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首页> 外文期刊>Neural computing & applications >A Bradley-Terry artificial neural network model for individual ratings in group competitions
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A Bradley-Terry artificial neural network model for individual ratings in group competitions

机译:团体比赛中个人评分的Bradley-Terry人工神经网络模型

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摘要

A common statistical model for paired comparisons is the Bradley-Terry model. This research re-parameterizes the Bradley-Terry model as a single-layer artificial neural network (ANN) and shows how it can be fitted using the delta rule. The ANN model is appealing because it makes using and extending the Bradley-Terry model accessible to a broader community. It also leads to natural incremental and iterative updating methods. Several extensions are presented that allow the ANN model to learn to predict the outcome of complex, uneven two-team group competitions by rating individuals-no other published model currently does this. An incremental-learning Bradley-Terry ANN yields a probability estimate within less than 5% of the actual value training over 3,379 multi-player online matches of a popular team- and objective-based first-person shooter.
机译:配对比较的常用统计模型是Bradley-Terry模型。这项研究将Bradley-Terry模型重新参数化为单层人工神经网络(ANN),并展示了如何使用delta规则进行拟合。 ANN模型之所以吸引人,是因为它使更广泛的社区都可以使用和扩展Bradley-Terry模型。它还会导致自然的增量和迭代更新方法。提出了一些扩展,这些扩展使ANN模型能够通过对个人进行评分来学习预测复杂的,不平衡的两支球队的比赛的结果-目前尚无其他模型可以这样做。增量学习式Bradley-Terry ANN在受欢迎的基于团队和目标的第一人称射击游戏的3,379多人在线比赛中产生的概率估计值不到实际值训练的5%。

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