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Errors in precise examiner head placement during cervical range-of-motion measurements.
J Chen1, C A Lantz, A B Solinger
1Research Department, Life Chiropractic College West, Hayward, Calif, USA. ChenJ@ohsu.edu
Journal of Manipulative and Physiological Therapeutics
|June 21, 2001
Summary
Examiner assistance in neutral head placement causes minimal errors in cervical range of motion (ROM) measurements. These head positioning errors are not the main cause of variability in ROM assessments.
Area of Science:
- Biomechanics
- Clinical Measurement
- Orthopedics
Background:
- Accurate cervical range of motion (ROM) measurements are crucial for diagnosing and monitoring neck conditions.
- Examiner-assisted neutral head placement is common but potential errors are not well quantified.
- Understanding these errors is key to interpreting ROM data reliably.
Purpose of the Study:
- To quantify errors in examiner-assisted neutral head placement during cervical ROM measurements.
- To assess the impact of these placement errors on the overall variability of ROM measurements.
- To establish clinically relevant thresholds for significant changes in cervical ROM.
Main Methods:
- A repeated-measures design was used with 20 asymptomatic volunteers.
- Cervical ROM and neutral head placement errors were measured using the OSI CA-6000 with inclinometers and triangulation.
- Angular data across three axes were analyzed, and correlations between errors and other variables were investigated.
Main Results:
- Standard errors in neutral head placement ranged from 1.0 degrees (axial rotation) to 3.2 degrees (flexion/extension).
- Drift in head positioning was negligible (+/-0.8 degrees).
- Variability in neutral position within a trial did not correlate with differences in ROM between trials.
Conclusions:
- Head position errors are not the primary source of variability in between-trial cervical ROM measurements.
- Largest errors occurred in flexion/extension, and least in axial rotation.
- Recommended lower limits for significant clinical changes are approximately 5° (lateral bending), 3° (rotation), and 9° (flexion/extension).