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A improved speech synthesis system utilizing BPSO-based lip feature selection

机译:利用基于BPSO的嘴唇特征选择的改进的语音合成系统

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To get a higher lipreading recognition result in speech synthesis system driven by visual speech, Binary Particle Swarm Optimization (BPSO) algorithms is used to select the “optimal” lip feature subset. Experiments are carried out based on HMM with 4 states and 16 Gaussian mixture components in a small database for speaker-dependent case. Experiment results show that the integrated discriminate vector after feature selection obtained the information from the geometrical features and the pixel based features. Comparing with feature fusion based on concatenating, the recognition rates with feature selection based on BPSO are improved by as much as 2.42%.
机译:为了在视觉语音驱动的语音合成系统中获得较高的唇读识别结果,使用二进制粒子群算法(BPSO)算法选择“最佳”唇形特征子集。基于HMM在4个状态和16个高斯混合分量的小数据库中进行了实验,用于与说话者相关的情况。实验结果表明,特征选择后的积分判别矢量从几何特征和基于像素的特征中获得了信息。与基于串联的特征融合相比,基于BPSO的特征选择识别率提高了2.42%。

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