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Corneal Astigmatism Measurements Comparison among Ray-Tracing Aberrometry, Partial Coherence Interferometry, and Scheimpflug Imaging System

PURPOSE: To investigate interdevice agreement among corneal topography/ray-tracing aberrometry (iTrace), partial coherence interferometry (IOLMaster), and Scheimpflug imaging (Pentacam) for the measurement of corneal astigmatism. METHODS: The analysis included 90 eyes of 90 subjects without ocular d...

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Autores principales: Zhang, Yaqin, Dong, Jing, Zhang, Suhua, Sun, Bin, Wang, Xiaoliang, Tang, Maolong, Wang, Xiaogang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Hindawi 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7152950/
https://www.ncbi.nlm.nih.gov/pubmed/32318277
http://dx.doi.org/10.1155/2020/3012748
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author Zhang, Yaqin
Dong, Jing
Zhang, Suhua
Sun, Bin
Wang, Xiaoliang
Tang, Maolong
Wang, Xiaogang
author_facet Zhang, Yaqin
Dong, Jing
Zhang, Suhua
Sun, Bin
Wang, Xiaoliang
Tang, Maolong
Wang, Xiaogang
author_sort Zhang, Yaqin
collection PubMed
description PURPOSE: To investigate interdevice agreement among corneal topography/ray-tracing aberrometry (iTrace), partial coherence interferometry (IOLMaster), and Scheimpflug imaging (Pentacam) for the measurement of corneal astigmatism. METHODS: The analysis included 90 eyes of 90 subjects without ocular disease. The main outcome measures were corneal cylinder power and axis of astigmatism. All corneal astigmatism measurements were converted to two perpendicular components by using vector analysis. Interdevice agreement was assessed using Bland–Altman analysis, paired sample t-test, and one-way analysis of variance. RESULTS: No significant interdevice difference existed in the astigmatism magnitude, cardinal component, and oblique component (all P > 0.05). On comparing iTrace wavefront and simulated keratometry (SimK) astigmatism, significant differences were observed in the astigmatism magnitude and oblique component (both P < 0.01), but not in the cardinal component (P=0.687). On comparing Pentacam pupil 3 mm and corneal vertex 3 mm axial astigmatism, significant difference was observed in the astigmatism magnitude (P < 0.001), but not in the cardinal and oblique components (both P > 0.05). CONCLUSIONS: The iTrace, IOLMaster, and Pentacam devices could be used interchangeably for corneal astigmatism measurement. However, the measurement difference in iTrace wavefront and SimK astigmatism and Pentacam pupil 3 mm and vertex 3 mm axial astigmatism should be considered in clinic practice.
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spelling pubmed-71529502020-04-21 Corneal Astigmatism Measurements Comparison among Ray-Tracing Aberrometry, Partial Coherence Interferometry, and Scheimpflug Imaging System Zhang, Yaqin Dong, Jing Zhang, Suhua Sun, Bin Wang, Xiaoliang Tang, Maolong Wang, Xiaogang J Ophthalmol Research Article PURPOSE: To investigate interdevice agreement among corneal topography/ray-tracing aberrometry (iTrace), partial coherence interferometry (IOLMaster), and Scheimpflug imaging (Pentacam) for the measurement of corneal astigmatism. METHODS: The analysis included 90 eyes of 90 subjects without ocular disease. The main outcome measures were corneal cylinder power and axis of astigmatism. All corneal astigmatism measurements were converted to two perpendicular components by using vector analysis. Interdevice agreement was assessed using Bland–Altman analysis, paired sample t-test, and one-way analysis of variance. RESULTS: No significant interdevice difference existed in the astigmatism magnitude, cardinal component, and oblique component (all P > 0.05). On comparing iTrace wavefront and simulated keratometry (SimK) astigmatism, significant differences were observed in the astigmatism magnitude and oblique component (both P < 0.01), but not in the cardinal component (P=0.687). On comparing Pentacam pupil 3 mm and corneal vertex 3 mm axial astigmatism, significant difference was observed in the astigmatism magnitude (P < 0.001), but not in the cardinal and oblique components (both P > 0.05). CONCLUSIONS: The iTrace, IOLMaster, and Pentacam devices could be used interchangeably for corneal astigmatism measurement. However, the measurement difference in iTrace wavefront and SimK astigmatism and Pentacam pupil 3 mm and vertex 3 mm axial astigmatism should be considered in clinic practice. Hindawi 2020-04-01 /pmc/articles/PMC7152950/ /pubmed/32318277 http://dx.doi.org/10.1155/2020/3012748 Text en Copyright © 2020 Yaqin Zhang et al. http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Zhang, Yaqin
Dong, Jing
Zhang, Suhua
Sun, Bin
Wang, Xiaoliang
Tang, Maolong
Wang, Xiaogang
Corneal Astigmatism Measurements Comparison among Ray-Tracing Aberrometry, Partial Coherence Interferometry, and Scheimpflug Imaging System
title Corneal Astigmatism Measurements Comparison among Ray-Tracing Aberrometry, Partial Coherence Interferometry, and Scheimpflug Imaging System
title_full Corneal Astigmatism Measurements Comparison among Ray-Tracing Aberrometry, Partial Coherence Interferometry, and Scheimpflug Imaging System
title_fullStr Corneal Astigmatism Measurements Comparison among Ray-Tracing Aberrometry, Partial Coherence Interferometry, and Scheimpflug Imaging System
title_full_unstemmed Corneal Astigmatism Measurements Comparison among Ray-Tracing Aberrometry, Partial Coherence Interferometry, and Scheimpflug Imaging System
title_short Corneal Astigmatism Measurements Comparison among Ray-Tracing Aberrometry, Partial Coherence Interferometry, and Scheimpflug Imaging System
title_sort corneal astigmatism measurements comparison among ray-tracing aberrometry, partial coherence interferometry, and scheimpflug imaging system
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7152950/
https://www.ncbi.nlm.nih.gov/pubmed/32318277
http://dx.doi.org/10.1155/2020/3012748
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