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Movie Actor Key Attributes Success Prediction With Network Community Detection

机译:电影演员与网络社区检测成功预测的关键属性

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Though the film entertainment industry has the potential for tremendous worldwide revenues, the prediction of success relies on an enormous number of variables. In order to determine the importance of variables which impact a film's success, a prediction model is needed. One approach is to identify communities within the network to predict a movie's success variables such as revenue, winning awards, and ratings. This study focuses on network clustering to identify communities within a large network of movies and actors. The network investigated in this work is a type of collaboration network in which movies are connected to each other if they share at least one actor together. The results indicate how we can identify and use these communities to determine the key attributes which lead to movies' success. We also demonstrate which genre types are more correlated to communities' topology features (density and size).
机译:虽然电影娱乐行业具有巨大的全球收入潜力,但成功的预测依赖于庞大数量的变量。为了确定影响电影成功的变量的重要性,需要预测模型。一种方法是识别网络内的社区,以预测电影的成功变量,例如收入,获胜奖项和评级。本研究侧重于网络聚类,以确定大型电影和演员网络内的社区。在这项工作中调查的网络是一种协作网络,其中如果它们一起共享一个演员,那么电影彼此连接。结果表明我们如何识别和使用这些社区来确定导致电影成功的关键属性。我们还展示了与社区拓扑特征(密度和尺寸)更相关的类型类型。

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