基于K-Means的谷物数据davis - bouldin指数聚类评价

Akhilesh Kumar Singh, Shantanu Mittal, P. Malhotra, Yash Srivastava
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引用次数: 31

摘要

谷物作为人类饮食的主要成分已有数百年的历史。印度谷类作物为人类饮食提供重要的营养和能量。本研究论文背后的动机是在谷物数据集上分发应用K-Means聚类的研究发现,并区分在束数上发现的结果,以确定理想或最佳的组数是3还是5。这种推测是通过应用独特的聚类测试(同样在本文中重新排序)和可视化来实现的。上述解决方案通过探索性的分析,在模型拟合之后进行结果测试,将我们推向明确的终点。我们的探索使用的语言是R。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Clustering Evaluation by Davies-Bouldin Index(DBI) in Cereal data using K-Means
Cereals grains have been used as a principle ingredient of human diet for hundreds of years. Indian cereal crops provide vital nutrients and energy to the human diet. The motivation behind this research paper is to distribute the research discoveries of applying K-Means clustering, on a cereal dataset and to differentiate the outcomes found on the number of bunches to identify whether the ideal or best number of groups to be 3 or 5. This speculation is achieved by applying distinctive clustering tests (likewise reordered in the paper), and visualizations. The aforementioned resolution by doing exploratory analysis, at that point modeled fitting followed by result testing, driving us to a definite end. The language utilized for our exploration is R.
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