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Multi-sensor Information Fusion Method Based on BP Neural Network

机译:基于BP神经网络的多传感器信息融合方法。

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摘要

This study aims to solve the problem of multi-sensor information fusion, which is a key issue in the multi-sensor system development. The main innovation of this study is to propose a novel multi-sensor information fusion algorithm based on back propagation neural network and Bayesian inference. In the proposed algorithm, a triple is defined to represent a probability space; thereafter, the Bayesian inference is used to estimate the posterior expectation. Finally, we construct a simulation environment to test the performance of the proposed algorithm. Experimental results demonstrate that the proposed algorithm can significantly enhance the accuracy of temperature detection after fusing the data obtained from different sensors.
机译:本研究旨在解决多传感器信息融合问题,这是多传感器系统开发中的关键问题。这项研究的主要创新是提出一种基于反向传播神经网络和贝叶斯推理的新型多传感器信息融合算法。在提出的算法中,定义了一个三元组来表示一个概率空间。此后,使用贝叶斯推断来估计后验期望。最后,我们构建了一个仿真环境来测试所提出算法的性能。实验结果表明,该算法融合了从不同传感器获得的数据后,可以显着提高温度检测的准确性。

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