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Dnsmos: A Non-Intrusive Perceptual Objective Speech Quality Metric to Evaluate Noise Suppressors

机译:DNSMOS:一种非侵入式感知客观性语音质量指标来评估噪声抑制器

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Human subjective evaluation is the "gold standard" to evaluate speech quality optimized for human perception. Perceptual objective metrics serve as a proxy for subjective scores. The conventional and widely used metrics require a reference clean speech signal, which is unavailable in real recordings. Previous no-reference approaches correlate poorly with human ratings and are not widely adopted in the research community. One of the biggest use cases of these perceptual objective metrics is to evaluate noise suppression algorithms. This paper introduces a multi-stage self-teaching based perceptual objective metric that is designed to evaluate noise suppressors. The proposed method generalizes well in challenging test conditions with a high correlation to human ratings.
机译:人类主观评价是“黄金标准”,以评估针对人类感知优化的语音质量。 感知客观指标作为主观评分的代理。 传统和广泛使用的指标需要参考清洁语音信号,其在实际记录中不可用。 以前的无参考方法与人类评级相关不良,并且在研究界并未被广泛采用。 这些感知客观度量的最大用例之一是评估噪声抑制算法。 本文介绍了一种基于多级自教学的感知客观度量,旨在评估噪声抑制器。 所提出的方法在挑战性的测试条件下概括了与人类评级高的相关性。

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