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Updated: Jun 13, 2025

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Investigating the Deployment of Visual Attention Before Accurate and Averaging Saccades via Eye Tracking and Assessment of Visual Sensitivity
Published on: March 18, 2019
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Evaluation of Saccadic Component Measure on Smooth Pursuit Tests.
John E King1,2, Marcy M Pape3, Justin Keenan4
1Oak Ridge Institute for Science and Education, Oak Ridge, TN 37831, USA.
Military Medicine
|September 14, 2024
Summary
Clinician agreement for smooth pursuit (SP) eye movement evaluation improved when combining grossly normal and mildly abnormal categories into a subclinical classification. Computerized metrics also showed good sensitivity and specificity for classifying SP.
Area of Science:
- Ophthalmology
- Neuroscience
- Biomedical Engineering
Background:
- Smooth pursuit (SP) eye movement evaluation benefits from both qualitative and quantitative data.
- Current eye-tracking technology advancements necessitate exploring optimal classification methods for SP.
- This study addresses the need for improved consistency in clinical SP assessments.
Purpose of the Study:
- To assess inter-rater reliability among clinicians evaluating SP using standard categories.
- To determine if combining 'grossly normal' (GN) and 'mildly abnormal' (MA) into a 'subclinical' (SUBC) category improves agreement.
- To evaluate the sensitivity and specificity of the computerized percent saccade (PS) metric for SP classification.
Main Methods:
- Retrospective analysis of 70 participants' horizontal and vertical SP eye-tracking videos and data.
- Three clinicians rated SP performance using 4 categories (normal, GN, MA, AB) and then 3 categories (normal, SUBC, AB).
- Computerized percent saccade (PS) metric's sensitivity and specificity were calculated using generated cut-off values.
Main Results:
- Fair overall agreement was observed among clinicians using 4 SP categories.
- Combining GN and MA into a SUBC category led to a slight improvement in inter-rater agreement for both horizontal SP (HSP) and vertical SP (VSP).
- The PS metric demonstrated good sensitivity and specificity when thresholds were exceeded for two or more frequencies.
Conclusions:
- Combining 'grossly normal' and 'mildly abnormal' categories into a 'subclinical' classification enhances clinician agreement in SP evaluation.
- The computerized percent saccade metric is a valuable tool for objective SP classification.
- Integrating qualitative and quantitative data improves the comprehensive evaluation of smooth pursuit eye movements.

