Computer Science ›› 2023, Vol. 50 ›› Issue (6A): 220100138-7.doi: 10.11896/jsjkx.220100138

• Image Processing & Multimedia Technology • Previous Articles     Next Articles

Fusion Multi-feature Fuzzy Model for Target Recognition and Its Application

RUAN Wang, HAO Guosheng, WANG Xia, HU Xiaoting, YANG Zihao   

  1. School of Computer Science and Technology,Jiangsu Normal University,Xuzhou,Jiangsu 221116,China
  • Online:2023-06-10 Published:2023-06-12
  • About author:RUAN Wang,born in 1997,postgra-duate.His main research interests include computer vision,fuzzy mathematics,and deep learning. HAO Guosheng,born in 1972,Ph.D,professor,is a member of China Computer Federation.His main research interests include machine learning and evolutionary computation.
  • Supported by:
    National Natural Science Foundation of China(61673196),Xuzhou Science and Technology Planning Project(KC19213),Jiangsu Graduate Research and Practice Innovation Program(KYCX21_2633) and Cel Network Next Generation Internet Technology Innovation Project(NGII20190513).

Abstract: In natural recognition scenes,image features are often characterized by complexity,diversity and fuzziness,and lack of consideration of the relationship between features when using multiple features for image recognition,a target recognition fuzzy model integrating multiple image features is proposed.Firstly,the image feature is extracted,the value of the feature is taken as the fuzzy set of the model,and the corresponding membership function is given.Secondly,the evaluation index of the model is gi-ven,and the feasibility of the model is demonstrated according to the index.Thirdly,particle swarm optimization algorithm is used to optimize the parameters of membership function of image features.Finally,the target recognition algorithm based on feature fusion fuzzy model is proposed,which is applied to filling-mark recognition and the hot rolled strip surface defect recognition.Experimental results show that the designed model performs well under the evaluation index,and the algorithm significantly improves the accuracy and robustness of target recognition and the rationality of feature fusion.

Key words: Target recognition, Feature fusion, Fuzzy mathematics, Membership function, Particle swarm optimization algorithm

CLC Number: 

  • TP391
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