Artificial Intelligence Image Processing Based on Wireless Sensor Networks Application in Lake Environmental Landscape

Junnan Lv, Sun Yao
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Abstract

With the rapid development of Internet of Things (IoT) technology, wireless sensor networks are increasingly used in environmental monitoring and management. In the protection and restoration of lake ecological environment, real-time monitoring of water quality, water temperature and other environmental factors becomes particularly important. The purpose of this study is to explore the application of artificial intelligence image processing technology based on wireless sensor network in lake environment landscape monitoring, in order to improve monitoring efficiency and strengthen environmental protection measures. A network of wireless sensor nodes was constructed to collect data on lake water quality and environment in real time. At the same time, the image processing algorithm and deep learning model are combined to analyze the lake image to identify and evaluate the ecological state. Mobile devices are used for remote access and analysis of data. Through comparative experiments, the data collection method based on wireless sensor network has significantly improved the accuracy and timeliness of data compared with traditional water quality monitoring methods. The results of image processing show that the change trend of lake ecological environment can be quickly identified, and the change of multiple environmental indicators can be successfully predicted. Therefore, the artificial intelligence image processing technology based on wireless sensor network has a broad application prospect in the lake environment landscape monitoring.

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基于无线传感器网络的人工智能图像处理在湖泊环境景观中的应用
随着物联网(IoT)技术的快速发展,无线传感器网络在环境监测和管理中的应用日益广泛。在湖泊生态环境的保护与修复中,对水质、水温等环境因素的实时监测显得尤为重要。本研究旨在探索基于无线传感器网络的人工智能图像处理技术在湖泊环境景观监测中的应用,以提高监测效率,强化环境保护措施。通过构建无线传感器节点网络,实时采集湖泊水质环境数据。同时,结合图像处理算法和深度学习模型对湖泊图像进行分析,以识别和评估生态状态。移动设备用于远程访问和分析数据。通过对比实验,与传统的水质监测方法相比,基于无线传感器网络的数据采集方法显著提高了数据的准确性和及时性。图像处理结果表明,可以快速识别湖泊生态环境的变化趋势,成功预测多个环境指标的变化。因此,基于无线传感器网络的人工智能图像处理技术在湖泊环境景观监测中具有广阔的应用前景。
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