CrowdDepict: Know What and How to Generate Personalized and Logical Product Description using Crowd intelligence

Qiuyun Zhang, Bin Guo, Sicong Liu, Zhiwen Yu

科研成果: 书/报告/会议事项章节会议稿件同行评审

摘要

A compelling product description on e-commerce platforms (e.g., Amazon) is vital in explaining the untouchable product and increasing consumers' purchase rate. However, hand-written product descriptions for each category of products is highly time-consuming and not professional due to the lack of related marketing knowledge. Prior works adopt either predefined templates or data-driven models to automatically generate the personalized product description, but the quality (e.g., readability, flexibility) of generated text is always constrained by the lack of personalized production description training samples. To further improve the product description quality, we propose a personalized product description generation model named CrowdDepict focusing on what proper permutation of attribute words should be taken to generate the description and how to describe the attribute words. Particularly, CrowdDepict integrates an Attribute Permutation-insensitive Encoder to enable the model to generate logical description with an appropriate attribute keywords organization without requiring a re-organized input attribute keywords and a Crowd Intelligence-aware Comment Encoder to capture crowd intelligence about how the attributes of products are described in real-world user comments. Experiment results demonstrate that CrowdDepict outperforms the baseline on various metrics, especially an improvement of 34% over state-of-the-art relative to BLEU, which shows that our model can generate personalized product description that consists of correct product attributes of consumer interests and the necessary product information.

源语言英语
主期刊名Proceedings - 20th IEEE International Conference on Data Mining Workshops, ICDMW 2020
编辑Giuseppe Di Fatta, Victor Sheng, Alfredo Cuzzocrea, Carlo Zaniolo, Xindong Wu
出版商IEEE Computer Society
535-542
页数8
ISBN(电子版)9781728190129
DOI
出版状态已出版 - 11月 2020
活动20th IEEE International Conference on Data Mining Workshops, ICDMW 2020 - Virtual, Sorrento, 意大利
期限: 17 11月 202020 11月 2020

出版系列

姓名IEEE International Conference on Data Mining Workshops, ICDMW
2020-November
ISSN(印刷版)2375-9232
ISSN(电子版)2375-9259

会议

会议20th IEEE International Conference on Data Mining Workshops, ICDMW 2020
国家/地区意大利
Virtual, Sorrento
时期17/11/2020/11/20

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