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Syllabus ( GEOD 518 )


   Basic information
Course title: Non-Topographic and Architectural Photogrammetry
Course code: GEOD 518
Lecturer: Assoc. Prof. Dr. Cumhur ŞAHİN
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
Language of instruction: Turkish
Mode of delivery: Face to face
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.
   Learning outcomes Up

Upon successful completion of this course, students will be able to:

  1. Recognise non-topographic and achitectural photogrammetric camera systems with fundamentals of close-range and architectural photogrammetry.

    Contribution to Program Outcomes

    1. Define and manipulate advanced concepts of Geodesy and Photogrammetry Engineering
    2. Formulate and solve advanced engineering problems
    3. Operate modern equipments and hardwares, and use related technical skills in the field of Geodesy and Photogrammetry Engineering.
    4. Acquire scientific knowledge
    5. Work effectively in multi-disciplinary research teams
    6. Develop an awareness of continuous learning in relation with modern technology
    7. Find out new methods to improve his/her knowledge.
    8. Effectively express his/her research ideas and findings both orally and in writing
    9. Write progress reports clearly on the basis of published documents, thesis, etc
    10. Demonstrate professional and ethical responsibility.

    Method of assessment

    1. Written exam
  2. Prepare three and two dimensional architectural drawing in the restitution projects with close range photogrammetric techniques.

    Contribution to Program Outcomes

    1. Define and manipulate advanced concepts of Geodesy and Photogrammetry Engineering
    2. Formulate and solve advanced engineering problems
    3. Operate modern equipments and hardwares, and use related technical skills in the field of Geodesy and Photogrammetry Engineering.
    4. Acquire scientific knowledge
    5. Work effectively in multi-disciplinary research teams
    6. Find out new methods to improve his/her knowledge.
    7. Effectively express his/her research ideas and findings both orally and in writing
    8. Write progress reports clearly on the basis of published documents, thesis, etc
    9. Demonstrate professional and ethical responsibility.

    Method of assessment

    1. Homework assignment
  3. Use PI-3000 and PICTRAN software for application.

    Contribution to Program Outcomes

    1. Define and manipulate advanced concepts of Geodesy and Photogrammetry Engineering
    2. Formulate and solve advanced engineering problems
    3. Operate modern equipments and hardwares, and use related technical skills in the field of Geodesy and Photogrammetry Engineering.
    4. Acquire scientific knowledge
    5. Work effectively in multi-disciplinary research teams
    6. Develop an awareness of continuous learning in relation with modern technology
    7. Effectively express his/her research ideas and findings both orally and in writing
    8. Write progress reports clearly on the basis of published documents, thesis, etc
    9. Demonstrate professional and ethical responsibility.

    Method of assessment

    1. Laboratory exercise/exam
   Contents Up
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
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
  * Between 15th and 16th weeks is there a free week for students to prepare for final exam.
Assessment Up
Method of assessment Week number Weight (%)
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
  Total weight:
(%)
   Workload Up
Activity Duration (Hours per week) Total number of weeks Total hours in term
Courses (Face-to-face teaching): 3 14
Own studies outside class: 5 14
Practice, Recitation: 0 0
Homework: 6 10
Term project: 0 0
Term project presentation: 0 0
Quiz: 0 0
Own study for mid-term exam: 2 1
Mid-term: 1 1
Personal studies for final exam: 10 1
Final exam: 3 1
    Total workload:
    Total ECTS credits:
*
  * ECTS credit is calculated by dividing total workload by 25.
(1 ECTS = 25 work hours)
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