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A fuzzy co-clustering interpretation of probabilistic latent semantic analysis

机译:概率潜在语义分析的模糊共聚类解释

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Several fuzzy clustering models were proposed by extending intrinsic fuzzy partition mechanisms of probabilistic mixture models and have been shown to have ability of improving the partition quality and interpretability of probabilistic partitions. In this paper, a novel fuzzy clustering interpretation of probabilistic latent semantic analysis (pLSA) is discussed and a fuzzy co-clustering model is proposed by introducing adjustable fuzzification penalty to the pseudo-log-likelihood function of pLSA. Several numerical experiments demonstrate the advantage of tuning the intrinsic fuzziness of pLSA likelihood function.
机译:通过扩展概率混合模型的内在模糊分配机制提出了几种模糊聚类模型,并且已被证明具有提高概率分区的分配质量和可解释性的能力。本文讨论了概率潜在语义分析(PLSA)的新型模糊聚类解释,并通过对PLSA的伪逻辑似函数引入可调节的模糊障碍来提出模糊共聚类模型。几个数值实验证明了调整PLSA似然功能的内在模糊性的优点。

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