面向方面推荐系统中的安全管理

Punam Bedi, Sumit Agarwal
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引用次数: 18

摘要

推荐系统广泛用于智能应用程序,帮助用户在决策过程中从潜在的大量替代产品或服务中选择一个项目。推荐系统将用户的个人资料与一些参考特征进行比较。这些特征可能来自信息项(基于内容的方法)或用户的社会环境(协作过滤方法),或者两者的组合(混合过滤方法)。最近的研究表明,协作推荐系统非常容易受到配置文件注入攻击。因此,需要安全机制来保护推荐系统免受这些攻击。面向方面推荐系统(AORS)是一种采用面向方面编程(AOP)概念构建安全方面的多智能体系统(MAS)。采用传统的面向智能体的方法实现推荐系统的安全性,不仅存在代码分散和代码纠缠的问题,而且安全性问题的执行力较弱。本文以模块化的方式将安全横切作为方面处理,以消除散射和缠结问题。为图书推荐系统设计并开发了AORS的原型。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Managing Security in Aspect Oriented Recommender System
Recommender systems are widely used in intelligent applications which assist users in a decision-making process to choose one item amongst a potentially overwhelming set of alternative products or services. A recommender system compares the user's profile to some reference characteristics. These characteristics may be from the information item (the content-based approach) or the user's social environment (the collaborative filtering approach) or a combination of both (Hybrid-filtering approach). Recent research shows that collaborative recommender systems are highly vulnerable to profiles injection attacks. Therefore, security mechanisms are needed for protecting the recommender systems against these attacks. Aspect Oriented Recommender System (AORS) is a proposed multi agent system (MAS) that uses the concept of Aspect Oriented Programming (AOP) for building security aspect. Implementing the security in recommender system using a conventional agent oriented approach results not only with the problem of code scattering and code tangling, but also results in weaker enforcement of security concern. In this paper, security crosscutting is handled as aspect in AORS in a modular way to remove scattering and tangling problems. The prototype of AORS has been designed and developed for a book recommender system.
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