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An ANN-based approach of interpreting user-generated comments from social media

机译:基于ANN的方法来解释社交媒体中用户生成的评论

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摘要

The IT advancement facilitates growth of social media networks, which allow consumers to exchange information online. As a result, a vast amount of user-generated data is freely available via Internet. These data, in the raw format, are qualitative, unstructured and highly subjective thus they do not generate any direct value for the business. Given this potentially useful database it is beneficial to unlock knowledge it contains. This however is a challenge, which this study aims to address. This paper proposes an ANN-based approach to analyse user-generated comments from social media. The first mechanism of the approach is to map comments against predefined product attributes. The second mechanism is to generate input-output models which are used to statistically address the significant relationship between attributes and comment length. The last mechanism employs Artificial Neural Networks to formulate such a relationship, and determine the constitution of rich comments. The application of proposed approach is demonstrated with a case study, which reveals the effectiveness of the proposed approach for assessing product performance. Recommendations are provided and direction for future studies in social media data mining is marked.
机译:IT的发展促进了社交媒体网络的发展,使消费者可以在线交换信息。结果,可以通过Internet免费获得大量用户生成的数据。这些原始格式的数据是定性,非结构化和高度主观的,因此它们不会为业务带来任何直接价值。给定这个潜在有用的数据库,解锁包含的知识将非常有益。然而,这是本研究旨在解决的挑战。本文提出了一种基于ANN的方法来分析社交媒体中用户生成的评论。该方法的第一种机制是针对预定义的产品属性映射评论。第二种机制是生成输入输出模型,该输入输出模型用于统计处理属性和注释长度之间的重要关系。最后一种机制采用人工神经网络来表达这种关系,并确定丰富评论的构成。案例研究证明了该方法的应用,该案例揭示了该方法在评估产品性能方面的有效性。提供了建议,并标记了未来社交媒体数据挖掘研究的方向。

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