Output-based objective speech quality using vector quantization techniques

Chiyi, Robert Kubichek
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引用次数: 29

Abstract

Output-based speech quality (OBQ) refers to an objective speech quality measure that uses only received speech without access to the input speech record. This paper proposes two new OBQ measures and evaluates their performance. Perceptual linear prediction (PLP) coefficients are used to provide speaker independence required by the objective measure. Two distortion measures are introduced for predicting speech quality based on vector quantization of the output speech record. These are the transition probability distance and the median minimum distance measure. The OBQ parameters are tested on four different speech datasets. The correlation is computed between subjective scores and the objective quality measures under a variety conditions, and the results indicate that the proposed algorithms are quite robust against speaker, text and distortion variation.
基于输出的客观语音质量矢量量化技术
基于输出的语音质量(OBQ)是指仅使用接收到的语音而不访问输入语音记录的客观语音质量度量。本文提出了两种新的OBQ度量方法,并对其性能进行了评价。感知线性预测(PLP)系数用于提供客观测量所需的说话人独立性。介绍了基于输出语音记录的矢量量化预测语音质量的两种失真措施。它们是转移概率距离和中值最小距离度量。在四个不同的语音数据集上对OBQ参数进行了测试。计算了各种条件下主观评分与客观质量指标之间的相关性,结果表明所提出的算法对说话人、文本和失真变化具有较强的鲁棒性。
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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