Automated soil clustering for crops cultivation

A. Islam, Akash Bhuiyan, Junaeid Ahmed, Md. Aminul Islam, M. N. Huda
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引用次数: 1

Abstract

This paper focuses on the idea of cultivating a certain crop to a certain District-Sub District-Union of Bangladesh. The cluster and classification are done first on the basis of soil features and then comparing the soil features with the common features of the corps to be cultivated, is being searched for. Here k-mean Clustering, Fuzzy c-Mean clustering and SOM (Self-Organizing Map) based clustering algorithms are used. These algorithms are analyzed according to their results to find the better classification, by which one can find the most perfectly matched cultivable crops in a certain area. The big challenge of this paper is data collection, which was gathered from Sub-districts level books containing soil and crops features, both organic and physical property of Bangladeshi soil. These books were borrowed from Soil Research and Development Institute (SRDI), Khamarbari, Dhaka, Bangladesh. In this study, soil data of Louhogonj Sub-district of Munsigonj District in Bangladesh are analyzed.
用于作物种植的自动土壤聚类
本文主要研究孟加拉国某一地区-街道-联盟种植某一作物的思路。首先根据土壤特征进行聚类和分类,然后将土壤特征与待栽培兵团的共同特征进行比较,寻找土壤特征。这里k-mean集群、模糊c-Mean聚类和基于SOM(自组织映射)的聚类算法。根据这些算法的结果对其进行分析,以找到更好的分类,从而在一定区域内找到最完美匹配的可种植作物。本文最大的挑战是数据收集,这些数据收集自街道级别的书籍,其中包含孟加拉国土壤的有机和物理性质的土壤和作物特征。这些书是从孟加拉国达卡Khamarbari的土壤研究与发展研究所(SRDI)借来的。本研究对孟加拉国Munsigonj区Louhogonj街道的土壤数据进行了分析。
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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