LAPSE:2023.34170
Published Article
LAPSE:2023.34170
An App-Based Recommender System Based on Contrasting Automobiles
April 25, 2023
Product recommendation systems are essential for enhancing customer experience, and integrating them with mobile apps is crucial for improving usability and fostering user engagement. This study proposes a hybrid approach that utilizes comparative facts from pairwise comparison data and comparison lists, with association rules as the method to formulate the recommendation system. The study employs a dataset from the New-Cars Database app, comprising 30,867 vehicle comparisons made by 5327 users across 40 car brands and 870 cars from 30 January 2015 to 2 April 2015. Two metrics are developed to measure the system’s output under varying support and confidence thresholds. The findings suggest that adjusting the support and confidence values can improve the breadth and depth of product recommendations. In addition, the unit of analysis can affect the recommendation system’s output, with comparison lists supplementing and expanding the exploration of potential outcomes. The proposed hybrid approach aims to provide more reliable and comprehensive product recommendations by combining both approaches and has implications for both academic and managerial contexts by facilitating the development of effective recommendation systems.
Keywords
association rule, Big Data, data mining, mobile application, recommendation system
Subject
Suggested Citation
Liu HW, Wu JZ, Wu FL. An App-Based Recommender System Based on Contrasting Automobiles. (2023). LAPSE:2023.34170
Author Affiliations
Liu HW: Department of Business Administration, School of Business, Soochow University, Taipei 100, Taiwan [ORCID]
Wu JZ: Department of Business Administration, School of Business, Soochow University, Taipei 100, Taiwan [ORCID]
Wu FL: Department of Business Administration, School of Business, Soochow University, Taipei 100, Taiwan
Journal Name
Processes
Volume
11
Issue
3
First Page
881
Year
2023
Publication Date
2023-03-15
Published Version
ISSN
2227-9717
Version Comments
Original Submission
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PII: pr11030881, Publication Type: Journal Article
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LAPSE:2023.34170
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doi:10.3390/pr11030881
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Apr 25, 2023
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CC BY 4.0
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Apr 25, 2023
 
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