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Multi-Sensor Information Fusion in Ocean of Things Based on Improved Adaptive Dempster-Shafer Evidence Theory

机译:基于改进自适应Dempster-Shafer证据理论的基于事物海洋的多传感器信息融合

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The Internet of Things has been used in a variety of industries, including the marine information industry. The Ocean of Things includes measurements of marine environmental information. Due to the variety of sensors and the duplication of measurement tasks, the marine environment data is numerous and redundant. Achieving information fusion computing for multiple measurement devices is an important task for IoT devices. In the absence of human participation, IoT devices need to intelligently calculate the credibility of each sensor information to enable multi-sensor information fusion. This paper presents an improved adaptive DS evidence fusion algorithm. The method calculates the reliability of the sensor data by using multiple sets of sensor measurement data. It enables data level fusion of multisensor information. Ocean temperature measurements are used as experimental examples. The fusion results and the reliability of each temperature sensor are obtained through simulation calculation. By analyzing the experimental results, the reliability and accuracy of the proposed method are proved.
机译:东西互联网已被用于各种行业,包括海洋信息产业。事情的海洋包括海洋环境信息的测量。由于传感器的各种和测量任务的重复,海洋环境数据很多,冗余。实现多个测量设备的信息融合计算是IOT设备的重要任务。在没有人为参与的情况下,物联网设备需要智能地计算每个传感器信息的可信度,以实现多传感器信息融合。本文提出了一种改进的自适应DS证据融合算法。该方法通过使用多组传感器测量数据来计算传感器数据的可靠性。它可以实现多传感器信息的数据级融合。海洋温度测量用作实验例。通过仿真计算获得融合结果和每个温度传感器的可靠性。通过分析实验结果,证明了所提出的方法的可靠性和准确性。

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