基于haar级联方法的图像处理智能停车系统的实现

I. M. Hakim, David Christover, Adi Mahmud Jaya Marindra
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引用次数: 15

摘要

在人口密集的城市,寻找可用的停车位非常耗时,而且可能会在停车场入口处造成严重的交通拥堵。因此,需要一个具有自动汽车检测功能的智能停车系统,这样汽车司机就可以用最少的精力和时间到达可用的停车位。提出了一种基于图像处理的智能停车系统的哈尔级联实现方法。该项目的目的是开发一个智能停车系统,该系统采用单板计算机和安装在停车场的摄像头。汽车检测的图像处理是在Raspberry Pi上通过API与Firebase云平台接口进行的。该系统将数据发布到Firebase通道,从而实现基于物联网(IoT)的停车系统。为可视化开发了一个移动应用程序,因此可以通过汽车司机的手机访问数据。该系统在一个有一排停车位的简单停车场进行了测试。讨论了不同停车区域条件和不同摄像机视角下的实验结果。
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Implementation of an Image Processing based Smart Parking System using Haar-Cascade Method
In highly populated cities, finding available car parking slots is time consuming and may cause severe traffic congestions at the parking entrance. Therefore, a smart parking system with automated car detection is required so that the car drivers would have minimum effort and time to access the available parking location. This paper presents an implementation of image processing based smart parking system using Haar-Cascade method. The aim of this project is to develop a smart parking system on a single-board computer and a camera installed at a parking area. The image processing for car detection is performed on Raspberry Pi interfaced with the Firebase cloud platform through an API. The system posts the data to the Firebase channel, enabling an Internet of Things (IoT) based parking system. A mobile application is developed for visualization and hence the data is accessible through the car driver’s phone. The system was tested at a simple parking lot with a line of car slots. The experimental results with different condition of parking areas and different camera view angles are discussed in the paper.
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