Course
EECD1214255
COMPUTATIONAL OPTICAL IMAGING
Electrical and Electronics Engineering
- LECTURE
- 3
- LAB
- 0
- CREDITS
- 3
- ECTS
- 8
REQUIRES
None
REQUIRED BY
None
TAUGHT IN
AIM
The aim of this course is to analyze linear and nonlinear optical systems utilizing approximations, to reconstruct images, and to develop numerical simulations to model these systems.
CONTENT
This course contains; Fourier analysis in two dimensions,Foundations of scalar diffraction theory,Fresnel and Fraunhofer diffraction,Overview of geometrical optics,Coherence,Wave-optics analysis of coherent optical systems,Frequency analysis of optical imaging systems,Wavefront modulation,Analog optical information processing,Foundations of classical holography,Diffractive optical elements,Display technologies and spatial light modulators,Digital holography,Computer generated holography and holographic display technologies.
LEARNING OUTCOMES
- 1
Explains the physical basis of Fresnel and Fraunhofer diffraction.
Taught by: Lecture Method · Assessed by: Traditional Written Exam, Homework, Project Task
- 2
Applies Fourier analysis to linear optical systems.
Taught by: Demonstration Method, Experiential Learning, Lecture Method · Assessed by: Traditional Written Exam, Homework, Project Task
- 3
Analyzes imaging systems with the help of numerical tools.
Taught by: Demonstration Method, Experiential Learning, Lecture Method · Assessed by: Traditional Written Exam, Homework, Project Task
- 4
Gain knowledge about technologies that benefit from Fourier optics.
Taught by: Experiential Learning, Lecture Method · Assessed by: Traditional Written Exam, Homework
- 5
It analyzes incoherent image systems and simulates the output image.
Taught by: Demonstration Method, Experiential Learning, Lecture Method · Assessed by: Traditional Written Exam, Homework, Project Task
- 6
It improves the image by developing reverse methods.
Taught by: Demonstration Method, Experiential Learning, Lecture Method · Assessed by: Traditional Written Exam, Homework, Project Task
WEEKLY PLAN
- WEEK 1
Fourier analysis in two dimensions
Preparation: Read the lecture notes
- WEEK 2
Foundations of scalar diffraction theory
Preparation: Read the lecture notes
- WEEK 3
Fresnel and Fraunhofer diffraction
Preparation: Read the lecture notes
- WEEK 4
Overview of geometrical optics
Preparation: Read the lecture notes
- WEEK 5
Coherence
Preparation: Read the lecture notes
- WEEK 6
Wave-optics analysis of coherent optical systems
Preparation: Read the lecture notes
- WEEK 7
Frequency analysis of optical imaging systems
Preparation: Read the lecture notes
- WEEK 8
Wavefront modulation
Preparation: Read the lecture notes
- WEEK 9
Analog optical information processing
Preparation: Read the lecture notes
- WEEK 10
Foundations of classical holography
Preparation: Read the lecture notes
- WEEK 11
Diffractive optical elements
Preparation: Read the lecture notes
- WEEK 12
Display technologies and spatial light modulators
Preparation: Read the lecture notes
- WEEK 13
Digital holography
Preparation: Read the lecture notes
- WEEK 14
Computer generated holography and holographic display technologies
Preparation: Read the lecture notes
ASSESSMENT
- Rate of Midterm Exam to Success50%
- Rate of Final Exam to Success50%
WORKLOAD
| ACTIVITY | COUNT | HOURS | TOTAL |
|---|---|---|---|
| Course Hours | 14 | 3 | 42 |
| Guided Problem Solving | 0 | 0 | 0 |
| Resolution of Homework Problems and Submission as a Report | 12 | 10 | 120 |
| Term Project | 0 | 0 | 0 |
| Presentation of Project / Seminar | 2 | 2 | 4 |
| Quiz | 0 | 0 | 0 |
| Midterm Exam | 1 | 25 | 25 |
| General Exam | 1 | 35 | 35 |
| Performance Task, Maintenance Plan | 0 | 0 | 0 |
READING
- Introduction to Fourier Optics, 3rd Edition, by Joseph W. Goodman (Roberts and Company, 2005).
- Fundamentals of Photonics by Saleh and Teich, (John Wiley & Sons, Inc., 1991).
TEACHING STAFF
- Assoc.Prof. Muhammed Fatih TOYCOORDINATOR
- Assoc.Prof. Muhammed Fatih TOY