Quality Measure Functions for Calibration of Speaker Recognition Systems in Various Duration Conditions

M. I. Mandasari, R. Saeidi, Mitchell McLaren, D. V. Leeuwen
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引用次数: 77

Abstract

This paper investigates the effect of utterance duration to the calibration of a modern i-vector speaker recognition system with probabilistic linear discriminant analysis (PLDA) modeling. A calibration approach to deal with these effects using quality measure functions (QMFs) is proposed to include duration in the calibration transformation. Extensive experiments are performed in order to evaluate the robustness of the proposed calibration approach for unseen conditions in the training of calibration parameters. Using the latest NIST corpora for evaluation, results highlight the importance of considering the quality metrics like duration in calibrating the scores for automatic speaker recognition systems.
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不同持续时间条件下说话人识别系统校准的质量测量函数
本文利用概率线性判别分析(PLDA)模型,研究了话语持续时间对现代i向量说话人识别系统标定的影响。提出了一种利用质量度量函数(qmf)处理这些影响的校准方法,该方法在校准转换中包含持续时间。为了评估所提出的校准方法在校准参数训练中对未知条件的鲁棒性,进行了大量的实验。使用最新的NIST语料库进行评估,结果强调了在校准自动说话人识别系统的分数时考虑持续时间等质量指标的重要性。
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来源期刊
IEEE Transactions on Audio Speech and Language Processing
IEEE Transactions on Audio Speech and Language Processing 工程技术-工程:电子与电气
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0.00%
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0
审稿时长
24.0 months
期刊介绍: The IEEE Transactions on Audio, Speech and Language Processing covers the sciences, technologies and applications relating to the analysis, coding, enhancement, recognition and synthesis of audio, music, speech and language. In particular, audio processing also covers auditory modeling, acoustic modeling and source separation. Speech processing also covers speech production and perception, adaptation, lexical modeling and speaker recognition. Language processing also covers spoken language understanding, translation, summarization, mining, general language modeling, as well as spoken dialog systems.
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