首页> 外文会议>International Conference on Text, Speech and Dialogue(TSD 2006); 20060911-15; Brno(CZ) >Silence/Speech Detection Method Based on Set of Decision Graphs
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Silence/Speech Detection Method Based on Set of Decision Graphs

机译:基于决策图集的沉默/语音检测方法

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In the paper we demonstrate a complex supervised learning method based on a binary decision graphs. This method is employed in construction of a silence/speech detector. Performance of the resulting silence/speech detector is compared with performance of common silence/speech detectors used in telecommunications and with a detector based on HMM and a bigram silence/speech language model. Each non-leaf node of a decision graph has assigned a question and a sub-classifier answering this question. We test three kinds of these sub-classifiers: linear classifier, classifier based on separating quadratic hyper-plane (SQHP), and Support Vector Machines (SVM) based classifier. Moreover, besides usage of a single decision graph we investigate application of a set of binary decision graphs.
机译:在本文中,我们演示了一种基于二进制决策图的复杂的监督学习方法。该方法用于构造静音/语音检测器。将所得的静音/语音检测器的性能与电信中使用的普通静音/语音检测器的性能以及基于HMM和双字母静音/语音语言模型的检测器进行比较。决策图的每个非叶节点都分配了一个问题和一个回答该问题的子分类器。我们测试了这三种子分类器:线性分类器,基于分离二次超平面的分类器(SQHP)和基于支持向量机(SVM)的分类器。此外,除了使用单个决策图之外,我们还将研究一组二进制决策图的应用。

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