Literature DB >> 33828872

Evaluation of the Artificial Neural Network and Naive Bayes Models Trained with Vertebra Ratios for Growth and Development Determination.

Hatice Kök1, Mehmet Said İzgi2, Ayşe Merve Acılar3.   

Abstract

OBJECTIVE: This study aimed to evaluate the success rates of the artificial neural network models (NNMs) and naive Bayes models (NBMs) trained with various cervical vertebra ratios in cephalometric radiographs for determining growth and development.
METHODS: Our retrospective study was performed on 360 individuals between the ages of 8 and 17 years, whose cephalometric radiographs were taken. According to the evaluation of cephalometric radiographs, growth and development periods were divided into 6 vertebral stages. Each stage was considered as a group, each group had 30 girls and 30 boys. Twenty-eight cervical vertebral ratios were obtained by using 10 horizontal and 13 vertical measurements. These 28 vertebral ratios were combined in 4 different combinations, leading to 4 different datasets. Each dataset was split into 2 parts as training and testing. To prevent the overfitting, a 5-cross fold validation technique was also used in the training phase. The experiments were conducted on 2 different train/test ratios as 80%-20% and 70%-30% for both NNMs and NBMs.
RESULTS: The highest determination success rate was obtained in NNM 3 (0.95) and the lowest in NBM 4 (0.50). The determination success of NBM 1 and NBM 3 was almost similar (0.60). The success of NNM 2 did not differ much from that of NNM 1 (0.94). The determination success of stage 5 was relatively lower than the others in NNM 1 and NNM 2 (0.83).
CONCLUSION: The NNMs were more successful than the NBMs in our developed models. It is important to determine the effective ratio and/or measurements that will be useful for differentiation. © Copyright 2021 by Turkish Orthodontic Society.

Entities:  

Keywords:  Artificial intelligence; bone age measurement; cephalometry; cervical vertebrae

Year:  2020        PMID: 33828872      PMCID: PMC7990271          DOI: 10.5152/TurkJOrthod.2020.20059

Source DB:  PubMed          Journal:  Turk J Orthod        ISSN: 2148-9505


  27 in total

1.  Cervical vertebral bone age in girls.

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2.  An improved version of the cervical vertebral maturation (CVM) method for the assessment of mandibular growth.

Authors:  Tiziano Baccetti; Lorenzo Franchi; James A McNamara
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Review 3.  Use of skeletal maturation based on hand-wrist radiographic analysis as a predictor of facial growth: a systematic review.

Authors:  Carlos Flores-Mir; Brian Nebbe; Paul W Major
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4.  A comparison of hand-wrist bone and cervical vertebral analyses in measuring skeletal maturation.

Authors:  Paola Gandini; Marta Mancini; Federico Andreani
Journal:  Angle Orthod       Date:  2006-11       Impact factor: 2.079

5.  Comparison of cephalometric norms between Japanese and Caucasian adults in antero-posterior and vertical dimension.

Authors:  Hideki Ioi; Shunsuke Nakata; Akihiko Nakasima; Amy L Counts
Journal:  Eur J Orthod       Date:  2007-10       Impact factor: 3.075

6.  Cervical vertebrae maturation method: poor reproducibility.

Authors:  Daniel B Gabriel; Karin A Southard; Fang Qian; Steven D Marshall; Robert G Franciscus; Thomas E Southard
Journal:  Am J Orthod Dentofacial Orthop       Date:  2009-10       Impact factor: 2.650

7.  Effectiveness of the cervical vertebral maturation method to predict postpeak circumpubertal growth of craniofacial structures.

Authors:  Piotr Fudalej; Anne-Marie Bollen
Journal:  Am J Orthod Dentofacial Orthop       Date:  2010-01       Impact factor: 2.650

8.  Phases of the dentition for the assessment of skeletal maturity: a diagnostic performance study.

Authors:  Lorenzo Franchi; Tiziano Baccetti; Laura De Toffol; Antonella Polimeni; Paola Cozza
Journal:  Am J Orthod Dentofacial Orthop       Date:  2008-03       Impact factor: 2.650

9.  Use of cervical vertebral maturation to determine skeletal age.

Authors:  Ricky W K Wong; Hessa A Alkhal; A Bakr M Rabie
Journal:  Am J Orthod Dentofacial Orthop       Date:  2009-10       Impact factor: 2.650

10.  Cervical vertebral maturation assessment on lateral cephalometric radiographs using artificial intelligence: comparison of machine learning classifier models.

Authors:  Hakan Amasya; Derya Yildirim; Turgay Aydogan; Nazan Kemaloglu; Kaan Orhan
Journal:  Dentomaxillofac Radiol       Date:  2020-03-09       Impact factor: 2.419

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