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A Novel Intuitionistic Fuzzy Rough Sets-Based Clustering Model Based on Aczel–Alsina Aggregation Operators
by
Chen, Zhengliang
in
Accuracy
/ Analysis
/ Clustering
/ Customers
/ Decision making
/ Forecasting techniques
/ Forecasts and trends
/ Fuzzy sets
/ Information management
/ Operators
/ Pattern recognition
/ Segmentation
2024
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A Novel Intuitionistic Fuzzy Rough Sets-Based Clustering Model Based on Aczel–Alsina Aggregation Operators
by
Chen, Zhengliang
in
Accuracy
/ Analysis
/ Clustering
/ Customers
/ Decision making
/ Forecasting techniques
/ Forecasts and trends
/ Fuzzy sets
/ Information management
/ Operators
/ Pattern recognition
/ Segmentation
2024
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Do you wish to request the book?
A Novel Intuitionistic Fuzzy Rough Sets-Based Clustering Model Based on Aczel–Alsina Aggregation Operators
by
Chen, Zhengliang
in
Accuracy
/ Analysis
/ Clustering
/ Customers
/ Decision making
/ Forecasting techniques
/ Forecasts and trends
/ Fuzzy sets
/ Information management
/ Operators
/ Pattern recognition
/ Segmentation
2024
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A Novel Intuitionistic Fuzzy Rough Sets-Based Clustering Model Based on Aczel–Alsina Aggregation Operators
Journal Article
A Novel Intuitionistic Fuzzy Rough Sets-Based Clustering Model Based on Aczel–Alsina Aggregation Operators
2024
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Overview
Based on the approximation spaces, the interval-valued intuitionistic fuzzy rough set (IVIFRS) plays an essential role in coping with the uncertainty and ambiguity of the information obtained whenever human opinion is modeled. Moreover, a family of flexible t-norm (TNrM) and t-conorm (TCNrM) known as the Aczel–Alsina t-norm (AATNrM) and t-conorm (AATCNrM) plays a significant role in handling information, especially from the unit interval. This article introduces a novel clustering model based on IFRS using the AATNrM and AATCNrM. The developed clustering model is based on the aggregation operators (AOs) defined for the IFRS using AATNrM and AATCNrM. The developed model improves the level of accuracy by addressing the uncertain and ambiguous information. Furthermore, the developed model is applied to the segmentation problem, considering the information about the income and spending scores of the customers. Using the developed AOs, suitable customers are targeted for marketing based on the provided information. Consequently, the proposed model is the most appropriate technique for the segmentation problems. Furthermore, the results obtained at different values of the involved parameters are studied.
Publisher
MDPI AG
Subject
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