Complementary Product Recommendation using Siamese Neural Network

Roshan Rai, Monika Patel, Poonam Varma, Danish Parvaiz, Santosh V. Chapaneri, Deepak Jayaswal
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Abstract

Online catalogs on e-commerce websites are sometimes too overwhelming where customers have a choice of as much variety and richness to find what they need in one place. In e-commerce websites, recommendation systems are crucial since they enhance the user experience by assisting visitors in finding what they want by recommending products. These suggestions can be based on user traits, demographics, past purchases, or search history. In this paper, we focus on identifying a complementary relationship between products, we have made a content-based recommendation system for discovering complementary products using Siamese Neural Networks (SNN). Algorithms like this have a lot of potential to increase the average purchase amount on an e-commerce website by recommending comparable products. After implementing the network we propose an extension of the network of the SNN approach to handling more products and will improve the time for recommending products by the KNN algorithm.
使用暹罗神经网络的补充产品推荐
电子商务网站上的在线目录有时太过庞大,顾客有太多种类和丰富的选择,在一个地方找到他们需要的东西。在电子商务网站中,推荐系统是至关重要的,因为它们通过推荐产品来帮助访问者找到他们想要的东西,从而增强了用户体验。这些建议可以基于用户特征、人口统计、过去的购买或搜索历史。在本文中,我们专注于识别产品之间的互补关系,我们使用暹罗神经网络(SNN)制作了一个基于内容的推荐系统来发现互补产品。这样的算法有很大的潜力,可以通过推荐同类产品来增加电子商务网站的平均购买量。在实现该网络后,我们提出了SNN方法的网络扩展,以处理更多的产品,并将通过KNN算法改善推荐产品的时间。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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