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Backward Fuzzy Rule Interpolation

  • Focuses on a novel approach: backward fuzzy rule interpolation and extrapolation (BFRI), which could significantlyexpand the applications of fuzzy rule interpolation and fuzzy inference

  • Proposes two techniques, the parametric approach and the feedback approach, as an attempt to perform backward interpolation with multiple missing antecedent values

  • Presents experimental studies based on a real-world scenario of terrorism risk assessment

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Table of contents (8 chapters)

  1. Front Matter

    Pages i-xvii
  2. Introduction

    • Shangzhu Jin, Qiang Shen, Jun Peng
    Pages 1-15
  3. Background: Fuzzy Rule Interpolation

    • Shangzhu Jin, Qiang Shen, Jun Peng
    Pages 17-57
  4. An Alternative Backward Fuzzy Rule Interpolation Method

    • Shangzhu Jin, Qiang Shen, Jun Peng
    Pages 91-106
  5. Hierarchical Bidirectional Fuzzy Rule Interpolation and Rule Base Refinement

    • Shangzhu Jin, Qiang Shen, Jun Peng
    Pages 107-119
  6. Application: Terrorism Risk Assessment Using BFRI

    • Shangzhu Jin, Qiang Shen, Jun Peng
    Pages 121-141
  7. Conclusion

    • Shangzhu Jin, Qiang Shen, Jun Peng
    Pages 143-151
  8. Back Matter

    Pages 153-159

About this book

This book chiefly presents a novel approach referred to as backward fuzzy rule interpolation and extrapolation (BFRI). BFRI allows observations that directly relate to the conclusion to be inferred or interpolated from other antecedents and conclusions. Based on the scale and move transformation interpolation, this approach supports both interpolation and extrapolation, which involve multiple hierarchical intertwined fuzzy rules, each with multiple antecedents. As such, it offers a means of broadening the applications of fuzzy rule interpolation and fuzzy inference. The book deals with the general situation, in which there may be more than one antecedent value missing for a given problem. Two techniques, termed the parametric approach and feedback approach, are proposed in an attempt to perform backward interpolation with multiple missing antecedent values. In addition, to further enhance the versatility and potential of BFRI, the backward fuzzy interpolation method is extended to support α-cut based interpolation by employing a fuzzy interpolation mechanism for multi-dimensional input spaces (IMUL). Finally, from an integrated application analysis perspective, experimental studies based upon a real-world scenario of terrorism risk assessment are provided in order to demonstrate the potential and efficacy of the hierarchical fuzzy rule interpolation methodology. 

Authors and Affiliations

  • College of Electrical and Information Engineering, Chongqing University of Science and Technology, Chongqing, China

    Shangzhu Jin, Jun Peng

  • Institute of Mathematics, Physics and Computer Science, Aberystwyth University, Aberystwyth, United Kingdom

    Qiang Shen

About the authors

Shangzhu Jin received his B.Sc. degree in Computer Science from Beijing Technology and Business University, China, his M.Sc. degree in Control Theory and Control from Yanshan University, China, and his Ph.D. degree from Aberystwyth University, UK. He is currently an Associate Professor at the School of Electronic Information Engineering, Chongqing University of Science and Technology. His research interests include fuzzy systems, approximate reasoning, and network security. His paper, entitled “Backward Fuzzy Interpolation and Extrapolation with Multiple Multi-antecedent Rules” won the best student paper award at the 21st IEEE International Conference on Fuzzy Systems. 

Qiang Shen is a Professor and Director of the Institute of Mathematics, Physics and Computer Science (IMPACS) at Aberystwyth University. His major research interests include computational intelligence, fuzzy and qualitative systems, reasoning and learning under uncertainty, pattern recognition, data mining, and real-world applications of such techniques for decision support (e.g., crime detection, space exploration, consumer profiling, systems monitoring, and medical diagnosis). He has published two research monographs and over 360 peer-refereed papers. A number of his papers have received prestigious international prizes. 

Jun Peng received a Ph.D. degree in Computer Software and Theory from Chongqing University in 2003, an M.A. in Computer System Architecture from Chongqing University in 2000, and a BSc in Applied Mathematics from Northeast University in 1992. From 1992 to present he has worked at Chongqing University of Science and Technology, where he is currently a Professor and Dean of the School of Electrical and Information Engineering. He was a visiting scholar in the Laboratory of Cryptography and Information Security at Tsukuba University, Japan in 2004, and at theDepartment of Computer Science at California State University, Sacramento in 2007, respectively. He has authored or coauthored over 60 peer-reviewed journal and conference papers. He has served as a program committee member or session co-chair for over 10 international conferences, e.g. the IEEE SEKE’10, ICCI*CC’11-17, ICISME 2012, andICOACS’16. His current research interests are in cryptography, chaos and network security, image processingand intelligence computation.


Bibliographic Information

Buy it now

Buying options

eBook USD 84.99
Price excludes VAT (USA)
  • Available as EPUB and PDF
  • Read on any device
  • Instant download
  • Own it forever
Softcover Book USD 109.99
Price excludes VAT (USA)
  • Compact, lightweight edition
  • Dispatched in 3 to 5 business days
  • Free shipping worldwide - see info
Hardcover Book USD 109.99
Price excludes VAT (USA)
  • Durable hardcover edition
  • Dispatched in 3 to 5 business days
  • Free shipping worldwide - see info

Tax calculation will be finalised at checkout

Other ways to access