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Modeling Multisource-heterogeneous Information Based on Random Set and Fuzzy Set Theory

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【作者】 文成林徐晓滨

【Author】 WEN Cheng-lin 1, XU Xiao-bin 21 Lab of System Modeling & Information Processing, Hangzhou Dianzi University,Hangzhou 3100182 School of Computer and Information Engineering,Henan University,Kaifeng 475001

【机构】 Lab of System Modeling & Information Processing Hangzhou Dianzi UniversitySchool of Computer and Information EngineeringHenan UniversityHangzhou 310018Kaifeng 475001

【摘要】 This paper presents a new idea, named as modeling multisensor-heterogeneous information, to incorporate the fuzzy logic methodologies with mulitsensor-multitarget system under the framework of random set theory. Firstly, based on strong random set and weak random set, the unified form to describe both data (unambiguous information) and fuzzy evidence (uncertain information) is introduced. Secondly, according to signatures of fuzzy evidence, two Bayesian-markov nonlinear measurement models are proposed to fuse effectively data and fuzzy evidence. Thirdly, by use of "the models-based signature-matching scheme", the operation of the statistics of fuzzy evidence defined as random set can be translated into that of the membership functions of relative point state variables. These works are the basis to construct qualitative measurement models and to fuse data and fuzzy evidence.

【Abstract】 This paper presents a new idea, named as modeling multisensor-heterogeneous information, to incorporate the fuzzy logic methodologies with mulitsensor-multitarget system under the framework of random set theory. Firstly, based on strong random set and weak random set, the unified form to describe both data (unambiguous information) and fuzzy evidence (uncertain information) is introduced. Secondly, according to signatures of fuzzy evidence, two Bayesian-markov nonlinear measurement models are proposed to fuse effectively data and fuzzy evidence. Thirdly, by use of “the models-based signature-matching scheme”, the operation of the statistics of fuzzy evidence defined as random set can be translated into that of the membership functions of relative point state variables. These works are the basis to construct qualitative measurement models and to fuse data and fuzzy evidence.

【基金】 Supported by the NSFC(No.60434020,60572051);Science and Technology Key Item of Ministry of Education of the PRC( No.205-092);the ZJNSF(No. R106745)
  • 【文献出处】 Journal of DongHua University ,东华大学学报(英文版) , 编辑部邮箱 ,2006年06期
  • 【分类号】TP18
  • 【被引频次】2
  • 【下载频次】83
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