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首页> 外文期刊>International Journal of Business Intelligence and Data Mining >A parallel approach for web session identification to make recommendations efficient
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A parallel approach for web session identification to make recommendations efficient

机译:Web会话识别的并行方法,提出建议效率

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摘要

A sequence of web pages visited by the clients over a particular timeframe is called a session. Web log mining is done to analyse the behaviour of the users, using the web access patterns. Sessions are identified as the significant part of the construction of the recommendation model. The novel part of the work makes use of backward moves made by the user, considering both the referrer url and the requested url extracted from the extended web log for session identification which is not taken into consideration in the existing heuristic-based approach. Two noteworthy issues in session identification are: 1) framing excessively numerous smaller length sessions; 2) taking longer time for identifying the sessions. In the proposed work, the length of the sessions are maximised using split and merge technique and the time taken for session identification is reduced using thread parallelisation. For efficient storage and retrieval of information the hash map data structure is used. The proposed work shows significant improvement in performance in terms of execution time, standard error, correlation coefficient and the objective value.
机译:客户端在特定时间范围内访问的一系列网页称为会话。使用Web访问模式完成Web日志挖掘以分析用户的行为。会议被确定为建议模型构建的重要部分。该工作的新颖部分利用用户制作的向后移动,考虑到从扩展的Web日志中提取的参考网址和所请求的URL,以便在现有的基于启发式的方法中考虑到会话标识。会话识别中的两个值得注意的问题是:1)框架过度众多较小的长度会话; 2)需要更长时间识别会话。在所提出的工作中,使用分割和合并技术最大化会话的长度,并且使用线程平行化减少会话识别所花费的时间。有效存储和检索信息,使用哈希地图数据结构。所提出的工作在执行时间,标准误差,相关系数和客观值方面表现出显着改善。

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