CYS5171 Computer ForensicsBahçeşehir UniversityDegree Programs ENERGY SYSTEMS ENGINEERINGGeneral Information For StudentsDiploma SupplementErasmus Policy StatementNational QualificationsBologna Commission
ENERGY SYSTEMS ENGINEERING
Bachelor TR-NQF-HE: Level 6 QF-EHEA: First Cycle EQF-LLL: Level 6

Course Introduction and Application Information

Course Code Course Name Semester Theoretical Practical Credit ECTS
CYS5171 Computer Forensics Spring 3 0 3 12
This catalog is for information purposes. Course status is determined by the relevant department at the beginning of semester.

Basic information

Language of instruction: English
Type of course: Non-Departmental Elective
Course Level: Bachelor’s Degree (First Cycle)
Mode of Delivery: Face to face
Course Coordinator : Dr. Öğr. Üyesi AHMET NACİ ÜNAL
Recommended Optional Program Components: None
Course Objectives: Basic information for computer forensics.

Learning Outcomes

The students who have succeeded in this course;
In computer forensics process and the use of proper equipment at every stage is provide. To gain experience with expert opinions.

Course Content

First responders to computer media. The importance of the use of special equipment in the field of Computer Forensics. Write protection equipment. Image Receiving Equipment. Image Receiving Devices. Image Receiving Software. The equipment used for the analysis of the data storage unit. Multifunction Software. Other software equipment. Repair damaged media and data recovery equipment. Equipment used in the mobile examination. Investigation of mobile devices. The equipment used in live review

Weekly Detailed Course Contents

Week Subject Related Preparation
1) First responders to computer media Lecturer notes
2) The importance of the use of special equipment in the field of Computer Forensics Lecturer notes
3) Write protection equipment Lecturer notes
4) Image Receiving Equipment Lecturer notes
5) Image Receiving Devices Lecturer notes
6) Image Receiving Software Lecturer notes
7) The equipment used for the analysis of the data storage unit Lecturer notes
8) Multifunction Software I Lecturer notes
9) Multifunction Software II Lecturer notes
10) Other software equipment Lecturer notes
11) Repair damaged media and data recovery equipment Lecturer notes
12) Equipment used in the mobile examination Lecturer notes
13) Investigation of mobile devices Lecturer notes
14) The equipment used in live review Lecturer notes

Sources

Course Notes / Textbooks: Computer Forensics InfoSec Pro Guide, David Cowen, 2013.
References: Ders notları

Evaluation System

Semester Requirements Number of Activities Level of Contribution
Attendance 10 % 0
Homework Assignments 4 % 10
Presentation 1 % 10
Midterms 1 % 20
Final 1 % 60
Total % 100
PERCENTAGE OF SEMESTER WORK % 40
PERCENTAGE OF FINAL WORK % 60
Total % 100

ECTS / Workload Table

Activities Number of Activities Duration (Hours) Workload
Course Hours 14 3 42
Study Hours Out of Class 14 12 168
Presentations / Seminar 2 3 6
Homework Assignments 4 8 32
Midterms 1 20 20
Final 1 20 20
Total Workload 288

Contribution of Learning Outcomes to Programme Outcomes

No Effect 1 Lowest 2 Low 3 Average 4 High 5 Highest
           
Program Outcomes Level of Contribution
1) Build up a body of knowledge in mathematics, science and Energy Systems Engineering subjects; use theoretical and applied information in these areas to model and solve complex engineering problems.
2) Ability to identify, formulate, and solve complex Energy Systems Engineering problems; select and apply proper modeling and analysis methods for this purpose.
3) Ability to design complex Energy systems, processes, devices or products under realistic constraints and conditions, in such a way as to meet the desired result; apply modern design methods for this purpose.
4) Ability to devise, select, and use modern techniques and tools needed for solving complex problems in Energy Systems Engineering practice; employ information technologies effectively.
5) Ability to design and conduct numerical or pysical experiments, collect data, analyze and interpret results for investigating the complex problems specific to Energy Systems Engineering.
6) Ability to cooperate efficiently in intra-disciplinary and multi-disciplinary teams; and show self-reliance when working on Energy Systems-related problems
7) Ability to communicate effectively in English and Turkish (if he/she is a Turkish citizen), both orally and in writing. Write and understand reports, prepare design and production reports, deliver effective presentations, give and receive clear and understandable instructions.
8) Recognize the need for life-long learning; show ability to access information, to follow developments in science and technology, and to continuously educate oneself.
9) Develop an awareness of professional and ethical responsibility, and behave accordingly. Be informed about the standards used in Energy Systems Engineering applications.
10) Learn about business life practices such as project management, risk management, and change management; develop an awareness of entrepreneurship, innovation, and sustainable development.
11) Acquire knowledge about the effects of practices of Energys Systems Engineering on health, environment, security in universal and social scope, and the contemporary problems of Energys Systems engineering; is aware of the legal consequences of Energys Systems engineering solutions.