克服基于邻域的在线购物用户推荐协同过滤

G. Maheshwari, N. Suguna
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引用次数: 0

摘要

目前,由于信息过载,个人用户无法获得自己指定的相关产品。因此,对个人用户的推荐可以减少用户在购买产品时的负担。然而,本文引入了一些算法来提高聚合多样性概念的质量。通过改进这一概念,可以得到某些产品的总体多样性。在本文中,我探讨了从单独排序和显示的项目中获得的总体多样性概念。这将在电子商务和E-Bay等应用中更加有效。在提出的方法中,向用户提供有效的建议,从而实现所需产品的总体多样性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Overcoming neighborhood based collaborative filtering in the online shopping for the user recommendation
Nowadays due to the information overload the individual users did not obtaining their own relevant products which they are specified. So the recommendations to the individual users can reduce the load to the user whenever they are buying the products. However, certain algorithms where introduced to improve the quality of the aggregate diversity concept. By improving this concept the aggregate diversity of the certain products can be obtained. In this paper I have explored the aggregate diversity concepts which are obtained from the items that are individually ranked and displayed. This will be more effective in the application such as E-Commerce and E-Bay. In the proposed approach efficient recommendations are obtained to the user by which the aggregate diversity is achieved with the required products.
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