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Translation model for CW chord to angle Alpha derived from a Monte-Carlo simulation based on raytracing

BACKGROUND: The Chang-Waring chord is provided by many ophthalmic instruments, but proper interpretation of this chord for use in centring refractive procedures at the cornea is not fully understood. The purpose of this study is to develop a strategy for translating the Chang-Waring chord (position...

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Autores principales: Langenbucher, Achim, Szentmáry, Nóra, Cayless, Alan, Weisensee, Johannes, Wendelstein, Jascha, Hoffmann, Peter
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9109904/
https://www.ncbi.nlm.nih.gov/pubmed/35576202
http://dx.doi.org/10.1371/journal.pone.0267028
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author Langenbucher, Achim
Szentmáry, Nóra
Cayless, Alan
Weisensee, Johannes
Wendelstein, Jascha
Hoffmann, Peter
author_facet Langenbucher, Achim
Szentmáry, Nóra
Cayless, Alan
Weisensee, Johannes
Wendelstein, Jascha
Hoffmann, Peter
author_sort Langenbucher, Achim
collection PubMed
description BACKGROUND: The Chang-Waring chord is provided by many ophthalmic instruments, but proper interpretation of this chord for use in centring refractive procedures at the cornea is not fully understood. The purpose of this study is to develop a strategy for translating the Chang-Waring chord (position of pupil centre relative to the Purkinje reflex PI) into angle Alpha using raytracing techniques. METHODS: The retrospective analysis was based on a large dataset of 8959 measurements of 8959 eyes from 1 clinical centre, using the Casia2 anterior segment tomographer. An optical model based on: corneal front and back surface radius Ra and Rp, asphericities Qa and Qp, corneal thickness CCT, anterior chamber depth ACD, and pupil centre position (X-Y position: Pup(X) and Pup(Y)), was defined for each measurement. Using raytracing rays with an incident angle I(X) and I(Y) the CW chord (CW(X) and CW(Y)) was calculated. Using these data, a multivariable linear model was built up in terms of a Monte-Carlo simulation for a simple translation of incident ray angle to CW chord. RESULTS: Raytracing allows for calculation of the CW chord CW(X)/CW(Y) from biometric measures and the incident ray angle I(X)/I(Y). In our dataset mean values of CW(X) = 0.32±0.30 mm and CW(Y) = -0.10±0.26 mm were derived for a mean incident ray angle (angle Alpha) of I(X) = -5.02±1.77° and I(Y) = 0.01±1.47°. The raytracing results could be modelled with a linear multivariable model, and the effect sizes for the prediction model for CW(X) are identified as Ra, Qa, Rp, CCT, ACD, Pup(X), Pup(Y), I(X), and for CW(Y) they are Ra, Rp, Pup(Y), and I(Y). CONCLUSION: Today the CW chord can be directly measured with any biometer, topographer or tomographer. If biometric measures of Ra, Qa, Rp, CCT, ACD, Pup(X), Pup(Y) are available in addition to the CW chord components CW(X) and CW(Y), a prediction of angle Alpha is possible using a simple matrix operation.
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spelling pubmed-91099042022-05-17 Translation model for CW chord to angle Alpha derived from a Monte-Carlo simulation based on raytracing Langenbucher, Achim Szentmáry, Nóra Cayless, Alan Weisensee, Johannes Wendelstein, Jascha Hoffmann, Peter PLoS One Research Article BACKGROUND: The Chang-Waring chord is provided by many ophthalmic instruments, but proper interpretation of this chord for use in centring refractive procedures at the cornea is not fully understood. The purpose of this study is to develop a strategy for translating the Chang-Waring chord (position of pupil centre relative to the Purkinje reflex PI) into angle Alpha using raytracing techniques. METHODS: The retrospective analysis was based on a large dataset of 8959 measurements of 8959 eyes from 1 clinical centre, using the Casia2 anterior segment tomographer. An optical model based on: corneal front and back surface radius Ra and Rp, asphericities Qa and Qp, corneal thickness CCT, anterior chamber depth ACD, and pupil centre position (X-Y position: Pup(X) and Pup(Y)), was defined for each measurement. Using raytracing rays with an incident angle I(X) and I(Y) the CW chord (CW(X) and CW(Y)) was calculated. Using these data, a multivariable linear model was built up in terms of a Monte-Carlo simulation for a simple translation of incident ray angle to CW chord. RESULTS: Raytracing allows for calculation of the CW chord CW(X)/CW(Y) from biometric measures and the incident ray angle I(X)/I(Y). In our dataset mean values of CW(X) = 0.32±0.30 mm and CW(Y) = -0.10±0.26 mm were derived for a mean incident ray angle (angle Alpha) of I(X) = -5.02±1.77° and I(Y) = 0.01±1.47°. The raytracing results could be modelled with a linear multivariable model, and the effect sizes for the prediction model for CW(X) are identified as Ra, Qa, Rp, CCT, ACD, Pup(X), Pup(Y), I(X), and for CW(Y) they are Ra, Rp, Pup(Y), and I(Y). CONCLUSION: Today the CW chord can be directly measured with any biometer, topographer or tomographer. If biometric measures of Ra, Qa, Rp, CCT, ACD, Pup(X), Pup(Y) are available in addition to the CW chord components CW(X) and CW(Y), a prediction of angle Alpha is possible using a simple matrix operation. Public Library of Science 2022-05-16 /pmc/articles/PMC9109904/ /pubmed/35576202 http://dx.doi.org/10.1371/journal.pone.0267028 Text en © 2022 Langenbucher et al https://creativecommons.org/licenses/by/4.0/This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Langenbucher, Achim
Szentmáry, Nóra
Cayless, Alan
Weisensee, Johannes
Wendelstein, Jascha
Hoffmann, Peter
Translation model for CW chord to angle Alpha derived from a Monte-Carlo simulation based on raytracing
title Translation model for CW chord to angle Alpha derived from a Monte-Carlo simulation based on raytracing
title_full Translation model for CW chord to angle Alpha derived from a Monte-Carlo simulation based on raytracing
title_fullStr Translation model for CW chord to angle Alpha derived from a Monte-Carlo simulation based on raytracing
title_full_unstemmed Translation model for CW chord to angle Alpha derived from a Monte-Carlo simulation based on raytracing
title_short Translation model for CW chord to angle Alpha derived from a Monte-Carlo simulation based on raytracing
title_sort translation model for cw chord to angle alpha derived from a monte-carlo simulation based on raytracing
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9109904/
https://www.ncbi.nlm.nih.gov/pubmed/35576202
http://dx.doi.org/10.1371/journal.pone.0267028
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