在社交媒体中寻找和探索模因

Hohyon Ryu, Matthew Lease, N. Woodward
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引用次数: 13

摘要

在线批判性素养挑战读者认识和质疑在线文本信息是如何被其更大的背景所塑造的。虽然比较来自多个来源的信息为这种意识提供了基础,但跟上所写的所有内容是一项艰巨的任务,特别是对临时读者来说。我们提出了一种新的批判性素养技术援助形式,它可以自动发现和显示潜在的模因:由diýerent信息源中出现的类似短语表示的想法。通过将这些模因呈现给用户,我们创建了一个丰富的超文本表示,其中可以在上下文中探索潜在的模因。考虑到社交媒体的巨大规模,我们描述了一个为MapReduce分布式计算设计的高度可扩展的系统架构。为了验证我们的方法,我们报告了使用我们的系统在1.5 TB的爬行社交媒体集合中发现和浏览模因的情况。我们的主要贡献包括:1)支持批判性读写的新颖技术方法和超文本浏览设计;2)用于模因发现的高度可扩展的系统架构,为进一步的系统扩展和改进提供坚实的基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Finding and exploring memes in social media
Online critical literacy challenges readers to recognize and question how online textual information has been shaped by its greater context. While comparing information from multiple sources provides a foundation for such awareness, keeping pace with everything being written is a daunting proposition, especially for the casual reader. We propose a new form of technological assistance for critical literacy which automatically discovers and displays underlying memes: ideas represented by similar phrases which occur across diýerent information sources. By surfacing these memes to users, we create a rich hypertext representation in which underlying memes can be explored in context. Given the vast scale of social media, we describe a highly-scalable system architecture designed for MapReduce distributed computing. To validate our approach, we report on use of our system to discover and browse memes in a 1.5 TB collection of crawled social media. Our primary contributions include: 1) a novel technological approach and hypertext browsing design for supporting critical literacy; and 2) a highly-scalable system architecture for meme discovery, providing a solid foundation for further system extensions and refinements.
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