Clustering Menggunakan Algoritma K-Medoids Untuk Menentukan Strategi Promosi Sekolah Tinggi Teknologi Ronggolawe Cepu

Muhammad Abdimas Khalifuddin, Retno Wahyusari
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Abstract

Efforts to create an effective and efficient marketing management strategy require a detailed and objective understanding of the market in which they operate. In analyzing this problem, the field of marketing management often overlaps the field of strategic planning. Marketing strategy consists of making decisions about the company's marketing costs, marketing mix, and marketing location. Marketing management must decide what costs need to be spent on marketing and how to allocate the entire marketing budget to various tools in the marketing mix. New student data in the Cluster using the K-medoids Algorithm method with the help of Rapid Minner, as well as knowing the level of correlation with the Davies Bouldin Index (DBI). The results of this research are from 118 data, using 2 clusters produces 0 clusters of 72 and 1 cluster of 46 and 3 clusters produce 0 clusters with 72 members, 1 cluster with 3 members and 2 clusters with 43 members. The DBI value with 2 clusters is 1.04 and 3 clusters is 1.01.
使用 K-Medoids 算法进行聚类以确定荣戈拉韦塞普理工学院的推广战略
要制定切实有效的营销管理战略,就必须对所处的市场有详细而客观的了解。在分析这一问题时,营销管理领域往往与战略规划领域重叠。营销战略包括对公司的营销成本、营销组合和营销地点做出决策。营销管理必须决定需要在营销上花费哪些成本,以及如何将全部营销预算分配给营销组合中的各种工具。在 Rapid Minner 的帮助下,使用 K-medoids 算法方法对群组中的新生数据进行了分析,同时了解了与戴维斯-博尔丁指数(DBI)的相关程度。这项研究的结果来自 118 个数据,使用 2 个聚类产生 0 个 72 人的聚类和 1 个 46 人的聚类,使用 3 个聚类产生 0 个 72 人的聚类、1 个 3 人的聚类和 2 个 43 人的聚类。2 个聚类的 DBI 值为 1.04,3 个聚类的 DBI 值为 1.01。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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