A Road Condition Service Based on a Collaborative Mobile Sensing Approach

J. Soares, Nuno Silva, Vaibhav Shah, Helena Rodrigues
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引用次数: 5

Abstract

Road pavement conditions influence the daily lives of both drivers and passengers. Anomalies in road pavement can cause discomfort, increase stress, cause mechanical failures in vehicles and compromise safety of road users. Detecting and surveying road condition/anomalies requires expensive and specially designed equipment and vehicles, that cost considerable amounts of money, and require specialized workers to operate them. As an alternative, an emergent sensing paradigm is being discussed as a promising mechanism for collecting large-scale real-world data. In this paper we describe our experience on the design, implementation and deployment of a cloud based road anomaly information management service, that combines Collaborative Mobile Sensing and data-mining approaches, to provide a practical solution for detecting, identifying and managing road anomaly information. Additionally, we identify technical challenges and propose guidelines that may help to improve this type of services and applications.
基于协同移动感知方法的路况服务
道路路面状况影响司机和乘客的日常生活。路面异常会引起不适,增加压力,导致车辆机械故障,危及道路使用者的安全。检测和测量道路状况/异常情况需要昂贵的、专门设计的设备和车辆,这些设备和车辆需要大量的资金,并且需要专门的工人来操作。作为一种替代方案,正在讨论一种新兴的传感范式作为收集大规模真实世界数据的有前途的机制。本文介绍了基于云的道路异常信息管理服务的设计、实现和部署经验,该服务结合了协同移动传感和数据挖掘方法,为道路异常信息的检测、识别和管理提供了一个实用的解决方案。此外,我们确定了技术挑战,并提出了可能有助于改进这类服务和应用程序的指导方针。
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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