基于RFM和Mean Shift聚类的顾客农游度假行为分析

Muhammad Ruslan Maulani, Syafrial Fachri Pane, R. M. Awangga, D. Wijayanti, W. Caesarendra
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摘要

本文基于近期、频率和货币(RFM)方法对农业旅游中顾客预订行为进行了分析研究。2016年1 - 12月的历史数据采集自Rancabali tour,用于RFM分析。在RFM分析之前,使用平均移位聚类将数据分为频率和货币。这一分析将为农业旅游N8基于历史数据预测未来的客户需求提供指导。RFM方法显示,Rancabali旅游总是挤满了游客,直到每个月的月底。游客人数最多的是1月、7月和12月。此外,12月份的收入最高。平均位移显示了客户频率的基于收入的聚类。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An Analysis of Customer Agrotourism Resort Behaviour based on RFM and Mean Shift Clustering
This paper presents an analysis study of customer reservation behavior in Agrotourism N8 based on recency, frequency and monetary (RFM) method. The historical data from January to December 2016 were collected from Rancabali tour and used for RFM analysis. Prior to the RFM analysis, the data were grouped into frequency and monetary using mean shift clustering. This analysis will provide the guideline to Agrotourism N8 to predict the customer needs in the future based on historical data. The RFM method shows that Rancabali tour always crowded with visitors until the end of each month. The highest number of visitors occurred in January, July, and December. Moreover, The highest revenue earned in December. The mean shift shows the income-based cluster by the frequency of customer.
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