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A Hidden Markov Model for the Linguistic Analysis of the Voynich Manuscript

机译:voynich手稿的语言分析隐藏的马尔可夫模型

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Hidden Markov models are a very useful tool in the modeling of time series and any sequence of data. In particular, they have been successfully applied to the field of mathematical linguistics. In this paper, we apply a hidden Markov model to analyze the underlying structure of an ancient and complex manuscript, known as the Voynich manuscript, which remains undeciphered. By assuming a certain number of internal states representations for the symbols of the manuscripts, we train the network by means of the and -pass algorithms to optimize the model. By this procedure, we are able to obtain the so-called transition and observation matrices to compare with known languages concerning the frequency of consonant andvowel sounds. From this analysis, we conclude that transitions occur between the two states with similar frequencies to other languages. Moreover, the identification of the vowel and consonant sounds matches some previous tentative bottom-up approaches to decode the manuscript.
机译:隐藏的马尔可夫模型是时间序列和任何数据序列建模中的一个非常有用的工具。特别是,它们已成功应用于数学语言学领域。在本文中,我们应用隐藏的马尔可夫模型来分析古代和复杂的手稿的潜在结构,称为Voynich稿件,仍未陈述。通过假设稿件的符号的一定数量的内部状态表示,我们通过AND -Pass算法训练网络以优化模型。通过此过程,我们能够获得所谓的转换和观察矩阵,以与关于辅音和vowel声音的频率的已知语言进行比较。从这个分析来看,我们得出结论,两种状态之间发生过渡,两种状态与其他语言的频率相似。此外,元音和辅音的识别与解码稿件的一些先前初步自下而上的方法匹配。

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