基于空间标记和机器视觉技术的环境监测系统开发

M. M. Zaslavskiy, K. E. Kryzhanovskiy, D. V. Ivanov
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引用次数: 0

摘要

介绍。在环境监测任务中使用现有的卫星图像和无人驾驶飞行器(uav)的航空摄影受到现有工具不完善的挑战。地理信息系统的特点是不能灵活地自动处理异构资源。生态学中基于人工智能的最新模型需要前期的数据准备。本文介绍了一种基于机器视觉传感器数据的环境监测软件系统的设计结果,该系统在数据来源和分析方法上具有灵活性,同时提供了数据的统一性。的目标。创建一个通用软件系统,用于环境监测任务中异构机器视觉数据的协调空间标记。材料和方法。软件工程方法,数据库理论方法,空间标记方法,图像处理方法。结果。提出了一种统一数据的通用方法。该方法基于对现有地球遥感开放数据的分析,以及无人机航空摄影和环境监测方法。为了实现该方法,设计了一个灵活的软件系统架构,并开发了一个面向文档的数据库管理系统的数据模型,该模型允许存储数据和扩展数据分析过程。结论。分析了现有的环境监测数据来源和工具。提出了一种统一机器视觉数据、体系结构和数据模型的通用方法。该方法、体系结构和模型成功地实现为一个具有web界面的软件系统
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Development of an Environmental Monitoring System Based on Spatial Marking and Machine Vision Technologies
Introduction. The use of available satellite images and aerial photography by unmanned aerial vehicles (UAVs) in the tasks of environmental monitoring is challenged by the imperfection of existing tools. Geographic information systems are characterized by insufficient flexibility to automatically work with heterogeneous sources. The latest models based on artificial intelligence in ecology require preliminary data preparation. The article presents the results of designing a software system for environmental monitoring based on machine vision sensor data, which provides data unification while being flexible both in terms of data sources and methods of their analysis. Aim . Creation of a generalized software system for coordinated spatial marking of heterogeneous machine vision data for environmental monitoring tasks. Materials and methods . Software engineering methods, database theory methods, spatial markup methods, image processing methods. Results . A generalized method for unifying data was developed. The method is based on the analysis of existing open data from remote sensing of the Earth, as well as UAV aerial photography and approaches to environmental monitoring. To implement the method, a flexible architecture of the software system was designed, and a data model for a document-oriented DBMS was developed, which allows storing data and scaling the data analysis procedure. Conclusion . The existing sources of data and tools for environmental monitoring were analyzed. A generalized method for unifying machine vision data, an architecture, and a data model was created. The method, architecture, and model were successfully implemented as a software system with a web interface
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