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Most Influential WWW 2008 Paper · 2026-03 edition

Video Suggestion And Discovery For Youtube: Taking Random Walks Through The View Graph

Shumeet Baluja, Rohan Seth, D. Sivakumar, Yushi Jing, Jay Yagnik, Shankar Kumar, Deepak Ravichandran, Mohamed Aly

Venue
ACM Web Conference (WWW) 2008
Recognition
Most Influential WWW 2008 Paper (Rank No. 9)
Edition
2026-03
Impact factor
8
Certificate ID
4e729bf7a3548ce3

Abstract

The rapid growth of the number of videos in YouTube provides enormous potential for users to find content of interest to them. Unfortunately, given the difficulty of searching videos, the size of the video repository also makes the discovery of new content a daunting task. In this paper, we present a novel method based upon the analysis of the entire user-video graph to provide personalized video suggestions for users. The resulting algorithm, termed Adsorption, provides a simple method to efficiently propagate preference information through a variety of graphs. We extensively test the results of the recommendations on a three month snapshot of live data from YouTube.

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