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Robust speaker verification from GSM-transcoded speech based on decision fusion and feature transformation

机译:基于决策融合和特征转换的GSM转码语音的可靠说话人验证

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摘要

In speaker verification, a claimant may produce two or more utterances. Typically, the scores of the speech patterns extracted from these utterances are averaged and the resulting mean score is compared with a decision threshold. Rather than simply computing the mean score, we propose to compute the optimal weights for fusing the scores based on the score distribution of the independent utterances and our prior knowledge about the score statistics. More specifically, we use enrollment data to compute the mean scores of client speakers and impostors and consider them to be the prior scores. During verification, we set the fusion weights for individual speech patterns to be a function of the dispersion between the scores of these speech patterns and the prior scores. Experimental results based on the GSM-transcoded speech of 150 speakers from the HTIMIT corpus demonstrate that the proposed fusion algorithm can increase the dispersion between the mean speaker scores and the mean impostor scores. Compared with a baseline approach where equal weights are assigned to all scores, the proposed approach provides a relative error reduction of 19%.
机译:在说话者验证中,索赔人可能会产生两种或多种言语。通常,将从这些话语中提取的语音模式的分数进行平均,然后将所得的平均分数与决策阈值进行比较。我们建议,不是简单地计算平均分数,而是根据独立话语的分数分布和我们对分数统计的先验知识,计算用于融合分数的最佳权重。更具体地说,我们使用注册数据来计算客户说话者和冒名顶替者的平均得分,并将其视为先前得分。在验证期间,我们将各个语音模式的融合权重设置为这些语音模式的得分与先前得分之间的离散程度的函数。基于来自HTIMIT语料库的150位说话者的GSM转码语音的实验结果表明,所提出的融合算法可以提高平均说话者得分与平均冒名顶替者得分之间的离散度。与将所有分数分配给相同权重的基准方法相比,该方法可将相对误差减少19%。

著录项

  • 作者

    Mak, MW; Cheung, MC; Kung, SY;

  • 作者单位
  • 年度 2003
  • 总页数
  • 原文格式 PDF
  • 正文语种 en
  • 中图分类

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