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Identification and analysis of photometric points on 2D facial images: a machine learning approach in orthodontics

机译:2D面部图像上光度点的识别与分析:正畸学中的机器学习方法

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The lack of an effective and automated facial landmark identification tool has prompted us to design and develop a smart machine learning approach. The study aims to address two objectives. The primary objective is to assess the effectiveness and accuracy of algorithmic methodology in identifying and analysing facial landmarks on two dimensional (2D) facial images and the secondary objective is to understand the clinical application of automation in facial landmark identification. The study has utilised 418 facial landmark points and 220 landmark measures from 22 2D facial images of volunteers. The study has used a deep learning algorithm 'You Only Look Once (YOLO)' to determine the accuracy of the developed system and its clinical applications. The system identified 418 landmarks in total with facial recognition being 100%. Of the total 220 landmark measures, the system provided 48 (21.81%) measures in the error range of 0 to 1 mm, 75 (34.09%) measures in the error range of 2 to 3 mm, 92 (41.81%) measures in the error range of 4 to 5 mm followed by 5 (2.2%) measures in the range of 6 mm. The smart and innovative approach provides valuable training and a helpful tool for the students performing the clinical facial analysis. The automated system with its effective and efficient algorithm delivers fast and reliable landmark identification and analysis.
机译:缺乏有效和自动的面部地标识别工具促使我们设计和开发智能机器学习方法。该研究旨在解决两个目标。主要目标是评估算法方法的有效性和准确性在二维(2D)面部图像上识别和分析面部地标,次要目标是了解自动化在面部地标识别中的临床应用。该研究利用了来自志愿者的22个2D面部图像的418个面部地标点和220个地标措施。该研究使用了深度学习算法,您只需看一次(YOLO)“以确定发达系统的准确性及其临床应用。该系统确定了418个地标,面部识别为100%。总共220个地标措施,系统在误差范围内提供48(21.81%)措施,误差范围为2至3 mm,92(41.81%)措施误差范围为4到5 mm,然后在6 mm的范围内进行5(2.2%)测量。智能和创新的方法为进行了临床面部分析的学生提供了有价值的培训和有用的工具。具有其有效高效算法的自动化系统可提供快速可靠的地标识别和分析。

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