DocumentCode :
2340566
Title :
Mining fuzzy rules in a donor database for direct marketing by a charitable organization
Author :
Chan, Keith C C ; Au, Wai-Ho ; Choi, Berry
Author_Institution :
Dept. of Comput., Hong Kong Polytech. Univ., Kowloon, China
fYear :
2002
fDate :
2002
Firstpage :
239
Lastpage :
246
Abstract :
Given a donor database by a charitable organization in Hong Kong, we propose to use a new data mining technique to discover fuzzy rules for direct marketing. The discovered fuzzy rules employ linguistic terms, which are natural for human users to understand because of the affinity with the human knowledge representations, to represent the association relationships revealed in the data. The proposed approach utilizes an objective measure to distinguish interesting associations from uninteresting ones. Furthermore, it allows the ranking of discovered rules according to an uncertainty measure and allows quantitative values to be inferred by the discovered fuzzy rules. The domain expert from the organization is interested at finding how the response of a donor is affected by his demographics (e.g., age, education, occupation, salary, etc.) and his donation histories (e.g., the average yearly donation frequency, the average monthly donation amount, etc.). We applied the proposed approach to the donor database in order-to mine a set of fuzzy rules. The experimental results showed that our approach is able to achieve accurate prediction of donor´s response. By examining the discovered rules, the domain expert has found some unexpected patterns and formulated some direct mail strategies for future use.
Keywords :
data mining; fuzzy logic; marketing data processing; uncertainty handling; very large databases; charitable organization; charity; data association relationships; data mining; demographics; direct marketing; donor database; experimental results; fuzzy rule mining; linguistic terms; uncertainty measure; Data mining; Databases; Demography; Frequency; Fuzzy sets; History; Humans; Knowledge representation; Measurement uncertainty; Remuneration;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Cognitive Informatics, 2002. Proceedings. First IEEE International Conference on
Print_ISBN :
0-7695-1724-2
Type :
conf
DOI :
10.1109/COGINF.2002.1039304
Filename :
1039304
Link To Document :
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