首页> 外文会议>e-Education, e-Business, e-Management, and e-Learning, 2010. IC4E '10 >A Hybrid Data Mining Model for Effective Citizen Relationship Management: A Case Study on Tehran Municipality
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A Hybrid Data Mining Model for Effective Citizen Relationship Management: A Case Study on Tehran Municipality

机译:有效公民关系管理的混合数据挖掘模型:以德黑兰市为例

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Currently, many governments are actively promoting implementation of ICT to be more citizen-oriented. For effective citizen relationship management, it is important to identify the needs of different citizen groups and to provide respective services for each group accordingly. In this way, the application of data mining tools would be very useful to understand citizen's needs. In this paper, focusing on the CiRM concept, we apply a data mining framework on the database of Tehran municipality. This framework consists of clustering and the association rule to improve citizen satisfaction. The main objective is to find the factors those affect the rate of satisfaction. Firstly, we use the K-means algorithm to cluster the subjects that cause citizens complaint. Every data point is identified in terms of the following features: the frequency, the number of days that at least one complaint occurred and the interval time between the first and the latest time of each subject during a season. Secondly, the association rule is used to identify the factors that affect the rate of satisfaction in the cluster of subjects that occur regularly during the season and have a high number of complaints. The results of the research are very useful to build a strategy recommendation system in order to improve the rate of citizens' satisfaction. This study could be notable as one of the first studies on using data mining tools in CiRM.
机译:当前,许多政府正在积极促进信息通信技术的实施,使其更加面向公民。对于有效的公民关系管理,重要的是确定不同公民群体的需求,并相应地为每个群体提供相应的服务。这样,数据挖掘工具的应用对于了解公民的需求将非常有用。在本文中,针对CiRM概念,我们在德黑兰市的数据库中应用了数据挖掘框架。该框架包括聚类和关联规则,以提高公民满意度。主要目的是找到影响满意度的因素。首先,我们使用K均值算法对引起公民投诉的主题进行聚类。根据以下特征来标识每个数据点:频率,至少一个投诉发生的天数以及每个对象在一个季节中第一次与最近一次之间的间隔时间。其次,关联规则用于确定影响对象群体满意率的因素,这些群体在季节中经常发生并且有很多抱怨。研究结果对于建立战略推荐系统以提高公民的满意率非常有用。这项研究作为在CiRM中使用数据挖掘工具的首批研究之一可能是值得注意的。

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