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首页> 外文期刊>ACM transactions on knowledge discovery from data >Socializing by Gaming: Revealing Social Relationships in Multiplayer Online Games
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Socializing by Gaming: Revealing Social Relationships in Multiplayer Online Games

机译:通过游戏进行社交:揭示多人在线游戏中的社交关系

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摘要

Multiplayer Online Games (MOGs) like Defense of the Ancients and StarCraft II have attracted hundreds of millions of users who communicate, interact, and socialize with each other through gaming. In MOGs, rich social relationships emerge and can be used to improve gaming services such as match recommendation and game population retention, which are important for the user experience and the commercial value of the companies who run these MOGs. In this work, we focus on understanding social relationships in MOGs. We propose a graph model that is able to capture social relationships of a variety of types and strengths. We apply our model to real-world data collected from three MOGs that contain in total over ten years of behavioral history for millions of players and matches. We compare social relationships in MOGs across different game genres and with regular online social networks like Facebook. Taking match recommendation as an example application of our model, we propose SAMRA, a Socially Aware Match Recommendation Algorithm that takes social relationships into account. We show that our model not only improves the precision of traditional link prediction approaches, but also potentially helps players enjoy games to a higher extent.
机译:诸如《远古防御》和《星际争霸II》等多人在线游戏(MOG)吸引了数亿用户,他们通过游戏相互交流,互动和社交。在MOG中,建立了丰富的社交关系,可以用来改善游戏服务,例如比赛推荐和保留游戏人群,这对于运营这些MOG的公司的用户体验和商业价值至关重要。在这项工作中,我们专注于理解MOG中的社会关系。我们提出了一种图形模型,该模型能够捕获各种类型和优势的社会关系。我们将模型应用于从三个MOG收集的真实数据,这些数据总共包含了十多年针对数百万名玩家和比赛的行为历史。我们将MOG中不同游戏类型的社交关系与常规在线社交网络(如Facebook)进行比较。以比赛推荐作为我们模型的示例应用,我们提出了SAMRA,这是一种社交意识的比赛推荐算法,它考虑了社交关系。我们证明了我们的模型不仅可以提高传统链接预测方法的精度,而且还可以潜在地帮助玩家更好地享受游戏。

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