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Categorizing Air Quality Information Flow on Twitter Using Deep Learning Tools

机译:使用深度学习工具对推特上的空气质量信息进行分类

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Environmental health is an emerging and hotly debated topic that covers several fields of study such as pollution in urban or rural environments and the consequences of these changes on health populations. In this field of intersectorial forces, the complexity of stakeholders' logics is realized in the production, use and communication of data and information on air quality. The Twitter platform is a "partial public space" that can throw light on the different types of stakeholders involved, the information and issues discussed and the dynamics of articulation between these different aspects. A methodology aiming at describing and representing, on the one hand, the modes of circulation and distribution of message flows on this social media and, on the other hand, the content exchanged between stakeholders, is presented. To achieve this, we developed a classifier based on Deep Learning approaches in order to categorize messages from scratch. The conceptual and instrumented methodology presented is part of a broader interdisciplinary methodology, based on quantitative and qualitative methods, for the study of communication in environmental health.
机译:环境卫生是一个新兴和热辩论的主题,涵盖了几个研究领域,如城市或农村环境污染以及这些变化对健康人口的后果。在这个跨域力领域,利益相关者逻辑的复杂性在数据和空气质量的信息的生产,使用和通信中实现了。 Twitter平台是一个“部分公共空间”,可以在所涉及的不同类型的利益相关者身上抛出光线,讨论的信息和问题以及这些不同方面之间的关节动态。针对这种社交媒体的消息流量的循环和分发模式的一种方法,另一方面,提出了利益相关者之间交换的内容。为实现这一目标,我们开发了一种基于深度学习方法的分类器,以便从头开始对消息进行分类。提出的概念和仪器方法是基于定量和定性方法的更广泛跨学科方法的一部分,用于研究环境健康的沟通。

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