All questions
Question 1
A radiographer performs an AP abdomen examination with the light field collimated to the skin surface borders of the patient's abdomen. A colleague observes and states the collimation is "too tight" and suggests opening it to the edges of the image receptor. Which of the following MOST accurately describes which approach is correct and why?
- The colleague is correct — collimating to the receptor edge ensures complete anatomical coverage and prevents the need for repeat exposures due to missed anatomy
- Both approaches are equivalent from a radiation safety perspective as long as the exposure indicator is within the acceptable range for both
- The colleague is correct — collimating to the receptor edge improves image quality by ensuring the AEC detector receives uniform photon flux across the entire field
- The radiographer is correct — collimating to the skin surface borders of the anatomy of clinical interest minimizes the irradiated tissue volume, reduces scatter production, and is the ALARA-compliant approach (correct answer)
Explanation: How to get the right answer: Collimating to the borders of the anatomy of clinical interest, rather than the receptor edge, simultaneously achieves three linked benefits: it minimizes the volume of tissue irradiated (reducing patient dose), reduces scatter radiation produced within the patient (improving image contrast), and restricts dose to tissues outside the area of diagnostic interest. The receptor edge represents the maximum possible field size for a given receptor; it is not a collimation target. Collimating to receptor edges irradiates tissue beyond the anatomy required for the diagnosis with no clinical benefit. Why the other answers are wrong: A claims receptor-edge collimation prevents missed anatomy — concern about missed anatomy reflects a positioning problem, not a collimation principle; a properly collimated field centered on the anatomy of interest should capture all required structures. B claims both approaches are equivalent if the exposure indicator is acceptable — the exposure indicator reflects dose to the receptor, not patient dose to tissues outside the collimated field; a well-collimated image and an over-collimated image can have identical exposure indicators while delivering very different patient doses. C claims wider collimation improves AEC uniformity — wider collimation increases scatter, which degrades rather than improves AEC uniformity and photon flux consistency at the detector. Big idea to remember: The receptor edge is a maximum boundary, never a collimation target — collimating to anatomy rather than receptor edges simultaneously reduces irradiated tissue volume, reduces scatter production, and improves image contrast, with no trade-off between these benefits.
Question 2
A radiographer performs a PA chest examination and correctly collimates to the chest anatomy — or so the radiographer believes. On reviewing the image, the radiographer notices that no collimation borders are visible on any edge of the image; the exposed field extends to the receptor edge on all four sides. Which of the following MOST accurately describes what this indicates?
- This is the expected appearance of a properly collimated PA chest, because the chest anatomy fills the standard 14×17 inch receptor completely
- The absence of collimation borders on all sides indicates the collimator was opened to the full receptor size — the radiographer either did not collimate or collimated to the receptor edge rather than the anatomy (correct answer)
- The absence of borders indicates the collimator's primary beam restriction mechanism is functioning correctly, because borders appear only when the beam is restricted beyond what is clinically necessary
- Borders are not expected on digital radiography images because digital receptors automatically crop unexposed areas during image processing
Explanation: How to get the right answer: On a properly collimated image, the radiation field is smaller than the receptor — the beam covers the anatomy of interest but not the receptor edges, leaving unexposed areas that appear as white borders on standard display. When no borders are visible on any of the four sides, the radiation field extended to all four receptor edges, confirming the collimator was not used to restrict the beam below receptor size. The radiographer's belief that collimation was applied correctly is contradicted by this finding. Why the other answers are wrong: A claims a full PA chest fills a 14×17 receptor without borders — even a large adult chest should produce at least small border margins on the lateral sides and above the shoulders; the complete absence of borders on all four sides is not consistent with anatomy-targeted collimation. C misinterprets the finding as evidence of correct function — border absence means the beam was not restricted below receptor size, which is the opposite of proper collimation practice. D attributes absent borders to digital cropping — while some systems apply electronic display masking, this is a post-processing display function that does not reflect whether the physical collimator was used; absent borders throughout indicate the full receptor was physically exposed. Big idea to remember: Visible collimation borders on all four sides of a digital image confirm that beam restriction was actively applied; absent borders on all sides mean the field was opened to the receptor edge and physical collimation was not effectively used.
Question 3
A radiographer is performing a lateral cervical spine examination on a patient with a thick neck. The initial image shows adequate penetration of C1-C4 but poor visualization of C5-C7 due to shoulder superimposition. If the radiographer decides to use a swimming technique for C5-C7 instead of additional collimation, what is the primary consequence regarding radiation safety principles?
- Increased patient dose due to larger field size and longer exposure time required for the swimming position (correct answer)
- Decreased image quality due to reduced contrast from inadequate beam restriction in the swimming position
- Improved radiation protection due to better collimation possible with the swimming technique
- No significant change in radiation exposure since the same anatomical area is being examined
Explanation: The swimming technique requires a larger field size to include the raised arm position and typically requires longer exposure times due to increased tissue thickness and obliquity. This results in increased patient dose compared to proper collimation techniques. Option B focuses on image quality rather than radiation safety. Option C is incorrect as the swimming technique actually requires a larger field. Option D ignores the increased exposure factors and field size requirements.
Question 4
An elderly patient requires an AP pelvis examination but has bilateral hip prostheses that create significant scatter radiation. The radiographer must choose between: (1) using a grid with standard collimation to the pelvis, or (2) using tight collimation to exclude the prostheses with no grid. Considering both image quality and radiation safety principles, which approach better implements beam restriction strategies?
- Option 1, because the grid will remove scatter radiation while standard collimation ensures complete anatomical coverage
- Option 2, because tight collimation reduces scatter production more effectively than grid cleanup and minimizes patient dose
- Neither approach is optimal; both grid use and tight collimation should be employed together for maximum benefit (correct answer)
- The approaches are equivalent in terms of radiation safety since both address the scatter radiation problem
Explanation: Optimal radiation safety and image quality require both proper beam restriction (tight collimation) and grid use when dealing with high-scatter conditions like metallic prostheses. Collimation prevents scatter production while the grid removes scatter that is produced. Using both techniques together provides maximum benefit. Options A and B represent incomplete approaches. Option D incorrectly suggests the techniques are equivalent when they actually address different aspects of scatter control.
Question 5
A mobile chest examination is ordered for a patient in isolation. Due to infection control protocols, the radiographer cannot adjust collimation between the PA and lateral projections without leaving the room to clean equipment. If both projections must be performed with the same collimator settings, what is the most appropriate beam restriction strategy that maintains radiation safety principles?
- Set collimation for the PA projection size, since it typically requires a larger field than the lateral
- Set collimation to the smallest field that will accommodate both projections adequately (correct answer)
- Set collimation to the lateral projection requirements and accept potential cutoff on the PA projection
- Use maximum collimation opening to ensure both projections are adequately covered without adjustment
Explanation: When forced to use the same collimation for multiple projections, radiation safety principles dictate using the smallest field that ensures diagnostic adequacy for both views. This minimizes radiation exposure while maintaining examination completeness. Option A may result in unnecessarily large fields for the lateral. Option C risks diagnostic compromise. Option D violates beam restriction principles by using excessive field sizes.
Question 6
During a portable chest examination in the ICU, a radiographer notices that the collimator light is not functioning properly. The ordered examination requires visualization from the apices to the costophrenic angles. If the SID is 40 inches and the image receptor is 14 x 17 inches, what collimator setting would provide appropriate beam restriction while ensuring complete anatomical coverage?
- Set collimator to 12 x 15 inches to account for divergence and ensure complete coverage of the image receptor (correct answer)
- Set collimator to 14 x 17 inches to match the image receptor size exactly for maximum coverage
- Set collimator to 10 x 12 inches and rely on positioning to ensure adequate anatomical coverage
- Set collimator to 16 x 19 inches to compensate for potential positioning errors and beam divergence
Explanation: At a 40-inch SID, the collimator should be set slightly smaller than the IR size to account for beam divergence and ensure the radiation field doesn't extend beyond the IR boundaries. Setting to 12 x 15 inches provides appropriate restriction while ensuring complete anatomical coverage. Option B would likely result in field size larger than the IR at the patient level. Option C may result in anatomical cutoff. Option D creates unnecessary radiation exposure beyond the IR.
Question 7
A radiographer performs a knee examination and notices that the collimated field extends 3 inches beyond the image receptor on all sides. The resulting image shows proper anatomical coverage of the knee joint. From a beam restriction and radiation safety perspective, what is the primary concern with this technique?
- Increased patient dose due to larger field size, even though image quality appears adequate
- Potential for repeat examination due to poor image quality from excessive scatter radiation
- Increased radiation exposure to the image receptor leading to premature detector degradation
- Violation of regulatory requirements for beam limitation system performance and patient protection (correct answer)
Explanation: When you encounter questions about beam restriction and collimation, focus on regulatory compliance first, then consider secondary effects like dose and image quality.
The primary issue here isn't just technical—it's a clear regulatory violation. Federal regulations require that the useful beam be limited to the size of the image receptor, with very specific tolerance limits. When collimation extends 3 inches beyond the receptor on all sides, this creates a field that's dramatically larger than what's legally permitted. This violates beam limitation system performance standards designed to protect patients from unnecessary radiation exposure.
Looking at why the other options miss the mark: Option A suggests increased patient dose is the primary concern, but while this is a consequence, it's secondary to the regulatory violation itself. The fundamental problem is non-compliance with federal standards. Option B incorrectly assumes poor image quality from scatter radiation—but the question states the image shows proper anatomical coverage, indicating acceptable quality despite the poor technique. Option C focuses on detector degradation, which isn't the immediate concern and misses the patient protection aspect entirely.
The key distinction is between consequences (increased dose, potential image quality issues) and the root problem (failure to meet legally mandated safety standards). Regulatory compliance exists specifically to prevent these secondary problems before they occur.
Study tip: On ARRT questions about beam restriction, always consider regulatory violations first. The profession has strict legal standards for collimation—memorize that the useful beam must not exceed the image receptor size by more than 2% of the source-to-image distance on any side.
Question 8
A radiographer is performing fluoroscopic guidance for a PICC line placement. During the procedure, the physician requests multiple spot images at different levels of the chest to track catheter advancement. To optimize radiation safety while maintaining procedural effectiveness, how should beam restriction be managed throughout this dynamic procedure?
- Maintain constant collimation to the entire chest area to avoid missing the catheter tip during rapid advancement
- Use tight collimation that follows the catheter tip location, adjusting the field size for each spot image as needed (correct answer)
- Begin with wide collimation and progressively narrow the field as the catheter approaches its final position
- Use moderate collimation to the central chest area throughout the procedure to balance visibility and dose considerations
Explanation: Dynamic beam restriction that follows the area of interest optimizes radiation safety by minimizing exposure to unnecessary anatomy at each stage of the procedure. This approach requires active collimation adjustment but provides maximum dose reduction. Option A exposes unnecessary anatomy throughout the procedure. Option C only provides dose reduction in later stages. Option D is a compromise that doesn't optimize radiation protection.
Question 9
A radiographer is performing a bilateral hand examination on a pediatric patient. The protocol calls for both hands to be imaged simultaneously on one 14 x 17 inch image receptor. Considering radiation protection principles and image quality optimization, what is the most appropriate beam restriction strategy?
- Collimate tightly to include only the hand anatomy, accepting that some areas of the image receptor will remain unexposed (correct answer)
- Open collimation to cover the entire image receptor to ensure no anatomical structures are missed
- Use a rectangular collimator setting that matches the image receptor size to maximize the use of available space
- Collimate to include hands plus 2 inches of surrounding anatomy on all sides for positioning verification
Explanation: Proper beam restriction requires collimating to the anatomy of interest only, regardless of IR size. This minimizes patient dose and scatter radiation, which is especially important in pediatric imaging. Having unexposed areas on the IR is acceptable and preferred. Option B violates ALARA principles by exposing unnecessary anatomy. Option C prioritizes IR utilization over radiation safety. Option D adds unnecessary radiation exposure beyond the required anatomy.
Question 10
An AP lumbar spine examination reveals that L5-S1 is not adequately demonstrated due to patient body habitus. The radiographer considers three options: (1) increase kVp by 15 and maintain current collimation, (2) angle the tube 15° cephalad with current collimation, or (3) perform an additional spot view with tight collimation to L5-S1 area. Which approach best implements beam restriction principles for radiation safety?
- Option 1, because increased kVp reduces patient dose while maintaining the same collimated field size
- Option 2, because tube angulation improves visualization without changing the radiation field dimensions
- Option 3, because tight collimation to the area of interest minimizes radiation exposure to unnecessary anatomy (correct answer)
- Options 1 and 2 are equally appropriate since both maintain the original collimated field size established for the examination
Explanation: A spot view with tight collimation to L5-S1 directly applies beam restriction principles by limiting radiation to only the anatomy of interest. This approach minimizes patient dose and scatter production compared to exposing the entire lumbar spine again. Options A and B still expose the entire lumbar spine area. Option D ignores the radiation safety advantage of restricting the beam to only the problematic area.
Question 11
A radiographer is performing a cross-table lateral hip examination on a trauma patient who cannot be moved. The image receptor is positioned against the patient's lateral pelvis. To ensure proper beam restriction while maintaining diagnostic quality, the radiographer must consider that the central ray will travel through varying tissue thicknesses. What is the most critical beam restriction consideration for this projection?
- Collimate to include the entire pelvis to account for potential internal injuries that may not be clinically apparent
- Restrict the beam to the femoral head, neck, and proximal femur while excluding unnecessary pelvic anatomy (correct answer)
- Use minimal collimation to compensate for the increased OID and potential magnification effects
- Adjust collimation to match the image receptor size to maximize the diagnostic information obtained
Explanation: Proper beam restriction requires limiting the field to the anatomical structures of interest (hip joint and proximal femur) regardless of positioning challenges. This minimizes dose to unnecessary anatomy and reduces scatter that degrades image quality. Option A violates beam restriction principles by including unnecessary anatomy. Option C incorrectly suggests opening collimation for geometric factors. Option D prioritizes IR usage over radiation safety principles.
Question 12
During a routine chest examination, the radiographer notes that the patient is wearing multiple necklaces that cannot be removed due to religious significance. The necklaces are located in the mid-chest area. Considering beam restriction principles and the need for diagnostic information, what is the most appropriate modification to the standard protocol?
- Increase collimation to exclude the necklace area and perform a separate, tightly collimated view of the obscured region
- Maintain standard chest collimation and increase exposure factors to penetrate through the metallic artifacts
- Perform the standard examination with normal collimation, then obtain an additional image with the patient positioned to move the necklaces laterally (correct answer)
- Reduce collimation to focus only on the lung apices and bases, avoiding the mid-chest region entirely
Explanation: This approach maintains proper beam restriction for the initial standard chest view, then uses additional positioning to obtain diagnostic information of the obscured area. Both exposures use appropriate collimation for their respective purposes. Option A would miss critical anatomy in the initial image. Option B maintains proper collimation but doesn't address the diagnostic limitation. Option D compromises diagnostic completeness by excluding essential anatomy.
Question 13
A fluoroscopy suite uses a 9-inch image intensifier. During a barium enema procedure, the radiologist activates magnification mode, switching to a 6-inch input field. Which of the following MOST accurately describes the effect on patient dose and image quality?
- Magnification mode reduces patient dose because fewer photons are needed to fill the smaller input field
- Magnification mode has no effect on patient dose because the total radiation reaching the image intensifier is unchanged; only the display magnification changes
- Magnification mode reduces spatial resolution because the smaller input field samples a smaller area, producing a lower-resolution image
- Magnification mode increases patient dose because the automatic brightness control increases radiation output to maintain image brightness when the input field is reduced, and spatial resolution improves due to the smaller effective display area (correct answer)
Explanation: How to get the right answer: In magnification mode, electronic focusing restricts the image intensifier to the central 6-inch portion of the input phosphor. Because the same output display must maintain adequate brightness for the fluoroscopist, the automatic brightness control increases radiation output to compensate for the smaller input area sampling fewer photons. Patient dose increases by approximately the square of the input field size ratio — (9/6)² ≈ 2.25× — meaning roughly twice the dose compared to the full 9-inch mode. Spatial resolution simultaneously improves because the same output display now represents a smaller tissue area, effectively magnifying fine structural detail that was previously too small to distinguish. Why the other answers are wrong: A claims magnification reduces dose because the field is smaller — this inverts the actual mechanism; the ABC actively increases output in response to the smaller input field, making dose reduction the opposite of what occurs. B claims total radiation output is unchanged — the ABC is specifically designed to adjust output upward when input field area decreases; holding output constant would result in a dim, uninterpretable image. C claims magnification reduces spatial resolution — the opposite is true; displaying fewer structures across the same output size effectively enlarges fine detail, improving resolution of small structures. Big idea to remember: Fluoroscopy magnification mode is counterintuitive — a smaller input field triggers the ABC to increase radiation output, raising patient dose by approximately the square of the field size ratio, while simultaneously improving spatial resolution.
Question 14
A radiographer performs an AP and lateral cervical spine series. For the AP projection, the radiographer collimates to include C1 through C7. For the lateral, the radiographer uses the same collimation setting without adjustment. The C7–T1 junction is cut off on the lateral image. Which of the following MOST accurately describes the cause and appropriate correction?
- Collimation must be adjusted for lateral views to include C7–T1, as AP settings don't account for lateral anatomical dimensions. (correct answer)
- The cut-off is caused by insufficient kVp for lateral cervical penetration; increasing kVp will extend the visible field to include C7–T1
- The cut-off indicates the SID was incorrect for the lateral projection; adjusting SID will correct the anatomical coverage
- The C7–T1 junction is not required for the standard lateral cervical spine examination; the collimation is appropriate as performed
Explanation: How to get the right answer: In the AP projection, the field height covers C1–C7 along the superior-inferior dimension as the beam traverses the anterior-to-posterior depth of the neck. In the lateral projection, the same vertebral levels may project over a different height depending on the patient's neck length, shoulder position, and exact lateral centering. A fixed collimator setting does not guarantee equivalent anatomical coverage when patient orientation changes between projections. The radiographer must verify collimation independently for each projection and adjust based on the actual anatomy visible in that specific orientation. Why the other answers are wrong: B attributes the cut-off to insufficient kVp — kVp affects beam energy and tissue penetration, not the spatial extent of the radiation field; no kVp increase can extend the field boundaries beyond the physical collimator setting. C identifies SID as the cause — while SID affects magnification of the field at the patient surface, the primary issue is that collimation was not independently reassessed for the lateral projection; an SID adjustment alone would not ensure correct coverage. D claims C7–T1 is not required for the standard lateral cervical examination — this junction is routinely included and is clinically important for detecting pathology including disc herniation, fracture-dislocations, and degenerative changes at the cervicothoracic transition. Big idea to remember: Collimation must be independently assessed and adjusted for every projection — the same physical collimator setting does not guarantee the same anatomical coverage when patient orientation changes between views.
Question 15
A radiology department is evaluating its new DR system, which offers electronic (virtual) collimation, a feature that masks unexposed receptor borders on the displayed image. A technologist asks whether electronic collimation can substitute for physical collimator blade adjustment before exposure. Which of the following MOST accurately describes the limitation of relying solely on electronic collimation for beam restriction?
- Electronic collimation is equivalent to physical collimation for all radiation safety purposes because both produce the same displayed image appearance.
- Electronic collimation is superior to physical collimation because it can be adjusted after the exposure without requiring a repeat examination.
- Electronic collimation reduces scatter more effectively than physical collimation because it processes scatter information digitally and removes it from the displayed image.
- Electronic collimation does not limit the x-ray beam; physical collimation is necessary to reduce patient dose and scatter. (correct answer)
Explanation: How to get the right answer: Physical collimator blades restrict the actual x-ray beam before it reaches the patient, directly reducing the volume of tissue irradiated, the quantity of scatter produced within the patient, and the total patient dose. Electronic collimation is a post-processing display function that masks unexposed receptor border areas on the displayed image only. It produces no change to the radiation field during the exposure. If physical collimation was not appropriately applied, electronic masking cannot reduce dose already delivered, cannot retroactively reduce scatter already produced, and cannot improve actual image contrast. It only changes how the image looks on the monitor. Why the other answers are wrong: Choice A claims the two are equivalent for radiation safety because they look the same. They produce the same displayed appearance through entirely different mechanisms; only physical collimation reduces the actual beam, patient dose, and scatter production. Choice B claims electronic collimation is superior because it is post-exposure adjustable. Post-exposure adjustability is a display convenience, not a radiation safety function; the dose was already delivered and scatter already produced before any electronic adjustment is made. Choice C claims electronic collimation removes scatter digitally. Scatter is a physical phenomenon produced in patient tissue during the exposure; post-processing algorithms can reduce the visual appearance of scatter noise but cannot remove scatter radiation that was physically deposited in the receptor. Big idea to remember: Physical collimation restricts the actual x-ray beam before it reaches the patient. Electronic collimation is a display-only masking function that cannot substitute for physical beam restriction and has no effect on patient dose or scatter production.
Question 16
A radiographer is performing a PA wrist examination and collimates to a field slightly smaller than the wrist anatomy, inadvertently cutting off the distal ulna on the medial side. The radiographer notices this on review but the patient has already left. Which of the following MOST accurately describes the consequence and appropriate action?
- The collimation error has cut off anatomy of potential diagnostic importance; a repeat examination is required, and the cause of the collimation error should be identified to prevent recurrence (correct answer)
- The image is diagnostically acceptable — minor collimation overlap with anatomy is expected and does not require repeat examination under ALARA
- The image can be digitally expanded by zooming out during post-processing to reveal the cut-off anatomy without a repeat exposure
- The radiographer should document the collimation error but take no further action, as the ordering physician can request a repeat if needed
Explanation: How to get the right answer: Collimation that excludes anatomy of diagnostic interest creates a non-diagnostic image — the examination fails its clinical purpose regardless of how tight the collimation was. The distal ulna is clinically relevant for wrist examinations: fractures, ligamentous injury, and distal radioulnar joint pathology may all involve this structure. While ALARA calls for minimizing repeat exposures, it cannot override the requirement for a complete diagnostic image. Identifying the cause of the collimation error — incorrect centering, inaccurate field estimation — is an important quality improvement step to prevent recurrence. Why the other answers are wrong: B frames the error as a minor acceptable variation — cutting off a specific named anatomical structure that may be relevant to the clinical indication is not a minor variation, and ALARA does not permit incomplete examinations in the name of dose reduction. C claims digital zoom can reveal cut-off anatomy — post-processing can only display data that was captured by the receptor; if the beam did not expose that portion of the receptor, no data exists to reveal and zooming creates nothing from unexposed area. D defers corrective action to the ordering physician — the radiographer has a professional obligation to provide a complete diagnostic examination; producing a non-diagnostic image and waiting for someone else to act is not appropriate practice. Big idea to remember: Collimation has two failure modes — too wide delivers unnecessary dose and degrades contrast, and too narrow excludes anatomy and produces a non-diagnostic image; both are errors requiring correction, not documentation.
Question 17
A radiographer is performing a portable AP hip on a patient in the emergency department with a suspected hip fracture. Due to the urgency of the situation and patient pain, the radiographer opens the collimator fully to ensure complete coverage on the first exposure. Which of the following MOST accurately describes whether this decision is appropriate?
- The decision is appropriate — clinical urgency justifies maximizing field size to ensure diagnostic adequacy on the first exposure, and ALARA considerations are secondary to diagnostic necessity in emergency settings
- The decision is inappropriate — full collimator opening unnecessarily increases patient dose; precise collimation to the hip and proximal femur ensures adequate coverage without compromising diagnostic quality. (correct answer)
- The decision is appropriate — ALARA does not apply to emergency radiography because the diagnostic benefit outweighs any radiation risk from excess field size
- The decision is appropriate only if the radiographer documents the emergency justification and the patient consents to the increased field size
Explanation: How to get the right answer: Clinical urgency is a genuine factor in radiographic practice — it may reduce the time available for precise collimation adjustment. However, urgency affects precision, not the obligation to apply ALARA within the available constraints. The hip joint and proximal femur occupy a predictable anatomical location that can be covered with a field restricted to the hip region without meaningful risk of missing a fracture. Opening the collimator fully irradiates the entire pelvis, lower abdomen, and upper thigh — including bowel, gonads, and bone marrow — with no diagnostic benefit for the hip examination. A reasonable effort to restrict the field to the anatomy of interest is both achievable and required even under time pressure. Why the other answers are wrong: A claims urgency makes ALARA secondary to diagnostic necessity — ALARA is not a secondary consideration in any setting; the urgency justifies performing the examination quickly, not performing it with unnecessary field size. C claims ALARA does not apply in emergencies because benefit outweighs risk — this reasoning applies to the justification for performing the examination at all, not to the choice of field size within the examination; once the exam is clinically justified, ALARA still governs how it is performed. D permits the full-field decision with documentation and patient consent — documentation and consent do not make an unnecessarily wide field ALARA-compliant; the correct approach is to collimate as precisely as the clinical situation allows on every exposure. Big idea to remember: Emergency settings affect the precision achievable in collimation — they do not suspend the ALARA obligation; opening the collimator fully is not justified when a restricted field is clinically adequate and achievable within the time constraints of the situation.