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Robust speaker recognition in noisy environments

机译:嘈杂环境中的健壮说话人识别

摘要

This book discusses speaker recognition methods to deal with realistic variable noisy environments. The text covers authentication systems for; robust noisy background environments, functions in real time and incorporated in mobile devices. The book focuses on different approaches to enhance the accuracy of speaker recognition in presence of varying background environments. The authors examine: (a) Feature compensation using multiple background models, (b) Feature mapping using data-driven stochastic models, (c) Design of super vector- based GMM-SVM framework for robust speaker recognition, (d) Total variability modeling (i-vectors) in a discriminative framework and (e) Boosting method to fuse evidences from multiple SVM models.
机译:本书讨论了说话人识别方法,以应对现实的可变噪声环境。文本涵盖了以下方面的身份验证系统:强大的嘈杂背景环境,实时运行并集成在移动设备中。该书着重介绍了在背景环境不同的情况下提高说话人识别准确性的不同方法。作者研究:(a)使用多个背景模型进行特征补偿,(b)使用数据驱动的随机模型进行特征映射,(c)设计基于超级矢量的GMM-SVM框架以实现可靠的说话人识别,(d)总可变性模型(i-向量)的判别框架,以及(e)融合来自多个SVM模型的证据的Boosting方法。

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