算法产品推荐对消费者冲动购买意愿的影响

Mingge Song
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引用次数: 0

摘要

随着互联网和电子商务的发展,越来越多的信息呈现在公众的视野中。由于人的经验和时间有限,处理大量信息的效率往往会显著降低。基于算法的产品推荐是一种基于数据挖掘和机器学习技术的推荐系统。它通过分析用户的历史行为、个人偏好和其他因素,推荐用户可能感兴趣的产品。算法产品推荐是为了解决消费者在大量产品中难以选择的问题。一个电子商务网站需要推荐用户可能感兴趣的产品,但由于产品数量众多,很难满足每个用户的个性化需求。电子商务网站利用算法产品推荐技术,根据用户的历史行为和个人偏好,向用户推荐可能感兴趣的产品。这不仅提高了用户的购物体验,也增加了电子商务网站的销售额。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The Impact of Algorithmic Product Recommendation on Consumers' Impulse Purchase Intention
With the development of the Internet and e-commerce, more and more information is presented in the public eye. Due to the limited human experience and time, the efficiency of processing massive amounts of information often decreases significantly. Algorithm based product recommendation is a recommendation system based on data mining and machine learning technology. It recommends products that users may be interested in by analyzing their historical behavior, personal preferences, and other factors. Algorithm product recommendation is generated to solve the problem of consumers facing difficulty in selecting a large number of products. An e-commerce website needs to recommend products that users may be interested in, but due to the large number of products, it is difficult to meet the personalized needs of each user. By using algorithmic product recommendation technology, e-commerce websites can recommend products that users may be interested in based on their historical behavior and personal preferences. This not only improves the shopping experience of users, but also increases the sales volume of e-commerce websites.
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