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Forecasting Parking Lots Availability: Analysis from a Real-World Deployment

机译:预测停车场可用性:现实世界部署分析

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Smart parking technologies are rapidly being deployed in cities and public/private places around the world for the sake of enabling users to know in real time the occupancy of parking lots and offer applications and services on top of that information. In this work, we detail a real-world deployment of a full-stack smart parking system based on industrial-grade components. We also propose innovative forecasting models (based on CNN-LSTM) to analyze and predict parking occupancy ahead of time. Experimental results show that our model can predict the number of available parking lots in a ±3% range with about 80% accuracy over the next 1-8 hours. Finally, we describe novel applications and services that can be developed given such forecasts and associated analysis.
机译:智能停车技术正在迅速部署在世界各地的城市和公共场所,是为了使用户能够实时地了解停车场的占用,并在该信息之上提供应用程序和服务。 在这项工作中,我们详细介绍了基于工业级组件的全堆栈智能停车系统的实际部署。 我们还提出了创新的预测模型(基于CNN-LSTM),以提前分析和预测停车占用。 实验结果表明,我们的模型可以预测±3%范围内的可用停车场数量,在接下来的1-8小时内的精度约为80%。 最后,我们描述了可以开发的新型应用和服务,可以在此预测和相关分析中进行。

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