Baby in a Crib: Fall or Prevention

Neda Khan
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Abstract

For babies, a fall from a crib can cause significant injuries or even death. In this presentation, I aim to present a comprehensive review of baby healthcare relating to the baby’s state, either awakening or sleeping, illustrating the fundamental practical issues explored in this study. For example, opportunities to improve babies’ safety against falls in families with working mothers have been overlooked. Moreover, I will discuss the proposed architecture as well, designed using computer vision techniques and movement sensors to further alleviate the falling scenarios in my study. In this research, a comprehensive review has been done on fall safety for babies ages 6 months to 4 years of age, which brought remarkable solutions for babies’ safety and motivated this research work. The main objective of this project is to build up an alert-based system that can avoid and reduce the risks of falling or dangerous scenarios for babies. At the first stage of the Baby Fall Prediction System, the primary objective is to detect the postures of the baby in a crib while sleeping or just awakening with the help of machine learning algorithms and convolution neural network based model. This system will then be integrated with the Inertial Measurement Unit (IMU) sensors in a ‘smart onesie’ to identify potentially risky scenarios such as babies crawling, rolling over, standing, or climbing the side of the cot. Based on the identified scenarios, parents or caregivers will be given an alert to warn them about risky scenarios. The proposed research project will be beneficial for the baby as well as the parents. The developed system could reduce infant mortality and contribute to society’s welfare.
婴儿床:跌倒还是预防
对于婴儿来说,从婴儿床上摔下来会造成严重的伤害甚至死亡。在这次演讲中,我的目的是提出一个全面的审查婴儿保健有关婴儿的状态,无论是觉醒或睡眠,说明在这项研究中探索的基本实际问题。例如,在有工作母亲的家庭中,提高婴儿安全防范跌倒的机会一直被忽视。此外,我也将讨论所提出的架构,使用计算机视觉技术和运动传感器设计,以进一步减轻我研究中的跌倒场景。本研究对6个月至4岁婴幼儿跌倒安全进行了全面综述,为婴幼儿安全带来了显著的解决方案,也为本研究工作提供了动力。该项目的主要目标是建立一个基于警报的系统,可以避免和减少婴儿摔倒或危险情况的风险。在婴儿跌倒预测系统的第一阶段,主要目标是通过机器学习算法和基于卷积神经网络的模型来检测婴儿在婴儿床上睡觉或刚醒来时的姿势。然后,该系统将与惯性测量单元(IMU)传感器集成在“智能连体衣”中,以识别潜在的危险场景,例如婴儿爬行、翻滚、站立或爬婴儿床的一侧。根据确定的场景,父母或看护人将收到警报,提醒他们注意危险的场景。拟议的研究项目对婴儿和父母都有好处。发达的制度可以降低婴儿死亡率,促进社会福利。
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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