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Audio-Visual Speech Recognition Scheme Based on Wavelets and Random Forests Classification

机译:基于小波和随机森林分类的​​视听语音识别方案

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This paper describes an audio-visual speech recognition system based on wavelets and Random Forests. Wavelet multiresolution analysis is used to represent in a compact form the sequence of both acoustic and visual input parameters. Then, recognition is performed using Random Forests classification using the wavelet-based features as inputs. The efficiency of the proposed speech recognition scheme is evaluated over two audio-visual databases, considering acoustic noisy conditions. Experimental results show that a good performance is achieved with the proposed system, outperforming the efficiency of traditional Hidden Markov Model-based approaches. The proposed system has only one tuning parameter, however, experimental results also show that this parameter can be selected within a small range without significantly changing the recognition results.
机译:本文介绍了一种基于小波和随机森林的视听语音识别系统。小波多分辨率分析用于以紧凑的形式表示声音和视觉输入参数的序列。然后,使用随机森林分类进行识别,并使用基于小波的特征作为输入。考虑到声学噪声条件,在两个视听数据库上评估了所提出的语音识别方案的效率。实验结果表明,所提出的系统具有良好的性能,优于传统的基于隐马尔可夫模型的方法的效率。提出的系统只有一个调整参数,但是,实验结果也表明,可以在很小的范围内选择该参数,而不会明显改变识别结果。

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