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Terahertz Spectrum Recognition of Pathogens Based on PCA-Siamese Neural Network

机译:基于PCA暹罗神经网络的病原体的Terahertz谱识别

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In the terahertz timedomain spectroscopy technique, 16 common pathogens were experimentally studied and their characteristics absorption spectra in the frequency range of 0.1 to 2.2THz were obtained. The terahertz absorption spectra of 16 common pathogens were trained and identified by Siamese neural network method. First, the terahertz absorption spectra of the 16 pathogens were reduced by PCA to construct training data. Then, the constructed Siamese neural network model was trained by back propagation. Finally, the pathogen measured at different times was used as the target spectrum to evaluate the model, after comparing with the training data, the matching absorption spectrum was obtained, and the recognition rate reached 97.34%. The recognition results fully indicate that the identification of different kinds of pathogens can be recognized by Siamese neural network, which provides an effective method of the detection and identification of pathogens by terahertz spectroscopy.
机译:在Terahertz时序的光谱技术中,通过实验研究了16种常见病原体,并获得了0.1至2.2℃的频率范围内的特性吸收光谱。 16种常见病原体的太赫兹吸收光谱训练并通过暹罗神经网络方法鉴定。首先,通过PCA降低了16个病原体的太赫兹吸收光谱来构建训练数据。然后,由后传播训练构建的暹罗神经网络模型。最后,在不同时间测量的病原体用作评估模型的目标光谱,在与训练数据进行比较之后,获得匹配吸收光谱,识别率达到97.34%。识别结果完全表明暹罗神经网络可以识别不同种类的病原体,这提供了通过太赫兹光​​谱检测和鉴定病原体的有效方法。

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