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Automated Vehicle Parking Occupancy Detection in Real-Time

机译:实时自动车辆停车位检测

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Parking occupancy detection systems help to identify the available parking spaces and direct vehicles efficiently to unoccupied lots by reducing time and energy. This paper presents an approach for the design and development of an end-to-end automated vehicle parking occupancy detection system. The novelty of this study lies in the methodology followed for the object detection process using RetinaNet one stage detector and region-based convolutional neural network deep learning technique. The proposed software architecture consists of low coupled components that support scalability and reliability. The developed web-based and mobile-based client applications assist to find parking spaces easily and efficiently. The existing solutions utilize dedicated sensors and depend on manual segmentation of surveillance footage to detect the state of parking spaces. The proposed approach eliminates existing limitations while maintaining reasonable accuracy.
机译:停车占用检测系统可帮助您识别可用的停车位,并通过减少时间和能源来有效地将车辆引导至空旷的地方。本文提出了一种用于端到端自动车辆停车占用检测系统设计和开发的方法。这项研究的新颖之处在于使用RetinaNet一级检测器和基于区域的卷积神经网络深度学习技术进行对象检测过程所遵循的方法。所提出的软件体系结构由支持可伸缩性和可靠性的低耦合组件组成。已开发的基于Web和基于移动的客户端应用程序可帮助您轻松高效地找到停车位。现有的解决方案利用专用传感器,并依靠对监视镜头的手动分段来检测停车位的状态。所提出的方法消除了现有限制,同时保持了合理的准确性。

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