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GenderPredictor: A Method to Predict Gender of Customers from E-commerce Website

机译:GenderPredictor:一种从电子商务网站预测客户性别的方法

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摘要

While e-commerce has grown substantially over last several years, more and more people are utilizing this popular channel to purchase products and services. Thus the ability to predict user demographics, including gender, age and location has important applications in advertising, personalization, and recommendation. In this paper, we aim to automatically predict the users' genders based on their product viewing logs. Our study is based on a dataset from PAKDD'15 data mining competition. We propose an architecture for gender prediction, which consists of the "machine learning model" and the "label updating function". The experimental results show that our proposed method significantly outperform baseline methods. A detailed analysis of features provides an entertaining insight into behavior variation on female and male users.
机译:尽管电子商务在过去几年中有了长足的发展,但越来越多的人正在利用这种流行的渠道购买产品和服务。因此,预测用户人口统计信息(包括性别,年龄和位置)的能力在广告,个性化和推荐中具有重要的应用。在本文中,我们旨在根据用户的产品查看日志自动预测用户的性别。我们的研究基于PAKDD'15数据挖掘竞赛的数据集。我们提出了一种用于性别预测的体系结构,该体系结构由“机器学习模型”和“标签更新功能”组成。实验结果表明,我们提出的方法明显优于基线方法。对功能的详细分析提供了有趣的洞察力,可了解女性和男性用户的行为变化。

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