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Indian Buffet Processes with Power-law Behavior

机译:具有权力法行为的印度自助餐程序

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The Indian buffet process (IBP) is an exchangeable distribution over binary matrices used in Bayesian nonparametric featural models. In this paper we propose a three-parameter generalization of the IBP exhibiting power-law behavior. We achieve this by generalizing the beta process (the de Finetti measure of the IBP) to the stable-beta process and deriving the IBP corresponding to it. We find interesting relationships between the stable-beta process and the Pitman-Yor process (another stochastic process used in Bayesian nonparametric models with interesting power-law properties). We derive a stick-breaking construction for the stable-beta process, and find that our power-law IBP is a good model for word occurrences in document corpora.
机译:印度自助过程(IBP)是在贝叶斯非参数特征模型中使用的二元矩阵的可交换分布。在本文中,我们提出了显示幂律行为的IBP的三参数概括。我们通过将beta流程(IBP的de Finetti度量)推广到稳定beta流程并派生与之相对应的IBP来实现这一点。我们发现稳定beta过程与Pitman-Yor过程(在具有有趣幂律特性的贝叶斯非参数模型中使用的另一种随机过程)之间存在有趣的关系。我们推导了稳定beta过程的突破性构造,并且发现我们的幂律IBP是文档语料库中单词出现的良好模型。

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