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Application of Silence Customer Segmentation in Securities Industry Based on Fuzzy Cluster Algorithm

机译:基于模糊聚类算法的沉默客户细分在证券行业中的应用

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Due to the unique advantage of soft classification, fuzzy cluster analysis can realize the customer segmentation and improve customer relationship according to the uncertainty and fuzziness of customer's behavior. Based on the research approach, this study applies the fuzzy cluster algorithm to silence customers' segmentation in securities industry and to identify the customers with similar characteristics and value. This study proposes a multi-dimensional segmentation model for silence customers with 8 indicators of industry characteristics based on the theory of Customer Relationship Management (CRM), and carries out an empirical research on real customer data and transaction data by the fuzzy clustering analysis of data mining, then identifies different groups of silence customers with similar characteristics. Filially, some marketing strategies are put forward in correspondence with different traits and preferences with the purpose of waking them up.
机译:由于软分类的独特优势,模糊聚类分析可以根据客户行为的不确定性和模糊性来实现客户细分并改善客户关系。在此研究方法的基础上,本研究应用模糊聚类算法使证券行业的客户细分保持沉默,并识别出具有相似特征和价值的客户。本研究基于客户关系管理(CRM)理论,提出了具有8个行业特征指标的沉默客户多维细分模型,并通过数据的模糊聚类分析对真实客户数据和交易数据进行了实证研究。挖掘,然后识别具有相似特征的不同沉默客户组。最后,针对不同的性格和偏好提出了一些营销策略,以唤醒他们。

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