PDAF: A Phonetic Debiasing Attention Framework For Speaker Verification

Massa Baali, Abdulhamid Aldoobi, Hira Dhamyal, Rita Singh, Bhiksha Raj
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Abstract

Speaker verification systems are crucial for authenticating identity through voice. Traditionally, these systems focus on comparing feature vectors, overlooking the speech's content. However, this paper challenges this by highlighting the importance of phonetic dominance, a measure of the frequency or duration of phonemes, as a crucial cue in speaker verification. A novel Phoneme Debiasing Attention Framework (PDAF) is introduced, integrating with existing attention frameworks to mitigate biases caused by phonetic dominance. PDAF adjusts the weighting for each phoneme and influences feature extraction, allowing for a more nuanced analysis of speech. This approach paves the way for more accurate and reliable identity authentication through voice. Furthermore, by employing various weighting strategies, we evaluate the influence of phonetic features on the efficacy of the speaker verification system.
PDAF:用于验证说话人的语音去重注意框架
说话人验证系统对于通过语音验证身份至关重要。传统上,这些系统侧重于比较特征向量,而忽略了语音内容。然而,本文通过强调音素优势(音素频率或音素持续时间的度量)在说话人验证中作为关键线索的重要性,对这一观点提出了挑战。本文介绍了一种新颖的音素去重注意框架(PDAF),它与现有的注意框架相结合,减轻了音素优势造成的偏差。这种方法为通过语音进行更准确、更可靠的身份验证铺平了道路。此外,通过采用不同的加权策略,我们评估了语音特征对说话人验证系统功效的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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