用中性的文本挖掘方法分析俄罗斯外交政策背景下的联合国演讲

Muhammet Musa .., Mehmet Fatih .., Ilker Yasin Durmaz
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引用次数: 0

摘要

文档聚类是文本挖掘的重要组成部分。在经典聚类中,数据项只属于一个聚类,而在Plithogenic模糊聚类方法中,数据点可能属于多个聚类。因此,Plithogenic方法模糊聚类导致其中每个数据点与多个隶属函数相关联,该隶属函数表示单个数据点属于聚类的程度。此外,他在联合国的演讲将以中立的态度进行分析。在这种方法的帮助下,在本研究中,土耳其外交官在联合国(UN)出席的联合国会议的演讲将被分析,以了解该国在国际政治中的优先事项,这些政策的变化和连续性。土耳其外交官在2015年至2023年期间参加的联合国会议的文本被作为数据集。对如此庞大的数据量进行了文本挖掘分析。为此,每年的数据分别使用词频和聚类分析进行分析,然后使用潜狄利克雷分配(Latent Dirichlet Allocation, LDA)方法对每年的数据进行主题建模。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Analyzing the United Nations Speeches with a Neutrosophic Approach to Text Mining in The Context of Türkiye’s Foreign Policy
Document clustering is an integral and important part of text mining. In case of classical clustering, data item belongs to only one cluster, whereas in Plithogenic approach to fuzzy clustering, data point may fall into more than one cluster. Thus, Plithogenic approach fuzzy clustering leads to wherein each data point is associated with more than one membership function that expresses the degree to which individual data points belong to the cluster. Additionally, his speeches at the UN will be analyzed with a neutrosphic approach. With the help of this approaches, in this study, speeches of the UN sessions attended by Turkish diplomats in the United Nations (UN) will be analyzed to understand the priorities of the country in international politics, the change and continuity in these policies. The texts of the UN sessions attended by Turkish diplomats between 2015 and 2023 were taken as data set. Such a large volume of data was analyzed with the help of text mining. For this purpose, each year's data was analyzed separately using word frequencies and clustering analysis, and then topic modeling was performed for each year's data using the Latent Dirichlet Allocation (LDA) method.
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