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Application of a Multi-Layer Perceptron in Preoperative Screening for Orthognathic Surgery

OBJECTIVES: Orthognathic surgery is used to treat moderate to severe occlusal discrepancies. Examinations and measurements for preoperative screening are essential procedures. A careful analysis is needed to decide whether cases require orthognathic surgery. This study developed screening software u...

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Autores principales: Chaiprasittikul, Natkritta, Thanathornwong, Bhornsawan, Pornprasertsuk-Damrongsri, Suchaya, Raocharernporn, Somchart, Maponthong, Somporn, Manopatanakul, Somchai
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Korean Society of Medical Informatics 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9932311/
https://www.ncbi.nlm.nih.gov/pubmed/36792097
http://dx.doi.org/10.4258/hir.2023.29.1.16
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author Chaiprasittikul, Natkritta
Thanathornwong, Bhornsawan
Pornprasertsuk-Damrongsri, Suchaya
Raocharernporn, Somchart
Maponthong, Somporn
Manopatanakul, Somchai
author_facet Chaiprasittikul, Natkritta
Thanathornwong, Bhornsawan
Pornprasertsuk-Damrongsri, Suchaya
Raocharernporn, Somchart
Maponthong, Somporn
Manopatanakul, Somchai
author_sort Chaiprasittikul, Natkritta
collection PubMed
description OBJECTIVES: Orthognathic surgery is used to treat moderate to severe occlusal discrepancies. Examinations and measurements for preoperative screening are essential procedures. A careful analysis is needed to decide whether cases require orthognathic surgery. This study developed screening software using a multi-layer perceptron to determine whether orthognathic surgery is required. METHODS: In total, 538 digital lateral cephalometric radiographs were retrospectively collected from a hospital data system. The input data consisted of seven cephalometric variables. All cephalograms were analyzed by the Detectron2 detection and segmentation algorithms. A keypoint region-based convolutional neural network (R-CNN) was used for object detection, and an artificial neural network (ANN) was used for classification. This novel neural network decision support system was created and validated using Keras software. The output data are shown as a number from 0 to 1, with cases requiring orthognathic surgery being indicated by a number approaching 1. RESULTS: The screening software demonstrated a diagnostic agreement of 96.3% with specialists regarding the requirement for orthognathic surgery. A confusion matrix showed that only 2 out of 54 cases were misdiagnosed (accuracy = 0.963, sensitivity = 1, precision = 0.93, F-value = 0.963, area under the curve = 0.96). CONCLUSIONS: Orthognathic surgery screening with a keypoint R-CNN for object detection and an ANN for classification showed 96.3% diagnostic agreement in this study.
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spelling pubmed-99323112023-02-17 Application of a Multi-Layer Perceptron in Preoperative Screening for Orthognathic Surgery Chaiprasittikul, Natkritta Thanathornwong, Bhornsawan Pornprasertsuk-Damrongsri, Suchaya Raocharernporn, Somchart Maponthong, Somporn Manopatanakul, Somchai Healthc Inform Res Original Article OBJECTIVES: Orthognathic surgery is used to treat moderate to severe occlusal discrepancies. Examinations and measurements for preoperative screening are essential procedures. A careful analysis is needed to decide whether cases require orthognathic surgery. This study developed screening software using a multi-layer perceptron to determine whether orthognathic surgery is required. METHODS: In total, 538 digital lateral cephalometric radiographs were retrospectively collected from a hospital data system. The input data consisted of seven cephalometric variables. All cephalograms were analyzed by the Detectron2 detection and segmentation algorithms. A keypoint region-based convolutional neural network (R-CNN) was used for object detection, and an artificial neural network (ANN) was used for classification. This novel neural network decision support system was created and validated using Keras software. The output data are shown as a number from 0 to 1, with cases requiring orthognathic surgery being indicated by a number approaching 1. RESULTS: The screening software demonstrated a diagnostic agreement of 96.3% with specialists regarding the requirement for orthognathic surgery. A confusion matrix showed that only 2 out of 54 cases were misdiagnosed (accuracy = 0.963, sensitivity = 1, precision = 0.93, F-value = 0.963, area under the curve = 0.96). CONCLUSIONS: Orthognathic surgery screening with a keypoint R-CNN for object detection and an ANN for classification showed 96.3% diagnostic agreement in this study. Korean Society of Medical Informatics 2023-01 2023-01-31 /pmc/articles/PMC9932311/ /pubmed/36792097 http://dx.doi.org/10.4258/hir.2023.29.1.16 Text en © 2023 The Korean Society of Medical Informatics https://creativecommons.org/licenses/by-nc/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/4.0/ (https://creativecommons.org/licenses/by-nc/4.0/) ) which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Article
Chaiprasittikul, Natkritta
Thanathornwong, Bhornsawan
Pornprasertsuk-Damrongsri, Suchaya
Raocharernporn, Somchart
Maponthong, Somporn
Manopatanakul, Somchai
Application of a Multi-Layer Perceptron in Preoperative Screening for Orthognathic Surgery
title Application of a Multi-Layer Perceptron in Preoperative Screening for Orthognathic Surgery
title_full Application of a Multi-Layer Perceptron in Preoperative Screening for Orthognathic Surgery
title_fullStr Application of a Multi-Layer Perceptron in Preoperative Screening for Orthognathic Surgery
title_full_unstemmed Application of a Multi-Layer Perceptron in Preoperative Screening for Orthognathic Surgery
title_short Application of a Multi-Layer Perceptron in Preoperative Screening for Orthognathic Surgery
title_sort application of a multi-layer perceptron in preoperative screening for orthognathic surgery
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9932311/
https://www.ncbi.nlm.nih.gov/pubmed/36792097
http://dx.doi.org/10.4258/hir.2023.29.1.16
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