Social Media, Topic Modeling and Sentiment Analysis in Municipal Decision Support

August 08, 2023 ยท Declared Dead ยท ๐Ÿ› Conference on Computer Science and Information Systems

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Authors Miloลก ล vaลˆa arXiv ID 2308.04124 Category cs.CL: Computation & Language Cross-listed cs.SI Citations 4 Venue Conference on Computer Science and Information Systems Last Checked 5 months ago
Abstract
Many cities around the world are aspiring to become. However, smart initiatives often give little weight to the opinions of average citizens. Social media are one of the most important sources of citizen opinions. This paper presents a prototype of a framework for processing social media posts with municipal decision-making in mind. The framework consists of a sequence of three steps: (1) determining the sentiment polarity of each social media post (2) identifying prevalent topics and mapping these topics to individual posts, and (3) aggregating these two pieces of information into a fuzzy number representing the overall sentiment expressed towards each topic. Optionally, the fuzzy number can be reduced into a tuple of two real numbers indicating the "amount" of positive and negative opinion expressed towards each topic. The framework is demonstrated on tweets published from Ostrava, Czechia over a period of about two months. This application illustrates how fuzzy numbers represent sentiment in a richer way and capture the diversity of opinions expressed on social media.
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