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Can Web-Based Recommendation Systems Afford Deep Models: a context-based approach for efficient model-based reasoning

机译:基于Web的推荐系统能否满足Afford Deep Models:基于上下文的方法,可以进行有效的基于模型的推理

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Web-based product and service recommendation systems have become ever popular on-line business practice with increasing emphasis on modeling customer needs and providing them with targeted or personalized service solutions in real-time interaction. Almost all the commercial web service systems adopt some kind of simple customer segmentation models and shallow pattern matching or rule-based techniques for high performance. The models built based on these techniques though very efficient have a fundamental limitation in their ability to capture and explain the reasoning in the process of determining and selecting appropriate services or products. However, using deep models (e.g. semantic networks), though desirable for their expressive power, may require significantly more computational resources (e.g. time) for reasoning. This can compromise the system performance. This paper reports on a new approach that represents and uses contextual information in semantic netbased models to constrain and prune potentially very large search space, which results in more efficient reasoning and much improved performance in terms of speed and selectivity as evidenced by the evaluation results.
机译:基于Web的产品和服务推荐系统已成为越来越流行的在线业务实践,并且越来越强调对客户需求进行建模并在实时交互中为他们提供针对性或个性化的服务解决方案。几乎所有的商业Web服务系统都采用某种简单的客户细分模型和浅模式匹配或基于规则的技术来实现高性能。基于这些技术构建的模型虽然非常有效,但是在确定和选择合适的服务或产品的过程中,它们捕获和解释推理的能力受到了根本性的限制。然而,尽管深层模型(例如语义网络)对于它们的表达能力而言是理想的,但是可能需要大量的计算资源(例如时间)来进行推理。这可能会损害系统性能。本文报告了一种新方法,该方法在基于语义网络的模型中表示和使用上下文信息来约束和修剪可能非常大的搜索空间,这将使评估更加有效,并在速度和选择性方面大大提高性能。

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