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A Fuzzy Logic-Based Text Classification Method for Social Media Data

机译:基于模糊的基于逻辑的文本分类方法,用于社交媒体数据

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Social media offer abundant information for studying people's behaviors, emotions and opinions during the evolution of various rare events such as natural disasters. It is useful to analyze the correlation between social media and human-affected events. This study uses Hurricane Sandy 2012 related Tw itter text data to conduct information extraction and text classification. Considering that the original data contains different topics, we need to find the data related to Hurricane Sandy. A fuzzy logic-based approach is introduced to solve the problem of text classification. Inputs used in the proposed fuzzy logic-based model are multiple useful features extracted from each Twitter's message. The output is its degree of relevance for each message to Sandy. A number of fuzzy rules are designed and different defuzzification methods are combined in order to obtain desired classification results. We compare the proposed method with the well-known keyword search method in terms of correctness rate and quantity. The result shows that the proposed fuzzy logic-based approach is more suitable to classify Twitter messages than keyword word method.
机译:社交媒体提供丰富的信息,用于研究人们在自然灾害等各种罕见事件的演变过程中的行为,情感和意见。分析社交媒体与人类影响事件之间的相关性是有用的。本研究采用飓风桑迪2012相关的TW迭代文本数据来进行信息提取和文本分类。考虑到原始数据包含不同的主题,我们需要查找与飓风桑迪相关的数据。引入了模糊基于逻辑的方法来解决文本分类问题。在所提出的基于模糊逻辑模型中使用的输入是从每个Twitter的消息中提取的多个有用功能。输出是对沙质的每条信息的相关程度。设计了许多模糊规则,并组合了不同的Defuzzzzification方法以获得所需的分类结果。我们在正确的速率和数量方面将所提出的方法与众所周知的关键字搜索方法进行比较。结果表明,所提出的模糊基于逻辑的方法更适合于Twitter消息比关键字字方法分类。

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