首页> 外文期刊>ISPRS Journal of Photogrammetry and Remote Sensing >Fully automatic smartphone-based photogrammetric 3D modelling of infant's heads for cranial deformation analysis
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Fully automatic smartphone-based photogrammetric 3D modelling of infant's heads for cranial deformation analysis

机译:基于全自动智能手机的光摄影测量3D模型婴儿颅骨变形分析

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Image-based and range-based solutions can be used for the acquisition of valuable data in medicine. However, most of these methods are not valid for non-static patients. Cranial deformation is a problem with high prevalence among infants and image-based solutions can be used to assess the degree of deformation and monitor the evolution of patients. However, it is required to deal with infants normal movement during the assessment in order to avoid sedation. Some high-end multiple-sensor image-based solutions allow the achievement of accurate 3D data for medical applications under unpredicted dynamic conditions in consultation. In this paper, a novel, single photogrammetric smartphone-based solution for cranial deformation assessment is presented. A coded cap is placed on the infant's head and a guided smartphone app is used by the user to acquire the information, that is later processed on a server to obtain the 3D model. The smartphone app is designed to guide users with no knowledge of photogrammetry, computer vision or 3D modelling. The processing is fully automatic offline. The photogrammetric tool is also non-invasive, reacting well with quick and sudden infant's movements. Therefore, it does not require sedation. This paper tackles the accuracy and repeatability analysis tested both for a single user (intrauser) and multiple non-expert user (interuser) on 3D printed head models. The results allow us to confirm an accuracy below 1.5 mm, which makes the system suitable for clinical practice by medical staff. The basic automatically-derived anthropometric linear magnitudes are also tested obtaining a mean variability of 0.6 +/- 0.6 mm for the longitudinal and transversal distances and 1.4 +/- 1.3 mm for the maximum perimeter.
机译:基于图像和基于范围的解决方案可用于获取医学中的有价值的数据。但是,这些方法中的大多数对非静态患者无效。颅骨变形是婴儿的患病率高的问题,可用于评估患者的变形程度并监测患者的演变。但是,需要在评估期间处理婴儿正常运动,以避免镇静。一些高端的基于多传感器图像的解决方案允许在咨询中不受预测的动态条件下实现医疗应用的准确3D数据。本文提出了一种新颖的单一摄影测量智能手机的颅骨变形评估解决方案。编码盖放置在婴儿的头上,用户使用引导的智能手机应用程序来获取信息,稍后在服务器上处理以获得3D模型。智能手机应用程序旨在引导用户不了解摄影测量,计算机视觉或3D建模。处理完全自动离线。摄影测量工具也是非侵入性的,与快速和突然的婴儿的运动良好。因此,它不需要镇静。本文解决了在3D打印头模型上的单个用户(intraUner)和多个非专家用户(InterUser)测试的准确性和可重复性分析。结果允许我们确认低于1.5毫米的准确性,这使得该系统适用于医务人员的临床实践。还测试基本自动衍生的人类测量线性幅度,对于纵向和横向距离,最大周边的纵向和横向距离和1.4 +/- 1.3mm的平均可变性也得到0.6 +/- 0.6mm。

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