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Classification of ring-spun yarns using cluster analysis

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Field Value
 
Title Classification of ring-spun yarns using cluster analysis
 
Creator Naghashzargar, Elham
Zahraei, Haleh sadat Nekoee
 
Subject Clustering validation
Model-based clustering
Ring-spun yarn
Statistical analysis
 
Description 356-361
The aim of this study is to classify ring-spun yarns according to their unevenness, imperfections, and hairiness
parameters using cluster analysis. The mentioned features of ring-spun yarns are measured for five different ranks. Five
ranks of ring-spun yarns including compact and conventional as well as combed and carded types are chosen and produced.
In the modeling section, the model-based clustering method was applied as a strong method based on the distribution of each
variable. In order to select the best fit and to find out the final clustering, bayesian information criterion (BIC) is applied.
According to the results of modeling, five ranks of selected ring-spun yarns are classified in four clusters and the acceptable
agreement is measured according to Cohen’s kappa method. The highest value for Kappa represents a high agreement to
match between the clustering result and the real rank.
 
Date 2022-09-05T08:53:33Z
2022-09-05T08:53:33Z
2022-09
 
Type Article
 
Identifier 0971-0426 (Print); 0975-1025 (Online)
http://nopr.niscpr.res.in/handle/123456789/60470
https://doi.org/10.56042/ijftr.v47i3.53130
 
Language en
 
Publisher NIScPR-CSIR,India
 
Source IJFTR Vol.47(3) [Sep 2022]