High-yield Radiology Physics MCQs for ABR core exam : Naveed Ahmad, MD

Table of Contents

Module 1: Basic Science — Structure of the Atom, EM Radiation, and Particulate Radiation

  1. Elements with the same atomic number (𝑍) but different mass numbers (𝐴) are called:
    • A. Isobars
    • B. Isomers
    • C. Isotones
    • D. Isotopes
    • Answer: D — Isotopes
    • Explanation: Isotopes share the same 𝑍 (number of protons) but have a different number of neutrons, changing 𝐴. Isobars have the same 𝐴, and isomers have the same 𝐴 and 𝑍 but different energy states.
  2. The mass number (𝐴) of an atom is equal to the total number of:
    • A. Neutrons
    • B. Protons
    • C. Neutrons and protons
    • D. Protons and electrons
    • Answer: C — Neutrons and protons
    • Explanation: The mass number (𝐴) represents the total number of nucleons (protons plus neutrons) in the nucleus.
  3. The binding energy of a K-shell electron is defined as:
    • A. The energy required to keep the electron in orbit
    • B. The energy required to transition an electron from the K to L shell
    • C. The energy required to transition an electron from the L to K shell
    • D. The energy required to remove a K-shell electron completely from the atom
    • Answer: D — The energy required to remove a K-shell electron completely from the atom
    • Explanation: K-shell binding energy is the ionization energy threshold needed to liberate a K-shell electron from the atom.
  4. Which of the following particles will electrostatically repel a proton?
    • A. Electron
    • B. Neutron
    • C. Photon
    • D. Alpha particle
    • Answer: D — Alpha particle
    • Explanation: Protons, positrons, and alpha particles are all positively charged; like charges repel. Electrons are negatively charged (attracts), and neutrons are neutral.
  5. Which diagnostic imaging modality relies exclusively on non-ionizing radiation?
    • A. Fluoroscopy
    • B. Mammography
    • C. Magnetic Resonance Imaging (MRI)
    • D. Computed Tomography (CT)
    • Answer: C — MRI
    • Explanation: MRI utilizes non-ionizing radiofrequency (RF) electromagnetic radiation, whereas the other modalities use ionizing X-rays.
  6. Which of the following is classified as particulate radiation rather than electromagnetic radiation?
    • A. Microwaves
    • B. X-rays
    • C. Alpha particles
    • D. Gamma rays
    • Answer: C — Alpha particles
    • Explanation: Alpha particles consist of fast-moving nucleons (two protons and two neutrons), making them particulate, whereas microwaves, X-rays, and gamma rays are electromagnetic photons.
  7. A radiation detector registers a reading unshielded, but drops to zero when shielded with a thin sheet of paper. What does this indicate about the source?
    • A. The substance is non-radioactive.
    • B. The substance emits high-energy gamma rays.
    • C. The substance emits particulate radiation or very low-energy photons.
    • D. The substance has an extremely long half-life.
    • Answer: C — The substance emits particulate radiation or very low-energy photons
    • Explanation: Low-energy or particulate emissions (like alpha particles) have minimal range and are easily blocked by minimal shielding.
  8. If an individual permanently incorporates a bone-seeking radionuclide (biological half-life > 20 years) emitting low-energy alpha particles, what radiation type poses the primary external health hazard to family members living close by?
    • A. Photons (> 100 keV)
    • B. Neutrinos
    • C. Low-energy electrons (30 keV)
    • D. Alpha particles
    • Answer: A — Photons (> 100 keV)
    • Explanation: High-energy photons are highly penetrating and can exit the body to reach external individuals, whereas alpha and low-energy particulate radiation have short ranges entirely absorbed within the patient’s tissues.
  9. Radionuclides used for external diagnostic nuclear medicine imaging must primarily emit:
    • A. Electrons
    • B. Alpha particles
    • C. Gamma rays
    • D. Protons
    • Answer: C — Gamma rays
    • Explanation: Gamma rays are sufficiently penetrating to escape the body and reach external gamma camera detectors, whereas particulate emissions are fully attenuated internally.
  10. The number of orbital electrons in a stable, neutral atom equals its:
    • A. Mass defect
    • B. Mass number
    • C. Atomic number
    • D. Binding energy
    • Answer: C — Atomic number
    • Explanation: In a neutral atom, the number of negative orbital electrons equals the number of positive protons in the nucleus (atomic number, 𝑍).

Module 2: Interactions of Ionizing Radiation with Matter

  1. What is the dominant photon interaction with soft tissue for a CT scanner operating at 120 kV?
    • A. Coherent scattering
    • B. Compton scattering
    • C. Photoelectric effect
    • D. Pair production
    • Answer: B — Compton scattering
    • Explanation: In diagnostic imaging energies above ~25-30 keV, Compton scattering becomes the predominant photon interaction mechanism in soft tissue.
  2. When performing an AP lumbar spine radiograph at 80 kV, which interaction predominates within bone?
    • A. Coherent scattering
    • B. Compton scattering
    • C. Photoelectric effect
    • D. Pair production
    • Answer: C — Photoelectric effect
    • Explanation: Bone has a high effective atomic number (𝑍eff ≈13.8), heavily favoring photoelectric absorption at lower diagnostic energies (where the average beam energy falls below 40 keV).
  3. Which technical parameter increase will raise the proportion of Compton scatter relative to photoelectric interactions?
    • A. Exposure time
    • B. Focal spot size
    • C. Tube voltage (kV)
    • D. Source-to-image distance (SID)
    • Answer: C — Tube voltage (kV)
    • Explanation: Increasing beam energy via kV or filtration increases the relative probability of Compton scattering compared to photoelectric absorption.
  4. Which photon interaction contributes most heavily to local patient dose in the low diagnostic energy range?
    • A. Coherent scattering
    • B. Compton scattering
    • C. Photoelectric effect
    • D. Pair production
    • Answer: C — Photoelectric effect
    • Explanation: The photoelectric effect involves total absorption of the incident photon’s energy locally, maximizing radiation dose deposition.
  5. The primary interaction of 140 keV photons from Technetium-99m with a Sodium Iodide (NaI) scintillation crystal is:
    • A. Coherent scattering
    • B. Compton scattering
    • C. Photoelectric effect
    • D. Pair production
    • Answer: C — Photoelectric effect
    • Explanation: Due to Iodine’s high atomic number (𝑍 =53), photoelectric absorption dominates at 140 keV in NaI crystals.
  6. Linear Energy Transfer (LET) is expressed in which units?
    • A. keV per micrometer (keV/𝜇m)
    • B. keV per unit mass density
    • C. keV per milligram
    • D. keV per gram
    • Answer: A — keV per micrometer (keV/𝜇m)
    • Explanation: LET quantifies the average energy locally deposited by ionizing radiation per unit length of track.
  7. A sharp spike (discontinuity) in the photoelectric attenuation coefficient occurs when incident photon energy equals:
    • A. The target material density
    • B. Twice the electron rest mass
    • C. The maximum tube potential*D. The inner-shell (e.g., K-shell) electron binding energy
    • Answer: D — The inner-shell (e.g., K-shell) electron binding energy
    • Explanation: Photoelectric absorption experiences a sharp K-edge resonance jump when photon energy matches or slightly exceeds the target shell’s binding energy.
  8. If the soft-tissue HVL is 4 cm at an 80 kV setting, what is the approximate relative dose for an internal structure located 8 cm deep compared to the entrance skin dose?
    • A. 100%
    • B. 50%
    • C. 33%
    • D. 25%
    • Answer: D — 25%
    • Explanation: Depth is 8 cm, which equals 2 HVLs (8/4 =2). The transmitted intensity reduces by (1/2)2 =1/4, or 25%.
  9. Among the following, which radiation type is the most penetrating in human tissue?
    • A. Electrons from I-131 decay
    • B. Photons from Tc-99m decay (140 keV)
    • C. Positrons from F-18 decay
    • D. Annihilation photons from F-18 decay (511 keV)
    • Answer: D — Annihilation photons from F-18 decay (511 keV)
    • Explanation: High-energy uncharged photons (511 keV) penetrate much farther than lower-energy photons or particulate radiation.
  10. During a positron-electron annihilation event, how many photons are typically created, and what is their individual energy?
    • A. One photon at 1.022 MeV
    • B. Two photons at 511 keV each
    • C. Three photons at 341 keV each
    • D. Two photons at 1.022 MeV each
    • Answer: B — Two photons at 511 keV each
    • Explanation: Annihilation converts the rest-mass energy of both particles (511⁢ keV ×2 =1.022 MeV) into two back-to-back 511 keV photons.

Module 3: Radiation Units

  1. What is the standard SI unit for effective dose?
    • A. Roentgen (R)
    • B. Gray (Gy)
    • C. Curie (Ci)
    • D. Sievert (Sv)
    • Answer: D — Sievert (Sv)
    • Explanation: Effective dose and equivalent dose are measured in Sieverts (Sv) in the SI system.
  2. Multiplying absorbed dose by a radiation weighting factor (𝑊𝑅) yields which quantity?
    • A. Integral dose
    • B. Equivalent dose
    • C. Effective dose
    • D. Air kerma
    • Answer: B — Equivalent dose
    • Explanation: Equivalent dose factors in the biological damage potential of specific types of radiation via 𝑊𝑅.
  3. A radiation worker receives 30 mGy of alpha particle exposure to a localized skin patch. What is the resulting equivalent dose?
    • A. 30 mSv
    • B. 100 mSv
    • C. 300 mSv
    • D. 600 mSv
    • Answer: D — 600 mSv
    • Explanation: Equivalent dose equals absorbed dose multiplied by the alpha radiation weighting factor (𝑊𝑅 =20). Thus, 30⁢ mGy ×20 =600 mSv.
  4. Which radiation quantity provides a single combined index for estimating stochastic health risk across multi-organ exposures?
    • A. Absorbed dose
    • B. Equivalent dose
    • C. Effective dose
    • D. Air kerma
    • Answer: C — Effective dose
    • Explanation: Effective dose uses tissue weighting factors (𝑊𝑇) to summarize total body stochastic risks from heterogeneous organ exposures.
  5. Which characteristic is true regarding effective dose (𝐸)?
    • A. It accounts for an individual patient’s specific metabolic co-morbidities.
    • B. It is strictly limited to single-organ analysis.
    • C. It is calculated as a weighted sum of tissue equivalent doses across multiple organs.
    • D. It is completely independent of radiation type.
    • Answer: C — It is calculated as a weighted sum of tissue equivalent doses across multiple organs.
    • Explanation: Effective dose sums the equivalent doses across major organs multiplied by their respective 𝑊𝑇 values based on standard reference populations.
  6. Convert a radiopharmaceutical dosage of 20 mCi of Tc-99m into megabecquerels (MBq):
    • A. 37 MBq
    • B. 370 MBq
    • C. 740 MBq
    • D. 2000 MBq
    • Answer: C — 740 MBq
    • Explanation: Since 1⁢ mCi =37 MBq, multiplying 20⁢ mCi ×37⁢ MBq/mCi =740 MBq.
  7. What traditional unit corresponds directly to the SI unit Gray (Gy) for absorbed dose?
    • A. Roentgen
    • B. Rad
    • C. Rem
    • D. Curie
    • Answer: B — Rad
    • Explanation: The rad is the traditional unit of absorbed dose, where 1⁢ Gy =100 rad.
  8. Exposure measures ionization produced by photons specifically in which medium?
    • A. Water
    • B. Soft tissue
    • C. Air
    • D. Bone
    • Answer: C — Air
    • Explanation: Exposure is explicitly defined as electrical charge liberated by X- or gamma-rays per unit mass of air.
  9. What is the SI unit of radioactivity (activity)?
    • A. Becquerel (Bq)
    • B. Curie (Ci)
    • C. Gray (Gy)
    • D. Sievert (Sv)
    • Answer: A — Becquerel (Bq)
    • Explanation: One Becquerel corresponds to one radioactive disintegration per second.
  10. The radiation weighting factor (𝑊𝑅) for diagnostic X-rays and gamma rays is:
    • A. 1
    • B. 5
    • C. 10
    • D. 20
    • Answer: A — 1
    • Explanation: Photons and electrons have a reference radiation weighting factor of 1.

Module 4: X-Ray Production

  1. Adding filtration to a diagnostic X-ray beam results in which direct outcome?
    • A. All characteristic X-rays are removed.
    • B. Spatial resolution improves significantly.
    • C. Maximum photon energy increases.
    • D. Patient skin dose is reduced.
    • Answer: D — Patient skin dose is reduced.
    • Explanation: Added filters preferentially absorb low-energy “soft” photons that would otherwise deposit useless skin dose, effectively “hardening” the beam.
  2. Which factor always increases when the focal spot size of an X-ray tube is increased?
    • A. Patient dose
    • B. Geometric unsharpness (blur)
    • C. Field of view
    • D. Anode rotation speed
    • Answer: B — Geometric unsharpness (blur)
    • Explanation: Larger effective focal spots widen the penumbra, worsening geometric unsharpness during projection imaging.
  3. The heel effect causes X-ray beam intensity to be highest on which side of the radiation field?
    • A. Anode side
    • B. Cathode side
    • C. Perpendicular center line
    • D. Filter housing edge
    • Answer: B — Cathode side
    • Explanation: Because X-rays are generated beneath the target surface, photons directed toward the anode side suffer more self-attenuation, making the intensity greater on the cathode side.
  4. The heel effect is rendered more pronounced by which of the following system configurations?
    • A. Larger anode angle and longer SID
    • B. Smaller anode angle and shorter SID
    • C. Larger filtration and lower kV
    • D. Smaller focal spot size and higher mAs
    • Answer: B — Smaller anode angle and shorter SID
    • Explanation: Steeper (smaller) target angles and shorter source-to-image distances concentrate and exaggerate the heel effect intensity gradient.
  5. In an X-ray emission spectrum, what parameter change shifts the maximum energy (𝐸max) limit?
    • A. Tube current (mA)
    • B. Exposure time (s)
    • C. Peak tube voltage (kV)
    • D. Added aluminum filtration
    • Answer: C — Peak tube voltage (kV)
    • Explanation: Peak tube potential dictates the maximum kinetic energy electrons possess when striking the target, capping photon energy at 𝑘⁢𝑉⁢𝑝.
  6. The line-focus principle allows for:
    • A. A large effective focal spot with a small actual focal spot
    • B. A small effective focal spot combined with a large actual focal spot area for heat dissipation
    • C. Elimination of off-focus radiation entirely
    • D. Automatic reduction of patient skin dose
    • Answer: B — A small effective focal spot combined with a large actual focal spot area for heat dissipation
    • Explanation: Angling the anode target face projects a small effective focal spot while spreading heat over a larger actual bombarding area.
  7. Bremsstrahlung radiation is produced by:
    • A. Transitions of outer-shell electrons to inner-shell vacancies
    • B. The deceleration of projectile electrons by nuclear electrostatic fields in the target
    • C. Nuclear fission inside the tube housing
    • D. Annihilation of beta particles
    • Answer: B — The deceleration of projectile electrons by nuclear electrostatic fields in the target
    • Explanation: Bremsstrahlung (“braking radiation”) occurs when high-speed electrons are deflected and decelerated by the positive nuclear charge of target atoms.
  8. Characteristic X-rays are produced when:
    • A. Projectile electrons interact with target atomic nuclei.
    • B. Outer-shell electrons fill inner-shell vacancies, releasing energy matching binding energy differences.
    • C. Target atoms undergo radioactive decay.
    • D. Heat units overload the anode disk.
    • Answer: B — Outer-shell electrons fill inner-shell vacancies, releasing energy matching binding energy differences.
    • Explanation: Characteristic radiation represents discrete energy peaks corresponding to electron transitions between atomic shells.
  9. What material is predominantly used as the target in standard diagnostic radiographic X-ray tubes?
    • A. Molybdenum
    • B. Rhodium
    • C. Tungsten
    • D. Aluminum
    • Answer: C — Tungsten
    • Explanation: Tungsten has a high atomic number (𝑍 =74) and a high melting point, making it optimal for general X-ray production and heat tolerance.
  10. What percentage of electron kinetic energy inside a standard diagnostic X-ray tube is typically converted into X-rays, with the remainder lost as heat?
    • A. 99%
    • B. 50%
    • C. 10%
    • D. Less than 1%
    • Answer: D — Less than 1%
    • Explanation: X-ray tube production efficiency is notoriously low; more than 99% of projectile electron energy is dissipated as thermal heat in the anode.

Module 5: General Imaging and Informatics Concepts

  1. Which MTF (Modulation Transfer Function) value is frequently used to define the limiting spatial resolution of an imaging system?
    • A. 100%
    • B. 50%
    • C. 10%
    • D. 0%
    • Answer: C — 10%
    • Explanation: The spatial frequency at which the MTF drops to 10% is the standard metric for comparative limiting spatial resolution.
  2. In a CT image displayed at an inappropriate window width of 2 HU and window level of 2 HU, what occurs to soft-tissue differentiation?
    • A. Soft-tissue contrast is optimized.
    • B. Different soft tissues map uniformly to extreme black or white, obscuring subtle variations.
    • C. Spatial resolution increases threefold.
    • D. Image noise completely disappears.
    • Answer: B — Different soft tissues map uniformly to extreme black or white, obscuring subtle variations.
    • Explanation: A overly narrow window spanning only 2 HU saturates gray levels across a tiny range, destroying soft-tissue contrast.
  3. Applying an image smoothing (low-pass) filter to a noisy image has what primary effect?
    • A. High spatial frequencies are removed, reducing noise and blending edges.
    • B. Spatial resolution is significantly improved.
    • C. High-contrast edge detection is enhanced.
    • D. Patient radiation dose is decreased.
    • Answer: A — High spatial frequencies are removed, reducing noise and blending edges.
    • Explanation: Low-pass spatial filtering averages adjacent pixels, suppressing high-frequency noise at the expense of fine detail blur.
  4. In medical image processing, “segmentation” is defined as:
    • A. Averaging adjacent pixels to lower noise
    • B. The identification and isolation of pixels corresponding to a specific anatomical structure of interest
    • C. Eliminating low spatial frequencies via high-pass filtering
    • D. Adjusting look-up table (LUT) window/level settings
    • Answer: B — The identification and isolation of pixels corresponding to a specific anatomical structure of interest
    • Explanation: Segmentation algorithms separate target organs or pathology from background tissues for quantitative analysis or 3D rendering.
  5. Detection of a large, low-contrast lesion obscured by high quantum noise can be best facilitated by:
    • A. Applying edge enhancement filters
    • B. Applying image smoothing
    • C. Widening window width to maximum limits
    • D. Digital magnification (zooming)
    • Answer: B — Applying image smoothing
    • Explanation: Smoothing decreases perceived noise without sacrificing visibility for large low-contrast objects, whereas edge enhancement amplifies noise.
  6. A Maximum Intensity Projection (MIP) reconstruction works by:
    • A. Displaying the lowest pixel value along a ray path
    • B. Displaying the highest pixel value along a projected ray path through the volume
    • C. Averaging all voxel intensities in a 3D dataset
    • D. Rendering a shaded external surface contour
    • Answer: B — Displaying the highest pixel value along a projected ray path through the volume
    • Explanation: MIP algorithms project the maximum pixel values onto a 2D plane, heavily favoring bright structures like contrast-enhanced vessels.
  7. What does Receiver Operating Characteristic (ROC) analysis evaluate?
    • A. X-ray tube heat loading capacity
    • B. Diagnostic performance and observer accuracy across varying decision thresholds
    • C. Computer network DICOM transfer speeds
    • D. Monitor luminance calibration curves
    • Answer: B — Diagnostic performance and observer accuracy across varying decision thresholds
    • Explanation: ROC curves plot sensitivity versus 1-specificity to assess diagnostic test accuracy independent of subjective threshold bias.
  8. The DICOM standard ensures:
    • A. Universal radiation dose compliance limits across international borders
    • B. Interoperability and standardized communication of medical images and metadata between equipment and PACS
    • C. Lossless compression algorithms achieve 100:1 ratios
    • D. Hospital electronic medical record billing accuracy
    • Answer: B — Interoperability and standardized communication of medical images and metadata between equipment and PACS
    • Explanation: Digital Imaging and Communications in Medicine (DICOM) is the foundational networking and file standard for medical imaging.
  9. In digital image informatics, what differentiates lossless from lossy compression?
    • A. Lossless compression discards unneeded pixel data permanently.
    • B. Lossless compression allows exact reconstruction of original pixel values without data loss, unlike lossy compression.
    • C. Lossy compression can only be applied to text metadata.
    • D. Lossless compression files are always larger than CT raw data.
    • Answer: B — Lossless compression allows exact reconstruction of original pixel values without data loss, unlike lossy compression.
    • Explanation: Lossy compression permanently discards subtle data to achieve high compression ratios, whereas lossless compression retains exact bit integrity.
  10. The Grayscale Standard Display Function (GSDF) is implemented on medical diagnostic displays to ensure:
    • A. Equal visual perception of contrast across the entire luminance range
    • B. Maximum electrical power conservation
    • C. Elimination of ambient room reflections
    • D. True color representation for pathology slides
    • Answer: A — Equal visual perception of contrast across the entire luminance range
    • Explanation: GSDF calibrates luminance response according to human visual perception (Just Noticeable Differences) for consistent diagnostic interpretation.

Module 6: Biological Effects of Ionizing Radiation

  1. Which radiation type possesses the highest Linear Energy Transfer (LET)?
    • A. Alpha particles
    • B. Gamma rays
    • C. Diagnostic X-rays
    • D. Beta particles
    • Answer: A — Alpha particles
    • Explanation: Due to their heavy mass and double positive charge, alpha particles deposit dense energy over short tracks, yielding very high LET.
  2. During which phase of the cell division cycle are cells typically most radiosensitive?
    • A. G1 phase
    • B. S phase
    • C. G2 phase
    • D. M phase (Mitosis)
    • Answer: D — M phase (Mitosis)
    • Explanation: Cells exhibit peak radiosensitivity during mitosis due to chromosome condensation and minimal time for DNA repair prior to division.
  3. Biological injury from ionizing radiation (such as cell death or mutation) is primarily mediated through damage to:
    • A. Transfer RNA
    • B. Deoxyribonucleic acid (DNA)
    • C. Ribosomal proteins
    • D. Cell membrane lipids
    • Answer: B — Deoxyribonucleic acid (DNA)
    • Explanation: Unrepaired double-strand breaks in the nuclear DNA helix are the critical molecular lesion responsible for radiation-induced stochastic and deterministic outcomes.
  4. Which of the following represents a stochastic (probabilistic) effect of radiation?
    • A. Cataractogenesis
    • B. Radiation-induced carcinogenesis
    • C. Skin erythema
    • D. Acute hematopoietic syndrome
    • Answer: B — Radiation-induced carcinogenesis
    • Explanation: Stochastic effects (like cancer induction) feature a probability of occurrence that increases with dose, but severity is independent of dose, lacking a threshold.
  5. What is the approximate whole-body LD50/60 for humans without medical intervention?
    • A. 1 Gy
    • B. 4 Gy
    • C. 10 Gy
    • D. 50 Gy
    • Answer: B — 4 Gy
    • Explanation: The LD50/60 represents the whole-body radiation dose lethal to 50% of an exposed population within 60 days (~4 Gy).
  6. According to the BEIR VII report, what dose-response model is recommended for estimating solid tumor cancer risks?
    • A. Linear-quadratic model
    • B. Threshold model
    • C. Linear, no-threshold (LNT) model
    • D. Hormesis model
    • Answer: C — Linear, no-threshold (LNT) model
    • Explanation: The LNT model assumes that any dose of ionizing radiation, no matter how small, carries a proportional incremental risk of inducing cancer.
  7. According to the Law of Bergonié and Tribondeau, cellular radiosensitivity is highest in cells that are:
    • A. Highly differentiated and mitotically inactive
    • B. Undifferentiated, highly mitotic, and possess a long dividing future
    • C. Structurally complex with low metabolic turnover
    • D. Terminally specialized (like neurons or muscle cells)
    • Answer: B — Undifferentiated, highly mitotic, and possess a long dividing future
    • Explanation: Stem cells and precursor tissues with high division rates and minimal differentiation are exquisitely sensitive to radiation injury.
  8. Which organ is considered among the most radiosensitive in young female patients?
    • A. Brain
    • B. Breast tissue
    • C. Skeletal muscle
    • D. Kidneys
    • Answer: B — Breast tissue
    • Explanation: Breast tissue carries a high tissue weighting factor (𝑊𝑇 =0.12) and significant lifetime cancer risk, particularly in younger patients.
  9. What biological syndrome dominates when an individual receives an acute whole-body radiation dose exceeding 50 Gy?
    • A. Hematopoietic syndrome
    • B. Gastrointestinal syndrome
    • C. Neurovascular (cerebrovascular) syndrome
    • D. Renal failure syndrome
    • Answer: C — Neurovascular (cerebrovascular) syndrome
    • Explanation: Massive doses (>50 Gy) cause rapid neurological and cardiovascular collapse, resulting in death within 24-48 hours.
  10. The indirect effect of radiation on biological tissue is primarily mediated through:
    • A. Direct ionization of DNA base pairs
    • B. The radiolysis of water molecules creating free radicals (e.g., hydroxyl radicals)
    • C. Thermal coagulation of cellular enzymes
    • D. Direct disruption of peptide bonds in RNA
    • Answer: B — The radiolysis of water molecules creating free radicals (e.g., hydroxyl radicals)
    • Explanation: Because tissue is mostly water, radiation interacts primarily with water molecules, producing reactive oxygen species (free radicals) that subsequently attack DNA.

Module 7: Radiation Protection and Associated Regulations

  1. What is the current annual occupational effective dose limit for adult radiation workers under NRC regulations?
    • A. 10 mSv
    • B. 50 mSv
    • C. 100 mSv
    • D. 500 mSv
    • Answer: B — 50 mSv
    • Explanation: The federal occupational limit for whole-body effective dose is 50 mSv (5 rem) per year.
  2. According to NCRP Report 160, what category contributes the largest fraction of annual per capita background radiation exposure to the U.S. population?
    • A. Cosmic radiation
    • B. Terrestrial sources
    • C. Medical imaging
    • D. Internal radionuclides
    • Answer: C — Medical imaging
    • Explanation: Medical imaging has grown to match or exceed natural background sources, representing roughly 50% of total population exposure per capita.
  3. Which organization functions as an advisory body rather than a regulatory enforcement agency?
    • A. U.S. Nuclear Regulatory Commission (NRC)
    • B. Food and Drug Administration (FDA)
    • C. National Council on Radiation Protection and Measurements (NCRP)
    • D. Department of Transportation (DOT)
    • Answer: C — National Council on Radiation Protection and Measurements (NCRP)
    • Explanation: NCRP, ICRP, and similar bodies formulate scientific recommendations and protection guidelines, whereas the NRC, FDA, and OSHA enforce statutory regulations.
  4. What is the primary action to take first when a trauma patient potentially contaminated with radioactive material arrives in the emergency department?
    • A. Immediately perform a complete decontamination scrub.
    • B. Conduct immediate life-saving medical and surgical treatment of life-threatening injuries.
    • C. Quarantine the emergency department.
    • D. Obtain baseline complete blood counts.
    • Answer: B — Conduct immediate life-saving medical and surgical treatment of life-threatening injuries.
    • Explanation: Standard clinical life support for trauma always supersedes radiation decontamination protocols.
  5. Which instrument is the most sensitive handheld portable detector for locating unsealed low-energy radioactive contamination (such as Tc-99m spills)?
    • A. Gas-filled ionization chamber
    • B. Pocket dosimeter
    • C. Geiger-Müller (GM) survey meter
    • D. Thermoluminescent dosimeter
    • Answer: C — Geiger-Müller (GM) survey meter
    • Explanation: GM counters provide high pulse sensitivity, making them ideal for detecting low-level surface contamination and lost sources.
  6. According to 10 CFR Part 35, the total effective dose equivalent to any member of the public from a released radioactive patient must not exceed:
    • A. 1 mSv
    • B. 5 mSv
    • C. 15 mSv
    • D. 50 mSv
    • Answer: B — 5 mSv
    • Explanation: Licensees may authorize patient release if total effective dose equivalent to any individual is unlikely to exceed 5 mSv (0.5 rem).
  7. What personal dosimeter is most commonly worn by diagnostic radiologists for occupational monitoring?
    • A. Film badge
    • B. Pocket ionization chamber
    • C. Optically Stimulated Luminescence (OSL) dosimeter
    • D. Bubble detector
    • Answer: C — Optically Stimulated Luminescence (OSL) dosimeter
    • Explanation: OSL dosimeters use aluminum oxide detectors stimulated by laser light to measure occupational dose accurately and have largely replaced film badges.
  8. Which of the following constitutes an NRC “medical event” (misadministration)?
    • A. Administering 20 mCi of Tc-99m MDP instead of 20 mCi of Tc-99m Sestamibi to the correct patient
    • B. Administering a diagnostic dose of 5 mCi Tc-99m sulfur colloid to the wrong patient
    • C. Administering 0.3 mCi of I-131 sodium iodide instead of the prescribed 0.3 mCi of I-123 sodium iodide for a thyroid uptake
    • D. A 5% discrepancy between prescribed and administered therapeutic radiopharmaceutical doses
    • Answer: C — Administering 0.3 mCi of I-131 sodium iodide instead of the prescribed 0.3 mCi of I-123 sodium iodide for a thyroid uptake
    • Explanation: NRC medical events for unsealed byproduct materials focus on wrong patients, wrong drugs, wrong routes, or dosage discrepancies exceeding 20% combined with specific dose thresholds (particularly relevant for therapeutic agents or specific diagnostic I-131 procedures).
  9. Radioactive waste with a physical half-life of less than or equal to what duration can typically be held for decay-in-storage until background levels are reached?
    • A. 30 days
    • B. 60 days
    • C. 120 days
    • D. 365 days
    • Answer: C — 120 days
    • Explanation: NRC regulations permit holding byproduct material with physical half-lives ≤120 days for decay-in-storage before disposal.
  10. The Joint Commission defines a reviewable fluoroscopic sentinel event based on what threshold radiation parameter delivered to a single field?
    • A. Peak skin dose exceeding 2 Gy
    • B. Peak skin dose exceeding 5 Gy
    • C. Cumulative air kerma exceeding 10 Gy
    • D. Peak skin dose exceeding 15 Gy
    • Answer: D — Peak skin dose exceeding 15 Gy
    • Explanation: Persistent fluoroscopic radiation exceeding 15 Gy to a single skin field triggers Joint Commission mandatory sentinel event review guidelines.

Module 8: General Radiography — Projection Imaging Concepts and Detectors

  1. Which radiographic examination is typically performed without utilizing an anti-scatter grid?
    • A. AP lumbar spine
    • B. Lateral hip
    • C. AP wrist
    • D. AP abdomen
    • Answer: C — AP wrist
    • Explanation: Small extremity parts generate minimal scatter radiation due to limited tissue volume and lower technique requirements, rendering grids unnecessary.
  2. What technical adjustment improves low-contrast visibility in projection radiography?
    • A. Decreasing tube voltage (kV)
    • B. Increasing source-to-image distance (SID)
    • C. Increasing added filtration
    • D. Decreasing focal spot size
    • Answer: A — Decreasing tube voltage (kV)
    • Explanation: Lower kV increases photoelectric absorption differentials between tissues, enhancing subject contrast.
  3. Geometric unsharpness (blur) in a radiograph can be minimized by:
    • A. Increasing object-to-image distance (OID)
    • B. Using a larger focal spot size
    • C. Using a small focal spot and maximizing source-to-object distance (SOD)
    • D. Reducing SID to minimum limits
    • Answer: C — Using a small focal spot and maximizing source-to-object distance (SOD)
    • Explanation: Minimizing magnification (𝑆⁢𝐼⁢𝐷/𝑆⁢𝑂⁢𝐷) and utilizing small focal spot nominal dimensions minimizes geometric edge blurring.
  4. What is the definition of the Bucky factor?
    • A. The ratio of grid height to interspace width
    • B. The relative increase in X-ray intensity (or mAs) required when using a grid compared to without a grid
    • C. The percentage improvement in contrast ratio
    • D. The total number of lead strips per centimeter
    • Answer: B — The relative increase in X-ray intensity (or mAs) required when using a grid compared to without a grid
    • Explanation: Because grids absorb both scatter and primary radiation, exposure technique must be increased by the Bucky factor to maintain receptor exposure.
  5. Computed Radiography (CR) systems capture latent X-ray images utilizing which detector medium?
    • A. Amorphous selenium
    • B. Cesium iodide scintillator coupled to a-Si TFT
    • C. Photostimulable phosphor (PSP) plates (e.g., barium fluorohalide)
    • D. Gadolinium oxysulfide film screens
    • Answer: C — Photostimulable phosphor (PSP) plates (e.g., barium fluorohalide)
    • Explanation: CR plates trap excited electrons in metastable states until stimulated by a laser beam in the reader unit.
  6. Direct Digital Radiography (DR) flat-panel detectors convert X-ray photons into electrical charge using:
    • A. A photostimulable phosphor storage plate
    • B. An amorphous selenium (a-Se) photoconductor layer directly
    • C. A cesium iodide (CsI) scintillator paired with photodiodes
    • D. Rare-earth intensifying screens and silver halide film
    • Answer: B — An amorphous selenium (a-Se) photoconductor layer directly
    • Explanation: Direct detectors use a-Se to convert X-ray photons directly into electrical charge signals without an intermediate light conversion step.
  7. Indirect conversion digital radiography flat-panel systems utilize which initial converter material?
    • A. Amorphous selenium (a-Se)
    • B. Cesium iodide (CsI) or gadolinium oxysulfide scintillator
    • C. Lead foil
    • D. Sodium iodide (NaI)
    • Answer: B — Cesium iodide (CsI) or gadolinium oxysulfide scintillator
    • Explanation: Indirect detectors first convert X-rays into visible light via a scintillator (like CsI), which is then converted to electrical charge by an array of photodiodes and thin-film transistors (TFT).
  8. When performing chest radiography with a wall stand, how should the X-ray tube be oriented with respect to the heel effect?
    • A. Anode side up, cathode side down
    • B. Anode side down, cathode side up
    • C. Orientation has no impact on image quality.
    • D. Cathode side horizontal to the floor
    • Answer: A — Anode side up, cathode side down
    • Explanation: Placing the denser lower thorax (diaphragm) toward the more intense cathode side and the upper thorax/neck toward the anode side compensates for the heel effect to yield uniform exposure.
  9. What artifact occurs when a stationary grid’s line frequency closely matches the sampling frequency of a digital detector?
    • A. Pincushion distortion
    • B. Moiré interference pattern (grid lines)
    • C. Quantum mottle
    • D. Anode heel cutoff
    • Answer: B — Moiré interference pattern (grid lines)
    • Explanation: Aliasing between parallel grid line frequencies and digital pixel sampling matrices produces characteristic wavy Moiré banding artifacts.
  10. During an abdominal radiograph of a pregnant patient, what single procedural action is most effective for minimizing fetal radiation dose?
    • A. Wrapping the abdomen in protective lead sheeting
    • B. Using maximum possible tube current (mA)
    • C. Reducing the X-ray field of view via precise collimation
    • D. Removing the anti-scatter grid entirely
    • Answer: C — Reducing the X-ray field of view via precise collimation
    • Explanation: Internal scatter from irradiated maternal tissue is the primary source of fetal exposure; restricting volume via tight collimation minimizes scatter production.

Module 9: Mammography

  1. What are the minimum projection images required to localize a lesion during stereotactic breast biopsy?
    • A. 1 scout image only
    • B. 2 images (angled at +15∘ and −15∘ relative to scout)
    • C. 4 orthogonal views
    • D. A full 360-degree tomographic set
    • Answer: B — 2 images (angled at +15∘ and −15∘ relative to scout)
    • Explanation: Stereotactic triangulation uses stereo-pair shift images (+15 and -15 degrees) to calculate 3D lesion coordinates via parallax geometry.
  2. What is the typical nominal focal spot size used for standard contact full-field digital mammography?
    • A. 1.2 mm
    • B. 0.6 mm
    • C. 0.3 mm
    • D. 0.1 mm
    • Answer: C — 0.3 mm
    • Explanation: A nominal 0.3 mm large focal spot is standard for contact mammography, while a 0.1 mm small focal spot is utilized for high-resolution magnification views.
  3. Why is breast compression clinically essential in mammography?
    • A. It increases patient radiation dose to improve signal.
    • B. It reduces tissue thickness, minimizes scatter, decreases geometric blur, and decreases overlapping structures.
    • C. It increases the geometric magnification factor.
    • D. It eliminates the need for target/filter combinations.
    • Answer: B — It reduces tissue thickness, minimizes scatter, decreases geometric blur, and decreases overlapping structures.
    • Explanation: Compression flattens the breast, yielding uniform thickness, lower scatter fractions, shorter object-to-detector distances, and sharper visualization.
  4. In standard craniocaudal (CC) mammographic positioning, how are the cathode and anode aligned relative to the breast?
    • A. Cathode positioned toward the chest wall; anode toward the nipple
    • B. Anode positioned toward the chest wall; cathode toward the nipple
    • C. Side-to-side orientation
    • D. Orientation does not affect uniformity.
    • Answer: A — Cathode positioned toward the chest wall; anode toward the nipple
    • Explanation: Placing the cathode over the thicker chest wall utilizes the heel effect to deliver higher X-ray intensity to denser tissue, balancing receptor exposure.
  5. What is the approximate pixel size range utilized in modern full-field digital mammography (FFDM) detectors to visualize microcalcifications?
    • A. 50 to 100 𝜇m
    • B. 200 to 300 𝜇m
    • C. 500 to 1000 𝜇m
    • D. 1 to 2 mm
    • Answer: A — 50 to 100 𝜇m
    • Explanation: Microcalcifications can be as small as 100 micrometers, requiring high-resolution digital detector element pitches under 100 𝜇m.
  6. What target/filter combination is typically selected for imaging thick or dense breasts in mammography?
    • A. Molybdenum target with Molybdenum filter (Mo/Mo)
    • B. Molybdenum target with Rhodium filter (Mo/Rh)
    • C. Rhodium target with Rhodium filter (Rh/Rh) or Tungsten target
    • D. Aluminum target with Copper filter
    • Answer: C — Rhodium target with Rhodium filter (Rh/Rh) or Tungsten target
    • Explanation: Rh/Rh or W targets generate higher beam energies (penetration) required to penetrate dense, thick breast tissue effectively.
  7. What is the typical average glandular dose (AGD) limit per view for a standard screening mammogram under MQSA guidelines?
    • A. Not to exceed 3.0 mGy (0.3 rad) per view with grid
    • B. Exactly 10 mGy per view
    • C. 0.05 mGy per view
    • D. No regulatory dose limits exist in mammography.
    • Answer: A — Not to exceed 3.0 mGy (0.3 rad) per view with grid
    • Explanation: MQSA and ACR accreditation standards mandate that average glandular dose for a standard compressed breast (4.2 cm thick, 50% adipose/50% glandular) must not exceed 3 mGy per view.
  8. What artifact is commonly caused by deodorant or antiperspirant powder containing metallic particles in the axillary region on a mammogram?
    • A. Ring artifacts
    • B. Simulated microcalcifications or suspicious opacities
    • C. Grid lines
    • D. Total detector saturation (white-out)
    • Answer: B — Simulated microcalcifications or suspicious opacities
    • Explanation: Antiperspirants containing aluminum or metallic particulate matter project as bright specks mimicking pathological microcalcifications.
  9. How does the radiation dose of digital breast tomosynthesis (DBT) compare to standard 2D digital mammography?
    • A. DBT dose is 10 times higher.
    • B. DBT dose is roughly comparable (similar AGD to a 2D view).
    • C. DBT uses zero ionizing radiation.
    • D. DBT dose is strictly half of a 2D view.
    • Answer: B — DBT dose is roughly comparable (similar AGD to a 2D view).
    • Explanation: Although multiple low-dose projections are acquired during a tomosynthesis scan, total integrated dose is regulated to remain comparable to a standard 2D mammogram.
  10. What is the clinical consequence of severe breast under-exposure in digital mammography?
    • A. Complete elimination of scatter
    • B. High signal-to-noise ratio and excessive contrast
    • C. Mottled, grainy image noise where anatomical signal and quantum noise cannot be differentiated
    • D. Geometric magnification distortion
    • Answer: C — Mottled, grainy image noise where anatomical signal and quantum noise cannot be differentiated
    • Explanation: Insufficient photon counts produce severe quantum noise, obscuring fine parenchymal details and microcalcifications.

Module 10: Fluoroscopy and Interventional Imaging

  1. What is the best practice guideline regarding tube voltage (kV) settings during Digital Subtraction Angiography (DSA)?
    • A. Use high kV for mask and low kV for post-contrast.
    • B. Keep mask and post-contrast kV settings strictly equal.
    • C. Vary kV dynamically based on patient heart rate.
    • D. kV selection has no impact on subtraction quality.
    • Answer: B — Keep mask and post-contrast kV settings strictly equal.
    • Explanation: Varying kV alters X-ray beam spectra and attenuation coefficients, resulting in incomplete background bone and soft-tissue subtraction artifacts.
  2. Which fluoroscopic dose metric correlates best with total energy imparted and stochastic risk?
    • A. Fluoroscopic beam-on time
    • B. Reference Air Kerma
    • C. Kerma-Area Product (KAP)
    • D. Peak skin dose
    • Answer: C — Kerma-Area Product (KAP)
    • Explanation: KAP (expressed in Gy ⋅cm2) measures total energy delivered across the entire irradiated field area, correlating closely with overall stochastic risk.
  3. What is the primary operational goal of the Automatic Exposure Rate Control (AERC) system in fluoroscopy?
    • A. Maintain a constant patient skin entrance dose rate regardless of anatomy.
    • B. Maintain a constant radiation dose rate at the image receptor input plane.
    • C. Maximize tube current during all cine runs.
    • D. Minimize high-voltage generator ripple.
    • Answer: B — Maintain a constant radiation dose rate at the image receptor input plane.
    • Explanation: AERC modulates tube output dynamically to keep image receptor input exposure constant across varying patient body habitus and angulations.
  4. Kerma-Area Product (KAP) is typically expressed in which units?
    • A. Gray (Gy)
    • B. mGy ⋅cm2
    • C. Sieverts (Sv)
    • D. Roentgens per minute (R/min)
    • Answer: B — mGy ⋅cm2
    • Explanation: KAP multiplies air kerma dose by the cross-sectional beam area.
  5. Which fluoroscopic operating mode typically delivers the highest patient radiation exposure rate?
    • A. Pulsed fluoroscopy at 15 pulses per second
    • B. Low-dose intermittent fluoroscopy
    • C. Cine/Digital acquisition runs
    • D. Last-image-hold (LIH) review mode
    • Answer: C — Cine/Digital acquisition runs
    • Explanation: Cine runs utilize substantially higher tube currents and frame rates to capture rapid vascular opacification, resulting in high dose rates.
  6. Under AERC operation in fluoroscopy, which technique combination minimizes patient skin entrance dose rate?
    • A. Low kV, high mA
    • B. High kV, low mA
    • C. High kV, high mA
    • D. Low filtration, high pulse rate
    • Answer: B — High kV, low mA
    • Explanation: Higher kV photons penetrate tissue more efficiently, requiring fewer total photons (lower mA) to achieve the target receptor dose, reducing skin dose.
  7. In fluoroscopy, scattered radiation measured at 1 meter from the patient is approximately what percentage of the patient’s entrance surface exposure rate?
    • A. 10%
    • B. 1.0%
    • C. 0.1%
    • D. 0.001%
    • Answer: C — 0.1%
    • Explanation: At 1 meter from the patient, scatter intensity drops to roughly 0.10% (1/1000th) of the patient entrance exposure rate, guiding staff positioning and protective shielding rules.
  8. What is the maximum allowable entrance skin exposure rate limit for standard fluoroscopic systems under FDA regulations (excluding high-level control/boost mode)?
    • A. 10 R/min (87 mGy/min)
    • B. 20 R/min (174 mGy/min)
    • C. 50 R/min
    • D. No federal limits exist.
    • Answer: A — 10 R/min (87 mGy/min)
    • Explanation: Standard fluoroscopic entrance exposure rate is capped at 10 R/min unless optional high-level control (“boost”) mode is active (capped at 20 R/min).
  9. Which artifact is specific to Image Intensifier (II) based fluoroscopic systems rather than flat-panel detectors?
    • A. Dead pixel clusters
    • B. Pincushion distortion and vignetting
    • C. Lag artifacts
    • D. Gain calibration offset errors
    • Answer: B — Pincushion distortion and vignetting
    • Explanation: Pincushion distortion and optical vignetting arise from projecting electrons across curved input and output phosphor screens in image intensifiers.
  10. Where should the fluoroscopic image receptor be positioned relative to the patient to minimize patient entrance dose?
    • A. As far from the patient as possible
    • B. As close to the patient as possible
    • C. Midway between source and ceiling
    • D. Position has no effect on patient dose.
    • Answer: B — As close to the patient as possible
    • Explanation: Minimizing air gap and object-to-image distance satisfies the inverse square law, maximizing receptor exposure efficiency and allowing lower tube output.

Module 11: Computed Tomography

  1. What action can improve the visibility of low-contrast structures in a CT image without increasing patient radiation dose?
    • A. Increasing tube current (mA)
    • B. Decreasing pitch
    • C. Increasing reconstructed slice thickness
    • D. Decreasing tube voltage (kV)
    • Answer: C — Increasing reconstructed slice thickness
    • Explanation: Thicker reconstructed slices increase photon statistics per voxel, lowering noise and enhancing low-contrast detectability without increasing patient dose.
  2. In CT image reconstruction, changing the convolution kernel (reconstruction filter) from a smooth filter to a sharp edge-enhancing filter results in:
    • A. Decreased noise and decreased spatial resolution
    • B. Increased spatial resolution and increased image noise
    • C. Higher radiation dose to the patient
    • D. Elimination of metal streak artifacts
    • Answer: B — Increased spatial resolution and increased image noise
    • Explanation: Sharp convolution kernels emphasize high spatial frequencies to sharpen structural edges, which simultaneously amplifies image noise.
  3. What is the primary cause of partial ring artifacts in third-generation rotate-rotate CT scanners?
    • A. Patient respiratory motion
    • B. Beam hardening across bone
    • C. Poor or miscalibrated individual detector channels
    • D. Excessive helical pitch
    • Answer: C — Poor or miscalibrated individual detector channels
    • Explanation: A drifting or miscalibrated detector element samples a complete circular arc during gantry rotation, manifesting as a ring or partial ring artifact.
  4. What technique helps reduce severe photon starvation streaking artifacts caused by metallic orthopedic implants in CT?
    • A. Lowering tube voltage (kV)
    • B. Increasing tube voltage (kV) and utilizing metal artifact reduction (MAR) software algorithms
    • C. Increasing helical pitch
    • D. Removing bow-tie filters
    • Answer: B — Increasing tube voltage (kV) and utilizing metal artifact reduction (MAR) software algorithms
    • Explanation: Higher kV increases photon energy and beam penetration through dense metal, reducing complete photon starvation and associated streak artifacts.
  5. Which CT acquisition parameter directly defines the Hounsfield Unit (HU) calibration scale value for water?
    • A. 0 HU
    • B. +1000 HU
    • C. -1000 HU
    • D. +100 HU
    • Answer: A — 0 HU
    • Explanation: Hounsfield units are normalized such that distilled water equals 0 HU at standard temperature and pressure.
  6. What is the typical Hounsfield Unit value for dense cortical bone?
    • A. 0 HU
    • B. -100 HU
    • C. +40 to +80 HU
    • D. +700 to +3000 HU
    • Answer: D — +700 to +3000 HU
    • Explanation: Highly dense cortical bone attenuates X-rays strongly, yielding high positive HU values (+1000 HU or greater).
  7. What is the Hounsfield Unit value assigned to air?
    • A. 0 HU
    • B. +100 HU
    • C. -1000 HU
    • D. -500 HU
    • Answer: C — -1000 HU
    • Explanation: Air has virtually zero attenuation compared to water, placing it at -1000 HU.
  8. What dosimetric quantity represents the normalized radiation dose for a single axial CT scan slice, measured using a 100 cm pencil ionization chamber in standard head or body acrylic phantoms?
    • A. CTDI100
    • B. Dose-LengthProduct(DLP)
    • C. EffectiveDose
    • D. Size-SpecificDoseEstimate(SSDE)
    • Answer: A — CTDI100
    • Explanation: CTDI100 measures integrated dose profile along a 100 mm line using pencil ionization chambers.
  9. How is CTDIvol calculated for a helical CT scan given the pitch (𝑝)?
    • A. CTDIw ×𝑝
    • B. CTDIw/𝑝
    • C. CTDI100 +DLP
    • D. mAs ×kV
    • Answer: B — CTDIw/𝑝
    • Explanation: CTDIvol equals the weighted CTDI (CTDIw) divided by the helical pitch, representing true average dose within the scan volume.
  10. What parameter does the Dose-Length Product (DLP) factor into its calculation beyond CTDIvol?
    • A. Patient body weight in kilograms
    • B. Total scan length in centimeters
    • C. Gantry rotation speed in seconds
    • D. Reconstruction kernel type
    • Answer: B — Total scan length in centimeters
    • Explanation: DLP =CTDIvol ×ScanLength, quantifying total energy imparted across the entire anatomical scan range.

Module 12: Ultrasound

  1. What acoustic tissue property is primarily responsible for causing acoustic posterior enhancement distal to a fluid-filled cyst?
    • A. High acoustic impedance
    • B. Decreased attenuation coefficient relative to surrounding tissue
    • C. Increased speed of sound
    • D. High reflection coefficient
    • Answer: B — Decreased attenuation coefficient relative to surrounding tissue
    • Explanation: Fluid-filled cysts attenuate ultrasound beams much less than surrounding soft tissue; consequently, structures behind the cyst receive higher-intensity beams, producing brighter echoes (enhancement).
  2. Calculate the round-trip attenuation of a 5 MHz ultrasound beam traversing 2 cm deep into soft tissue (using the standard attenuation rule of thumb of 0.5 dB/cm/MHz):
    • A. 2.5 dB
    • B. 5.0 dB
    • C. 7.5 dB
    • D. 10.0 dB
    • Answer: D — 10.0 dB
    • Explanation: Attenuation = 0.5⁢ dB/cm/MHz ×5⁢ MHz ×4⁢ cm(round-trippath) =10 dB.
  3. In spectral Doppler ultrasound, what physical parameter does the brightness (grayscale intensity) of the spectral waveform display represent?
    • A. Blood flow velocity magnitude
    • B. The relative number of red blood cells moving at that specific velocity (signal intensity)
    • C. Doppler angle deviation
    • D. Vascular lumen diameter
    • Answer: B — The relative number of red blood cells moving at that specific velocity (signal intensity)
    • Explanation: Vertical axis indicates velocity via Doppler shift frequency, while brightness reflects the concentration (amplitude) of scatterers moving at that velocity.
  4. What is a primary clinical advantage of Tissue Harmonic Imaging (THI)?
    • A. Higher mechanical index and increased cavitation risk
    • B. Enhanced image contrast and reduction of near-field clutter/artifactual noise
    • C. Higher frame rates
    • D. Elimination of attenuation
    • Answer: B — Enhanced image contrast and reduction of near-field clutter/artifactual noise
    • Explanation: THI transmits at a fundamental frequency and receives at harmonic multiples generated by non-linear tissue propagation, clearing out reverberation clutter and improving contrast.
  5. What is the optimal Doppler angle range recommended to ensure accurate velocity measurements in vascular ultrasound?
    • A. 0∘ to 15∘
    • B. 45∘ to 60∘
    • C. Exactly 90∘
    • D. 75∘ to 90∘
    • Answer: B — 45∘ to 60∘
    • Explanation: Angles between 45∘ and 60∘ provide an acceptable compromise between Doppler shift magnitude and cosine angle error sensitivity (at 90∘, cosine is zero, yielding no Doppler shift).
  6. What artifact appears as a series of closely spaced, highly reflective parallel echoes resembling a dropping comet tail?
    • A. Acoustic shadowing
    • B. Mirror image artifact
    • C. Comet tail (reverberation) artifact
    • D. Refraction artifact
    • Answer: C — Comet tail (reverberation) artifact
    • Explanation: Rapid internal reverberation between closely spaced metallic or high-impedance boundaries creates a vertical band of discrete echoes resembling a comet tail.
  7. How does the Mechanical Index (MI) scale with respect to ultrasound transducer transmit frequency?
    • A. Directly proportional to frequency
    • B. Directly proportional to the square of frequency
    • C. Inversely proportional to the square root of frequency
    • D. Completely independent of frequency
    • Answer: C — Inversely proportional to the square root of frequency
    • Explanation: MI estimates cavitation risk and varies directly with peak rarefactional pressure but inversely with the square root of frequency.
  8. Calculate the wavelength of a 1.5 MHz ultrasound wave propagating through soft tissue (speed of sound ≈1500 m/s):
    • A. 1.5 cm
    • B. 0.1 mm
    • C. 1.0 mm
    • D. 1.5 𝜇m
    • Answer: C — 1.0 mm
    • Explanation: 𝜆 =𝑐/𝑓 =1500⁢ m/s/(1.5 ×106 Hz) =0.001⁢ m =1.0 mm.
  9. What is a notable disadvantage of spatial compound imaging?
    • A. Increased speckle noise
    • B. Increased spatial blurring of fast-moving structures and reduced frame rates
    • C. Loss of contrast resolution
    • D. Decreased signal-to-noise ratio
    • Answer: B — Increased spatial blurring of fast-moving structures and reduced frame rates
    • Explanation: Averaging multiple steering angles smooths speckle and improves SNR, but temporal averaging compromises temporal resolution and blurs motion.
  10. What artifact is produced when a strong specular reflector (such as the diaphragm) duplicates an anatomical structure deeper in the image field?
    • A. Side lobe artifact
    • B. Mirror image artifact
    • C. Speed displacement artifact
    • D. Grating lobe artifact
    • Answer: B — Mirror image artifact
    • Explanation: Sound waves reflecting between a target mass and a strong specular reflector mimic a secondary false structure positioned at an equidistant depth below the reflector.

Module 13: Magnetic Resonance Imaging

  1. Which MR pulse sequence timing diagram utilizes a 90° excitation pulse followed by a 180° refocusing pulse to generate an echo?
    • A. Gradient Echo (GRE) sequence
    • B. Fast Spin Echo (FSE) sequence
    • C. Spin Echo (SE) sequence
    • D. Echo Planar Imaging (EPI) sequence
    • Answer: C — Spin Echo (SE) sequence
    • Explanation: Classic spin echo sequences use a 90° excitation pulse and a single 180° RF refocusing pulse to cancel field inhomogeneity dephasing.
  2. How does increasing the Echo Train Length (ETL) in a Fast Spin Echo (FSE) sequence affect total acquisition time?
    • A. Acquisition time is multiplied by the ETL factor.
    • B. Acquisition time is reduced inversely proportional to the ETL factor.
    • C. Acquisition time remains unchanged.
    • D. Acquisition time increases exponentially.
    • Answer: B — Acquisition time is reduced inversely proportional to the ETL factor.
    • Explanation: Collecting multiple echoes per TR via an echo train reduces phase-encoding steps required, shortening scan time by a factor equal to the ETL.
  3. In k-space architecture, what image characteristic is primarily encoded by the peripheral outer lines of k-space?
    • A. Overall signal-to-noise ratio (SNR)
    • B. Global image contrast
    • C. High-frequency spatial resolution and fine edge detail
    • D. T1 relaxation weighting
    • Answer: C — High-frequency spatial resolution and fine edge detail
    • Explanation: The center of k-space governs image contrast and SNR, whereas the outer periphery contains high spatial frequency data determining edge sharpness.
  4. According to ACR guidelines, which personnel category is authorized for unrestricted access to Zone III of an MRI facility?
    • A. Level 1 and Level 2 MR personnel only
    • B. Level 2 MR personnel exclusively
    • C. General unmonitored members of the public
    • D. Housekeeping staff without training
    • Answer: A — Level 1 and Level 2 MR personnel only
    • Explanation: Both Level 1 (minimally trained) and Level 2 (extensively trained) MR personnel are permitted unescorted access into Zone III control and staging areas.
  5. What is the most frequently reported adverse safety event associated with clinical MRI operations in FDA databases?
    • A. Ferromagnetic projectile missile accidents
    • B. Cryogen quench asphyxiation
    • C. RF-induced thermal skin burns
    • D. Peripheral nerve stimulation
    • Answer: C — RF-induced thermal skin burns
    • Explanation: While projectile accidents are catastrophic, RF-induced thermal burns from conductive loops or patient skin-to-skin contact are the most frequently reported clinical adverse events.
  6. To generate a T1-weighted Spin Echo brain image, what TR and TE parameter combination should be selected?
    • A. Short TR, Short TE
    • B. Long TR, Long TE
    • C. Short TR, Long TE
    • D. Long TR, Short TE
    • Answer: A — Short TR, Short TE
    • Explanation: A short TR emphasizes T1 tissue recovery differences, while a short TE minimizes unwanted T2 decay contributions.
  7. Which fat suppression technique is most robust and reliable in the presence of severe static magnetic field inhomogeneity caused by metal surgical hardware?
    • A. Spectral selective fat saturation (CHESS)
    • B. Short Tau Inversion Recovery (STIR)
    • C. Spatial saturation pre-pulses
    • D. Dixon in-phase/out-of-phase imaging
    • Answer: B — Short Tau Inversion Recovery (STIR)
    • Explanation: STIR nulls fat based on its T1 relaxation time rather than exact frequency resonance, making it immune to frequency shifts caused by metal susceptibility inhomogeneity.
  8. What primary image contrast mechanism determines signal intensity in a standard Diffusion-Weighted Imaging (DWI) sequence?
    • A. Pure proton density weighting
    • B. Combined heavy T2 weighting (due to long TE) coupled with Brownian water motion sensitivity
    • C. Pure T1 relaxation times
    • D. Magnetic susceptibility gradients alone
    • Answer: B — Combined heavy T2 weighting (due to long TE) coupled with Brownian water motion sensitivity
    • Explanation: Strong diffusion gradient pulses require long echo times (TE), introducing heavy baseline T2 weighting (“T2 shine-through”) alongside water diffusion sensitivity.
  9. How can aliasing (wrap-around) artifacts in the phase-encoding direction be corrected in MRI?
    • A. Increasing the receiver sampling bandwidth
    • B. Decreasing the repetition time (TR)
    • C. Increasing the Field of View (FOV) or applying anti-aliasing oversampling
    • D. Lowering the main magnetic field strength
    • Answer: C — Increasing the Field of View (FOV) or applying anti-aliasing oversampling
    • Explanation: Wrap-around occurs when anatomical structures outside the FOV are undersampled; expanding the phase FOV or using no-phase-wrap algorithms eliminates aliasing.
  10. What sequence modification helps mitigate magnetic susceptibility signal dropouts near metal implants?
    • A. Switching from a Spin Echo sequence to a Gradient Echo sequence
    • B. Switching from a Gradient Echo sequence to a Spin Echo (or fast spin-echo) sequence
    • C. Increasing echo time (TE)
    • D. Decreasing receiver bandwidth
    • Answer: B — Switching from a Gradient Echo sequence to a Spin Echo (or fast spin-echo) sequence
    • Explanation: Gradient echo sequences lack 180° refocusing pulses and cannot recover dephasing from field inhomogeneities, whereas Spin Echo 180° pulses successfully refocus susceptibility-induced dephasing.

Module 14: Nuclear Medicine and PET

  1. What is the current NRC release criterion threshold for discharging a patient administered unsealed radioactive material?
    • A. Total effective dose equivalent to any individual must not exceed 1 mSv (0.1 rem).
    • B. Total effective dose equivalent to any individual must not exceed 5 mSv (0.5 rem).
    • C. Total effective dose equivalent must not exceed 50 mSv (5 rem).
    • D. Patients can never be released before complete physical decay.
    • Answer: B — Total effective dose equivalent to any individual must not exceed 5 mSv (0.5 rem).
    • Explanation: 10 CFR 35.75 allows patient release if public exposure is unlikely to exceed 5 mSv.
  2. In a PET scan, if an incorrect patient weight 100 kg heavier than actual weight is entered into the console, how does it affect the calculated Standardized Uptake Value (SUV)?
    • A. Reported SUV is unaffected.
    • B. Reported SUV is artificially higher than the true SUV.
    • C. Reported SUV is lower than the true SUV.
    • D. The scanner will abort reconstruction.
    • Answer: B — Reported SUV is artificially higher than the true SUV.
    • Explanation: SUV =MeanActivityConcentrationDose/PatientWeight. Overestimating weight inflates the denominator calculation, resulting in an erroneously elevated SUV.
  3. Why does Iodine-131 deliver a significantly higher radiation dose to the thyroid per millicurie administered compared to Iodine-123?
    • A. I-131 emits higher energy gamma rays.
    • B. I-131 emits corpuscular beta particle radiation, whereas I-123 decays via electron capture with gamma emission.
    • C. I-131 has a much shorter physical half-life.
    • D. I-131 exhibits lower specific activity.
    • Answer: B — I-131 emits corpuscular beta particle radiation, whereas I-123 decays via electron capture with gamma emission.
    • Explanation: Beta emissions from I-131 deposit dense local particle energy within thyroid tissue, whereas I-123 emits primarily diagnostic gamma photons with minimal particulate dose.
  4. According to NRC regulations, an administered radiopharmaceutical dosage must fall within what percentage range of the prescribed dosage (unless otherwise directed)?
    • A. Within ±5%
    • B. Within ±10%
    • C. Within ±15%
    • D. Within ±20%
    • Answer: D — Within ±20%
    • Explanation: 10 CFR 35.63 permits administered diagnostic or therapeutic dosages to deviate by up to 20% from the written prescription unless specific clinical directives apply.
  5. Calculate the effective half-life (𝑇eff) of a radiopharmaceutical in an organ if its physical half-life (𝑇𝑝) is 6 hours and its biological half-life (𝑇𝑏) is 3 hours:
    • A. 2 hours
    • B. 4 hours
    • C. 4.5 hours
    • D. 9 hours
    • Answer: A — 2 hours
    • Explanation: Using the effective half-life formula:1𝑇eff=1𝑇𝑝+1𝑇𝑏=16+13=36⟹𝑇eff=2 hours
  6. What collimator type is required when imaging Indium-111 (which emits gamma photons at 171 keV and 245 keV)?
    • A. Low-energy high-resolution (LEHR) collimator
    • B. Medium-energy collimator
    • C. High-energy collimator
    • D. Pinhole collimator
    • Answer: B — Medium-energy collimator
    • Explanation: LEHR septae are too thin to block 171 and 245 keV photons (which would penetrate and degrade resolution); medium-energy collimators provide adequate septal shielding.
  7. What reconstruction algorithm artifact is characterized by positive and negative interleaving streaks radiating from hot uptake regions when applied to SPECT/PET data?
    • A. Filtered Backprojection (FBP) streak artifacts
    • B. OSEM iteration divergence rings
    • C. Time-of-flight blur
    • D. Uniformity flood correction lines
    • Answer: A — Filtered Backprojection (FBP) streak artifacts
    • Explanation: Traditional FBP struggles with incomplete sampling and noise propagation, yielding characteristic star/streak artifacts around high-activity structures.
  8. How can a technologist improve the spatial resolution of a planar gamma camera image during a repeat acquisition?
    • A. Increase total acquired counts.
    • B. Move the camera detector head as close to the patient’s body as possible.
    • C. Use a low-energy collimator for high-energy isotopes.
    • D. Increase matrix size without regard to count statistics.
    • Answer: B — Move the camera detector head as close to the patient’s body as possible.
    • Explanation: Gamma camera spatial resolution degrades with distance due to parallel-hole collimator geometric divergence; minimizing camera-to-organ distance maximizes resolution.
  9. What is the primary function of photomultiplier tubes (PMTs) inside a conventional Anger gamma camera?
    • A. To absorb incoming gamma rays directly and convert them into electrical current
    • B. To convert scintillation light flashes from the NaI(Tl) crystal into proportional electrical signals and amplify them
    • C. To collimate incoming photon beams
    • D. To store digital image matrices during dynamic acquisitions
    • Answer: B — To convert scintillation light flashes from the NaI(Tl) crystal into proportional electrical signals and amplify them
    • Explanation: PMTs use photocathodes to turn crystal light flashes into photoelectrons, subsequently multiplying the signal via internal dynodes.
  10. Why are 180° RAO-LPO acquisition orbits utilized for cardiac SPECT myocardial perfusion imaging instead of full 360° orbits?
    • A. To speed up acquisition time
    • B. To keep the detector head as close to the chest wall as possible, minimizing distance and attenuation to improve contrast and resolution
    • C. To eliminate the need for attenuation correction
    • D. To permit MLEM reconstruction exclusively
    • Answer: B — To keep the detector head as close to the chest wall as possible, minimizing distance and attenuation to improve contrast and resolution
    • Explanation: 180° circular arcs maintain close proximity to the heart along the anterior/left lateral chest wall, avoiding inferior/posterior body attenuation pathways that degrade image quality.

Xray Properties, Xray Tube, Xray Production Self-assessment Quiz

Chapter 1: Properties of X-rays

Q1-1: All of the following are electromagnetic waves, except

(a) Heat

(b) Radiation used in magnetic resonance imaging (MRI)

(c) Sunlight

(d) Sound

(e) FM radio signals

  • Answer: (d) Sound
  • Explanation: Gamma rays, x-rays, ultraviolet waves, infrared waves, light of all types, microwaves, and radio waves are all electromagnetic waves; sound is a longitudinal pressure wave that travels at about 330 meters per second and is not an electromagnetic wave.

Q1-2: If the wavelength of an x-ray is reduced to half, its energy is

(a) Increased by 4

(b) Increased by 2

(c) Unchanged

(d) Decreased to 0.5

(e) Decreased by 0.25

  • Answer: (b) Increased by 2
  • Explanation: Energy is inversely related to wavelength; therefore, decreasing the wavelength by half makes the energy two times greater.

Q1-3: If the wavelength of an x-ray is reduced to half, its speed is

(a) Increased by 4

(b) Increased by 2

(c) Unchanged

(d) Decreased to 0.5

(e) Decreased by 0.25

  • Answer: (c) Unchanged
  • Explanation: All electromagnetic waves travel at the speed of light in a vacuum, regardless of their wavelength or frequency.

Q1-4: If the wavelength of an x-ray is reduced by half, its frequency is

(a) Increased by 4

(b) Increased by 2

(c) Unchanged

(d) Decreased to 0.5

(e) Decreased by 0.25

  • Answer: (b) Increased by 2
  • Explanation: Wavelength and frequency are inversely proportional, meaning if the wavelength is half of a specified value, the frequency is twice as large.

Q1-5: The x-rays that penetrate best through patient tissue have the smallest

(a) Frequency

(b) Energy

(c) Speed

(d) Wavelength

(e) Quanta

  • Answer: (d) Wavelength
  • Explanation: The most penetrating x-rays have small wavelengths, which correspond to high frequency and high energy.

Q1-6: The wavelength of a 60-keV x-ray is about

(a) 4.5 microns

(b) 0.2 angstroms

(c) 0.001 mm

(d) 1.25 x $10^{-8}$ cm

(e) 6.3 MB

  • Answer: (b) 0.2 angstroms
  • Explanation: Using the relationship $\lambda = 12.4 / E$, wavelength equals $12.4 / 60 \text{ keV} \approx 0.2$ angstroms.

Q1-7: As the energy of the x-rays is increased, the x-rays have

(a) Faster speed

(b) Lower frequency

(c) Shorter wavelength

(d) Longer wavelength

(e) The same speed, wavelength, and frequency

  • Answer: (c) Shorter wavelength
  • Explanation: The energy of x-rays is directly related to the frequency and inversely related to the wavelength.

Q1-8: For equal image quality, radiographs have lower radiation doses if the x-rays have

(a) Higher frequency

(b) Longer wavelengths

(c) Faster speeds

(d) More quanta

(e) Longer period

  • Answer: (a) Higher frequency
  • Explanation: More penetrating (higher energy, higher frequency) x-rays mean fewer incident x-rays are needed to reach the image receptor, which reduces the patient’s radiation dose.

Q1-9: All of the following are transverse waves, except

(a) Gamma rays

(b) Ultraviolet waves

(c) Microwaves

(d) X-rays

(e) Diathermy waves

  • Answer: (e) Diathermy waves
  • Explanation: Diathermy treatments use high-power ultrasound waves, which are longitudinal waves (force is in the same direction as motion), unlike electromagnetic waves which are transverse.

Q1-10: To make certain that the x-rays have dissipated after clinical radiography, one should wait at least _____ before entering the room.

(a) 50 nanoseconds

(b) 50 microseconds

(c) 50 femtoseconds

(d) 50 milliseconds

(e) 50 deciseconds

  • Answer: (a) 50 nanoseconds
  • Explanation: X-rays travel at the speed of light and are absorbed nearly instantaneously by the lead walls or after scattering, so there is no need to wait to enter a room after an exposure.

Chapter 2: The X-ray Tube

Q2-1: The x-rays that penetrate through the housing of the x-ray tube are called _____ radiation.

(a) Off focus

(b) Primary

(c) Heel effect

(d) Leakage

(e) Secondary

  • Answer: (d) Leakage
  • Explanation: By definition, leakage radiation is the amount of x-rays that penetrate through the lead internal lining of the x-ray tube housing.

Q2-2: Having fewer x-rays on the anode side of the image receptor in comparison with the cathode side is called

(a) Off focus

(b) Heel effect

(c) Line focus principle

(d) Effective focal spot

(e) Positive beam limitation

  • Answer: (b) Heel effect
  • Explanation: The heel effect is the reduction in the number of x-rays on the anode side due to self-attenuation of the x-rays within the anode target material.

Q2-3: _____ produces images of reduced intensity outside the edges of the collimated field of view.

(a) Off focus

(b) Heel effect

(c) Line focus principle

(d) Effective focal spot

(e) Positive beam limitation

  • Answer: (a) Off focus
  • Explanation: Off-focus radiation consists of x-rays produced outside the true focal spot, resulting in poorly collimated, low-intensity shadow images outside the main field.

Q2-4: That the effective focal spot size is smaller than the area where the x-rays are actually produced because of the beveled angle of the x-ray tube target is called

(a) Off focus

(b) Heel effect

(c) Line focus principle

(d) Collimation

(e) Positive beam limitation

  • Answer: (c) Line focus principle
  • Explanation: The line focus principle uses a beveled anode target angle to make the effective size of the focal spot appear smaller from the perspective of the image receptor.

Q2-5: _____ is attributed to attenuation within the target of the x-ray tube.

(a) Off focus

(b) Heel effect

(c) Line focus principle

(d) Effective focal spot

(e) Positive beam limitation

  • Answer: (b) Heel effect
  • Explanation: X-rays traveling toward the anode side have longer path lengths through the target material as they emerge, which causes greater attenuation.

Q2-12: One of the two key purposes of x-ray beam collimation is to

(a) Limit heel effect

(b) Reduce the scattered radiation

(c) Control off-focus radiation

(d) Reduce anode heating

(e) Reduce leakage radiation

  • Answer: (b) Reduce the scattered radiation
  • Explanation: Collimation restricts the beam to prevent exposing non-imaged tissue and utilizes a smaller field of view, which reduces scattered radiation.

Q2-13: _____ percent of the bombarding electrons’ energy is converted in x-ray production.

(a) 1

(b) 10

(c) 25

(d) 50

(e) 99

  • Answer: (a) 1
  • Explanation: Approximately 99% of the bombarding electrons’ energy is converted to heat, while only 1% results in x-ray production.

Q2-16: The main x-ray tube factor that affects the spatial resolution in the image is the

(a) Anode angle

(b) KVp

(c) Filament size

(d) Effective focal spot size

(e) Stator

  • Answer: (d) Effective focal spot size
  • Explanation: The effective focal spot size influences focal spot blur, directly impacting the spatial resolution of the image.

Chapter 3: X-ray Tube Heat Loading Characteristics

Q3-1: The kW rating of an x-ray tube depends on all the following factors, except

(a) Focal spot size

(b) Exposure time

(c) Anode angle

(d) Rotation speed

(e) Anode material

  • Answer: (b) Exposure time
  • Explanation: The kW rating is the instantaneous heat rating for exposures of 0.10 seconds or shorter, meaning it does not depend on exposure duration.

Q3-7: Cooling of a very hot anode primarily occurs by

(a) Conduction

(b) Convection

(c) Radiation

(d) Bremsstrahlung

(e) Cascade

  • Answer: (c) Radiation
  • Explanation: At very high temperatures, radiative cooling (emission of infrared waves) is the most important process because it is proportional to the fourth power of temperature; convection does not occur inside the tube’s vacuum.

Q3-8: For a constant effective focal spot size, the kW x-ray tube rating can be increased by using

(a) Large anode angle

(b) High kVp values

(c) Low rotation speeds

(d) Small focal spot sizes

(e) Three-phase rather than single-phase generators

  • Answer: (e) Three-phase rather than single-phase generators
  • Explanation: Three-phase generators maintain a relatively constant mA, whereas single-phase generators have a high peak mA that requires a reduced kW rating to prevent anode damage.

Q3-10: In general, x-ray tube overheating can be prevented by

(a) Using high kVp

(b) Using high mA settings

(c) Using large anode angles

(d) Using small focal spots

(e) Allowing time between exposures

  • Answer: (e) Allowing time between exposures
  • Explanation: Spreading x-ray exposures over time gives the anode the opportunity to cool down between heat inputs, preventing overheating.

Chapter 4: X-ray Production

Q4-1: Bremsstrahlung x-ray production accounts for _____ % of all the x-rays.

(a) 85-100

(b) 70-85

(c) 55-70

(d) 30-45

(e) 15-30

  • Answer: (a) 85-100
  • Explanation: In tungsten targets, characteristic x-rays are not produced below 69.5 kVp, making the beam 100% bremsstrahlung; at a maximum of 150 kVp, characteristic x-rays only make up about 15% of the total.

Q4-2: The energy spectrum of bremsstrahlung x-rays is

(a) Monoenergetic

(b) Polychromatic

(c) Composed of multiple discrete peaks

(d) Isotropic

(e) Homogeneous

  • Answer: (b) Polychromatic
  • Explanation: Bremsstrahlung x-rays possess a continuous distribution of varying x-ray energies, meaning they are polyenergetic or polychromatic.

Q4-3: The shortest wavelength x-ray photons are dependent on

(a) Characteristic x-rays

(b) K-edge x-rays

(c) kVp

(d) X-ray beam filtration

(e) mAs settings

  • Answer: (c) kVp
  • Explanation: The shortest wavelength x-rays correspond to the highest energy x-rays in the beam, which can never exceed the applied kVp.

Q4-5: The K-characteristic x-rays for a tungsten x-ray tube target have energies of about _____ keV.

(a) 17-20

(b) 20-23

(c) 30-50

(d) 50-70

(e) 70-88

  • Answer: (d) 50-70
  • Explanation: For a tungsten anode, K-alpha x-rays appear between 57 and 59 keV, and K-beta x-rays appear between 67 and 69.5 keV.

Q4-11: To be able to produce K-characteristic x-rays in a tungsten target x-ray tube, the x-ray tube voltage must be no lower than _____ kVp.

(a) 101.5

(b) 98.5

(c) 88.5

(d) 76.5

(e) 69.5

  • Answer: (e) 69.5
  • Explanation: The bombarding electron must have kinetic energy equal to or greater than tungsten’s K-shell binding energy (69.5 keV) to knock a K-shell electron out of orbit.

Q4-12: The x-ray quantity increases when the _____ is larger in magnitude.

(a) kVp

(b) mAs

(c) Filtration

(d) Both a and b

(e) Both a and c

(f) a, b, and c

  • Answer: (d) Both a and b
  • Explanation: Increasing the kVp increases both the number and energy of x-rays, while increasing the mAs strictly increases the total number (quantity) of x-rays.

Q4-13: The quality (ability of x-rays to penetrate through the patient’s body) improves when the _____ is larger in magnitude.

(a) kVp

(b) mAs

(c) Filtration

(d) Both a and b

(e) Both a and c

(f) a, b, and c

  • Answer: (e) Both a and c
  • Explanation: Raising the kVp increases maximum and average x-ray energy, and adding filtration preferentially removes low-energy x-rays, which increases the average energy; both actions make the beam more penetrating.

Q4-18: If the x-ray tube voltage is increased from 60 to 120 kVp, the quantity is changed by _____ the previous value.

(a) 4.0 times

(b) 2.0 times

(c) 1 (same)

(d) 0.5 times

(e) 0.25 times

  • Answer: (a) 4.0 times
  • Explanation: X-ray production quantity is related to the square of the kVp; therefore, doubling the kVp (from 60 to 120) quadruples the quantity.

Q4-21: Quality is usually measured in units of

(a) mm of aluminum

(b) keV

(c) kVp

(d) mR

(e) Calories

  • Answer: (a) mm of aluminum
  • Explanation: Quality measures penetration capability using the half-value layer (HVL), which for diagnostic x-rays is the thickness in millimeters of aluminum required to reduce the beam quantity to 50%.

Radiology Physics Self Assessment Quiz

Module 1: Basic Science – Structure of the Atom, Electromagnetic (EM) Radiation, and Particulate Radiation

Q1. Elements which have the same Z (atomic number) but different A (mass number) are called:

  • A. Isobars
  • B. Isomers
  • C. Isotones
  • D. Isotopes
  • Answer: D – Isotopes PDF
  • Explanation: Isotopes are forms of the same element, and thus have the same atomic number Z (the number of protons), but have a different number of neutrons, thus different mass number A (neutrons plus protons). Isobars have the same A but different Z. Isomers have the same A and Z, but different energy states. Isotones have the same number of neutrons but different Z. Isotopes and isomers are common concepts in radiology. PDF

Q2. The mass number (A) of an atom is equal to the number of:

  • A. Neutrons
  • B. Protons
  • C. Neutrons and protons PDF
  • D. Protons and electrons
  • Answer: C – Neutrons and protons PDF
  • Explanation: The mass number is defined as the number of nucleons (protons and neutrons) in the atomic nucleus. PDF

Q3. The binding energy of an electron in the K-shell is:

  • A. The energy the electron needs to stay in the K-shell
  • B. The energy needed for an electron to make a transition from the K-shell to L-shell
  • C. The energy needed for an electron to transition from the L-shell to K-shell
  • D. The energy needed to remove an electron in the K-shell from the atom PDF
  • Answer: D – The energy needed to remove an electron in the K-shell from the atom. PDF
  • Explanation: The K-shell binding energy is the energy to ionize the atom by removing the K-shell electron. PDF

Q4. A proton is electrostatically repelled by:

  • A. Electrons
  • B. Neutrons
  • C. Photons
  • D. Neutrinos
  • E. Alphas PDF
  • Answer: E – Alphas PDF
  • Explanation: As a proton, a positron, and an alpha particle are all positively charged particles (while an electron is negatively charged and a neutron is neutral), a proton will be repelled by both a positron and an alpha particle. PDF

Q5. Which of the following modalities uses only non-ionizing radiation to generate an image?

  • A. Fluoroscopy
  • B. Mammography
  • C. MRI PDF
  • D. CT
  • Answer: C – MRI PDF
  • Explanation: MRI uses radio waves, while all other modalities use ionizing radiation. PDF

Q6. Which of the following is an example of particulate radiation?

  • A. Microwaves
  • B. X-rays
  • C. Alpha particles PDF
  • D. Gamma rays
  • Answer: C – Alpha particles PDF
  • Explanation: Microwaves, x-rays, and gamma rays are all forms of electromagnetic radiation. Only alpha particles are particulate. PDF

Q7. A radiation detector records a reading when an unshielded detector is swept over a spill, but no reading when a shielded detector is swept over the spill. What does this tell us about the spilled substance?

  • A. The substance is not radioactive since it did not register in both orientations.
  • B. The substance emits high-energy photons since it only registered when unshielded.
  • C. The substance emits particulate radiation or very low-energy photons since it only registered when unshielded. PDF
  • D. The substance has a very long half-life because the meter did not register when shielded.
  • Answer: C – The substance emits particulate radiation or very low-energy photons since it only registered when unshielded. PDF
  • Explanation: Particulate or very low-energy photons will be absorbed in the shielding and will not register (or barely register) in the detector. When unshielded, the energy is deposited in the detector. Particulate radiation has a limited range and will not pass through a shielded detector. PDF

Q8. A person accidentally ingests an unknown radioactive substance that is subsequently permanently bound to his bony tissues (biological half life > 20 years). If this individual lives in close proximity to his or her family, which of the following types of radiation is the greatest safety concern for the family?

  • A. Photons (>100 keV) PDF
  • B. Neutrinos
  • C. Electrons (30 keV)
  • D. Alpha particles
  • Answer: A – Photons (>100 keV) PDF
  • Explanation: Low-energy electrons and alpha particles all have relatively short ranges in human tissue, and thus most or all of these particles will be absorbed by the person and will not reach the family to cause radiation damage. Neutrinos have very little interaction with tissue. PDF

Q9. Radionuclides used for nuclear medicine imaging must include one of the following emissions:

  • A. Electrons
  • B. Alpha particles
  • C. Gamma rays PDF
  • D. Protons
  • Answer: C – Gamma rays PDF
  • Explanation: Particulate radiations such as electrons, alphas and protons have a limited range in human tissue. The particles will be absorbed within the body and will not reach an external imaging detector. Gamma rays are more penetrating and undergo relatively fewer interactions within the body allowing detection by an external detector. PDF

Q10. The number of electrons in a neutral atom is the:

  • A. Mass defect
  • B. Mass number
  • C. Atomic number PDF
  • D. Binding Energy
  • Answer: C – Atomic number PDF
  • Explanation: The atomic number is defined to be the number of protons within the nucleus. For a neutral atom the number of negatively charged orbital electrons is equal to the number of positively charged protons in the nucleus. PDF

Q11. What is the likely result when an electron vacancy in the K-shell is filled by an electron from the L-shell?

  • A. Annihilation radiation
  • B. Gamma ray
  • C. Characteristic x-ray PDF
  • D. Neutrino
  • Answer: C – Characteristic x-ray PDF
  • Explanation: Electron transition between atomic energy shells results in the emission of a characteristic x-ray photon. The energy of the x-ray photon is equal to the difference between the binding energy of the respective shells. Since atomic binding energies are unique to each element, the energy of the x-ray characteristic for that element. PDF

Module 2: Interactions of Ionizing Radiation with Matter

Q1. What is the predominant interaction of 120 kV x-rays from a computed tomography scanner with soft tissue?

  • A. Coherent scattering
  • B. Compton scattering PDF
  • C. Photoelectric effect
  • D. Pair production
  • Answer: B – Compton scattering PDF
  • Explanation: Above 25 keV, Compton scatter is the dominant photon interaction in soft tissue. Because CT x-ray beams have higher filtration than radiographic units, the effective energy is closer to one-half of the kV (60 keV). PDF

Q2. If a radiologic technologist uses 80 kV for the AP projection of the lumbar spine, which of the following interactions will be the predominant interaction with bone?

  • A. Coherent scattering
  • B. Compton scattering
  • C. Photoelectric effect PDF
  • D. Pair production
  • Answer: C – Photoelectric effect PDF
  • Explanation: The average energy for an 80 kV spectrum is typically 1/3 to 1/2 of the maximal energy. X-ray photons in this range interact primarily by photoelectric interaction with bone. The primary interaction in this range (25-40 keV) with soft tissue is Compton scattering. PDF

Q3. During imaging of a patient, the proportion of Compton scatter is increased by increasing which of the following technical parameters?

  • A. Exposure time
  • B. Focal spot size
  • C. kV PDF
  • D. Source-to-image receptor distance
  • Answer: C – kV PDF
  • Explanation: The proportion of Compton scattering compared to photoelectric interactions increases with an increase in x-ray beam energy (kV, filtration). PDF

Q4. Which of the following interactions is primarily responsible for patient dose in the low diagnostic energy range?

  • A. Coherent scattering
  • B. Compton scattering
  • C. Photoelectric effect PDF
  • D. Pair production
  • Answer: C – Photoelectric effect PDF
  • Explanation: Absorbed dose is energy absorbed per unit mass. In photoelectric effect, the incoming photon is completely absorbed locally. PDF

Q5. The predominant interaction of Tc-99m photons with a sodium iodide crystal is:

  • A. Coherent scattering
  • B. Compton scattering
  • C. Photoelectric effect PDF
  • D. Pair production
  • Answer: C – Photoelectric effect PDF
  • Explanation: Tc-99m gamma photons have energy of 140 keV. At this energy more than 50% of the interactions are photoelectric. PDF

Q6. The unit for linear energy transfer (LET) is:

  • A. keV per um PDF
  • B. keV per density
  • C. keV per mg
  • D. keV per g
  • Answer: A – keV per um PDF
  • Explanation: Linear energy transfer is the average amount of energy deposited locally per unit path length. Do not confuse the units of LET with the units of absorbed dose, which is energy absorbed per mass. Increases in LET increase the radiation weighting factor. PDF

Q7. In interactions of x-ray and gamma ray radiation with matter, the occurrence of a sharp increase in photoelectric absorption is related to:

  • A. density increases
  • B. density decreases
  • C. the photon energy being just above the atomic number of the substance
  • D. the photon energy being just above the electron binding energy PDF
  • Answer: D – the photon energy being just above the electron binding energy. PDF
  • Explanation: Photoelectric absorption is proportional to Z3/E3, and there is a sharp increase in absorption when the incoming photon energy is slightly above the electron binding energy. PDF

Q8. At 80 kV, assume the soft-tissue HVL is 4 cm. What is the approximate radiation dose to an embryo located 8 cm below the anterior surface, expressed as a percentage of the entrance skin dose?

  • A. 100%
  • B. 75%
  • C. 50%
  • D. 25% PDF
  • E. 12.5%
  • Answer: D – 25% PDF
  • Explanation: At 80 kV, the half-value layer for soft tissue is approximately 3 to 4 cm. If the HVL is 3 cm of soft tissue, the embryo radiation dose would be 12.5% of the entrance skin dose. If the HVL is 4 cm of soft tissue, the radiation dose would be 25% of the entrance skin dose. PDF

Q9. Which of the following is the most penetrating of the radiations listed?

  • A. Electrons from I-131 radioactive decay
  • B. Photons from Tc-99m radioactive decay
  • C. Positrons from F-18 radioactive decay
  • D. Photons from F-18 radioactive decay PDF
  • Answer: D – Photons from F-18 radioactive decay PDF
  • Explanation: Penetration increases with energy, and the annihilation radiation at 511 keV is the most penetrating. When comparing between charged particulate radiation and photons of same energy, photons are more penetrating. PDF

Q10. The energy of each photon created when a positron interacts with an electron in an annihilation reaction is:

  • A. 5 eV
  • B. 140 keV
  • C. 511 keV PDF
  • D. 1.022 MeV
  • E. 3 MeV
  • Answer: C – 511 keV PDF
  • Explanation: The rest mass of the electron and positron are each 511 keV for a total of 1.022 MeV. When the annihilation reaction occurs, two 511 keV photons are created. PDF

Q11. Which of the following is most damaging to tissue?

  • A. Electrons (100 keV)
  • B. Photons (diagnostic energy)
  • C. Neutrinos
  • D. Protons (100 keV) PDF
  • Answer: D – Protons (100 keV) PDF
  • Explanation: Neutrinos are near massless particles that undergo almost no interactions with any matter. Photons undergo exponential attenuation, and when interactions occur, varying amounts of energy are deposited. Electrons have a finite range with soft/hard collisions. Protons lose little energy due to radiative losses, and the majority of energy is deposited in a small volume close to the end of their range due to the presence of a Bragg peak. PDF

Module 3: Radiation Units

Q1. The unit for effective dose is:

  • A. R/min
  • B. mGy
  • C. mR
  • D. mSv PDF
  • Answer: D – mSv PDF
  • Explanation: None provided in text. PDF

Q2. The absorbed dose multiplied by a weighting factor appropriate for the type of radiation is:

  • A. Integral absorbed dose
  • B. Equivalent dose PDF
  • C. Effective dose
  • D. Committed equivalent dose
  • Answer: B – Equivalent dose PDF
  • Explanation: Equivalent dose is obtained by multiplying the absorbed dose by the radiation weighting factor (WR​), which is a function of the type and energy of the radiation. PDF

Q3. A medical worker receives 30 mGy to an area of skin on the hand from alpha particles. The equivalent dose to this area of skin is:

  • A. 30 mGy
  • B. 30 mSv
  • C. 600 mGy
  • D. 600 mSv PDF
  • Answer: D – 600 mSv PDF
  • Explanation: Equivalent dose (H) = radiation weighting factor (WR​) × absorbed dose (D), where WR​=20 for alpha particles. Equivalent dose is given in Sv. PDF

Q4. Match the following quantities with their SI units (Units: 1. Sievert, 2. Gray, 3. Roentgen, 4. Coulomb per kilogram):

  • A. Absorged dose -> Gray PDF
  • B. Equivalent dose -> Sievert PDF
  • C. Effective dose -> Sievert PDF
  • D. Air Kerma -> Gray PDF
  • E. Exposure -> Coulomb per kilogram PDF
  • Answer: A.2, B.1, C.1, D.2, E.4 PDF

Q5. Which quantity provides a single index that relates to the overall stochastic risk (at diagnostic radiation dose levels) when multiple organs are irradiated?

  • A. Absorbed dose
  • B. Equivalent dose
  • C. Effective dose PDF
  • D. Air kerma
  • E. Exposure
  • Answer: C – Effective dose PDF
  • Explanation: Absorbed dose and equivalent dose are used to assess radiation risks to individual organs and tissues. Air kerma and exposure quantify radiation intensity in air but do not provide an overall risk index from multiple tissue/organ irradiation. PDF

Q6. Which statement is true regarding effective dose?

  • A. It is dependent on co-morbidities.
  • B. It is restricted only to single individual organ or tissue doses.
  • C. It is a weighted sum of equivalent doses over multiple organs and tissues. PDF
  • D. It is independent of radiation type.
  • Answer: C – It is a weighted sum of equivalent doses over multiple organs and tissues. PDF
  • Explanation: Tissue weighting factors (WT​) are for average patients, making A incorrect. B is incorrect because effective dose handles multiple or single organs. D is incorrect because equivalent dose includes radiation weighting factors (WR​). PDF

Q7. Convert a dosage of 20 mCi Tc-99m to MBq of Tc-99m:

  • A. 0.54 MBq
  • B. 20 MBq
  • C. 37 MBq
  • D. 740 MBq PDF
  • Answer: D – 740 MBq PDF
  • Explanation: 1 mCi is equal to 37 MBq. PDF

Module 4: X-Ray Production

Q1. What is a direct result of adding filtration to a diagnostic x-ray beam?

  • A. All characteristic radiation is removed.
  • B. Image contrast is improved.
  • C. Maximum photon energy is increased.
  • D. X-ray tube heat loading is reduced.
  • E. Patient dose is reduced. PDF
  • Answer: E – Patient dose is reduced. PDF
  • Explanation: Added filters reduce the quantity of low-energy x-ray photons and “harden” the x-ray beam, reducing patient skin dose. PDF

Q2. Which of the following always increases as focal spot size increases?

  • A. Field of view
  • B. Patient dose
  • C. Geometric un-sharpness PDF
  • D. Anode diameter
  • Answer: C – Geometric un-sharpness PDF
  • Explanation: The larger the focal spot size, the greater the geometric un-sharpness when combined with magnification. PDF

Q3. In projection radiography, which of the following will reduce patient skin dose?

  • A. Increased filtration PDF
  • B. Higher grid ratio
  • C. Lower kV
  • D. Smaller focal spot size
  • Answer: A – Increased filtration PDF
  • Explanation: Added filters reduce low-energy x-ray photons (“harden” the beam), reducing patient skin dose. PDF

Q4. With which of the following is the heel effect more pronounced?

  • A. Image receptor farther from the focal spot
  • B. Large focal spot size
  • C. Smaller image size
  • D. No grid
  • E. X-ray tube with a smaller anode angle PDF
  • Answer: E – X-ray tube with a smaller anode angle. PDF
  • Explanation: The heel effect is more pronounced when the anode angle is small and the SID is reduced. PDF

Q5. In the figure comparing two x-ray tube spectra, what single parameter was changed between acquisitions? (Low-energy ends same, characteristic peaks same, max energy changed)

  • A. kV PDF
  • B. Filtration
  • C. Target material
  • D. mAs
  • Answer: A – kV PDF
  • Explanation: Same low-energy end indicates same filtration; same characteristic peaks indicate same target material. The maximum energy change occurs only with a change in kV. PDF

Q6. In the figure comparing two x-ray tube spectra, what single parameter was changed between acquisitions? (Low-energy ends same, characteristic peaks same, max energy same, quantity differs)

  • A. kV
  • B. Filtration
  • C. Target material
  • D. mAs PDF
  • Answer: D – mAs PDF
  • Explanation: Filtration, target material, and kV (maximum energy) remained identical. The only change is x-ray quantity, indicating a change in mAs. PDF

Module 5: General Imaging and Informatics Concepts

Q1. The image of the CT phantom is used to measure which image property?

  • A. Spatial resolution PDF
  • B. Noise
  • C. Dose
  • D. Temporal resolution
  • Answer: A – Spatial resolution PDF
  • Explanation: High-contrast spatial resolution or bar phantoms use alternating opaque/translucent bars to find the limiting spatial resolution. PDF

Q2. What metric evaluates the spatial resolution of an imaging system with change in spatial frequency?

  • A. Modulation transfer function PDF
  • B. Point spread function
  • C. Noise frequency
  • D. Signal-to-noise ratio
  • Answer: A – Modulation transfer function PDF
  • Explanation: The MTF is a measure of spatial resolution describing the percentage of output signal contrast relative to input signal contrast as a function of spatial frequency. PDF

Q3. The CT image shown is viewed at a window width of 2 HU and level of 2 HU. What single change below could be made to make the image more suitable for diagnostic viewing?

  • A. Increase window width PDF
  • B. Decrease window width
  • C. Increase window level
  • D. Decrease window level
  • Answer: A – Increase window width PDF
  • Explanation: A window width of 2 HU maps everything into extreme black or white, losing soft-tissue differentiation. Increasing window width improves soft-tissue contrast. PDF

Q4. Which of the following is increased in the image on the right? (Grainier appearance)

  • A. Noise PDF
  • B. Dose
  • C. Contrast
  • D. Blur
  • Answer: A – Noise PDF
  • Explanation: Grainier appearance indicates increased noise. PDF

Q5. Match outlined regions to histogram peaks (-800 HU, -100 HU, 100 HU):

  • Answer: 1. Air and Lung (HU < -700) -> A; 2. Contrast-enhanced liver (HU ~80) -> C; 3. Visceral fat (HU ~-100) -> B. PDF

Q6. Given original image and Fourier Transform, which image corresponds to a high-pass filter applied to the Fourier Spectrum?

  • A. Image A PDF
  • B. Image B
  • C. Image C
  • D. Image D
  • Answer: A PDF
  • Explanation: High-pass filters discard low spatial frequencies, leaving only edges (high frequencies). PDF

Q7. The definition of segmentation in medical image processing is:

  • A. Reduction of pixel intensity variations by averaging adjacent pixels
  • B. Identification of the pixels that compose a structure of interest in an image PDF
  • C. Eliminating low spatial frequencies from the image
  • D. Altering the relative intensities of the image pixels
  • Answer: B – Identification of the pixels that compose a structure of interest in an image. PDF
  • Explanation: A is blurring, C is high-pass filtering, D is windowing. Segmentation identifies the structural pixels. PDF

Q8. Detection of a large, low-contrast object in a noisy image can be improved by:

  • A. Applying edge enhancement
  • B. Applying image smoothing PDF
  • C. Increasing window width
  • D. Digitally magnifying the image
  • Answer: B – Applying image smoothing PDF
  • Explanation: Smoothing reduces noise without reducing contrast for large objects, improving detectability. PDF

Q9. What type of CT image is shown? (Multiple layers of rib and lung vessels visualized on one section)

  • A. MIP PDF
  • B. Surface render
  • C. Volume render
  • D. MPR
  • E. Fused image
  • Answer: A – MIP PDF
  • Explanation: A maximum-intensity projection displays the brightest value for each pixel across several CT sections. PDF

Q10. Match test statistic regions to True Positive, True Negative, False Positive:

  • Answer: I. True Positive – Regions C & D; II. True Negative – Region A; III. False Positive – Regions B & C. PDF

Module 6: Biological Effects of Ionizing Radiation

Q1. Which of the following has the highest LET?

  • A. Alpha particle PDF
  • B. Gamma ray
  • C. X-ray
  • D. Beta particle
  • Answer: A – Alpha particle PDF
  • Explanation: Alpha particles have high LET due to their relatively large mass and higher charge. PDF

Q2. In which phase of the reproductive cycle are cells most sensitive to the damaging effects of radiation?

  • A. G1 phase
  • B. S phase
  • C. G2 phase
  • D. M phase PDF
  • Answer: D – M phase PDF
  • Explanation: Mitosis (M phase) is the most sensitive phase due to lack of a checkpoint before DNA duplication, fewer resistive mechanisms, and exposed DNA targets. PDF

Q3. Most radiation-induced injury is due to damage to which type of molecules?

  • A. Deoxyribonucleic acid PDF
  • B. Ribonucleic acid
  • C. DNA polymerase
  • D. Hemoglobin
  • Answer: A – Deoxyribonucleic acid PDF
  • Explanation: Biological effects like cell killing, carcinogenesis, and mutation result from double-stranded breaks (DSB) in DNA. PDF

Q4. Which of the following is a stochastic effect of radiation?

  • A. Hair loss
  • B. Skin erythema
  • C. Cataract
  • D. Carcinogenesis PDF
  • Answer: D – Carcinogenesis PDF
  • Explanation: Carcinogenesis is a stochastic (statistical probability) effect, whereas hair loss, erythema, and cataracts are deterministic tissue reactions. PDF

Q5. What is the LD50/60​ for humans?

  • A. 1 gray
  • B. 2 gray
  • C. 3 gray
  • D. 4 gray PDF
  • Answer: A (Listed as 4 gray in explanation text) PDF
  • Explanation: LD50/60​ is the whole-body radiation dose causing 50% of irradiated subjects to die within 60 days without medical intervention (4 Gy). PDF

Q6. What is a potential risk to the fetus from a pelvic CT exam acquired during the 30th week of gestation?

  • A. Fetal malformation
  • B. Prenatal death
  • C. Childhood cancer PDF
  • D. Cataracts
  • Answer: C – Childhood cancer PDF
  • Explanation: At 30 weeks (third trimester), the risk is from stochastic effects (childhood cancer), as the dose is well below deterministic thresholds. PDF

Q7. What is the most radiosensitive organ in young women?

  • A. Breast PDF
  • B. Brain
  • C. Gonads
  • D. Skin
  • Answer: A – Breast PDF
  • Explanation: Breast tissue has a tissue weighting factor of 0.12 and high radiosensitivity, especially in younger women. PDF

Q8. What dose-response model does the BEIR VII report recommend for calculating the risk of solid tumor induction from ionizing radiation?

  • A. Linear-quadratic
  • B. Linear, threshold
  • C. Linear, no-threshold PDF
  • D. Radiation hormesis
  • Answer: C – Linear, no-threshold PDF
  • Explanation: Epidemiological data supports the linear, no-threshold (LNT) model for solid tumors (while linear-quadratic is used for leukemia). PDF

Q9. Match radiation dose to acute radiation syndrome stage: A. 3 Gy, B. 12 Gy, C. 50 Gy

  • Answer: A.1 (Hematopoietic Syndrome), B.3 (Gastrointestinal Syndrome), C.2 (Neurovascular Syndrome). PDF

Q10. What is the equivalent dose to a patient from 10 mGy of alpha particles?

  • A. 0.5 mSv
  • B. 10 mSv
  • C. 50 mSv
  • D. 200 mSv PDF
  • Answer: D – 200 mSv PDF
  • Explanation: Radiation weighting factor of alpha particles is 20 (10 mGy×20=200 mSv). PDF

Module 7: Radiation Protection and Associated Regulations

Q1. What is the yearly effective dose limit for radiologists under current regulations?

  • A. 10 mSv
  • B. 50 mSv PDF
  • C. 100 mSv
  • D. 0.5 mSv
  • E. 1.0 mSv
  • Answer: B – 50 mSv PDF
  • Explanation: Annual occupational effective dose limit is 50 mSv. PDF

Q2. By what factor has the yearly natural background radiation received per capita changed over time (NCRP Reports 93 and 160)?

  • A. Increased by a factor of two
  • B. Increased by a factor of four
  • C. Increased by a factor of six
  • D. Stayed the same PDF
  • E. Decreased
  • Answer: D – Stayed the same PDF
  • Explanation: Natural background effective dose stayed approximately the same at ~3 mSv per year. PDF

Q3. What percentage of average yearly effective dose to the U.S. population is from medical sources?

  • A. 10%
  • B. 25%
  • C. 50% PDF
  • D. 75%
  • E. 90%
  • Answer: C – 50% PDF
  • Explanation: Medical sources contribute ~3.0 mSv out of a total ~6.2 mSv per capita per year (NCRP Report 160). PDF

Q4. Which of the following organizations is an advisory body?

  • A. U.S. Nuclear Regulatory Commission (NRC)
  • B. Food and Drug Administration (FDA)
  • C. National Council on Radiation Protection and Measurement (NCRP) PDF
  • D. U.S. Department of Transportation (DOT)
  • Answer: C – National Council on Radiation Protection and Measurement (NCRP) PDF
  • Explanation: NCRP makes non-regulatory recommendations, whereas NRC, FDA, and DOT are regulatory agencies. PDF

Q5. As reported in NCRP Report 160, which category contributes the highest percentage to the total annual dose per capita?

  • A. Internal
  • B. Radon
  • C. Cosmic
  • D. Medical PDF
  • Answer: D – Medical PDF
  • Explanation: Medical contributes 3.0 mSv/yr, whereas radon contributes ~2.3 mSv/yr. PDF

Q6. What type of radiation badge is typically worn by a radiologist?

  • A. Block dosimeter
  • B. Scintillation detector
  • C. Geiger-Müller (GM) detector
  • D. Optically stimulated luminescence (OSL) dosimeter PDF
  • Answer: D – Optically stimulated luminescence (OSL) dosimeter PDF
  • Explanation: OSL dosimeters are the most common personnel monitoring badges. PDF

Q7. What would be the first thing to do when a critically injured person, who may have been contaminated with radioactive material, enters the emergency department?

  • A. Remove clothing and wrap in a sheet.
  • B. Rinse the person with lukewarm water.
  • C. Respond and treat the injury. PDF
  • D. Do blood work to determine the possible dose.
  • Answer: C – Respond and treat the injury. PDF
  • Explanation: Treatment of life- or limb-threatening conditions takes precedence over decontamination. PDF

Q8. Which of the following constitutes a medical event?

  • A. 5 mCi of Tc99m sulfur colloid to the wrong patient
  • B. 0.3 mCi of I-131 NaI rather than 0.3 mCi I-123 NaI for uptake on a hyperthyroid patient PDF
  • C. 30 mCi rather than the standard 8 mCi of Tc99m sestamibi for a cardiac study
  • D. 20 mCi of sestamibi rather than 20 mCi of MDP to the correct patient
  • Answer: B – 0.3 mCi of I-131 NaI rather than 0.3 mCi I-123 NaI for uptake on a hyperthyroid patient PDF
  • Explanation: Defined by administration errors like wrong radiopharmaceutical (I-131 vs I-123) meeting dose threshold criteria. PDF

Q9. Which of the following studies requires more than a 24 hour interruption in breastfeeding?

  • A. 10 mCi F-18 FDG
  • B. 4 mCi Tc99m pertechnetate
  • C. 20 mCi Rb82 chloride
  • D. 0.5 mCi In-111 white blood cells PDF
  • Answer: D – 0.5 mCi In-111 white blood cells PDF
  • Explanation: In-111 blood cells require a longer cessation of breastfeeding compared to rapidly decaying or non-expressed agents. PDF

Q10. What would be the instrument of choice for determining the location of a Tc99m radioactive spill?

  • A. Nal well counter
  • B. Portable ionization chamber
  • C. Geiger-Müller survey meter PDF
  • D. Radionuclide calibrator
  • Answer: C – Geiger-Müller survey meter PDF
  • Explanation: GM survey meter is the most sensitive handheld detector for low-level contamination. PDF

Q11. If a written directive is required for a procedure, the radiologist ordering the procedure must be approved for which category of use?

  • A. 10 CFR 35.100
  • B. 10 CFR 35.200
  • C. 10 CFR 35.300 PDF
  • D. 10 CFR 35.500
  • Answer: C – 10 CFR 35.300 PDF
  • Explanation: Subpart E: Unsealed Byproduct Material requiring a written directive. PDF

Q12. Which of the following may be held for decay in storage until background levels are obtained?

  • A. Cobalt 57 marker source
  • B. Cesium 137 reference source
  • C. Gadolinium 153 transmission rod
  • D. Iodine 125 seed for breast localization PDF
  • Answer: D – Iodine 125 seed for breast localization PDF
  • Explanation: I-125 has a half-life of 60 days (qualifies for decay in storage ≤120 days). PDF

Q13. To authorize the release of a patient treated with a therapeutic dosage of radioactive material, the dose to the most likely exposed individual must be less than what value?

  • A. 0.1 mSv
  • B. 0.5 mSv
  • C. 1 mSv
  • D. 5 mSv PDF
  • Answer: D – 5 mSv PDF
  • Explanation: Per 10 CFR 35.75, total effective dose equivalent to any individual must not exceed 5 mSv. PDF

Q14. A patient has an endoleak, repeated imaging over six months. Cumulative air kerma values recorded are 5 Gy, 5.5 Gy, 7 Gy, and 4.5 Gy. Which agency may require reporting?

  • A. Nuclear Regulatory Commission
  • B. Food and Drug Administration
  • C. Joint Commission PDF
  • D. National Council on Radiation Protection
  • Answer: C – Joint Commission PDF
  • Explanation: Reviewable sentinel event defined as peak skin dose >15 Gy over a period of 6 months to 1 year. PDF

Module 8: General Radiography – Projection Imaging Concepts and Detectors

Q1. What exam is typically performed without an anti-scatter grid?

  • A. Lateral Hip
  • B. Lateral lumbar spine
  • C. AP wrist PDF
  • D. AP abdomen
  • Answer: C – AP wrist PDF
  • Explanation: AP wrist involves low kV, small field size, and thin anatomy, generating minimal scatter, so it is imaged tabletop without a grid. PDF

Q2. What acquisition parameter change will improve low contrast visibility?

  • A. Decreasing tube voltage PDF
  • B. Increasing SID
  • C. Increasing filtration
  • D. Decreasing focal spot size
  • Answer: A – Decreasing tube voltage PDF
  • Explanation: Decreasing tube voltage increases photoelectric absorption, raising subject contrast. PDF

Q3. How would the effect of geometric blur on a radiographic image be minimized?

  • A. Use highest mA and shortest exposure time.
  • B. Use a small focal spot. PDF
  • C. Use largest pixel size.
  • D. Use immobilization devices.
  • Answer: B – Use a small focal spot PDF
  • Explanation: Focal spot blur increases with focal spot size and magnification. PDF

Q4. What is the actual size of an object located halfway between the x-ray tube and image receptor if the object measures 10 mm on the image?

  • A. 1 mm
  • B. 5 mm PDF
  • C. 15 mm
  • D. 20 mm
  • Answer: B – 5 mm PDF
  • Explanation: If SOD is half of SID, magnification factor is 2, meaning the object appears twice as large (10 mm/2=5 mm). PDF

Q5. What is a definition of a Bucky Factor?

  • A. Percent contrast improvement with a grid
  • B. Relative increase in x-ray intensity when a grid is used PDF
  • C. Ratio of grid height to width
  • D. Number of grid lines per cm
  • Answer: B – Relative increase in intensity when a grid is used PDF

Q6. What is the effect of reducing the SID from 72″ to 40″?

  • A. Radiation dose to patient will decrease.
  • B. Image spatial resolution will improve.
  • C. Image noise will increase.
  • D. The object of interest will appear larger on the image. PDF
  • Answer: D – The object of interest will appear larger on the image PDF
  • Explanation: Decreasing SID increases magnification due to the change in the SID/SOD ratio. PDF

Q7. What parameter change can be made to reduce scatter production in the patient?

  • A. Change from 10:1 to 8:1 grid.
  • B. Move patient closer to image receptor.
  • C. Reduce tube current.
  • D. Use a smaller field of view. PDF
  • Answer: D – Use a smaller field of view PDF
  • Explanation: Smaller field of view irradiates less tissue volume, generating less scatter. PDF

Q8. What type of detector system uses a storage phosphor to capture the x-ray signal?

  • A. Indirect Digital Radiography
  • B. Direct Digital Radiography
  • C. Computed Radiography PDF
  • D. Film-screen Radiography
  • Answer: C – Computed Radiography PDF
  • Explanation: CR uses storage phosphors (barium fluorohalide) that trap electrons until laser stimulation. PDF

Q9. What system element affects spatial resolution in direct radiography flat panel detector systems?

  • A. Phosphor thickness
  • B. Detector element size PDF
  • C. Laser spot size
  • D. Field of view
  • Answer: B – Detector element size PDF
  • Explanation: Smaller detector elements (dexels) yield better spatial resolution. PDF

Q10. What is responsible for the heart appearing enlarged on an AP chest image as compared to a PA chest image?

  • A. Focal spot size
  • B. Focused grids
  • C. Greater scatter closer to tube
  • D. Outward divergence of the x-ray beam from focal spot PDF
  • Answer: D – Outward divergence of the x-ray beam from the focal spot PDF
  • Explanation: Anterior position of the heart makes its SOD smaller in AP projection, increasing magnification. PDF

Q11. What is the reason for excluding high-ratio grid use for mobile radiography?

  • A. Poorer scatter rejection.
  • B. More difficult to align with the focal spot. PDF
  • C. More easily mis-positioned upside down.
  • D. Cannot be manufactured with short enough focal lengths.
  • Answer: B – More difficult to align with the focal spot PDF
  • Explanation: Lack of accurate alignment on portable units leads to grid cutoff. PDF

Q12. A radiograph of a neonate airway was obtained in 1.5X geometric magnification mode. What acquisition parameter is most critical to ensure optimal spatial resolution?

  • A. Added filtration
  • B. High kV
  • C. Small focal spot size PDF
  • D. Large SID
  • E. High mAs
  • Answer: C – Small focal spot size PDF
  • Explanation: A 0.3 mm small focal spot is crucial for limiting focal spot blur in magnification modes. PDF

Q13. Identify the artifact in the digital radiography image: (Interference moiré pattern)

  • A. Dead pixels
  • B. Grid line interference PDF
  • C. Grid inserted upside down
  • D. Patient motion
  • Answer: B – Grid line interference PDF
  • Explanation: Occurs from aliasing when grid frequency is comparable to detector pixel sampling rate. PDF

Q14. For a dedicated chest radiography room, the x-ray tube for the wall stand should be set with:

  • A. Anode side up and cathode side down PDF
  • B. Anode side down and cathode side up
  • C. Either anode up or down (makes no difference)
  • D. Depends on patient size
  • E. Depends on radiologist preference
  • Answer: A – Anode side up and cathode side down PDF
  • Explanation: Thicker anatomy (diaphragm) should be near cathode, thinner anatomy (neck) near anode (heel effect compensation). PDF

Q15. Under automatic exposure control (AEC), increasing the SID from 40″ to 72″ in radiography results in:

  • A. Shorter exposure times
  • B. Decreased focal spot blurring PDF
  • C. An increase in patient exposure
  • D. Noisier images
  • Answer: B – Decreased focal spot blurring PDF
  • Explanation: Magnification (M=SID/SOD) decreases, reducing focal spot blur. PDF

Q16. Match x-ray procedure to effective dose (Abdomen, Extremities, Two-view mammogram, PA chest, Shoulder):

  • Answer: 1. Abdomen (0.7 mSv) -> B; 2. Extremities (0.001 mSv) -> A; 3. Two view mammogram (0.4 mSv) -> E; 4. PA chest (0.02 mSv) -> C; 5. Shoulder (0.01 mSv) -> D. PDF

Q17. How does the spatial resolution of an indirect conversion digital radiography system compare to a direct system?

  • A. Better
  • B. Equivalent
  • C. Worse PDF
  • Answer: C – Worse than a direct conversion digital radiography system PDF
  • Explanation: Light spread in the scintillator of indirect systems adds blurring, reducing resolution. PDF

Q18. In taking an abdominal radiograph of a pregnant patient, what is the single most important thing to ensure lowest dose to fetus while acquiring appropriate image?

  • A. Use high kV
  • B. Shield the fetus
  • C. Reduce the FOV with collimation PDF
  • D. Position prone instead of supine
  • E. Remove anti-scatter grid
  • Answer: C – Reduce the FOV with collimation PDF
  • Explanation: Internal scatter from mother is the main fetal dose source; collimating reduces irradiated tissue volume and scatter. PDF

Q19. For a KUB on an average-sized patient, what would be a reasonable technique?

  • A. 75 kV, 20 mAs, 40″ SID PDF
  • B. 120 kV, 12 mAs, 40″ SID
  • C. 50 kV, 50 mAs, 72″ SID
  • D. 75 kV, 2.5 mAs, 72″ SID
  • Answer: A – 75 kV, 20 mAs, 40″ SID PDF
  • Explanation: Balances moderate kV (adequate contrast), reasonable mAs (low noise), and standard SID. PDF

Module 9: Mammography

Q1. What are the minimal images required for locating a lesion in a stereotactic breast biopsy system?

  • A. 3 PDF
  • B. 5
  • C. 9
  • D. 15
  • Answer: A (Note: Text explanation mentions scouting followed by two images at +15 and -15 degrees; option A corresponds to 3 total images). PDF

Q2. What is the typical focal spot size for contact mammography?

  • A. 3.0 mm
  • B. 1.0 mm
  • C. 0.3 mm PDF
  • D. 0.1 mm
  • Answer: C – 0.3 mm PDF
  • Explanation: Nominal 0.3 mm large focal spot is used for routine contact images to provide high resolution; 0.1 mm is used for magnification. PDF

Q3. What is the advantage of using low kV?

  • A. Low radiation dose
  • B. Low exposure time
  • C. High subject contrast PDF
  • D. High spatial resolution
  • Answer: C – High subject contrast PDF
  • Explanation: Low kV accentuates attenuation differences between tissues via increased photoelectric effect. PDF

Q4. Which of the following is reduced if inadequate compression pressure is applied?

  • A. Scattered radiation
  • B. Entrance skin exposure
  • C. Geometric blur
  • D. Image contrast PDF
  • Answer: D – Image contrast PDF
  • Explanation: Inadequate compression increases scatter, geometric blur, and dose, resulting in lower image contrast. PDF

Q5. What is the purpose of aligning the cathode with the chest wall and anode with the nipple?

  • A. Achieves uniform exposure PDF
  • B. Decreases focal spot size
  • C. Minimizes motion artifact
  • D. Reduces acquisition time
  • Answer: A – Achieves uniform exposure PDF
  • Explanation: Takes advantage of the heel effect to place highest x-ray intensity over the thickest part (chest wall). PDF

Q6. What could be the cause of degraded image quality seen in the mammogram? (Blurred structures)

  • A. Low kV
  • B. Motion PDF
  • C. Contrast
  • D. Noise
  • Answer: B – Motion PDF
  • Explanation: Patient motion leads to image blurring. PDF

Q7. What artifact is shown (arrow) in the breast axillary region?

  • A. Skin fold
  • B. Motion
  • C. Antiperspirant PDF
  • D. Dead pixel
  • Answer: C – Antiperspirant PDF
  • Explanation: Antiperspirant can mimic calcifications or lesions in the axillary region. PDF

Q8. The pixel size in digital mammography should be less than:

  • A. 50 um
  • B. 70 um
  • C. 100 um PDF
  • D. 140 um
  • Answer: C – 100 um PDF
  • Explanation: Pixel sizes range between 50 and 100 um to detect microcalcifications as small as 100 um. PDF

Q9. What is the most likely cause of the artifact shown? (Light regions with dark speckled areas / underexposure)

  • A. Dead pixels
  • B. Underexposure PDF
  • C. Motion
  • D. Antiperspirant
  • Answer: B – Underexposure PDF
  • Explanation: Low signal-to-noise ratio from underexposure causes amplified noise and speckled light regions. PDF

Q10. What is the radiation dose of 3D tomosynthesis compared to a 2D mammogram?

  • A. Comparable PDF
  • B. 2 times higher
  • C. 3 times higher
  • D. 4 or more times higher
  • Answer: A – Comparable PDF
  • Explanation: Dose is ~1-1.5 mGy AGD, comparable to a digital 2D contact mammogram. PDF

Q11. Which of the following would be used to perform a 2D screening mammogram on a large dense breast?

  • A. W/Mo
  • B. Mo/Mo
  • C. Rh/Rh PDF
  • D. W/Al
  • Answer: C – Rh/Rh PDF
  • Explanation: Large dense breasts require higher energies, achieved using rhodium targets and filters. PDF

Module 10: Fluoroscopy and Interventional Imaging

Q1. What is best practice for kV settings during DSA?

  • A. Mask kV higher
  • B. Post-contrast kV higher
  • C. Mask and post-contrast kV equal PDF
  • D. kV variations do not impact DSA quality
  • Answer: C – Mask and post-contrast kV equal PDF
  • Explanation: Equal kV prevents incomplete subtraction of stationary anatomy caused by attenuation differences. PDF

Q2. What metric best correlates with stochastic risk in fluoroscopy?

  • A. Kerma-Area Product (KAP) PDF
  • B. Fluoroscopic Exposure Time
  • C. Reference Air Kerma
  • D. Cumulative Dose
  • Answer: A – Kerma-Area Product (KAP) PDF
  • Explanation: KAP estimates total x-ray energy imparted to tissues, which relates to stochastic effects. PDF

Q3. What is the goal of the automatic exposure rate control system (AERC)?

  • A. Maintain constant patient skin entrance dose rate
  • B. Maintain constant dose rate to image receptor PDF
  • C. Increase dose rate to image receptor for larger patients
  • D. Decrease dose rate to image receptor for smaller patients
  • Answer: B – Maintain constant dose rate to image receptor PDF

Q4. Which dose metric reported in fluoroscopy may have units of Gy⋅cm2?

  • A. Cumulative dose
  • B. Peak skin dose
  • C. kerma-area product PDF
  • D. Effective dose
  • Answer: C – kerma-area product PDF
  • Explanation: Units are dose times area (mGy⋅cm2). PDF

Q5. What fluoroscopic mode results in the highest air kerma rate?

  • A. Pulsed, 30 pps
  • B. Pulsed, 15 pps
  • C. Continuous
  • D. Cine/Digital Run PDF
  • Answer: D – Cine/Digital Run PDF
  • Explanation: Cine/digital run results in the highest patient radiation exposure rate. PDF

Q6. Under ABC/AERC in fluoroscopy, which combination results in lowest patient skin entrance dose rate?

  • A. High kV, low mA PDF
  • B. Low kV, high mA
  • C. High kV, high mA
  • Answer: A – High kV, low mA PDF
  • Explanation: High-kV x-rays are more penetrating, so fewer mA are required to achieve target receptor dose. PDF

Q7. In fluoroscopy, x-ray scatter 1 m from a patient is roughly what percent of patient skin entrance exposure?

  • A. 0.001%
  • B. 0.01%
  • C. 0.1% PDF
  • D. 1.0%
  • E. 10%
  • Answer: C – 0.1% PDF

Q8. Which of the following is a stochastic effect that could occur in a high-dose fluoroscopic procedure?

  • A. Erythema
  • B. Epilation
  • C. Desquamation
  • D. Dermal necrosis
  • E. Carcinogenesis PDF
  • Answer: E – Carcinogenesis PDF
  • Explanation: Carcinogenesis is stochastic; the others are deterministic skin effects. PDF

Q9. What is the threshold for The Joint Commission reviewable fluoroscopic sentinel event?

  • A. Greater than 2 Gy delivered to a single field
  • B. Greater than 2 Gy delivered over all fields
  • C. Greater than 15 Gy delivered to a single field PDF
  • D. Greater than 15 Gy delivered to all fields
  • Answer: C – Greater than 15 Gy delivered to a single field PDF

Q10. Where should the image receptor be positioned in order to minimize patient dose?

  • A. Twice the source to patient surface distance
  • B. As close to the patient surface as possible PDF
  • C. As far from the patient surface as possible
  • D. Half the distance to isocenter
  • Answer: B – As close to the patient surface as possible PDF
  • Explanation: Maximizes receptor signal via inverse square law, requiring less radiation. PDF

Q11. What is the FDA limit for entrance skin exposure rate in high dose rate exposure mode (“boost” mode)?

  • A. 87 mGy/s (10 R/s)
  • B. 87 mGy/min (10 R/min)
  • C. 174 mGy/s (20 R/s)
  • D. 174 mGy/min (20 R/min) PDF
  • Answer: D – 174 mGy/min (20 R/min) PDF

Q12. What is a typical effective dose from an upper gastrointestinal series?

  • A. 0.06 mSv
  • B. 0.6 mSv
  • C. 6 mSv PDF
  • D. 60 mSv
  • Answer: C – 6 mSv (range 1.5–12 mSv). PDF+ 1

Q13. Image intensifier (II) type image receptors are most susceptible to what artifact?

  • A. Pincushion distortion PDF
  • B. Conebeam errors
  • C. Dead detector elements
  • D. Flat-field artifact
  • Answer: A – Pincushion Distortion PDF
  • Explanation: Caused by projection onto a curved input surface of an II. PDF

Q14. Flat panel fluoroscopy systems are susceptible to which of the following?

  • A. Pincushion Distortion
  • B. S-Distortion
  • C. Vignetting
  • D. Dead Pixels PDF
  • Answer: D – Dead Pixels PDF

Q15. Increasing what parameter increases the magnitude of S-distortion?

  • A. Receptor dose
  • B. kV
  • C. Field of view PDF
  • D. mA
  • Answer: C – Field of view PDF
  • Explanation: Deviations in electron trajectories from stray magnetic fields are greatest at the edges of the image intensifier (large FOV). PDF

Module 11: Computed Tomography

Q1. What image quality parameter may be reduced if a patient scan is conducted using tube-current modulation and the localizer image is acquired with the patient positioned below isocenter?

  • A. Low-contrast visibility
  • B. Detail
  • C. Quantum noise PDF
  • D. Temporal resolution
  • Answer: C – Quantum noise PDF
  • Explanation: Positioning below isocenter makes the patient appear larger on the scout, leading to higher tube current, which reduces quantum noise. PDF

Q2. Match American College of Radiology CT Accreditation CTDIvol Dose Reference Levels (75 mGy, 35 mGy, 25 mGy, 15 mGy) to protocols:

  • Answer: A.2 (Adult Head – 75 mGy), B.4 (Pediatric Head 1 yr – 35 mGy), C.1 (Adult Body – 25 mGy), D.3 (Pediatric Body 40-50 lbs – 15 mGy). PDF

Q3. An increase in what parameter can improve visibility of low-contrast structures in a CT image without increasing radiation dose?

  • A. Tube current
  • B. Rotation time
  • C. Slice thickness PDF
  • D. Increase kV
  • Answer: C – Slice thickness PDF
  • Explanation: Larger slice thickness increases signal per voxel, reducing noise and improving low-contrast visibility without altering patient dose. PDF

Q4. What parameter was most likely changed from image A to produce image B? (Less noisy vs higher resolution blurring)

  • A. Beam energy
  • B. Tube current
  • C. Gantry angle
  • D. Convolution kernel PDF
  • Answer: D – Convolution kernel PDF
  • Explanation: Changing the convolution kernel (reconstruction filter) alters spatial frequencies, simultaneously affecting noise and resolution. PDF

Q5. What is the cause of the artifact indicated by the arrow in the volume rendered image? (Helix artifact)

  • A. Patient motion
  • B. Beam hardening
  • C. Poor detector calibration PDF
  • D. Partial volume averaging
  • Answer: C – Poor detector calibration PDF
  • Explanation: Appears as a helix on 3D volume renders and partial/full ring artifacts on axial images. PDF

Q6. Which of the following actions would you take to reduce the metal streak artifact in the CT image?

  • A. Perform an air calibration
  • B. Increase pitch
  • C. Increase beam collimation
  • D. Increase tube voltage PDF
  • Answer: D – Increase tube voltage PDF
  • Explanation: Higher x-ray beam energy increases penetration through metal, reducing streak artifacts. PDF

Q7. What acquisition parameter may alter the CT number (Hounsfield Unit)?

  • A. mA
  • B. Collimation
  • C. Rotation time
  • D. kV PDF
  • Answer: D – kV PDF
  • Explanation: Linear attenuation coefficients vary with beam energy and tissue composition. PDF

Q8. What gantry/beam geometry is used in modern multi-detector channel CT scanners?

  • A. Translate-rotate
  • B. Rotate-rotate PDF
  • C. Rotate-stationary
  • D. Stationary-translate
  • Answer: B – Rotate-rotate PDF

Q9. Match typical CT numbers to healthy tissues (-1000 HU, -120 HU, 140 HU, 800 HU):

  • Answer: A.1 (-1000 HU -> Air), B.3 (140 HU -> Contrast-enhanced vessel/bone), C.2 (-120 HU -> Fat), D.4 (800 HU -> Bone/dense structure). PDF

Q10. What CT exam typically results in the highest study CTDIvol?

  • A. Routine abdomen
  • B. High resolution chest
  • C. Cardiac CTA
  • D. Brain perfusion PDF
  • Answer: D – Brain perfusion PDF
  • Explanation: Involves 30 to 50 repeated scans at the same location, yielding CTDIvol values of 150 to 250 mGy. PDF

Q11. According to ACR accreditation standards, at what frequency should CT scanners be tested to evaluate for artifacts?

  • A. Daily PDF
  • B. Weekly
  • C. Monthly
  • D. Quarterly
  • Answer: A – Daily PDF
  • Explanation: Technologist conducts a daily axial scan of a uniform phantom for artifact evaluation. PDF

Q12. What factor influences in-plane spatial resolution?

  • A. Detector width
  • B. Pitch
  • C. Tube voltage
  • D. Display field of view PDF
  • Answer: D – Display field of view PDF
  • Explanation: Selected display FOV determines pixel size; smaller pixels improve in-plane spatial resolution. PDF

Module 12: Ultrasound

Q1. What property in this cyst image causes posterior enhancement?

  • A. Increased attenuation
  • B. Decreased attenuation PDF
  • C. Increased speed of sound
  • D. Decreased speed of sound
  • Answer: B – Decreased attenuation PDF
  • Explanation: Cysts attenuate less and are anechoic, allowing higher-intensity beams to reach tissue behind them, creating a brighter echo (posterior enhancement). PDF

Q2. Determine the attenuation of a 5 MHz ultrasound beam in soft tissue traveling round trip to a depth of 2 cm assuming 100% reflection.

  • A. 3 dB
  • B. 5 dB
  • C. 7.5 dB
  • D. 10 dB PDF
  • Answer: D – 10 dB PDF
  • Explanation: Using rule of thumb (0.5 dB/cm/MHz), Attenuation = 0.5×5 MHz×4 cm total round trip=10 dB. PDF

Q3. What do changes in brightness of the spectral Doppler waveform represent?

  • A. Changes blood velocity
  • B. Variations in signal intensity PDF
  • C. Pulsatile flow
  • D. Larger calculated Doppler shift
  • Answer: B – Variations in signal intensity PDF
  • Explanation: Brightness represents signal intensity, proportional to the number of blood cells moving at that velocity. PDF

Q4. What is a benefit of using harmonic imaging compared to conventional imaging?

  • A. Increased mechanical index
  • B. Enhanced contrast PDF
  • C. Higher frame rates
  • D. Better depth information
  • Answer: B – Enhanced contrast PDF
  • Explanation: Harmonic frequencies remove echo clutter from fundamental reflections, enhancing tissue contrast. PDF

Q5. What is an advantage of using a curvilinear transducer instead of a linear transducer?

  • A. Increased attenuation
  • B. Improved resolution
  • C. Expanded field of view PDF
  • D. Higher Frame Rates
  • Answer: C – Expanded field of view PDF

Q6. In Doppler ultrasound, what angle is within the preferred range to obtain accurate velocity measurements?

  • A. 15 degrees
  • B. 25 degrees
  • C. 55 degrees PDF
  • D. 75 degrees
  • Answer: C – 55 degrees (Preferred range is 45 to 60 degrees). PDF+ 1

Q7. Identify the artifact in this ultrasound image: (Comet tail)

  • A. Mirror image artifact
  • B. Shadowing artifact
  • C. Comet tail artifact PDF
  • D. Side lobe artifact
  • Answer: C – Comet tail artifact PDF
  • Explanation: Result of multiple reflections (reverberations) between closely spaced reflectors. PDF

Q8. Identify the artifact seen with gallstones in the figure:

  • A. Comet tail
  • B. Mirror image
  • C. Shadowing PDF
  • D. Twinkle
  • Answer: C – Shadowing PDF

Q9. Name the artifact identified by the arrow: (Duplication beyond diaphragm)

  • A. Mirror image PDF
  • B. Speed displacement
  • C. Grating lobe
  • D. Enhancement
  • Answer: A – Mirror image PDF
  • Explanation: Arises from multiple beam reflections between a mass and a strong reflector like the diaphragm. PDF

Q10. How does mechanical index depend on transducer frequency?

  • A. Proportional to the square
  • B. Inversely proportional to the square
  • C. Proportional to the square root
  • D. Inversely proportional to the square root PDF
  • Answer: D – Inversely proportional to the square root PDF
  • Explanation: MI is directly proportional to peak rarefactional pressure and inversely proportional to the square root of the frequency. PDF

Q11. What is the wavelength of a 1.5 MHz wave?

  • A. 1.5 cm
  • B. 1.0 cm
  • C. 1.5 mm
  • D. 1.0 mm PDF
  • E. 1.5 um
  • Answer: D – 1.0 mm PDF
  • Explanation: Speed of sound (1500 m/s) divided by frequency (1.5 MHz) gives 1.0 mm. PDF

Q12. What is a disadvantage of spatial compounding compared to normal scan mode?

  • A. Reduced signal-to-noise ratio
  • B. Increased spatial blurring of moving objects PDF
  • C. Increased prominence of speckle noise
  • D. Reduced depth of penetration
  • Answer: B – Increased spatial blurring of moving objects PDF
  • Explanation: Persistence of frame averaging reduces temporal resolution and causes blurring of moving structures. PDF

Module 13: Magnetic Resonance Imaging

Q1. What MR pulse sequence timing diagram is illustrated? (90 deg pulse, 180 deg pulse, single echo)

  • A. Gradient echo (GRE) sequence
  • B. Fast spin echo (FSE) sequence
  • C. Echo Planar Imaging (EPI) sequence
  • D. Spin echo (SE) sequence PDF
  • Answer: D – Spin echo (SE) sequence PDF

Q2. How does scan time change if ETL (Echo Train Length) is increased from 1 to 4?

  • A. Quartered PDF
  • B. Halved
  • C. Doubled
  • D. Quadrupled
  • Answer: A – Quartered PDF
  • Explanation: Acquisition time reduction is inversely proportional to echo train length in FSE sequences. PDF

Q3. Which part of k-space determines image sharpness?

  • A. Center of k-space
  • B. Peripheral part of k-space PDF
  • C. Left half of k-space
  • D. Right half of k-space
  • Answer: B – Peripheral part of k-space PDF
  • Explanation: Center controls SNR/contrast; periphery contributes to high-frequency detail and sharpness. PDF

Q4. According to ACR guidelines, who is allowed unrestricted access to Zone III?

  • A. Level 1 MR personnel only
  • B. Level 2 MR personnel only
  • C. Both Level 1 and Level 2 MR personnel PDF
  • D. Neither Level 1 or level 2 MR personnel
  • Answer: C – Both Level 1 and Level 2 MR personnel PDF

Q5. What is the most commonly reported adverse event associated with MRI?

  • A. Missile events
  • B. Implant movement
  • C. Thermal injuries PDF
  • D. Hearing loss
  • Answer: C – Thermal injuries PDF

Q6. According to ACR safe practice guidelines, can a patient with an MR conditional pacemaker be scanned?

  • A. Yes, under any conditions
  • B. Yes, under specific conditions (e.g., field strength, SAR) PDF
  • C. No, never.
  • D. Undetermined.
  • Answer: B – Yes, the pacemaker may be safely scanned under specific conditions. PDF

Q7. What combination of TE and TR times is used to generate a spin-echo T1-weighted image of the brain?

  • A. Short TR, Short TE PDF
  • B. Long TR, Long TE
  • C. Short TR, Long TE
  • D. Long TR, Short TE
  • Answer: A – Short TR, Short TE PDF
  • Explanation: Short TR provides T1-weighting; very short TE minimizes T2 effects. PDF

Q8. What method of fat suppression results in the greatest reduction in fat signal for a patient with an MR safe metal implant?

  • A. Spectral selective fat suppression
  • B. STIR technique PDF
  • C. Saturation Band
  • D. DIXON method
  • Answer: B – STIR technique PDF
  • Explanation: STIR relies on T1 relaxation times rather than frequency selection, making it robust against field inhomogeneities from metal implants. PDF

Q9. What type of image, when combined with diffusion weighting, would generate contrast in a diffusion-weighted image?

  • A. T1 weighting
  • B. T2 weighting PDF
  • C. T2/T1 weighting
  • D. Proton density weighting
  • Answer: B – T2 weighting PDF
  • Explanation: Strong diffusion gradients extend echo times to 60-100 ms, introducing significant underlying T2 weighting. PDF

Q10. What is the most likely explanation for the ribbon (ghost) artifact observed when using FSE with a body array coil?

  • A. Motion artifacts
  • B. RF interference
  • C. Peripheral signal artifacts PDF
  • D. Bad RF coil
  • Answer: C – Peripheral signal artifacts PDF
  • Explanation: Caused by anatomy within the active volume of the coil but outside the FOV (Annefacts). PDF

Q11. How would you mitigate the susceptibility artifact shown on this gradient echo image?

  • A. Use flow suppression
  • B. Use a spin echo sequence PDF
  • C. Increase TE
  • D. Increase TR
  • Answer: B – Use a spin echo sequence PDF
  • Explanation: The 180-degree RF pulse in spin echo reverses spin dephasing due to field inhomogeneities, making it less sensitive to magnetic susceptibility than gradient echo. PDF

Q12. What artifact is present in the image? (Flow ghosting near vessel)

  • A. Patient motion
  • B. Flow PDF
  • C. RF interference
  • D. Gradient failure
  • Answer: B – Flow artifact PDF

Q13. What artifact is indicated with the arrow in this axial MPR image? (Ear not covered / wrapping around)

  • A. Flow artifact
  • B. Gibbs ringing
  • C. RF interference
  • D. Aliasing PDF
  • Answer: D – Aliasing PDF

Q14. How would you correct the aliasing artifact?

  • A. Increase TR
  • B. Decrease TE
  • C. Decrease NEX
  • D. Increase FOV PDF
  • Answer: D – Increase FOV PDF
  • Explanation: Aliasing occurs when object size exceeds FOV; increasing FOV resolves it. PDF

Module 14: Nuclear Medicine

Q1. A licensee may release any individual administered radioactive material if the total effective dose equivalent to any other individual is not likely to exceed what value?

  • A. 1 mSv
  • B. 5 mSv PDF
  • C. 15 mSv
  • D. 50 mSv
  • Answer: B – 5 mSv (Per 10 CFR 35.75). PDF+ 1

Q2. An incorrect patient weight 100 kg greater than actual weight is entered into a PET scanner. What effect will this have on reported SUV?

  • A. Reported SUV value is correct
  • B. Reported SUV value greater than correct SUV value PDF
  • C. Reported SUV value less than correct SUV value
  • Answer: B – Reported SUV value greater than the correct SUV value PDF
  • Explanation: Administered activity is in the denominator of the SUV formula; a larger weight reduces the denominator value, increasing the calculated SUV. PDF

Q3. Why does I-131 deliver 100 times more dose to the thyroid per mCi than I-123?

  • A. Higher energy Gamma Radiation
  • B. Abundance of Beta Radiation PDF
  • C. Longer Half Life
  • D. Greater Specific Activity
  • Answer: B – Abundance of Beta Radiation PDF
  • Explanation: I-131 emits energetic beta particles that deposit local dose within less than a centimeter. PDF

Q4. According to NRC regulations, administered activity must be within what percentage of prescribed activity?

  • A. 5%
  • B. 10%
  • C. 15%
  • D. 20% PDF
  • Answer: D – 20% (Per 10 CFR 35.63(d)). PDF+ 1

Q5. What is the effective half-life of Tc-99m in an organ if its biological half-life is 3 hours? (Physical half-life of Tc-99m = 6 hours)

  • A. 2 hours PDF
  • B. 3 hours
  • C. 6 hours
  • D. 9 hours
  • Answer: A – 2 hours PDF
  • Explanation: 1/Teff​=1/3+1/6=3/6, so Teff​=2 hours. PDF

Q6. What collimator should be used when imaging Indium-111?

  • A. Low energy
  • B. Medium energy PDF
  • C. High energy
  • Answer: B – Medium energy PDF
  • Explanation: In-111 emits gamma rays at 171 keV and 245 keV; low-energy septae are too thin, while high-energy is less efficient. PDF

Q7. What reconstruction algorithm causes streaking artifact outside the body as indicated by the arrow in the cardiac perfusion image?

  • A. Filtered backprojection PDF
  • B. Conjugate gradient
  • C. Ordered-subset expectation maximization
  • D. Bayesian penalization
  • Answer: A – Filtered backprojection PDF
  • Explanation: Breakdown of ideal assumptions (noise-free, perfect radial sampling) in filtered backprojection leads to positive/negative line streaks. PDF

Q8. The bone image was collected with the camera head placed 30 cm from the body. What can be done to improve spatial resolution?

  • A. Increase total counts
  • B. Use larger pixel matrix
  • C. Move the camera closer to the patient PDF
  • D. Apply post-image smoothing filter
  • Answer: C – Move the camera closer to the patient PDF
  • Explanation: Planar gamma camera spatial resolution is depth-dependent and improves when distance from source decreases. PDF

Q9. What is the cause of the photopenic area at the diaphragm-lung interface on the FDG PET/CT coronal image?

  • A. Scatter correction error
  • B. Respiratory motion misregistration PDF
  • C. Non-attenuation corrected reconstruction
  • D. Non-metabolic mass
  • Answer: B – Respiratory motion misregistration PDF
  • Explanation: Temporal mismatch between CT and PET causes attenuation undercorrection at the liver/diaphragm boundary. PDF

Q10. What can be determined from the image quality of the dynamic planar Tc-99m DTPA study of the kidneys? (Linear streak down image)

  • A. Damaged collimator
  • B. Improperly tuned photomultiplier tubes PDF
  • C. Injection site extravasation
  • D. Damaged patient table
  • Answer: B – Improperly tuned photomultiplier tubes PDF

Q11. What is the primary reason that 180° RAO-LPO instead of 360° acquisition orbits are used for cardiac SPECT?

  • A. Speed up data collection
  • B. Reduce attenuation PDF
  • C. Improve patient comfort
  • D. Permit use of MLEM reconstruction
  • Answer: B – Reduce attenuation PDF
  • Explanation: Keeps the camera closest to the heart along the chest wall, minimizing distance and attenuation. PDF

Q12. What is the purpose of photomultiplier tubes in nuclear medicine instrumentation?

  • A. Detect electron-ion pairs and convert them to current
  • B. Convert visible light into electrical signal PDF
  • C. Integrate charge to be read out later
  • D. Focus gamma rays onto the crystal
  • Answer: B – Convert visible light into electrical signal PDF
  • Explanation: Photocathodes convert light to electrons, and dynodes amplify the signal. PDF

AAPM Diagnostic Radiology Residents Physics Curriculum

Overview & Purpose

Published by the American Association of Physicists in Medicine (AAPM) Imaging Physics Curricula Subcommittee, this curriculum outlines the core imaging physics knowledge required for diagnostic radiology residents. Its primary objective is to equip practicing radiologists with a deep understanding of the scientific foundations, clinical applications, strengths, and limitations of modern medical imaging modalities.

Structural Breakdown (14 Core Modules)

The curriculum is divided into 14 comprehensive modules, split evenly into foundational radiation physics and specific clinical imaging modalities:

Part 1: Radiation Physics, Safety, and Biology (Modules 1–7)

  • Module 1: Basic Science – Structure of the atom, electromagnetic (EM) and particulate radiation, nuclear decay, binding energy, and characteristic radiation.
  • Module 2: Interactions of Ionizing Radiation with Matter – Photon interactions (coherent scatter, photoelectric effect, Compton scatter, pair production) and charged particle interactions in tissue.
  • Module 3: Radiation Units – Definitions and conversions for exposure, absorbed dose, equivalent dose, and effective dose.
  • Module 4: X-Ray Production – Physics of x-ray tubes, bremsstrahlung and characteristic x-ray generation, tube rating, and efficiency.
  • Module 5: General Imaging and Informatics Concepts – Image quality metrics (spatial resolution, contrast, noise, MTF, DQE) and digital PACS/DICOM workflows.
  • Module 6: Biological Effects of Ionizing Radiation – Stochastic vs. deterministic effects, cellular radiosensitivity, DNA damage, and fetal risks.
  • Module 7: Radiation Protection and Associated Regulations – ALARA principles, occupational/public dose limits, shielding design, and regulatory compliance.

Part 2: Imaging Modalities (Modules 8–14)

  • Module 8: General Radiography – Projection imaging concepts, grid design, screen-film systems, and digital detectors (CR/DR).
  • Module 9: Mammography – Specialized x-ray tube design (molybdenum/rhodium targets), compression, scatter control, screen-film/digital detectors, and quality control.
  • Module 10: Fluoroscopy and Interventional Imaging – Image intensifiers, flat-panel detectors, dose management, pulsed fluoroscopy, and radiation management for interventional procedures.
  • Module 11: Computed Tomography – CT hardware evolution (generations), helical/spiral scanning, multi-slice CT, reconstruction algorithms, artifact correction, and dose descriptors (CTDI, DLP).
  • Module 12: Ultrasound – Wave propagation, acoustic impedance, piezoelectric transducers, Doppler imaging artifacts, and bioeffects/safety.
  • Module 13: Magnetic Resonance Imaging – Nuclear magnetic resonance (NMR) physics, pulse sequences (spin echo, gradient echo), spatial encoding (gradients, k-space), relaxation times , and MRI safety.
  • Module 14: Nuclear Medicine – Radiopharmaceuticals, radioactive decay, gamma cameras, SPECT, PET/CT physics, and clinical radionuclide applications.

Radiology Physics Review:

Radiology Physics:

Welcome! This site is designed for radiologists to gain a better understanding of radiology physics through interactive simulations and animations. Right now, we have topics on MRI physics, CT physics, X-ray physics, and Ultrasound physics. We try to focus on practical physics, concepts that actually impact radiation exposure and image quality. Most of these topics find their way into Board exams and similar tests, although some of the MR topics are above that level.

Computed Tomography (CT) Physics

MRI Physics – Basics

MRI Physics – Advanced

Radiography and Fluoroscopy (X-Ray) Physics

Ultrasound Physics

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