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Automatic Classification of Volcanic Earthquakes in HMM-Induced Vector Spaces

机译:HMM诱导向量空间中的火山地震自动分类

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Even though hidden Markov models (HMMs) have been used for the automatic classification of volcanic earthquakes, their usage has been so far limited to the Bayesian scheme. Recently proposed alternatives, proven in other application scenarios, consist in building HMM-induced vector spaces where discriminative classification techniques can be applied. In this paper, a simple vector space is induced by considering log-likelihoods of the HMMs (per-class) as dimensions. Experimental results show that the discriminative classification in such an induced space leads to better performances than those obtained with the standard Bayesian scheme.
机译:尽管已将隐马尔可夫模型(HMM)用于火山地震的自动分类,但迄今为止,其使用仅限于贝叶斯方案。在其他应用场景中证明的最近提出的替代方案包括构建HMM引起的向量空间,可以在其中应用判别式分类技术。在本文中,通过将HMM(按类)的对数似然性作为维数来引入一个简单的向量空间。实验结果表明,在这种诱导空间中的判别分类比使用标准贝叶斯方案获得的判别分类具有更好的性能。

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