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New Neutrosophic Approach to Image Segmentation

TLDR
In this paper, the image is transformed into the neutrosophic set domain, which is described using three membership sets: T, I and F, and two operations, @a-mean and @b-enhancement operations are proposed to reduce the set indeterminacy.
Abstract
Neutrosophic set (NS), a part of neutrosophy theory, studies the origin, nature and scope of neutralities, as well as their interactions with different ideational spectra. NS is a formal framework that has been recently proposed. However, NS needs to be specified from a technical point of view for a given application or field. We apply NS, after defining some concepts and operations, for image segmentation. The image is transformed into the NS domain, which is described using three membership sets: T, I and F. The entropy in NS is defined and employed to evaluate the indeterminacy. Two operations, @a-mean and @b-enhancement operations are proposed to reduce the set indeterminacy. Finally, the proposed method is employed to perform image segmentation using a @c-means clustering. We have conducted experiments on a variety of images. The experimental results demonstrate that the proposed approach can segment the images automatically and effectively. Especially, it can segment the ''clean'' images and the images having noise with different noise levels.

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Journal ArticleDOI

A multicriteria decision-making method using aggregation operators for simplified neutrosophic sets

TL;DR: A multicriteria decision-making method is established in which the evaluation values of alternatives with respective to criteria are represented by the form of SNSs, and the ranking order of alternatives is performed through the cosine similarity measure between an alternative and the idealAlternative and the best ones can be determined.
Journal ArticleDOI

Similarity measures between interval neutrosophic sets and their applications in multicriteria decision-making

TL;DR: The Hamming and Euclidean distances between interval neutrosophic sets INSs are defined and the similarity measures are proposed based on the relationship between similarity measures and distances, and a multicriteria decision-making method is established.
Posted Content

Multicriteria Decision-Making Method Using the Correlation Coefficient Under Single-Valued Neutrosophic Environment

Jun Ye
- 01 Apr 2013 - 
TL;DR: In this article, a decision-making method is proposed by the use of the weighted correlation coefficient or the weighted cosine similarity measure of SVNSs, in which the evaluation information for alternatives with respect to criteria is carried out by truth-membership degree, indeterminacy-memberships degree, and falsity-Membership degree under single-valued neutrosophic environment.
Posted Content

A Novel Method.

TL;DR: This paper proposes a novel parameter searching approach by utilizing uniform design (UD) algorithm, by which the satisfactory controller parameters under a performance index could be selected.
Posted Content

Some Generalized Neutrosophic Number Hamacher Aggregation Operators and Their Application to Group Decision Making

TL;DR: This paper presented some new operational laws for neutrosophic numbers (NNs) based on Hamacher operations and proposed some new aggregation operators, and explored some properties of these operators and analyzed some special cases of them.
References
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Book

Pattern Recognition with Fuzzy Objective Function Algorithms

TL;DR: Books, as a source that may involve the facts, opinion, literature, religion, and many others are the great friends to join with, becomes what you need to get.
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Color image segmentation: advances and prospects

TL;DR: This survey provides a summary of color image segmentation techniques available now based on monochrome segmentation approaches operating in different color spaces and some novel approaches such as fuzzy method and physics-based method are investigated.
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