首页> 外文期刊>International Journal of Pattern Recognition and Artificial Intelligence >A PATTERN RECOGNITION APPROACH TO ROBUST VOICED/UNVOICED SPEECH CLASSIFICATION USING FUZZY LOGIC
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A PATTERN RECOGNITION APPROACH TO ROBUST VOICED/UNVOICED SPEECH CLASSIFICATION USING FUZZY LOGIC

机译:基于模糊逻辑对语音/语音语音分类的模式识别方法

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摘要

In the field of mobile communications new robust Voiced/Unvoiced (V/UV) classification algorithms are required in that correct voicing detection is a crucial point in the perceived quality and naturalness of very low bit-rate speech coding system. The paper shows that a valid and more convenient alternative to deal with the problem of voicing decision is to use methodologies like fuzzy logic which are suitable for problems requiring approximate rather than exact solutions, and which can be represented through descriptive or qualitative expressions. The Fuzzy Voicing Detector proposed is based on a pattern recognition approach in which the matching phase is performed using three fuzzy rules. The rules have been obtained using FuGeNeSys, a new hybrid learning tool based on Genetic Algorithm and Neural Networks. The fuzzy classifier is computationally very simple and more efficient than traditional methods, which are affected by misclassification errors, above all in the presence of background noise.
机译:在移动通信领域中,需要新的鲁棒的浊音/清音(V / UV)分类算法,因为正确的浊音检测是非常低比特率语音编码系统的感知质量和自然性的关键点。本文表明,解决语音决策问题的一种有效且更方便的替代方法是使用诸如模糊逻辑之类的方法,这些方法适用于需要近似而不是精确解的问题,并且可以通过描述性或定性表达来表示。提出的模糊发声检测器基于一种模式识别方法,其中使用三个模糊规则执行匹配阶段。这些规则已使用FuGeNeSys获得,FuGeNeSys是一种新的基于遗传算法和神经网络的混合学习工具。模糊分类器在计算上非常简单,并且比传统方法更有效,传统方法会受到误分类错误的影响,尤其是在存在背景噪声的情况下。

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