Solving Pediatric Vehicular Heatstroke with Efficient Multi-Cascaded Convolutional Networks

Yusen Hu
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引用次数: 2

Abstract

Pediatric Vehicular Heatstroke (PVH) is the situation where children suffer fatal injuries due to heatstroke after being forgotten in vehicles. It is a severe social problem: According to incomplete statistics, at least 864 children have died due to PVH since 1998 in the USA alone, and another 22 lost their lives in 2020. In this paper, we developed a machinelearning based embedded warning system that mitigates such tragedies. Specifically, we present our Children in Vehicles (CIV) dataset, where we collected 2,076 positive samples of children and 1,529 negative samples of empty car interiors. We then present the framework and training process of our multi-cascaded convolutional network architecture that can detect children with a 98% accuracy. Furthermore, we demonstrate the power of our novel curriculum learning method, which improved the classification accuracy of our facial age estimator from 46% to 62% and its F1 score from 0.66 to 0.91. We also deployed our complete pipeline onto an embedded platform to present its overall feasibility. Additionally, we open-sourced our code and dataset for others to use & experiment with.
用高效的多级联卷积网络解决儿童车辆中暑问题
小儿车内中暑(PVH)是指儿童被遗忘在车内后因中暑而造成致命伤害的情况。这是一个严重的社会问题:据不完全统计,自1998年以来,仅在美国就有至少864名儿童死于PVH, 2020年又有22名儿童丧生。在本文中,我们开发了一种基于机器学习的嵌入式预警系统,以减轻此类悲剧。具体来说,我们展示了我们的车内儿童(CIV)数据集,其中我们收集了2076个儿童阳性样本和1529个空车内饰阴性样本。然后,我们介绍了我们的多级联卷积网络架构的框架和训练过程,该架构可以以98%的准确率检测儿童。此外,我们还展示了我们的新课程学习方法的力量,它将我们的面部年龄估计器的分类准确率从46%提高到62%,其F1分数从0.66提高到0.91。我们还将整个管道部署到嵌入式平台上,以展示其整体可行性。此外,我们开放了我们的代码和数据集供其他人使用和实验。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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