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Gordon, Ákos
Seprenyi, Péter
Szabó, Tamás
Tarczali, Tünde
Petőné Csuka, Ildikó
2025-12-04T11:03:07Z
2025-12-04T11:03:07Z
2025
http://hdl.handle.net/20.500.14044/36324
Product matching is a fundamental challenge in e-commerce, where the task is to determine whether two product listings from different sources refer to the same real- world item. Accurate identification is essential for price monitoring, stock management, and competitive intelligence, yet traditional approaches based on textual similarity or structured identifiers often struggle with incomplete and heterogeneous data. This paper presents RePrice, a hybrid product matching system that integrates text, attribute, and image similarity within a unified decision pipeline. The approach combines deterministic rules with AI-driven scoring, leveraging semantic embeddings and CLIP-based image features. Experiments on 29,000 product listings from 23 platforms demonstrate that multimodal integration significantly improves performance, achieving an F1-score of 0.75 compared to 0.42 for a text-only baseline. We analyze the contribution of each modality, provide category-level results with error analysis, and discuss the scalability and robustness of the system for real-world e-commerce applications.hu_HU
dc.formatPDFhu_HU
enhu_HU
Product Matching with Multimodal Integration for E-Commerce Price Intelligencehu_HU
Open accesshu_HU
Óbudai Egyetemhu_HU
2025 November 13.hu_HU
Budapesthu_HU
Alba Regia Műszaki Karhu_HU
Óbudai Egyetemhu_HU
Műszaki tudományok - informatikai tudományokhu_HU
product matchinghu_HU
price intelligencehu_HU
machine learninghu_HU
CLIPhu_HU
multimodal integrationhu_HU
Konferenciaközleményhu_HU
PROCEEDINGS of 20th International Symposium on Applied Informatics and Related Areashu_HU
local.tempfieldCollectionsKönyvrészletekhu_HU
10.12700/AIS.2025.020
20.hu_HU
Kiadói változathu_HU
6 p.hu_HU
AIS 2025 20th International Symposium on Applied Informatics and Related Areashu_HU
978-963-449-405-8hu_HU
Óbudai Egyetemhu_HU
Budapesthu_HU


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