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露天矿边坡监测用摄像机网络的最优部署算法。

An Optimum Deployment Algorithm of Camera Networks for Open-Pit Mine Slope Monitoring.

机构信息

School of Remote Sensing and Information Engineering, Wuhan University, Wuhan 430079, China.

School of Water Conservancy and Electric Power, Hebei University of Engineering, 62#Zhonghua Street, Handan 056038, China.

出版信息

Sensors (Basel). 2021 Feb 6;21(4):1148. doi: 10.3390/s21041148.

Abstract

With the growth in demand for mineral resources and the increase in open-pit mine safety and production accidents, the intelligent monitoring of open-pit mine safety and production is becoming more and more important. In this paper, we elaborate on the idea of combining the technologies of photogrammetry and camera sensor networks to make full use of open-pit mine video camera resources. We propose the Optimum Camera Deployment algorithm for open-pit mine slope monitoring (OCD4M) to meet the requirements of a high overlap of photogrammetry and full coverage of monitoring. The OCD4M algorithm is validated and analyzed with the simulated conditions of quantity, view angle, and focal length of cameras, at different monitoring distances. To demonstrate the availability and effectiveness of the algorithm, we conducted field tests and developed the mine safety monitoring prototype system which can alert people to slope collapse risks. The simulation's experimental results show that the algorithm can effectively calculate the optimum quantity of cameras and corresponding coordinates with an accuracy of 30 cm at 500 m (for a given camera). Additionally, the field tests show that the algorithm can effectively guide the deployment of mine cameras and carry out 3D inspection tasks.

摘要

随着对矿产资源需求的增长和露天矿安全及生产事故的增加,露天矿安全及生产的智能监测变得越来越重要。本文详细阐述了结合摄影测量和摄像机传感器网络技术充分利用露天矿摄像机资源的思路。我们提出了用于露天矿边坡监测的最佳摄像机部署算法(OCD4M),以满足摄影测量高重叠和监测全覆盖的要求。利用摄像机数量、视角和焦距的模拟条件,并在不同监测距离下,对 OCD4M 算法进行了验证和分析。为了证明算法的可用性和有效性,我们进行了现场测试并开发了可提醒边坡崩塌风险的矿山安全监测原型系统。模拟实验结果表明,该算法可以有效地计算出最佳摄像机数量和相应坐标,在 500 米(给定摄像机)处的精度为 30 厘米。此外,现场测试表明,该算法可以有效地指导矿山摄像机的部署,并执行 3D 检测任务。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0bf2/7915166/e4288ec6136e/sensors-21-01148-g001.jpg

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