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SCHÜLLER, D. PEKÁREK, J.
Original Title
Customer Satisfaction Measurement – Clustering Approach
Type
journal article in Scopus
Language
English
Original Abstract
The paper deals with the issue of customer satisfaction measurement. The aim of this study is to determine the importance of the individual factors and their impact on total customer satisfaction for multiple segments by using linear regression and hierarchical clustering. This study is focused on the market of café establishment. We applied hierarchical clustering with Ward’s criterion to partition customers into segments and then we developed linear regression models for each segment. Linear models for partitioned data showed higher coefficient of determination than the model for the whole market. The results revealed that there are quite significant differences in rankings of customer satisfaction factors among the segments. This is caused by the different preferences of customers. The clustered data allows to achieve a higher homogeneity of data within the segment, which is crucial both for marketing theory and practice. The approach i.e. partitioning the market into smaller more specific segments could become perspective for marketing use in different economic sectors. This attitude can allow marketers to target better on customer segments according to the importance of individual factors.
Keywords
customer satisfaction, linear regression, hierarchical clustering, importance of factors
Authors
SCHÜLLER, D.; PEKÁREK, J.
Released
2. 5. 2018
ISBN
1211-8516
Periodical
Acta Universitatis Agriculturae et Silviculturae Mendelianae Brunensis
Year of study
66
Number
2
State
Czech Republic
Pages from
561
Pages to
569
Pages count
9
URL
https://acta.mendelu.cz/66/2/0561/
BibTex
@article{BUT147211, author="David {Schüller} and Jan {Pekárek}", title="Customer Satisfaction Measurement – Clustering Approach", journal="Acta Universitatis Agriculturae et Silviculturae Mendelianae Brunensis", year="2018", volume="66", number="2", pages="561--569", doi="10.11118/actaun201866020561", issn="1211-8516", url="https://acta.mendelu.cz/66/2/0561/" }