POV4215 Digital Video WorkshopBahçeşehir UniversityDegree Programs BIOMEDICAL ENGINEERINGGeneral Information For StudentsDiploma SupplementErasmus Policy StatementNational QualificationsBologna Commission
BIOMEDICAL 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
POV4215 Digital Video Workshop Spring 2 2 3 5
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 TOLGA HEPDİNÇLER
Recommended Optional Program Components: None
Course Objectives: This course aims to develop students’ understanding of new video techniques in interactive media-related technologies and to develop basic skills in the use of them, as part of a team.

Learning Outcomes

The students who have succeeded in this course;
1. Recognize recent hardware and software developments related to digital video and interactive media.
2. Differentiate and identify the potential of new technologies.
3. Master at formulating a project.
4. Produce a prototype.
5. Assume responsibility of completing a digital video project.

Course Content


Weekly Detailed Course Contents

Week Subject Related Preparation
1) Use of digital media based on moving image
2) New hardware technologies used in interactive media Working on the assignments.
3) New software technologies used in interactive media Working on the assignments.
4) Brainstorming session for possible projects Working on the assignments.
5) Creating a team and planning a workflow Working on the assignments.
6) Project discussion Assignment I Working on the assignments.
7) Introduction to Arduino Working on the assignments.
8) Introduction to Arduino II Working on the assignments.
9) Introduction to Processing Working on the assignments.
10) Introduction to Processing II Working on the assignments.
11) Workshop Working on the assignments.
12) Workshop Working on the assignments.
13) Testing projects Working on the assignments.
14) Evaluation Final Assignment; Presentation of the works Working on the assignments.

Sources

Course Notes / Textbooks: 1. Noble, J. (2012). Programming interactivity. Sebastopol, CA: O'Reilly.
2. Igoe, T. (2011). Making things talk. Sebastopol, CA: O'Reilly.
References:

Evaluation System

Semester Requirements Number of Activities Level of Contribution
Attendance 14 % 15
Homework Assignments 6 % 25
Project 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 4 56
Application 13 2 26
Project 1 8 8
Homework Assignments 4 8 32
Total Workload 122

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) Adequate knowledge of subjects specific to mathematics (analysis, linear, algebra, differential equations, statistics), science (physics, chemistry, biology) and related engineering discipline, and the ability to use theoretical and applied knowledge in these fields in complex engineering problems.
2) Identify, formulate, and solve complex Biomedical Engineering problems; select and apply proper modeling and analysis methods for this purpose
3) Design complex Biomedical 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) Devise, select, and use modern techniques and tools needed for solving complex problems in Biomedical Engineering practice; employ information technologies effectively.
5) Design and conduct numerical or physical experiments, collect data, analyze and interpret results for investigating the complex problems specific to Biomedical Engineering.
6) Cooperate efficiently in intra-disciplinary and multi-disciplinary teams; and show self-reliance when working on Biomedical Engineering-related problems.
7) Ability to communicate effectively in Turkish, oral and written, to have gained the level of English language knowledge (European Language Portfolio B1 general level) to follow the innovations in the field of Biomedical Engineering; gain the ability to write and understand written reports effectively, to prepare design and production reports, to make effective presentations, to 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) Having knowledge for the importance of acting in accordance with the ethical principles of biomedical engineering and the awareness of professional responsibility and ethical responsibility and the standards used in biomedical 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 Biomedical Engineering on health, environment, security in universal and social scope, and the contemporary problems of Biomedical Engineering; is aware of the legal consequences of Mechatronics engineering solutions.