Please use this identifier to cite or link to this item: https://hdl.handle.net/10316/103743
Title: Wine Ontology Influence in a Recommendation System
Authors: Oliveira, Luís
Silva, Rodrigo Rocha 
Bernardino, Jorge 
Keywords: wine ontology; Weka clustering algorithms; recommendation system; ontology influence; classification via clustering; machine learning
Issue Date: 2021
Publisher: MDPI
Serial title, monograph or event: Big Data and Cognitive Computing
Volume: 5
Issue: 2
Abstract: Wine is the second most popular alcoholic drink in the world behind beer. With the rise of e-commerce, recommendation systems have become a very important factor in the success of business. Recommendation systems analyze metadata to predict if, for example, a user will recommend a product. The metadata consist mostly of former reviews or web traffic from the same user. For this reason, we investigate what would happen if the information analyzed by a recommendation system was insufficient. In this paper, we explore the effects of a new wine ontology in a recommendation system. We created our own wine ontology and then made two sets of tests for each dataset. In both sets of tests, we applied four machine learning clustering algorithms that had the objective of predicting if a user recommends a wine product. The only difference between each set of tests is the attributes contained in the dataset. In the first set of tests, the datasets were influenced by the ontology, and in the second set, the only information about a wine product is its name. We compared the two test sets’ results and observed that there was a significant increase in classification accuracy when using a dataset with the proposed ontology. We demonstrate the general applicability of the methodology to other cases, applying our proposal to an Amazon product review dataset.
URI: https://hdl.handle.net/10316/103743
ISSN: 2504-2289
DOI: 10.3390/bdcc5020016
Rights: openAccess
Appears in Collections:I&D CISUC - Artigos em Revistas Internacionais

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