社交网络中语义增强的广告推荐系统

Ali Pazahr, J. Zapater, Francisco García-Sánchez, C. Botella, R. J. Martínez
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引用次数: 0

摘要

为社会制度提供建议已经成为学术界和工业界关注的焦点一段时间了。Facebook、LinkedIn、Myspace等社交网络巨头都渴望找到推荐的灵丹妙药。这些应用程序允许客户通过他们日常的社会协作通信来塑造一些特定的社会网络。与此同时,今天的在线体验越来越依赖于社会联系。社交网络的主要关注点之一是建立一个成功的商业计划,以从社交网络中获得更多的利润。在每个平台上开展业务都需要一个好的商业计划和一些重要的解决方案,例如为其他公司的产品或服务做广告,这将是对那些外部业务的一种营销。在这项研究中,一个系统的哲学,谈到一个全面的结构,广告推荐系统的社交网络将提出。该框架使用语义逻辑来提供推荐的产品,这种功能可以将框架的推荐部分与传统的推荐方法区分开来。简而言之,本研究提出的框架已经被设计成一种形式,可以以一种简单有效的方式为社交网络用户生成广告推荐。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Semantically-enhanced advertisement recommender systems in social networks
Providing recommendations on social systems has been in the spotlight of both academics and industry for some time already. Social network giants like Facebook, LinkedIn, Myspace, etc., are eager to find the silver bullet of recommendation. These applications permit clients to shape a few certain social networks through their day-by-day social cooperative communications. In the meantime, today's online experience depends progressively on social association. One of the main concerns in social network is establishing a successful business plan to make more profit from the social network. Doing a business on every platform needs a good business plan with some important solutions such as advertise the products or services of other companies which would be a kind of marketing for those external businesses. In this study a philosophy of a system speaking to of a comprehensive structure of advertisement recommender system for social networks will be presented. The framework uses a semantic logic to provide the recommended products and this capability can differentiate the recommender part of the framework from classical recommender methods. Briefly, the framework proposed in this study has been designed in a form that can generate advertisement recommendations in a simplified and effective way for social network users.
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