Syllabus ( GEOD 518 )
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Basic information
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| Course title: |
Non-Topographic and Architectural Photogrammetry |
| Course code: |
GEOD 518 |
| Lecturer: |
Assoc. Prof. Dr. Cumhur ŞAHİN
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| ECTS credits: |
7.5 |
| GTU credits: |
3 (3+0+0) |
| Year, Semester: |
1/2, Fall and Spring |
| Level of course: |
Second Cycle (Master's) |
| Type of course: |
Area Elective
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| Language of instruction: |
Turkish
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| Mode of delivery: |
Face to face
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| Pre- and co-requisites: |
none |
| Professional practice: |
No |
| Purpose of the course: |
The aim of this course is to teach fundamentals of non-tophographical close range and architectural photogrammetry and its application process. |
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Learning outcomes
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Upon successful completion of this course, students will be able to:
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Recognise non-topographic and achitectural photogrammetric camera systems with fundamentals of close-range and architectural photogrammetry.
Contribution to Program Outcomes
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Define and manipulate advanced concepts of Geodesy and Photogrammetry Engineering
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Formulate and solve advanced engineering problems
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Operate modern equipments and hardwares, and use related technical skills in the field of Geodesy and Photogrammetry Engineering.
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Acquire scientific knowledge
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Work effectively in multi-disciplinary research teams
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Develop an awareness of continuous learning in relation with modern technology
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Find out new methods to improve his/her knowledge.
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Effectively express his/her research ideas and findings both orally and in writing
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Write progress reports clearly on the basis of published documents, thesis, etc
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Demonstrate professional and ethical responsibility.
Method of assessment
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Written exam
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Prepare three and two dimensional architectural drawing in the restitution projects with close range photogrammetric techniques.
Contribution to Program Outcomes
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Define and manipulate advanced concepts of Geodesy and Photogrammetry Engineering
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Formulate and solve advanced engineering problems
-
Operate modern equipments and hardwares, and use related technical skills in the field of Geodesy and Photogrammetry Engineering.
-
Acquire scientific knowledge
-
Work effectively in multi-disciplinary research teams
-
Find out new methods to improve his/her knowledge.
-
Effectively express his/her research ideas and findings both orally and in writing
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Write progress reports clearly on the basis of published documents, thesis, etc
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Demonstrate professional and ethical responsibility.
Method of assessment
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Homework assignment
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Use PI-3000 and PICTRAN software for application.
Contribution to Program Outcomes
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Define and manipulate advanced concepts of Geodesy and Photogrammetry Engineering
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Formulate and solve advanced engineering problems
-
Operate modern equipments and hardwares, and use related technical skills in the field of Geodesy and Photogrammetry Engineering.
-
Acquire scientific knowledge
-
Work effectively in multi-disciplinary research teams
-
Develop an awareness of continuous learning in relation with modern technology
-
Effectively express his/her research ideas and findings both orally and in writing
-
Write progress reports clearly on the basis of published documents, thesis, etc
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Demonstrate professional and ethical responsibility.
Method of assessment
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Laboratory exercise/exam
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Contents
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| Week 1: |
Optical and Mathematical Basics of Photogrammetry |
| Week 2: |
Optics and Digital Photography |
| Week 3: |
Measurement Network Design and Coordinat Measurement |
| Week 4: |
Digital Photography Techniques and Software in Architectural Photogrammetry |
| Week 5: |
Geometric Calibration and Inner Orientation |
| Week 6: |
Exterior Orientation and Rectification in the Architectural Photogrammetry |
| Week 7: |
Image Restitution in 2D and 3D |
| Week 8: |
Midterm Exam. |
| Week 9: |
Relief Modeling in 2D and 3D Building Modeling with CAD |
| Week 10: |
Application in the Field |
| Week 11: |
Terrestrial Laser Scanning and Photogrammetry Integration |
| Week 12: |
Application for Digital Photogrammetry |
| Week 13: |
Application Digital Restitution |
| Week 14: |
Application with CAD |
| Week 15*: |
Application with CAD |
| Week 16*: |
Final Exam. |
| Textbooks and materials: |
Non-Topographic Photogrammetry, H. M. Karara, ISBN:0944426107, ASPRS, 1989 Photogrammetry Vol: I-II, Karl Kraus, ISBN:3427786846, Dümmler&Verlag, 1993
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| Recommended readings: |
Close Range Photogrammetry and Machine Vision, K.B. Atkinson, ISBN:187032446X, Whittles Publishing, 1996 Nahbereichs Photogrammetrie, Thomas Luhmann, ISBN:387907321X, Wichmann,2000 Elements of Photogrammetry, Paul R. Wolf, ISBN:0072924543, McGraw-Hill Comp., 2000 |
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* Between 15th and 16th weeks is there a free week for students to prepare for final exam.
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Assessment
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| Method of assessment |
Week number |
Weight (%) |
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| Mid-terms: |
8 |
30 |
| Other in-term studies: |
13-15 |
5 |
| Project: |
0 |
0 |
| Homework: |
5-15 |
5 |
| Quiz: |
0 |
0 |
| Final exam: |
16 |
60 |
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Total weight: |
(%) |
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Workload
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| Activity |
Duration (Hours per week) |
Total number of weeks |
Total hours in term |
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| Courses (Face-to-face teaching): |
3 |
14 |
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| Own studies outside class: |
5 |
14 |
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| Practice, Recitation: |
0 |
0 |
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| Homework: |
6 |
10 |
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| Term project: |
0 |
0 |
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| Term project presentation: |
0 |
0 |
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| Quiz: |
0 |
0 |
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| Own study for mid-term exam: |
2 |
1 |
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| Mid-term: |
1 |
1 |
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| Personal studies for final exam: |
10 |
1 |
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| Final exam: |
3 |
1 |
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Total workload: |
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Total ECTS credits: |
* |
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* ECTS credit is calculated by dividing total workload by 25. (1 ECTS = 25 work hours)
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