Spectroscopy and Spectral Analysis, Volume. 41, Issue 7, 2294(2021)

Spectrum Signal Extraction Algorithm and Application Based on Saliency and Statistics

Jiang-bo WU*, Yun-wei JIA*;, Cheng-bin YAO, Chen-xiang HAO, and Kun WANG
Author Affiliations
  • Key Laboratory of Advanced Mechatronics System Design and Intelligent Control of Tianjin, Tianjin University of Science and Technology, Tianjin 300384, China
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    Figures & Tables(8)
    The signal in ideal or the baseline having linear distortion and spatial representation of saliency(a): Ideal positive signal; (b): Ideal negative signal;(c): Positive signal with linear distortion in the baseline; (d): Negative signal with linear distortion in the baseline
    The signal of baseline having linear distortion and spatial representation of saliency(a): Positive signal and its saliency space; (b): Negative signal and its saliency space
    The process of signal detection
    Signal extraction with noise and the baseline in nonlinear distortion
    Results of signal extraction from 100 experiments with different signal-to-noise ratios, different baselines, and different signals(a): The mean value of the absolute error of the signal extraction result;(b): The root mean square value of the absolute error of the signal extraction result;(c): The mean value of the root mean square error of the signal extraction results;(d): The mean square root of the mean square error of the signal extraction results
    Comparison of extraction effects of different extraction algorithms
    The extraction results of different algorithms to different signals under different signal-to-noise ratios and different baseline types(a): The mean value of absolute error of signal 1 extraction result;(b): The root mean square value of the absolute error of the signal 1 extraction result;(c): The mean value of absolute error of signal 2 extraction result;(d): The root mean square value of the absolute error of the signal 2 extraction result
    • Table 1. Comprehensive extraction effect of different algorithms

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      Table 1. Comprehensive extraction effect of different algorithms

      SSDAirPLSWaveletDoG
      绝对误差的均值0.002 90.033 30.082 40.139 7
      绝对误差的均方根0.004 50.034 40.082 60.144 7
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    Jiang-bo WU, Yun-wei JIA, Cheng-bin YAO, Chen-xiang HAO, Kun WANG. Spectrum Signal Extraction Algorithm and Application Based on Saliency and Statistics[J]. Spectroscopy and Spectral Analysis, 2021, 41(7): 2294

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    Paper Information

    Category: Research Articles

    Received: Jul. 2, 2020

    Accepted: --

    Published Online: Sep. 8, 2021

    The Author Email: WU Jiang-bo (wujiangbo_vip@163.com)

    DOI:10.3964/j.issn.1000-0593(2021)07-2294-07

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