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OpinAIS: An Artificial Immune System-based Framework for Opinion Mining

机译:OpinaIs:基于人工免疫系统的意见挖掘框架

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摘要

This paper proposes the design of an evolutionary algorithm for building classifiers specifically aimed towards performing classification and sentiment analysis over texts. Moreover, it has properties taken from Artificial Immune Systems, as it tries to resemble biological systems since they are able to discriminate harmful from innocuous bodies (in this case, the analogy could be established with negative and positive texts respectively). A framework, namely OpinAIS, is developed around the evolutionary algorithm, which makes it possible to distribute it as an open-source tool, which enables the scientific community both to extend it and improve it. The framework is evaluated with two different public datasets, the first involving voting records for the US Congress and the second consisting in a Twitter corpus with tweets about different technology brands, which can be polarized either towards positive or negative feelings; comparing the results with alternative machine learning techniques and concluding with encouraging results. Additionally, as the framework is publicly available for download, researchers can replicate the experiments from this paper or propose new ones.
机译:本文提出了一种构建分类器的进化算法,专门针对文本执行分类和情感分析。此外,它具有取自人工免疫系统的特性,因为它试图类似于生物系统,因为它们能够区分有害物质与无害物体(在这种情况下,可以分别用否定和肯定的文本来建立类比)。围绕进化算法开发了一个框架,即OpinAIS,这使它有可能作为开源工具进行分发,这使得科学界可以对其进行扩展和改进。该框架通过两个不同的公开数据集进行了评估,第一个涉及美国国会的投票记录,第二个包含推特语料库,其中包含有关不同技术品牌的推文,可以分为正面或负面的看法。将结果与其他机器学习技术进行比较,并得出令人鼓舞的结果。此外,由于该框架可公开下载,因此研究人员可以复制本文中的实验或提出新的实验。

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