论文标题

一项有关面部检测方法和数据集的调查,以与COVID战斗

A Survey on Masked Facial Detection Methods and Datasets for Fighting Against COVID-19

论文作者

Wang, Bingshu, Zheng, Jiangbin, Chen, C. L. Philip

论文摘要

自爆发以来,2019年冠状病毒病(Covid-19)一直对世界构成巨大挑战。为了与疾病作斗争,开发了一系列人工智能(AI)技术,并将其应用于现实情况,例如安全监测,疾病诊断,感染风险评估,COVID-19 CT扫描的病变分割等。冠状病毒流行病迫使人们戴口罩来抵消病毒的传播,这也带来了难以监测大量戴着口罩的人的困难。在本文中,我们主要关注蒙版面部检测和相关数据集的AI技术。我们调查了最近的进步,从掩盖面部检测数据集的描述开始。详细描述和讨论了13个可用数据集。然后,将这些方法大致分为两个类:常规方法和基于神经网络的方法。常规方法通常是通过增强手工制作特征的算法来训练的,这占很小的比例。根据处理阶段的数量,基于神经网络的方法将进一步归类为三个部分。代表性算法将详细描述,并与一些简短描述的典型技术相结合。最后,我们总结了最近的基准测试结果,对数据集和方法的局限性进行了讨论,并扩展了未来的研究方向。据我们所知,这是有关蒙版面部检测方法和数据集的首次调查。希望我们的调查可以为与流行病作斗争提供一些帮助。

Coronavirus disease 2019 (COVID-19) continues to pose a great challenge to the world since its outbreak. To fight against the disease, a series of artificial intelligence (AI) techniques are developed and applied to real-world scenarios such as safety monitoring, disease diagnosis, infection risk assessment, lesion segmentation of COVID-19 CT scans,etc. The coronavirus epidemics have forced people wear masks to counteract the transmission of virus, which also brings difficulties to monitor large groups of people wearing masks. In this paper, we primarily focus on the AI techniques of masked facial detection and related datasets. We survey the recent advances, beginning with the descriptions of masked facial detection datasets. Thirteen available datasets are described and discussed in details. Then, the methods are roughly categorized into two classes: conventional methods and neural network-based methods. Conventional methods are usually trained by boosting algorithms with hand-crafted features, which accounts for a small proportion. Neural network-based methods are further classified as three parts according to the number of processing stages. Representative algorithms are described in detail, coupled with some typical techniques that are described briefly. Finally, we summarize the recent benchmarking results, give the discussions on the limitations of datasets and methods, and expand future research directions. To our knowledge, this is the first survey about masked facial detection methods and datasets. Hopefully our survey could provide some help to fight against epidemics.

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