ECTS - Architectural Photography

Architectural Photography (ART293) Course Detail

Course Name Course Code Season Lecture Hours Application Hours Lab Hours Credit ECTS
Architectural Photography ART293 Fall and Spring 3 0 0 3 4
Pre-requisite Course(s)
N/A
Course Language Turkish
Course Type Elective Courses
Course Level Bachelor’s Degree (First Cycle)
Mode of Delivery Face To Face
Learning and Teaching Strategies Lecture, Demonstration, Drill and Practice.
Course Coordinator
Course Lecturer(s)
Course Assistants
Course Objectives • Learning and using technical and compositional information about architectural photography • Taking better architectural photographs on her/his professional and also social life
Course Learning Outcomes The students who succeeded in this course;
  • - Explains architectural photography
  • - Knows ethics and copyright in architectural photography
  • - Knows historical and contemporary photographers and their works on architectural photography
  • - Knows cameras, lenses and auxiliary equipments in architectural photography
  • - Uses proper lighting (natural and artificial) to take good architectural photographs
  • - Learns to compose an architectural photograph
  • - Learns to overcome challenges in architectural photography
  • - Learns to edit architectural photographs
Course Content Architectural dynamics in art of photography; photography techniques that are compatible with structures; equipment knowledge and usage techniques.

Weekly Subjects and Releated Preparation Studies

Week Subjects Preparation
1 Introduction, essential information about the course context, course outline, references, and assesment methods
2 Definition of photography, photographer, architectural photography, and architectural photographer. Architectural photography and different types of photography.
3 Ethics and copyright in photography and architectural photography. History of architectural photography.
4 The purpose of architectural photography. Shooting methods in architectural photography. Ex-ante controls.
5 Cameras in architectural photography.
6 Lenses and the importance of focal length of lenses in architectural photography.
7 Midterm Exam
8 Perspective Control. Auxiliary equipments in architectural photography.
9 Proper lighting (natural and artificial) in architectural photography.
10 Composition rules in architectural photography
11 Depth of field in architectural photography. Shooting interior and exterior spaces.
12 Overcoming challenges in architectural photography.
13 Creative photography techniques in architectural photography.
14 Panoramic architectural photography. Photographing an architecture model. Editing techniques in architectural photography.
15 Reviewing the term.
16 Final Exam

Sources

Other Sources 1. Kanburoğlu. Ö. (2016).Tüm Yönleriyle Mimari Fotoğraf. İstanbul: Say Yayınları.

Evaluation System

Requirements Number Percentage of Grade
Attendance/Participation - -
Laboratory - -
Application - -
Field Work - -
Special Course Internship - -
Quizzes/Studio Critics - -
Homework Assignments 3 15
Presentation 1 10
Project - -
Report - -
Seminar - -
Midterms Exams/Midterms Jury 1 25
Final Exam/Final Jury 1 50
Toplam 6 100
Percentage of Semester Work 50
Percentage of Final Work 50
Total 100

Course Category

Core Courses X
Major Area Courses
Supportive Courses
Media and Managment Skills Courses
Transferable Skill Courses

The Relation Between Course Learning Competencies and Program Qualifications

# Program Qualifications / Competencies Level of Contribution
1 2 3 4 5
1 Acquires sufficient knowledge in mathematics, natural sciences, and related engineering disciplines; gains the ability to use theoretical and applied knowledge in these fields in solving complex engineering problems.
2 Gains the ability to identify, define, formulate, and solve complex engineering problems; acquires the skill to select and apply appropriate analysis and modeling methods for this purpose.
3 Gains the ability to design a complex system, process, device, or product to meet specific requirements under realistic constraints and conditions, and applies modern design methods for this purpose.
4 Develops the skills to develop, select, and use modern techniques and tools necessary for the analysis and solution of complex problems encountered in industrial engineering applications; gains the ability to effectively use information technologies.
5 Gains the ability to design experiments, conduct experiments, collect data, analyze and interpret results for the investigation of complex engineering problems or discipline-specific research topics.
6 Acquires the ability to work effectively in intra-disciplinary and multidisciplinary teams, as well as individual work skills.
7 Acquires effective oral and written communication skills in Turkish; at least one foreign language proficiency; gains the ability to write effective reports, understand written reports, prepare design and production reports, make effective presentations, and give and receive clear instructions.
8 Develops awareness of the necessity of lifelong learning; gains the ability to access information, follow developments in science and technology, and continuously renew oneself. X
9 Acquires the consciousness of adhering to ethical principles, and gains professional and ethical responsibility awareness. Gains knowledge about the standards used in industrial engineering applications.
10 Gains knowledge about practices in the business life such as project management, risk management, and change management. Develops awareness about entrepreneurship and innovation. Gains knowledge about sustainable development.
11 Gains knowledge about the universal and social dimensions of the impacts of industrial engineering applications on health, environment, and safety, as well as the problems reflected in the engineering field of the era. Gains awareness of the legal consequences of engineering solutions.
12 Gains skills in the design, development, implementation, and improvement of integrated systems involving human, material, information, equipment, and energy.
13 Gains knowledge about appropriate analytical and experimental methods, as well as computational methods, for ensuring system integration.

ECTS/Workload Table

Activities Number Duration (Hours) Total Workload
Course Hours (Including Exam Week: 16 x Total Hours) 16 3 48
Laboratory
Application
Special Course Internship
Field Work
Study Hours Out of Class 6 2 12
Presentation/Seminar Prepration 1 7 7
Project
Report
Homework Assignments 3 5 15
Quizzes/Studio Critics
Prepration of Midterm Exams/Midterm Jury 1 8 8
Prepration of Final Exams/Final Jury 1 10 10
Total Workload 100