2017Unpublished venueRequires access

Early investigation of proposed hoax detection for decreasing hoax in social media

Irvan Santoso, Immanuel Yohansen, Nealson, Harco Leslie Hendric Spits Warnars, Kiyota Hashimoto

Open publisher page 11 citations

Abstract

Social Media allow people to communicate over long distance and increase the users for the past years. However the threat of Hoax is also increasing in social media which increase the risk of mass panic, where the society become confuse between false and true, other words between hoax and not hoax. To mitigate the effect of hoax, a system to filter out hoax posts from social media is proposed. We propose a system framework that might be able to filter out hoax from social media post feeds in order to reduce the amount of hoax posts in social media. It is difficult to reduce 100% hoax from social media, but at least there is a technology which can decrease the hoax in social media. This system works by utilizing data mining to search past hoax records and analyze the post data pattern to determine whether a post is a hoax or not hoax. Our proposed system will also utilize social media Application Program Interface (API) such as news, facebook, twitter, in order to find similar writing in other social media or news website to find out the authenticity of a person's post.

About this research paper

What this paper is about

Social Media allow people to communicate over long distance and increase the users for the past years. However the threat of Hoax is also increasing in social media which increase the risk of mass panic, where the society become confuse between false and true, other words between hoax and not hoax. To mitigate the effect of hoax, a system to filter out hoax posts from social media is proposed. We propose a system framework that might be able to filter out hoax from social media post feeds in order to reduce the amount of hoax posts in social media. It is difficult to reduce 100% hoax from social media, but at least there is a technology which can decrease the hoax in social media. This system works by utilizing data mining to search past hoax records and analyze the post data pattern to determine whether a post is a hoax or not hoax. Our proposed system will also utilize social media Application Program Interface (API) such as news, facebook, twitter, in order to find similar writing in other social media or news website to find out the authenticity of a person's post.

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OpenAlex reports 11 citations for this work. Citation counts describe recorded attention and do not establish research quality.

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Available abstract

Social Media allow people to communicate over long distance and increase the users for the past years. However the threat of Hoax is also increasing in social media which increase the risk of mass panic, where the society become confuse between false and true, other words between hoax and not hoax. To mitigate the effect of hoax, a system to filter out hoax posts from social media is proposed. We propose a system framework that might be able to filter out hoax from social media post feeds in order to reduce the amount of hoax posts in social media. It is difficult to reduce 100% hoax from social media, but at least there is a technology which can decrease the hoax in social media. This system works by utilizing data mining to search past hoax records and analyze the post data pattern to determine whether a post is a hoax or not hoax. Our proposed system will also utilize social media Application Program Interface (API) such as news, facebook, twitter, in order to find similar writing in other social media or news website to find out the authenticity of a person's post.

Key concepts: Hoax, Social media, Order (exchange), Internet privacy, Computer science, World Wide Web, Business, Medicine

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