Download - Social Media News Communities: Gatekeeping, Coverage, and Statement Bias

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Page 1: Social Media News Communities: Gatekeeping, Coverage, and Statement Bias

Social Media News Communities:Gatekeeping, Coverage, and Statement

Bias

Diego Saez-Trumper∗1 Carlos Castillo† Mounia Lalmas‡

∗Universitat Pompeu Fabra, Barcelona†Qatar Computing Research Institute, Doha

‡Yahoo Labs London

San Francisco, October, 2013

1This work was done while visiting the Qatar Computing Research Institute

Page 2: Social Media News Communities: Gatekeeping, Coverage, and Statement Bias

”Media bias refers to (...) the selection of which stories arereported and how they are reported”. S. Rivolta

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Selection

Coverage

Statement

Page 4: Social Media News Communities: Gatekeeping, Coverage, and Statement Bias

Selection

Coverage

Statement

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Selection

Coverage

Statement

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Selection

Coverage

Statement

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Goal: quantify biases present in onlinenews

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Challenges

I Consider a large set of news sources.I Compare news sources with social media (Twitter).I Use unsupervised methods.

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Data set - News Sources

I Use the top-100 news websites from Alexa.com.I Download all the news they publish trough RSS and

Twitter.

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Data set - Twitter

Download all tweets containing a URL pointing to a newssource.

Community 6= Followers

People who have tweeted at least K1 articles from a given newssource within K2 days.

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Selection Bias (Gatekeeping)

I Compute similarity among news sources using the Jaccardcoefficient.

I Project it in two dimensions using PCA.

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Selection Bias (Gatekeeping)

News Sources

Geographical pattern

Twitter

No clear pattern.

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Coverage

I Compute similarity among news sources using theJensen-Shannon divergence (JS) .

Coverage Bias(s1, s2) = 1− JS(s1, s2)

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Coverage Bias

News Sources

Stronger geographical pattern.

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Coverage Bias

Twitter

Geographical pattern.

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Political leaning

News Sources Twitter

Stronger political leaning signal in Twitter.

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Statement

I Use sentiment analyses to find positive/negativesentiments associated to a person.

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Statement

Obama Thatcher

Sentiments are more extreme in Twitter.

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Conclusions

I Strong geographical patterns.I Political leaning signal is stronger in Social Media.I Feelings are more extreme in Social Media.