A recommender for targeted advertisement of unsought products in e-commerce

Koung Lung Lin*, Jane Yung Jen Hsu, Han Shen Huang, Chun Nan Hsu

*Corresponding author for this work

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

11 Scopus citations

Abstract

Recommender systems are a powerful tool for promoting sales in electronic commerce. An effective shopping recommender system can help boost the retailer's sales by reminding customers to purchase additional products originally not on their shopping lists. Existing recommender systems are designed to identify the top selling items, also called hot sellers, based on the store's sales data and customer purchase behaviors. It turns out that timely reminders for unsought products, which are cold sellers that the consumer either does not know about or does not normally think of buying, present great opportunities for significant sales growth. In this paper, we propose the framework and process of a recommender system that identifies potential customers of unsought products using boosting-SVM. The empirical results show that the proposed approach provides a promising solution to targeted advertisement for unsought products in an E-Commerce environment.

Original languageEnglish
Title of host publicationProceedings - Seventh IEEE International Conference on E-Commerce Technology, CEC 2005
Pages101-109
Number of pages9
DOIs
StatePublished - 2005
Externally publishedYes
Event7th IEEE International Conference on E-Commerce Technology, CEC 2005 - Munich, Germany
Duration: 19 07 200522 07 2005

Publication series

NameProceedings - Seventh IEEE International Conference on E-Commerce Technology, CEC 2005
Volume2005

Conference

Conference7th IEEE International Conference on E-Commerce Technology, CEC 2005
Country/TerritoryGermany
CityMunich
Period19/07/0522/07/05

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