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Pricing Information Goods in Distributed Agent-Based Information Filtering

机译:基于分布式代理的信息过滤中的信息产品定价

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Most approaches to information filtering taken so far have the underlying hypothesis of potentially delivering notifications from every information producer to subscribers; this exact information filtering model creates efficiency and scalability bottlenecks and incurs a cognitive overload to the user. In this work we put forward a distributed agent-based information filtering approach that avoids information overload and scalability bottlenecks by relying on approximate information filtering. In approximate information filtering, the user subscribes to and monitors only carefully selected data sources, to receive interesting events from these sources only. In this way, system scalability is enhanced by trading recall for lower message traffic, information overload is avoided, and information producers are free to specialise, build their subscriber base and charge for the delivered content. We define the specifics of such an agent-based architecture for approximate information filtering, and introduce a novel agent selection mechanism based on the combination of resource selection, predicted publishing behaviour, and information cost to improve publisher selection. To the best of our knowledge, this is the first approach to model the cost of information in a filtering setting, and study its effect on retrieval efficiency and effectiveness.
机译:到目前为止,大多数信息过滤方法都具有潜在的假设,即潜在地将通知从每个信息生产者传递到订户。这种精确的信息过滤模型会造成效率和可伸缩性瓶颈,并给用户带来认知上的负担。在这项工作中,我们提出了一种基于代理的分布式信息过滤方法,该方法通过依赖近似信息过滤来避免信息过载和可伸缩性瓶颈。在近似信息过滤中,用户仅订阅和监视精心选择的数据源,以仅从这些源接收有趣的事件。通过这种方式,通过以较低的消息流量进行交易召回来增强系统可伸缩性,避免了信息过载,并且信息生产者可以自由地进行专业化,建立其订户基础并为所交付的内容付费。我们定义了这种基于代理的体系结构的详细信息,用于近似信息过滤,并基于资源选择,预测的发布行为和信息成本的组合,介绍了一种新颖的代理选择机制,以改善发布者的选择。据我们所知,这是在过滤设置中对信息成本进行建模并研究其对检索效率和有效性的影响的第一种方法。

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