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Two-step Algorithm for Clustering Farm Lands Data

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dc.contributor.author Ahmed, Amel Suleiman
dc.contributor.author supervisor - Mohamed Elhafiz Mustafa Musa
dc.contributor.author supervisor - Mohamed Elhafiz Mustafa Musa
dc.date.accessioned 2014-08-26T06:49:02Z
dc.date.available 2014-08-26T06:49:02Z
dc.date.issued 2013-11
dc.identifier.citation Ahmed,Amel Suleiman.Two-step Algorithm for Clustering Farm Lands Data - Case Study:Khartoum State Farms/Amel Suleiman Ahmed ؛ Mohamed Elhafiz Mustafa .-Khartoum : sudan university of science and technology, computer science,2013.-45p:ill;28cm;M.Sc. en_US
dc.identifier.uri http://repository.sustech.edu/handle/123456789/6857
dc.description Thesis en_US
dc.description.abstract Cluster analysis is one of major data mining methods; this method is a convenient for identifying homogenous groups of objects called clusters. Two-Step is a clustering algorithm primarily designed to analyze large datasets, Two-step deals with categorical and real valued data and it also finds the optimal number of clusters. In this research the goal is to study the practical performance of two-step algorithm using Khartoum state farms data. In this study two-step clustering method is used to group Khartoum state farms data into clusters base on procedure can apply on these farms and number of experiments conducted (three experiments). Each experiments are generate number of interesting. Moreover, data preprocessing carry out on the raw data before experiments. From the second experiment the records of waiver procedure split in two cluster 1, 2. Records of waiver procedure in cluster 1 are represent farms owned by persons and association, the remain records in cluster 2 are represent farms owned by companies and institutions. The records of customize procedure are split cluster 1 and 2. The records in cluster 1 represent the farms owned by persons. The remains record in cluster 2 represents the farms owned by companies, institutions and associations. The records of renewal procedure are split in cluster 2 and 4. The records in cluster 2 represent the farms owned by associations and companies. The remains record in cluster 4 represents the farms owned by persons and institutions. One of the important results in these experiments is that one cluster is stable (i.e. does not change through all experiments). This stable cluster contains few numbers of records; however, it has the biggest area and investment. The experiments show that the most replacement transactions occur in Omdurman, and the most waiver transactions occur in Bahri, and the most area change from agriculture to residential occur in Khartoum. The experiments also show that the largest agriculture area is in Omdurman; however, Omdurman contains the most unused area. en_US
dc.description.sponsorship Sudan University of Science and Technology en_US
dc.language.iso en en_US
dc.publisher Sudan University of Science and Technology en_US
dc.subject Two-step Algorithm en_US
dc.subject Clustering Farm Lands Data en_US
dc.subject data mining en_US
dc.subject Cluster analysis en_US
dc.subject Clustering en_US
dc.subject clustering algorithm en_US
dc.subject Khartoum State Farms en_US
dc.title Two-step Algorithm for Clustering Farm Lands Data en_US
dc.title.alternative ‫استخدام خوارزمية الخطوتين لعنقدة بيانات اﻷراضي الزراعية ‬ en_US
dc.type Thesis en_US


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