Course
EEE4234060
MEDICAL IMAGING
Electrical and Electronics Engineering
- LECTURE
- 3
- LAB
- 0
- CREDITS
- 3
- ECTS
- 6
REQUIRES
REQUIRED BY
None
TAUGHT IN
AIM
The goal is to convey the fundamental terminology and the underlying physics principles of medical imaging techniques, accompanied by the necessary theoretical knowledge in the field of engineering related to device hardware. This aims to comprehend clinical engineering applications for treatment using image data from the devices.
CONTENT
This course contains; Atomic structure, radioactivity, Rayleigh Scattering, Compton Scattering and Photoelectric Effect,X-Rays, X-ray Tube, X-Ray Devices, Fluoroscopy and Angiography,Computed Tomography Devices and Basic Working Principles,Sound Wave and Physics, Reflection, Refraction, Scattering and Attenuation,Piezoelectric Effect, Transducer, Ultrasonography, Ultrasound Modes and Acquisition,Proton, Spin, Magnetic Moment, Electromagnetism, Magnetic Field and Radio Frequency,Magnetic Resonance Imaging Devices, Image Formation in Magnetic Resonance Devices,Functional Magnetic Resonance device and BOLD technique,Diffusion Tensor Magnetic Resonance Device,Nuclear Medicine Imaging Devices,Positron Emission Tomography and Principles,Digital Twins with 3D Dimensional Reconstruction Tools,Image analysis with MATLAB,Medical Image Reconstruction with MATLAB.
LEARNING OUTCOMES
- 1
Classify the techniques of medical imaging
Taught by: Discussion Method, Question - Answer Technique, Experiential Learning, Lecture Method
- 2
Express the working principles of medical imaging
Taught by: Discussion Method, Question - Answer Technique, Computer-Internet Supported Instruction, Experiential Learning, Lecture Method
- 3
Evaluate the working principles and equipments of medical imaging devices
Taught by: Discussion Method, Demonstration Method, Problem Baded Learning Model, Experiential Learning, Lecture Method
- 4
Analyze the advanategs, disadvantages of the medical imaging devices
Taught by: Discussion Method, Brainstorming Technique, Simulation Technique, Lecture Method · Assessed by: Traditional Written Exam
- 5
Perform the image generation on MATLAB.
Taught by: Experiential Learning, Lecture Method · Assessed by: Traditional Written Exam, Homework, Quiz
WEEKLY PLAN
- WEEK 1
Atomic structure, radioactivity, Rayleigh Scattering, Compton Scattering and Photoelectric Effect
Preparation: Research and create a summary document that explains the fundamental concepts of atomic structure, radioactivity, Rayleigh Scattering, Compton Scattering, and the Photoelectric Effect. Include real-life examples and applications where possible.
- WEEK 2
X-Rays, X-ray Tube, X-Ray Devices, Fluoroscopy and Angiography
Preparation: Watch educational videos or read articles about X-rays, X-ray tubes, and their applications in fluoroscopy and angiography. Try to understand how these imaging techniques work and their significance in medical diagnostics.
- WEEK 3
Computed Tomography Devices and Basic Working Principles
Preparation: Study the basic principles of computed tomography and how CT scanners produce cross-sectional images. Explore how different tissue types are distinguished in CT scans and research any recent advancements in CT technology.
- WEEK 4
Sound Wave and Physics, Reflection, Refraction, Scattering and Attenuation
Preparation: Learn about the physics of sound waves, including concepts of reflection, refraction, scattering, and attenuation. Explore how these principles apply to medical ultrasound and its diagnostic capabilities.
- WEEK 5
Piezoelectric Effect, Transducer, Ultrasonography, Ultrasound Modes and Acquisition
Preparation: Research the piezoelectric effect and how it is employed in ultrasound transducers. Familiarize yourself with different ultrasound modes and understand the process of image acquisition in ultrasound imaging.
- WEEK 6
Proton, Spin, Magnetic Moment, Electromagnetism, Magnetic Field and Radio Frequency
Preparation: Study the fundamental concepts of proton spin, magnetic moments, and their application in magnetic resonance imaging (MRI). Understand the role of electromagnetic fields and radio frequencies in MRI.
- WEEK 7
Magnetic Resonance Imaging Devices, Image Formation in Magnetic Resonance Devices
Preparation: Explore how magnetic resonance imaging devices work and how images are formed in MRI. Understand the role of magnetic fields, gradients, and radiofrequency pulses in MRI image generation.
- WEEK 8
Functional Magnetic Resonance device and BOLD technique
Preparation: Learn about functional magnetic resonance imaging (fMRI) and the blood-oxygen-level-dependent (BOLD) technique. Investigate how fMRI is used to study brain activity and functional connectivity.
- WEEK 9
Diffusion Tensor Magnetic Resonance Device
Preparation: Research diffusion tensor imaging (DTI) and its application in understanding the brain's white matter connectivity. Explore how DTI data is acquired and analyzed.
- WEEK 10
Nuclear Medicine Imaging Devices
Preparation: : Learn about nuclear medicine imaging techniques, including the use of radioactive tracers. Understand how these techniques provide valuable diagnostic information.
- WEEK 11
Positron Emission Tomography and Principles
Preparation: Explore the principles of positron emission tomography (PET) and its role in detecting and visualizing metabolic processes in the body. Research the radiotracers used in PET imaging.
- WEEK 12
Digital Twins with 3D Dimensional Reconstruction Tools
Preparation: Study the principles and applications of medical image segmentation
- WEEK 13
Image analysis with MATLAB
Preparation: Install MATLAB on your computer if not already done. Familiarize yourself with basic MATLAB operations, and practice loading and manipulating images using MATLAB functions.
- WEEK 14
Medical Image Reconstruction with MATLAB
Preparation: Study the basics of medical image reconstruction using MATLAB. Learn about techniques for image enhancement and reconstruction, and try reconstructing sample medical images.
ASSESSMENT
- Rate of Midterm Exam to Success30%
- Rate of Final Exam to Success70%
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 | 0 | 0 | 0 |
| Term Project | 2 | 30 | 60 |
| Presentation of Project / Seminar | 1 | 20 | 20 |
| Quiz | 2 | 1 | 2 |
| Midterm Exam | 1 | 21 | 21 |
| General Exam | 1 | 42 | 42 |
| Performance Task, Maintenance Plan | 0 | 0 | 0 |
READING
- 1) Medical Imaging Technology, Victor I. Mikla and Victor V. Mikla, Elsevier 2) Fundamentals of Medical Imaging, Paul Suetens, Cambridge
- Sunumlara ait PDF dosyaları. Derse ve örnek uygulamalara ait podcast dijtal medya dosyaları.
TEACHING STAFF
- Assist.Prof. Kevser Banu KÖSECOORDINATOR
- Assist.Prof. Kevser Banu KÖSE
- Assoc.Prof. Muhammed Fatih TOY