根据所需的标准对Web用户进行特征描述

M. Shih, Syun-Sian Huang
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引用次数: 1

摘要

为了运营一个成功的网站,网站所有者了解用户的意图和愿望是至关重要的。通过获取这些信息,他们可以提供更好的服务,并加强营销策略,以实现这一目标。Web使用挖掘(WUM)是一种可以帮助人们探索用户浏览使用的有用模式的应用程序。传统上,它从Web日志数据中发现知识。然而,在一些网站上,他们提供了一项服务,用户可以从字段中选择或输入一些所需的标准,这些信息将被保存在网上。这些标准显示了该用户所需的某个对象的意图或愿望。有兴趣的人士可输入查询或浏览类别,以找到这些张贴的个案。本文采用聚类方法,根据收集到的这些要求标准对网站中相似的用户进行分组。当数据集非常庞大时,很难发现单个群体的特征。因此,将关联规则挖掘应用于每个集群。生成的规则可以推断出每组用户的兴趣和特征。最后,针对每个群体的用户做出营销决策。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Characterizing Web users based on their required criteria
In order to run a successful website, it is significantly crucial for website owners to understand users' intentions and desires. By capturing these information, they can provide better service and enhance marketing strategy to achieve this goal. Web usage mining (WUM) is an application that can help people to explore the useful patterns of users' browsing usages. Traditionally, it discovers knowledge from Web log data. However in some websites, they offer a service that users can select or enter some required criteria from fields, and these information will be saved online. These criteria show the intentions or desires of a certain object required for this user. Interested persons can enter queries or browse categories to find these posted cases. In this paper, clustering method is applied to group similar users based on these collected required criteria in a website. When dataset is huge, it is difficult to find the characteristics of individual group. Thus association rule mining is applied to each cluster. The generated rules can be inferred to identify the interests and characteristics of users in each group. Finally, marketing decision can be made especially for each group's users.
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