Customers Classification using Recency Frequency, Monetary value (RFM), and K-means clustering algorithm – Ing. Mark Azietaku
Ing. Mark Azietaku
Master's thesis
Customers Classification using Recency Frequency, Monetary value (RFM), and K-means clustering algorithm
Customers Classification using Recency Frequency, Monetary value (RFM), and K-means clustering algorithm
Anotácia:
Data mining has changed how people see data and how much knowledge and information it may provide for business decisions to enhance competitiveness and profitability. Companies use data mining techniques with Customer Relationship Management (CRM) to better understand their customers' requirements and preferences. This study suggested using K-means algorithms for consumer segmentation in a public institution …viacAbstract:
Data mining has changed how people see data and how much knowledge and information it may provide for business decisions to enhance competitiveness and profitability. Companies use data mining techniques with Customer Relationship Management (CRM) to better understand their customers' requirements and preferences. This study suggested using K-means algorithms for consumer segmentation in a public institution …viac
Jazyk práce: English
Datum vytvoření / odevzdání či podání práce: 5. 1. 2024
Identifikátor:
https://is.muni.cz/th/jf2ey/
Obhajoba závěrečné práce
- Obhajoba proběhla 30. 1. 2024
- Vedúci: doc. Ahad Zareravasan, PhD
- Oponent: Ing. Michal Jirásek, Ph.D.
Citační záznam
Citace dle ISO 690:
AZIETAKU, Mark. \textit{Customers Classification using Recency Frequency, Monetary value (RFM), and K-means clustering algorithm}. Online. Diplomová práca. Brno: Masarykova univerzita, Faculty of Economics and Administration. 2024. Dostupné z: https://theses.cz/id/c6nq2z/.
Plný text práce
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Jak jinak získat přístup k textu
Instituce archivující a zpřístupňující práci: Masarykova univerzita, Ekonomicko-správní fakultaMasaryk University
Faculty of Economics and AdministrationMaster programme / odbor:
Business Management / Business Management
Práce na příbuzné téma
- Žádné práce na příbuzné téma.