Building a Tag Map for Recommendations in Microblogging
Yinghua Xiao, Ting Du, Wen Tao Zhu, Qing Li
Abstract
Yinghua Xiao, Ting Du, Wen Tao Zhu, Qing Li
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.
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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