Eskisehir Technical University Info Package Eskisehir Technical University Info Package
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About the Program Educational Objectives Key Learning Outcomes Course Structure Diagram with Credits Field Qualifications Matrix of Course& Program Qualifications Matrix of Program Outcomes&Field Qualifications
  • Institute of Graduate Programmes
  • Remote Sensing and Geographical Information Syst.
  • Remote Sensing and Geographical Information Syst.
  • Course Structure Diagram with Credits
  • Forest Remote Sensing
  • Description
  • Description
  • Learning Outcomes
  • Course's Contribution to Prog.
  • Learning Outcomes & Program Qualifications
  • ECTS Credit Load

Course Introduction Information

Code - Course Title UCS6501 - Forest Remote Sensing
Course Type Elective Courses
Language of Instruction Türkçe
Laboratory + Practice 2+1
ECTS 7.5
Course Instructor(s) GORDANA KAPLAN
Mode of Delivery face to face
Prerequisites remote sensing basics
Courses Recomended Theoretical Foundations of Remote Sensing
Required or Recommended Resources https://academic.oup.com/forestry/article/97/1/11/7159227
Recommended Reading List Satellite Remote Sensing for Forest and Environmental MonitoringEdited by: Pablo Rodríguez Gonzálvez, Juan Guerra-Hernández and Eduardo Manuel González Ferreiro
Assessment methods and criteria One midterm exam (multiple-choice test)One final assessment (project-based)
Work Placement no
Sustainability Development Goals

Content

Weeks Topics
Week - 1 Introduction to remote sensing; basic concepts, electromagnetic spectrum, sensors, and applications in forest studies.
Week - 2 Remote sensing data types; characteristics of optical, thermal, radar, and LiDAR data and their roles in forestry applications.
Week - 3 Data acquisition and workflow in forest remote sensing; integrated use of satellite, UAV, and ground-based data, sampling design, and planning of the analysis process.
Week - 4 Spectral behaviour of forests; vegetation reflectance properties, vegetation indices, and assessment of forest health.
Week - 5 Tree species classification; sampling strategies, feature selection, and introduction to classification approaches.
Week - 6 Introduction to machine learning; supervised classification, train-test separation, accuracy assessment, and model evaluation.
Week - 7 Use of radar data in forestry; Sentinel-1, forest structure, moisture, biomass, and cloud-independent observation capabilities.
Week - 8 Forest phenology and time series; monitoring seasonal changes, leaf emergence, and senescence using remote sensing.
Week - 9 Drought, fire, and stress monitoring; risk detection, damage assessment, and change analysis using remote sensing.
Week - 10 Climate change and forest resilience; evaluating ecosystem responses, vulnerability, and resilience through remote sensing.
Week - 11 Fieldwork: UAV-based data collection; flight planning, image acquisition, and practical application in forest areas.
Week - 12 Fieldwork: Terrestrial laser scanner use; measuring 3D forest structure, tree stems, and canopy characteristics.
Week - 13 Fieldwork: Phenological observation; recording leaf development, colour change, drying symptoms, and observation data.
Week - 14 Assessment of data collected during fieldwork; processing, comparison, and interpretation of UAV, terrestrial laser scanner, and phenological observation data.

Learning Activities and Teaching Methods

  • Teaching Methods
  • Lecture
  • Discussion
  • Demonstration
  • Drill - Practise
  • Problem Solving
  • Brain Storming
  • Report Preparation and/or Presentation
  • Proje Design/Management
  • Competences
  • Questoning
  • Creative
  • Civic awareness
  • Environmental awareness
  • Effective use of a foreign language
  • Abstract analysis and synthesis
  • Concern for quality
  • To work autonomously
  • Decision making
  • To work in interdisciplinary projects

Assessment Methods

Assessment Method and Passing Requirements
Quamtity Percentage (%)
Toplam (%) 0
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