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Stressed Speech Recognition Using Similarity Measurement on Inner Product Space

机译:使用相似性测量对内部产品空间的强调语音识别

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In this paper, similarity measurement on different inner product space approach is proposed for analysis of stressed speech. The similarity is measured between neutral speech subspace and stressed speech subspace. Cosine between neutral speech and stressed speech is taken as similarity measurement parameter. It is asssumed that, speech and stress components of stressed speech are linearly related to each other. Cosine between neutral and stressed speech multiples of stressed speech contains speech information of stressed speech. Complement cosine (1-cosine) multiples of stressed speech is taken as stress component of stressed speech. Neutral speech subspace is created by all neutral speech of the training database and stressed speech subspace contain stressed (angry, sad, lombard, happy) speech. From experiment, it is observed that, stress information of stressed speech is not present in the complement cosine (1-cosine) times of stressed speech on different inner product space. The linear relationship between speech and stress component of stressed speech exists only for some specific inner product space. All the experiments are done using nonlinear (TEO-CB-Auto-Env) feature.
机译:本文提出了对不同内部产品空间方法的相似性测量,用于分析压力语音。在中立语音子空间和强调语音子空间之间测量的相似性。中立语音和强调语音之间的余弦作为相似度测量参数。它被截瘫,压力言论的语音和应力分量彼此线性相关。中性和强调语音倍数之间的余弦包含强调演讲的语音信息。补体余弦(1-余弦)压力言语的倍数被视为强调语音的应力分量。中立语音子空间是由培训数据库的所有中立语音创建的,并强调的语音子空间包含压力(愤怒,悲伤,伦巴第,幸福)的演讲。从实验中,观察到,在不同内部产品空间上的压力良好语音的补体余弦(1-余弦)次的压力信息中不存在压力信息。强调语音的语音和应力分量之间的线性关系仅存在于某些特定的内部产品空间。所有实验都是使用非线性(TEO-CB-AUTO-ENV)特征进行的。

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