VCD3114 User Experience ApplicationsBahçeşehir UniversityDegree Programs SOFTWARE ENGINEERINGGeneral Information For StudentsDiploma SupplementErasmus Policy StatementNational QualificationsBologna Commission
SOFTWARE 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
VCD3114 User Experience Applications 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 İPEK TORUN
Course Lecturer(s): Instructor SERKAN ŞİMŞEK
Assoc. Prof. BARBAROS BOSTAN
Dr. Öğr. Üyesi YAHYA BURAK TAMER
Recommended Optional Program Components: None
Course Objectives: The main objective of the course is to introduce the concepts of interactive arts and interaction design. Comprehension of the use of new media elements in interactive artworks, analysis of concepts as well as technical aspects in interactive designs construct the core. The principles of interactive design will be evaluated through applications and design projects.

Learning Outcomes

The students who have succeeded in this course;
1) Recognize the basic principles of Interactive Arts
2) Identify arts & design scopes of new media such as computational design, data visualization and code arts
3) Develop applications of interactive arts that focuses on design
4) Develop conceptual design for interactive media
5) Study necessary software skills in order to realize design ideas into final products
6) Research the theory and history of interactive arts
7) Identify recent developments and movements in the field of interactive arts
8) Examine the process of the production of interactive arts
9) Criticize interactive artworks academically
10 Manage time that is needed to run interactive design projects

Course Content

The course is structured in three parts.
First part focuses on interactive artworks considering comprehension of their concepts and aspects of technical flow. Analysis of interaction design and insight into the history of code art & computational art will be achieved.
Second part will concentrate on the application of interaction design via the coding language ‘processing’. The students will be introduced to the concept of programming interactivity. They will be able to improve their skills via in-class applications as well as weekly assignments that will prepare them for the final project.
The third part comprises the progress & evaluation of the final projects. Each student will select a topic and concept on which they will be designing their interactive work on.

Weekly Detailed Course Contents

Week Subject Related Preparation
1) Topics of Interactive Arts & Design
2) Theory of Interactive Arts & Design
3) Sensors for Interaction, Physical Input Data Handling Project #1: Interactive Design based on a conceptual problem
4) Evaluation of Project #1 Introduction to Code Grammar
5) Code Grammar Assignment #1
6) Animation If Clause Assignment #2
7) IInteraction For Loops – Pattern Design Assignment #3 Project #2: Evaluation of Interactive Design Artwork
8) Image & Text Attributes Assignment #4
9) External Libraries Video & Camera Assignment #5
10) Matrices Review: Basic code grammar covered so far
11) Reverse Engineering: Analyzing & Repurposing Final Project
12) Final Project Evaluation #1: One to one sessions
13) Final Project Evaluation #2: One to one sessions
14) Final Project Evaluation #3: One to one sessions

Sources

Course Notes / Textbooks: Terzidis, Kostas. 2009. Algorithms for Visual Design – Using The Processing Language. Indiana: Wiley Publishing.

Fry, Ben. 2008. Visualizing Data. Sabastopol: O'Reilly Media.

Noble, Joshua. 2009. Programming Interactivity. Sabastopol: O'Reilly Media.

Fry, Ben and Casey Reas. 2007. Processing: A Programming Handbook for Visual Designers and Artists. Cambridge: MIT Press.

Greenberg, Ira. 2007. Processing: Creative Coding and Computational Art. Berkeley: Apress.

Shiffman, Daniel. 2008. Learning Processing: A Beginner's Guide to Programming Images, Animation and Interaction. Burlington: Elsevier Inc.
References:

Evaluation System

Semester Requirements Number of Activities Level of Contribution
Attendance 14 % 10
Homework Assignments 5 % 20
Project 2 % 30
Final 1 % 40
Total % 100
PERCENTAGE OF SEMESTER WORK % 30
PERCENTAGE OF FINAL WORK % 70
Total % 100

ECTS / Workload Table

Activities Number of Activities Workload
Course Hours 14 56
Application 5 20
Study Hours Out of Class 13 26
Project 1 0
Homework Assignments 5 20
Midterms 1 4
Final 1 4
Total Workload 130

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) Be able to specify functional and non-functional attributes of software projects, processes and products.
2) Be able to design software architecture, components, interfaces and subcomponents of a system for complex engineering problems.
3) Be able to develop a complex software system with in terms of code development, verification, testing and debugging.
4) Be able to verify software by testing its program behavior through expected results for a complex engineering problem.
5) Be able to maintain a complex software system due to working environment changes, new user demands and software errors that occur during operation.
6) Be able to monitor and control changes in the complex software system, to integrate the software with other systems, and to plan and manage new releases systematically.
7) Be able to identify, evaluate, measure, manage and apply complex software system life cycle processes in software development by working within and interdisciplinary teams.
8) Be able to use various tools and methods to collect software requirements, design, develop, test and maintain software under realistic constraints and conditions in complex engineering problems.
9) Be able to define basic quality metrics, apply software life cycle processes, measure software quality, identify quality model characteristics, apply standards and be able to use them to analyze, design, develop, verify and test complex software system.
10) Be able to gain technical information about other disciplines such as sustainable development that have common boundaries with software engineering such as mathematics, science, computer engineering, industrial engineering, systems engineering, economics, management and be able to create innovative ideas in entrepreneurship activities.
11) Be able to grasp software engineering culture and concept of ethics and have the basic information of applying them in the software engineering and learn and successfully apply necessary technical skills through professional life.
12) Be able to write active reports using foreign languages and Turkish, understand written reports, prepare design and production reports, make effective presentations, give clear and understandable instructions.
13) Be able to have knowledge about the effects of engineering applications on health, environment and security in universal and societal dimensions and the problems of engineering in the era and the legal consequences of engineering solutions.