Laser & Optoelectronics Progress, Volume. 57, Issue 6, 061003(2020)

A Subgraph Learning Method for Graph Matching

Chuang Chen, Ya Wang*, and Wenwu Jia**
Author Affiliations
  • School of Electrical and Information Engineering, Tianjin University, Tianjin 300073, China
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    Figures & Tables(11)
    Sub-graph matching algorithm based on MCMC
    Recall rate curves
    Precision curves
    Recall rate and precision in the outlier experiments. (a) Effect of discrete values on recall rate; (b) effect of discrete values on precision
    Recall rate and precision in the deformation noise experiments. (a) Effect of deformation noise on recall rate; (b) effect of deformation noise on precision
    Recall rate and precision in the experiments with different edge densities. (a) Effect of edge density on recall rate; (b) effect of edge density on precision
    Samples of graph matching for motorbike on Caltech+MSRC. (a) SGM-based matching sample (correct matching rate is 12/54); (b) RRWM-based matching sample (correct matching rate is 11/67); (c) IPFP-based matching sample (correct matching rate is 7/67); (d) SM-based matching sample (correct matching rate is 9/67)
    Samples of graph matching for cap on Caltech+MSRC. (a) SGM-based matching sample (correct matching rate is 4/7); (b) RRWM-based matching sample (correct matching rate is 4/9); (c) IPFP-based matching sample (correct matching rate is 2/9); (d) SM-based matching sample (correct matching rate is 2/9)
    Samples of graph matching for car on Caltech+MSRC. (a) SGM-based matching sample (correct matching rate is 16/30); (b) RRWM-based matching sample (correct matching rate is 12/36); (c) IPFP-based matching sample (correct matching rate is 4/36); (d) SM-based matching sample (correct matching rate is 4/36)
    Results of view-based 3D model retrieval experiments in MV-RED data set. (a) P-R curves; (b) performance
    • Table 1. Recall rate and precision of different methods on Caltech+MSRC

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      Table 1. Recall rate and precision of different methods on Caltech+MSRC

      MethodRecall ratePrecision
      SGM0.75100.749
      RRWM0.64010.632
      SM0.52080.521
      IPFP0.41200.402
      SMAC0.39740.388
      GAGM0.58740.571
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    Chuang Chen, Ya Wang, Wenwu Jia. A Subgraph Learning Method for Graph Matching[J]. Laser & Optoelectronics Progress, 2020, 57(6): 061003

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    Paper Information

    Category: Image Processing

    Received: May. 1, 2019

    Accepted: Aug. 27, 2019

    Published Online: Mar. 6, 2020

    The Author Email: Wang Ya (wangyares@outlook.com), Jia Wenwu (975045265@qq.com)

    DOI:10.3788/LOP57.061003

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