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Automatic Focus Assessment on Dermoscopic Images Acquired with Smartphones

机译:通过智能手机获取的皮肤镜图像的自动聚焦评估

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摘要

Over recent years, there has been an increase in popularity of the acquisition of dermoscopic skin lesion images using mobile devices, more specifically using the smartphone camera. The demand for self-care and telemedicine solutions requires suitable methods to guide and evaluate the acquired images’ quality in order to improve the monitoring of skin lesions. In this work, a system for automated focus assessment of dermoscopic images was developed using a feature-based machine learning approach. The system was designed to guide the user throughout the acquisition process by means of a preview image validation approach that included artifact detection and focus validation, followed by the image quality assessment of the acquired picture. This paper also introduces two different datasets, dermoscopic skin lesions and artifacts, which were collected using different mobile devices to develop and test the system. The best model for automatic preview assessment attained an overall accuracy of 77.9% while focus assessment of the acquired picture reached a global accuracy of 86.2%. These findings were validated by implementing the proposed methodology within an android application, demonstrating promising results as well as the viability of the proposed solution in a real life scenario.
机译:近年来,使用移动设备,更具体地使用智能手机相机来获取皮肤镜皮肤病灶图像的普及度越来越高。对自助式和远程医疗解决方案的需求需要适当的方法来指导和评估所获取图像的质量,从而改善对皮肤病变的监测。在这项工作中,使用基于特征的机器学习方法开发了用于自动皮肤镜图像聚焦评估的系统。该系统旨在通过预览图像验证方法(包括工件检测和焦点验证,然后是所采集图片的图像质量评估)来指导用户整个采集过程。本文还介绍了两个不同的数据集,皮肤镜皮肤损伤和伪影,它们是使用不同的移动设备收集的,用于开发和测试系统。自动预览评估的最佳模型的整体准确度达到77.9%,而对获取图片的焦点评估的整体准确度达到86.2%。通过在android应用程序中实施所提出的方法论,证实了这些发现,证明了有希望的结果以及所提出的解决方案在现实生活中的可行性。

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