Proportional Con ict Redistribution Rules for Information Fusion

Proportional Con   ict Redistribution Rules for Information Fusion
Author: Florentin Smarandache,Jean Dezert
Publsiher: Infinite Study
Total Pages: 67
Release: 2024
Genre: Electronic Book
ISBN: 9182736450XXX

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In this chapter we propose five versions of a Proportional Conflict Redistribution rule (PCR) for information fusion together with several examples.

A new generalization of the proportional con ict redistribution rule stable in terms of decision

A new generalization of the proportional con   ict redistribution rule stable in terms of decision
Author: Arnaud Martin,Christophe Osswald
Publsiher: Infinite Study
Total Pages: 21
Release: 2024
Genre: Electronic Book
ISBN: 9182736450XXX

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In this chapter, we present and discuss a new generalized proportional conflict redistribution rule. The Dezert-Smarandache extension of the DempsterShafer theory has relaunched the studies on the combination rules especially for the management of the conflict. Many combination rules have been proposed in the last few years. We study here different combination rules and compare them in terms of decision on didactic example and on generated data. Indeed, in real applications, we need a reliable decision and it is the final results that matter. This chapter shows that a fine proportional conflict redistribution rule must be preferred for the combination in the belief function theory.

Generalized proportional con ict redistribution rule applied to Sonar imagery and Radar targets classi cation

Generalized proportional con   ict redistribution rule applied to Sonar imagery and Radar targets classi   cation
Author: Arnaud Martin ,Christophe Osswald
Publsiher: Infinite Study
Total Pages: 17
Release: 2024
Genre: Electronic Book
ISBN: 9182736450XXX

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In this chapter, we present two applications in information fusion in order to evaluate the generalized proportional conflict redistribution rule presented in chapter [7]. Most of the time the combination rules are evaluated only on simple examples. We study here different combination rules and compare them in terms of decision on real data. Indeed, in real applications, we need a reliable decision and it is the final results that matter. Two applications are presented here: a fusion of human experts opinions on the kind of underwater sediments depicted on a sonar image and a classifier fusion for radar targets recognition.

Advances and Applications of DSmT for Information Fusion Collected Works Volume 5

Advances and Applications of DSmT for Information Fusion  Collected Works  Volume 5
Author: Florentin Smarandache,Jean Dezert,Albena Tchamova
Publsiher: Infinite Study
Total Pages: 932
Release: 2023-12-27
Genre: Biography & Autobiography
ISBN: 9182736450XXX

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This fifth volume on Advances and Applications of DSmT for Information Fusion collects theoretical and applied contributions of researchers working in different fields of applications and in mathematics, and is available in open-access. The collected contributions of this volume have either been published or presented after disseminating the fourth volume in 2015 (available at fs.unm.edu/DSmT-book4.pdf or www.onera.fr/sites/default/files/297/2015-DSmT-Book4.pdf) in international conferences, seminars, workshops and journals, or they are new. The contributions of each part of this volume are chronologically ordered. First Part of this book presents some theoretical advances on DSmT, dealing mainly with modified Proportional Conflict Redistribution Rules (PCR) of combination with degree of intersection, coarsening techniques, interval calculus for PCR thanks to set inversion via interval analysis (SIVIA), rough set classifiers, canonical decomposition of dichotomous belief functions, fast PCR fusion, fast inter-criteria analysis with PCR, and improved PCR5 and PCR6 rules preserving the (quasi-)neutrality of (quasi-)vacuous belief assignment in the fusion of sources of evidence with their Matlab codes. Because more applications of DSmT have emerged in the past years since the apparition of the fourth book of DSmT in 2015, the second part of this volume is about selected applications of DSmT mainly in building change detection, object recognition, quality of data association in tracking, perception in robotics, risk assessment for torrent protection and multi-criteria decision-making, multi-modal image fusion, coarsening techniques, recommender system, levee characterization and assessment, human heading perception, trust assessment, robotics, biometrics, failure detection, GPS systems, inter-criteria analysis, group decision, human activity recognition, storm prediction, data association for autonomous vehicles, identification of maritime vessels, fusion of support vector machines (SVM), Silx-Furtif RUST code library for information fusion including PCR rules, and network for ship classification. Finally, the third part presents interesting contributions related to belief functions in general published or presented along the years since 2015. These contributions are related with decision-making under uncertainty, belief approximations, probability transformations, new distances between belief functions, non-classical multi-criteria decision-making problems with belief functions, generalization of Bayes theorem, image processing, data association, entropy and cross-entropy measures, fuzzy evidence numbers, negator of belief mass, human activity recognition, information fusion for breast cancer therapy, imbalanced data classification, and hybrid techniques mixing deep learning with belief functions as well. We want to thank all the contributors of this fifth volume for their research works and their interests in the development of DSmT, and the belief functions. We are grateful as well to other colleagues for encouraging us to edit this fifth volume, and for sharing with us several ideas and for their questions and comments on DSmT through the years. We thank the International Society of Information Fusion (www.isif.org) for diffusing main research works related to information fusion (including DSmT) in the international fusion conferences series over the years. Florentin Smarandache is grateful to The University of New Mexico, U.S.A., that many times partially sponsored him to attend international conferences, workshops and seminars on Information Fusion. Jean Dezert is grateful to the Department of Information Processing and Systems (DTIS) of the French Aerospace Lab (Office National d’E´tudes et de Recherches Ae´rospatiales), Palaiseau, France, for encouraging him to carry on this research and for its financial support. Albena Tchamova is first of all grateful to Dr. Jean Dezert for the opportunity to be involved during more than 20 years to follow and share his smart and beautiful visions and ideas in the development of the powerful Dezert-Smarandache Theory for data fusion. She is also grateful to the Institute of Information and Communication Technologies, Bulgarian Academy of Sciences, for sponsoring her to attend international conferences on Information Fusion.

AN INTRODUCTION TO DSMT IN INFORMATION FUSION

AN INTRODUCTION TO DSMT IN INFORMATION FUSION
Author: Jean Dezert , Florentin Smarandache
Publsiher: Infinite Study
Total Pages: 64
Release: 2024
Genre: Mathematics
ISBN: 9182736450XXX

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The management and combination of uncertain, imprecise, fuzzy and even paradoxical or highly confliicting sources of information has always been, and still remains today, of primal importance for the development of reliable modern information systems involving artificial reasoning. In this introduction, we present a survey of our recent theory of plausible and paradoxical reasoning, known as Dezert-Smarandache Theory (DSmT), developed for dealing with imprecise, uncertain and conflicting sources of information. We focus our presentation on the foundations of DSmT and on its most important rules of combination, rather than on browsing specific applications ofDSmT available in literature. Several simple examples are given throughout this presentation to show the effciency and the generality of this new theory.

DSmT A new paradigm shift for information fusion

DSmT  A new paradigm shift for information fusion
Author: J. Dezert, F. Smarandache
Publsiher: Infinite Study
Total Pages: 11
Release: 2024
Genre: Electronic Book
ISBN: 9182736450XXX

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The management and combination of uncertain, imprecise, fuzzy and even paradoxical or high conflicting sources of information has always been and still remains of primal importance for the development of reliable information fusion systems.

An In Depth Look at Quantitative Information Fusion Rules

An In Depth Look at Quantitative Information Fusion Rules
Author: Florentin Smarandache
Publsiher: Infinite Study
Total Pages: 33
Release: 2024
Genre: Electronic Book
ISBN: 9182736450XXX

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This chapter may look like a glossary of the fusion rules and we also introduce new ones presenting their formulas and examples.

Advances and Applications of DSmT for Information Fusion Vol 3

Advances and Applications of DSmT for Information Fusion  Vol  3
Author: Florentin Smarandache,Jean Dezert
Publsiher: Infinite Study
Total Pages: 760
Release: 2004
Genre: Computer algorithms
ISBN: 9781599730738

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This volume has about 760 pages, split into 25 chapters, from 41 contributors. First part of this book presents advances of Dezert-Smarandache Theory (DSmT) which is becoming one of the most comprehensive and flexible fusion theory based on belief functions. It can work in all fusion spaces: power set, hyper-power set, and super-power set, and has various fusion and conditioning rules that can be applied depending on each application. Some new generalized rules are introduced in this volume with codes for implementing some of them. For the qualitative fusion, the DSm Field and Linear Algebra of Refined Labels (FLARL) is proposed which can convert any numerical fusion rule to a qualitative fusion rule. When one needs to work on a refined frame of discernment, the refinement is done using Smarandache¿s algebraic codification. New interpretations and implementations of the fusion rules based on sampling techniques and referee functions are proposed, including the probabilistic proportional conflict redistribution rule. A new probabilistic transformation of mass of belief is also presented which outperforms the classical pignistic transformation in term of probabilistic information content. The second part of the book presents applications of DSmT in target tracking, in satellite image fusion, in snow-avalanche risk assessment, in multi-biometric match score fusion, in assessment of an attribute information retrieved based on the sensor data or human originated information, in sensor management, in automatic goal allocation for a planetary rover, in computer-aided medical diagnosis, in multiple camera fusion for tracking objects on ground plane, in object identification, in fusion of Electronic Support Measures allegiance report, in map regenerating forest stands, etc.