2012Unpublished venueRequires access

Building a Tag Map for Recommendations in Microblogging

Yinghua Xiao, Ting Du, Wen Tao Zhu, Qing Li

Open publisher page 4 citations

Abstract

In its brief history of about two decades, the Web has evolved from a technical framework for information dissemination to more of an enabler of social interactions among its users. This weaves a huge virtual social network for users. Finding friends and targeting useful information are great challenges in such a complicated social network. Different with traditional content-based and collaborative information filtering techniques without considering social connections among users, we propose a naive recommendation approach utilizing user relationships to find friends and hot topics in social media. This is achieved by weaving a tag map from user preferences. Our experiments based on Microblogging data from Sina.com show a promising result in social media recommendation.

About this research paper

What this paper is about

In its brief history of about two decades, the Web has evolved from a technical framework for information dissemination to more of an enabler of social interactions among its users. This weaves a huge virtual social network for users. Finding friends and targeting useful information are great challenges in such a complicated social network. Different with traditional content-based and collaborative information filtering techniques without considering social connections among users, we propose a naive recommendation approach utilizing user relationships to find friends and hot topics in social media. This is achieved by weaving a tag map from user preferences. Our experiments based on Microblogging data from Sina.com show a promising result in social media recommendation.

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OpenAlex reports 4 citations for this work. Citation counts describe recorded attention and do not establish research quality.

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Available abstract

In its brief history of about two decades, the Web has evolved from a technical framework for information dissemination to more of an enabler of social interactions among its users. This weaves a huge virtual social network for users. Finding friends and targeting useful information are great challenges in such a complicated social network. Different with traditional content-based and collaborative information filtering techniques without considering social connections among users, we propose a naive recommendation approach utilizing user relationships to find friends and hot topics in social media. This is achieved by weaving a tag map from user preferences. Our experiments based on Microblogging data from Sina.com show a promising result in social media recommendation.

Key concepts: Microblogging, Social media, Computer science, World Wide Web, Enabling, Social network (sociolinguistics), Collaborative filtering, Data science

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