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  1. Multi-objective non-linear programming problem based on Neutrosophic Optimization Technique and its application in Riser Design Problem.Pintu Das & Tapan Kumar Roy - 2015 - Neutrosophic Sets and Systems 9:88-95.
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  • Rough Neutrosophic Sets.Said Broumi, Florentin Smarandache & Mamoni Dhar - 2014 - Neutrosophic Sets and Systems 3:60-65.
    Both neutrosophic sets theory and rough sets theory are emerging as powerful tool for managing uncertainty, indeterminate, incomplete and imprecise information .In this paper we develop an hybrid structure called “ rough neutrosophic sets” and studied their properties.
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  • Neutrosophic Refined Similarity Measure Based on Cosine Function.Said Broumi & Florentin Smarandache - 2014 - Neutrosophic Sets and Systems 6:42-48.
    In this paper, the cosine similarity measure of neutrosophic refined (multi-) sets is proposed and its properties are studied. The concept of this cosine similarity measure of neutrosophic refined sets is the extension of improved cosine similarity measure of single valued neutrosophic. Finally, using this cosine similarity measure of neutrosophic refined set, the application of medical diagnosis is presented.
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  • Interval Neutrosophic Rough Sets.Said Broumi & Florentin Smarandache - 2015 - Neutrosophic Sets and Systems 7:23-31.
    This Paper combines interval- valued neutrouphic sets and rough sets. It studies roughness in interval- valued neutrosophic sets and some of its properties. Finally we propose a Hamming distance between lower and upper approximations of interval valued neutrosophic sets.
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  • Value and ambiguity index based ranking method of single-valued trapezoidal neutrosophic numbers and its application to multi-attribute decision making.Pranab Biswas, Surapati Pramanik & Bibhas C. Giri - 2016 - Neutrosophic Sets and Systems 12:127-138.
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  • Entropy Based Grey Relational Analysis Method for Multi-Attribute Decision Making under Single Valued Neutrosophic Assessments.Pranab Biswas, Surapati Pramanik & Bibhas C. Giri - 2014 - Neutrosophic Sets and Systems 2:102-110.
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  • Cosine Similarity Measure Based Multi-Attribute Decision-making with Trapezoidal Fuzzy Neutrosophic Numbers.Pranab Biswas, Surapati Pramanik & Bibhas C. Giri - 2015 - Neutrosophic Sets and Systems 8:46-56.
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  • A New Methodology for Neutrosophic Multi-Attribute Decision making with Unknown Weight Information.Pranab Biswas, Surapati Pramanik & Bibhas C. Giri - 2014 - Neutrosophic Sets and Systems 3:42-50.
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  • Aggregation of triangular fuzzy neutrosophic set information and its application to multi-attribute decision making.Pranab Biswas, Surapati Pramanik & Bibhas C. Giri - 2016 - Neutrosophic Sets and Systems 12:20-40.
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  • On Entropy and Similarity Measure of Interval Valued Neutrosophic Sets.Ali Aydogdu - 2015 - Neutrosophic Sets and Systems 9:47-49.
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  • Single-Valued Neutrosophic Minimum Spanning Tree and Its Clustering Method.Jun Ye - 2014 - Journal of Intelligent Systems 23 (3):311-324.
    Clustering plays an important role in data mining, pattern recognition, and machine learning. Then, single-valued neutrosophic sets are a useful means to describe and handle indeterminate and inconsistent information, which fuzzy sets and intuitionistic fuzzy sets cannot describe and deal with. To cluster the data represented by single-value neutrosophic information, the article proposes a single-valued neutrosophic minimum spanning tree clustering algorithm. Firstly, we defined a generalized distance measure between SVNSs. Then, we present an SVNMST clustering algorithm for clustering single-value neutrosophic (...)
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  • Multiple-attribute Decision-Making Method under a Single-Valued Neutrosophic Hesitant Fuzzy Environment.Jun Ye - 2015 - Journal of Intelligent Systems 24 (1):23-36.
    On the basis of the combination of single-valued neutrosophic sets and hesitant fuzzy sets, this article proposes a single-valued neutrosophic hesitant fuzzy set as a further generalization of the concepts of fuzzy set, intuitionistic fuzzy set, single-valued neutrosophic set, hesitant fuzzy set, and dual hesitant fuzzy set. Then, we introduce the basic operational relations and cosine measure function of SVNHFSs. Also, we develop a single-valued neutrosophic hesitant fuzzy weighted averaging operator and a single-valued neutrosophic hesitant fuzzy weighted geometric operator and (...)
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  • Clustering Methods Using Distance-Based Similarity Measures of Single-Valued Neutrosophic Sets.Jun Ye - 2014 - Journal of Intelligent Systems 23 (4):379-389.
    Clustering plays an important role in data mining, pattern recognition, and machine learning. Single-valued neutrosophic sets are useful means to describe and handle indeterminate and inconsistent information that fuzzy sets and intuitionistic fuzzy sets cannot describe and deal with. To cluster the data represented by single-valued neutrosophic information, this article proposes single-valued neutrosophic clustering methods based on similarity measures between SVNSs. First, we define a generalized distance measure between SVNSs and propose two distance-based similarity measures of SVNSs. Then, we present (...)
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  • TOPSIS for Single Valued Neutrosophic Soft Expert Set Based Multi-Attribute Decision Making Problems.Surapati Pramanik, Partha Pratim Dey & Bibhas C. Giri - 2015 - Neutrosophic Sets and Systems 10:88-95.
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  • Neutrosophic Game Theoretic Approach to Indo-Pak Conflict over Jammu-Kashmir.Surapati Pramanik & Tapan Kumar Roy - 2014 - Neutrosophic Sets and Systems 2:82-101.
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  • Interval Neutrosophic Multi-Attribute Decision-Making Based on Grey Relational Analysis.Surapati Pramanik & Kalya Mondal - 2015 - Neutrosophic Sets and Systems 9:13-22.
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  • Neutrosophic Decision Making Model of School Choices.Kalyan Mondal & Surapati Pramanik - 2015 - Neutrosophic Sets and Systems 7:8-17.
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  • Neutrosophic Decision Making Model of School Choices.Kalyan Mondal & Surapati Pramanik - 2015 - Neutrosophic Sets and Systems 7:62-68.
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  • A Study on Problems of Hijras in West Bengal Based on Neutrosophic Cognitive Maps.Kalyan Mondal & Surapati Pramanik - 2014 - Neutrosophic Sets and Systems 5:21-26.
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  • Rough Neutrosophic Multi-Attribute Decision-Making based on Rough Accuracy Score Function.Kalyan Modal & Surapati Pramanik - 2015 - Neutrosophic Sets and Systems 8:14-21.
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  • Rough Neutrosophic TOPSIS for Multi-Attribute Group Decision Making.Kalyan Modal, Surapati Pramanik & Florentin Smarandache - 2016 - Neutrosophic Sets and Systems 13:105-117.
    This paper is devoted to present Technique for Order Preference by Similarity to Ideal Solution (TOPSIS) method for multi-attribute group decision making under rough neutrosophic environment. The concept of rough neutrosophic set is a powerful mathematical tool to deal with uncertainty, indeterminacy and inconsistency. In this paper, a new approach for multi-attribute group decision making problems is proposed by extending the TOPSIS method under rough neutrosophic environment. Rough neutrosophic set is characterized by the upper and lower approximation operators and the (...)
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  • Multi-Criteria Group Decision Making Approach for Teacher Recruitment in Higher Eduaction under Simplified Neutrosophic Environment.Kalyan Modal & Surapati Pramanik - 2014 - Neutrosophic Sets and Systems 6:28-34.
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  • Neutrosophic Tangent Similarity Measure and Its Application to Multiple Attribute Decision Making.Kalyan Modal & Surapati Pramanik - 2015 - Neutrosophic Sets and Systems 9:80-87.
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  • Multi-attribute Decision Making based on Rough Neutrosophic Variational Coefficient Similarty Measure.Kalyan Modal, Surapati Pramanik & Florentin Smarandache - 2016 - Neutrosophic Sets and Systems 13:3-17.
    The purpose of this study is to propose new similarity measures namely rough variational coefficient similarity measure under the rough neutrosophic environment. The weighted rough variational coefficient similarity measure has been also defined. The weighted rough variational coefficient similarity measures between the rough ideal alternative and each alternative are xxxxx calculated to find the best alternative. The ranking order of all the alternatives can be determined by using the numerical values of similarity measures. Finally, an illustrative example has been provided (...)
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  • Decision Making Based on Some Similarity Measures under Interval Rough Neutrosophic Environmnet.Kalyan Modal & Surapati Pramanik - 2015 - Neutrosophic Sets and Systems 10:46-57.
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  • Taylor Series Approximation to Solve Neutrosophic Multiobjective Programming Problem.Ibrahim Hezam, Mohamed Abdel-Baset & Florentin Smarandache - 2015 - Neutrosophic Sets and Systems 10:39-45.
    In this paper, Taylor series is used to solve neutrosophic multi-objective programming problem (NMOPP). In the proposed approach, the truth membership, Indeterminacy membership, falsity membership functions associated with each objective of multi-objective programming problems are transformed into a single objective linear programming problem by using a first order Taylor polynomial series. Finally, to illustrate the efficiency of the proposed method, a numerical experiment for supplier selection is given as an application of Taylor series method for solving neutrosophic multi-objective programming problem (...)
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  • Neutrosophic Soft Multi-Attribute Decision Making Based on Grey Relational Projection Method.Partha Pratim Dey, Surapati Pramanik & Bibhas C. Giri - 2015 - Neutrosophic Sets and Systems 11:98-106.
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  • A unifying field in logics: Neutrosophic logic.Florentin Smarandache - 1999 - In [Book Chapter].
    The author makes an introduction to non-standard analysis, then extends the dialectics to “neutrosophy” – which became a new branch of philosophy. This new concept helps in generalizing the intuitionistic, paraconsistent, dialetheism, fuzzy logic to “neutrosophic logic” – which is the first logic that comprises paradoxes and distinguishes between relative and absolute truth. Similarly, the fuzzy set is generalized to “neutrosophic set”. Also, the classical and imprecise probabilities are generalized to “neutrosophic probability”.
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