Automatic Seat Identification System in Smart Transport using IoT and Image Processing

Sandeep Bhatia, Devraj Gautam, Surender Kumar, Soniya Verma
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引用次数: 2

Abstract

In the last few years there is a huge advancement in image processing technology. It can be implemented in wide variety of applications, one of the applications can be applied in automatic seat identification in public transportation systems by detecting and processing digital pictures. Face detection and recognition is a branch of image processing that can be used to detect human face from specific region. In this paper, we are focusing on techniques based on real time human face identification and a webcam can be utilized to capture the digital image to count the number of passengers entering or leaving the public transport via gate and count the passenger gender for calculation of available seat on bus based on gender. For this purpose, the webcam can be deployed at the entrance of public vehicles and connected with Raspberry Pi processor module. This onboard webcam will take pictures of passengers entering or leaving the public vehicle as soon as the vehicle departs. The amount of noise present in the picture can be minimized through the software. 4G communications may be used to transmit data to server and after that the server will utilize face detection technology to process the digital images taken from the vehicles. This IoT-enabled framework then obtains the data of the number of persons entering or leaving the public transport with gender and subsequently processing of images resulting in calculation of the seat vacancy available in vehicle. This framework is efficient in terms of real-time data processing and transmission of data to remote locations regarding the number of passengers traveling at a particular time. In the last part of the paper, security concerns regarding the system will be discussed. The future scope of our framework will also be mentioned in the paper.
使用物联网和图像处理的智能交通中的自动座位识别系统
在过去的几年里,图像处理技术有了巨大的进步。它可以实现多种多样的应用,其中一种应用可以通过检测和处理数字图像应用于公共交通系统的自动座椅识别。人脸检测与识别是图像处理的一个分支,可用于从特定区域检测人脸。本文主要研究基于实时人脸识别的技术,利用网络摄像头采集数字图像,统计出通过出入口进出公共交通工具的乘客数量,并统计乘客性别,根据性别计算公交车上的可用座位。为此,可以将摄像头部署在公共车辆入口处,并与树莓派处理器模块相连。这个车载网络摄像头会在公共车辆离开后立即拍摄乘客进出公共车辆的照片。通过软件可以将图片中存在的噪声量降到最低。可以使用4G通信将数据传输到服务器,然后服务器将利用人脸检测技术处理从车辆上采集的数字图像。这个基于物联网的框架然后获得进入或离开公共交通工具的人数和性别的数据,随后对图像进行处理,从而计算出车辆的可用座位空缺。该框架在实时数据处理和将特定时间的乘客数量数据传输到远程位置方面是有效的。在论文的最后一部分,将讨论系统的安全问题。本文还将提到我们的框架的未来范围。
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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