GMT615 - DIGITAL TERRAIN MODELLING

Course Name Code Semester Theory
(hours/week)
Application
(hours/week)
Credit ECTS
DIGITAL TERRAIN MODELLING GMT615 Any Semester/Year 2 2 3 7
PrequisitesNone
Course languageTurkish
Course typeElective 
Mode of DeliveryFace-to-Face 
Learning and teaching strategiesLecture
Question and Answer
Drill and Practice
 
Instructor (s)Will be defined by Geomatics Engineering Department 
Course objectiveThe aim of course is to educate engineers with capabilities of advanced engineering skills and give detailed information on fundamentals, applications and methods of digital terrain modeling (DTM), elevation models, DTM in remote sensing and photogrammetry in Geomatics.  
Learning outcomes
  1. Recognize data collection methods for DTM generation,
  2. Compare interpolation techniques,
  3. Test the quality of DTM models,
  4. Interpret final products of Laser and Radar applications.
Course ContentVarious acquisition techniques for DEM generation. Surface interpolation techniques. Spatial interpolation methods. Elevation products to obtain other types of geographic information. Analysis of the quality and parameterization of digital elevation models. Methodology and principles of laser ranging and laser scanning and radar, theory, processing, and DTM quality. 
ReferencesWill be determined by the related Instructor. 

Course outline weekly

WeeksTopics
Week 1Various acquisition techniques for DEM generation
Week 2Various acquisition techniques for DEM generation
Week 3Surface interpolation methods
Week 4Surface interpolation methods
Week 5Spatial interpolation techniques
Week 6Midterm exam
Week 7Elevation products to obtain other types of geographic information
Week 8Analysis of the quality and parameterization of digital elevation models
Week 9Analysis of the quality and parameterization of digital elevation models
Week 10Methodology and principles of laser ranging and laser scanning
Week 11Midterm exam
Week 12Methodology and principles of laser ranging and laser scanning
Week 13Radar, theory and basics
Week 14Radar, theory and basics
Week 15Final preparation
Week 16Final Exam

Assesment methods

Course activitiesNumberPercentage
Attendance165
Laboratory145
Application00
Field activities00
Specific practical training00
Assignments55
Presentation00
Project00
Seminar00
Midterms235
Final exam150
Total100
Percentage of semester activities contributing grade succes3750
Percentage of final exam contributing grade succes150
Total100

WORKLOAD AND ECTS CALCULATION

Activities Number Duration (hour) Total Work Load
Course Duration (x14) 16 2 32
Laboratory 14 2 28
Application000
Specific practical training000
Field activities000
Study Hours Out of Class (Preliminary work, reinforcement, ect)14570
Presentation / Seminar Preparation000
Project000
Homework assignment5840
Midterms (Study duration)21530
Final Exam (Study duration) 11010
Total Workload5242210

Matrix Of The Course Learning Outcomes Versus Program Outcomes

D.9. Key Learning OutcomesContrubition level*
12345
1. Define problems in Geomatics Engineering and use Information Technology effectively in order to solve these problems.   X 
2. Learn basic Mathematics, Science and Engineering formations and use them productively in professional life  X  
3. Choose, use and improve recent technology and methods that needed for Geomatics Engineering applications   X 
4. Earn the ability of producing new spatial products with data coming from international Geomatics application by using his/her qualification of obtaining, interpretation and analyzing of spatial data and by adding personal viewpoint    X
5. Estimate geodetic and geodynamic parameters with geodetic observations and use kinematic and dynamic functional models effectively in studies X   
6. Know advanced national and international applications in areas of Photogrammetry and Laser Scanning and contribute to the development processes of these applications  X  
7. Develop strategies for data collection from space/aerial images and aerial/terrestrial laser scanning data; define the most appropriate methods for data extraction from collected data; process, analysis, integrate data with other spatial data, develop models; attend to field works and present results and outputs visually, statistically and thematically   X 
8. Develop case / aim specific static or dynamic online systems, design spatial database management systems and produce visual products by following recent developments in GIS environment   X 
9. Find solutions for aim relevant data obtainment by being familiar with working principle of scanning devices and sensors and their usage areas X   
10. Design systems which are considering scientific facts for more economically and more reliable management of industrial and infrastructure applications X   
11. Consider factors of social, environmental, economic, health and job security in professional life.  X  

*1 Lowest, 2 Low, 3 Average, 4 High, 5 Highest