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May 6, 2026Electronics0 citationsOpen Access

Integrated IoT–UAV Architecture for Three-Dimensional Electromagnetic Radiation Monitoring and Intelligent Source Classification

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SMSaken MambetovDNDinara NurpeissovaKTKyrmyzy Taissariyeva

Key Points

  • This research aims to develop an integrated framework for monitoring electromagnetic radiation in three dimensions using IoT and UAV technologies.
  • Proposed an integrated architecture combining IoT and UAV for electromagnetic radiation monitoring.
  • Developed a four-layer system including distributed sensing, edge computing, cloud analytics, and visualization.
  • Implemented a CNN–LSTM architecture for spectral–temporal classification of radiation sources.
  • Achieved 95% validation accuracy across five categories of electromagnetic radiation sources.
  • Demonstrated up to eightfold improvement in spatial coverage compared to traditional ground networks.
  • Maintained a practical anomaly detection threshold of −55 dBm in spectrum analysis.

Abstract

The rapid deployment of 5G networks and the proliferation of Internet of Things (IoT) devices have significantly increased the complexity of urban electromagnetic radiation (EMR) environments. Conventional ground-based monitoring systems are spatially limited and unable to provide three-dimensional field characterization. This paper proposes an integrated IoT–UAV framework for high-resolution EMR monitoring, spatial reconstruction, and intelligent source classification. A four-layer architecture combining distributed sensing, edge computing, cloud analytics, and visualization is developed. A formal electromagnetic propagation model is introduced to ensure consistency between broadband exposure measurements and frequency-selective spectral analysis. A CNN–LSTM architecture is implemented for spectral–temporal source classification, achieving 95% validation accuracy across five EMR categories. Simulation-based validation demonstrates up to an eightfold improvement in spatial coverage compared to fixed ground networks while maintaining a practical anomaly detection threshold of −55 dBm in the spectrum-analysis RF chain. The proposed framework establishes a mathematically consistent and practically deployable solution for next-generation EMR monitoring systems.

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Cite This Study

Mambetov et al. (2026) studied this question.

synapsesocial.com/papers/69fa989404f884e66b532532https://doi.org/10.3390/electronics15091941
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