Course Content

RANZCR Exam Information
Welcome to the RANZCR Learning Objectives ANSWERED course
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Theoretical principles
Basic Concepts of Electromagnetic Radiation (BCER)
6 Topics
Describe Electromagnetic waves
Describe the relationship between frequency and wavelength
Describe the electromagnetic spectrum
Describe sources of electromagnetic radiation
Describe energy of photons.
Outline the principle of wave-particle duality of photons
Interactions between X-rays and matter of relevance to medical imaging
7 Topics
Filters, collimators and grids
4 Topics
Imaging Technology
Fluoroscopic image acquisition
10 Topics
Compare and contrast flat panel detectors and image intensifiers.
Measures of radiographic a fluoroscopic image quality
7 Topics
Mammography
8 Topics
Ultrasound
16 Topics
Discuss the basic parameters which characterise a sound wave
Describe the operation of a simple duplex transducer.
Recognise common ultrasound artefacts and explain how they are formed.
Computed Tomography (CT) EDITED
19 Topics
Discuss the principles of CT scanning.
Describe various methods of image reconstruction.
Define Hounsfield units (HU).
Describe the origin and appearance of common artefacts in CT images
Discuss radiation dose features unique to CT scanning techniques.
Describe the method of CT perfusion.
Optimise paediatric protocols (e.g. weight-based).
Generally describe the unique features of the X-ray tube used in CT.
Magnetic Resonance Imaging (MRI) EDITED
19 Topics
Describe basic Magnetic Resonance Imaging (MRI)
Describe the origin of the T1 and T2 relaxation mechanisms.
Describe how images are produced.
Discuss the physics behind the chemical shift phenomenon.
Describe the factors that affect image quality
Describe the basic types of MR angiography (MRA).
Describe the basic principles of diffusion weighted imaging (DWI)
Nuclear Medicine- EDITED
8 Topics
Describe: Atomic structure
Describe: Isotopes
Describe: Radioactivity
Generally describe the purpose of CT in PET/CT and SPECT/CT scanners
Generally describe the statistics and mathematics of nuclear decay.
Radiation Protection and Patient Safety
Radiation Biology and Dosimetry -EDITED
16 Topics
Define basic dosimetry parameters
Describe radiation carcinogenesis and other stochastic effects
Discuss the variation of radiation risk for cancer induction
Identify the procedures that may deliver large doses of radiation.
Explain the importance and application of the dose descriptors
Patient Safety – EDITED
9 Topics
Safety in magnetic resonance imaging – EDITED
1 Topic