Skip to main content

Basics of MRI

Introduces the fundamentals of MRI, covering the basic physics and imaging techniques

Course details
Non-credit or Credit course
Non-credit course
Institution
Teacher
Matthias Günther and Joost Kuijer
Category
Clinical Neurotechnology
Dimension
Empirical neuroscience & Clinical neuroscience
Level
Advanced

This course introduces the fundamentals of MRI, covering the basic physics and imaging techniques. Through twelve expert-led lectures by Matthias Günther and Joost Kuijer, participants will gain a foundational understanding of how MRI works. Possible topics: magnetization, relaxation, quantum mechanics, signal detection and acquisition, Fourier imaging, image reconstruction, contrast, signal, and noise, water-fat separation, steady-state gradient-echo imaging, echo-planar imaging, hardware issues, fast/parallel imaging. The course also covers how MRI contrast mechanisms work and how they are used to form different MR images. This course includes a live demo session on the MevisMRLab tool, an MR simulation tool designed to better understand the concepts covered throughout the course.  By the end of the course, participants will have a clearer understanding of MRI fundamentals and its underlying principles. 

This course collection is offered as part of the TACTIX project in collaboration with Boğaziçi University, Amsterdam UMC and Fraunhofer MEVIS.

Target Audience: Graduate students, researchers, radiology technicians, and medical doctors with an interest in understanding the fundamental principles of MRI.

Prerequisites

Basic understanding of physics and algebra. No prior MRI knowledge needed

Course Features
Understand the fundamental physics and hardware components of MRI
Learn the fundamentals of signal creation and measurement
Learn the basics of the concepts of how contrast is created

Lessons

Number of lessons: 4
  •  
    Matthias Günther

    This lecture provides a foundational overview of Magnetic Resonance Imaging (MRI), explaining the physical principles of magnetization, resonance, and spatial localization. The session describes how strong magnetic fields align…

  •  
    Joost Kuijer

    This lecture provides a foundational overview of how magnetic resonance imaging (MRI) manipulates proton behavior to create diverse tissue contrasts. The lecture explains that while other imaging modalities like CT have fixed…

  •  
    Joost Kuijer

    This is the second part of the previous lecture, and it explores the technical and clinical nuances of MRI signal encoding and advanced contrast mechanisms. The lecture begins with a focus on spatial encoding, explaining how…

  •  
    Matthias Günther

    This lecture introduces a graphical MR teaching tool, MevisMRLab, that helps students understand MRI physics by allowing them to build and simulate their own pulse sequences. The tool features a sequence diagram for manipulating…