
|
-
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|
1 |
The ability to use research methods, including literature review |
-
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-
|
-
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-
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-
|
|
2 |
Designing experiments |
-
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-
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-
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-
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-
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3 |
Conducting experiments, collecting data, analyzing and interpreting results, for the investigation of complex engineering problems |
-
|
-
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-
|
-
|
-
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6 |
Global Impact of Engineering Practices: Knowledge of the impacts of engineering practices on society, health and safety, the economy, sustainability, and the environment within the scope of the UN Sustainable Development Goals (SDGs); awareness of the legal consequences of engineering solutions |
-
|
-
|
-
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-
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-
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|
1 |
Global Impact of Engineering Practices: Knowledge of the impacts of engineering practices on society, health and safety, the economy, sustainability, and the environment within the scope of the UN Sustainable Development Goals (SDGs) |
-
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-
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-
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-
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-
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2 |
Awareness of the legal consequences of engineering solutions |
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-
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-
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-
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7 |
Ethical Behavior: Acting in accordance with the principles of the engineering profession; knowledge of ethical responsibility; awareness of acting impartially and inclusively, without discrimination in any matter. (FENG101) |
-
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-
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-
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-
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1 |
Acting in accordance with the principles of the engineering profession; knowledge of ethical responsibility |
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-
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-
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-
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2 |
Awareness of acting impartially and inclusively, without discrimination in any matter. |
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-
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-
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-
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-
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8 |
Individual and Team Work: The ability to work effectively as an individual and as a member or leader of both intra-disciplinary and interdisciplinary teams (whether face-to-face, remote, or hybrid). |
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-
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-
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9 |
Verbal and Written Communication: Taking into account the various differences of the target audience (such as education, language, profession), particularly in technical matters. |
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1 |
Verbal (ENGxxx) |
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2 |
Written effective communication skills. (ENGxxx) |
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-
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10 |
Project Management: Knowledge of business practices such as project management and economic feasibility analysis; awareness of entrepreneurship and innovation. |
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|
-
|
-
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-
|
-
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|
1 |
Knowledge of business practices such as project management and economic feasibility analysis; (FENG497-FENG498) |
-
|
-
|
-
|
-
|
-
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|
2 |
Awareness of entrepreneurship and innovation. (FENG101) |
-
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-
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-
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-
|
-
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11 |
Lifelong Learning: The ability to learn independently and continuously, adapt to new and emerging technologies, and think critically about technological changes. |
-
|
-
|
-
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-
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-
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*1 Lowest, 2 Low, 3 Average, 4 High, 5 Highest
The founder and CEO of broadAngle, a software company operating in the United States and Izmir, Garrison Atkisson, along with ...
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