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ACNN Based Speech Emotion Recognition and Noise Suppression Using Modified Cuckoo Search Algorithm

机译:基于改进的布谷鸟搜索算法的基于ACNN的语音情感识别和噪声抑制

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Speech is the best way to communicate between two people. Since this is the most common method of communication, lot of researches had been inventing from past few years. Even people always like to interface with machines utilizing speech.Based on this, automatic speech recognition has gained up a big momentum in recent years.In this paper, an efficient Speech Emotion Recognition (SER) system using Modified Cuckoo Search Optimization (MCS) based optimization technique with Actor Critic Neural Network (ACNN) is introducing. Apart from that the noise suppression and speech enhancement is also done with ACNN and is compared with the result of Artificial Neural Network(ANN) using other optimization algorithm. Nowadays lot of researches has been done in the emotion recognition and the speech enhancement.The other difficult task behind this emotion recognition is none other than choosing the emotion recognition corpora(speech database), identification of different features related to speech and an appropriate choice of a classification model.The various types of classifiers are used to differentiate emotions. Preprocessing, feature extraction and classification are the important stages in this signal model. Local invariant features and salient discriminative features are extracted in the feature extraction.These features are given to the neural network for training and based on that the text correspond to the speech signal is recognized.This system will be a speaker independent, since it use recorded standard database of speech samples which have different speech emotions.
机译:言语是两个人之间交流的最佳方式。由于这是最常用的通信方式,因此过去几年来已经进行了很多研究。即使是人们总是喜欢与使用语音的机器进行交互。基于此,近年来,自动语音识别获得了巨大的发展。本文基于改进的布谷鸟搜索优化(MCS)技术,建立了一种高效的语音情感识别(SER)系统。介绍了使用Actor关键神经网络(ACNN)的优化技术。除此之外,噪声抑制和语音增强也由ACNN完成,并与使用其他优化算法的人工神经网络(ANN)的结果进行比较。如今,在情感识别和语音增强方面已经进行了许多研究。情感识别背后的另一项艰巨任务就是选择情感识别语料库(语音数据库),识别与语音相关的不同特征以及适当地选择语音。分类模型。各种类型的分类器用于区分情绪。预处理,特征提取和分类是该信号模型中的重要阶段。在特征提取中提取局部不变特征和显着判别特征,将这些特征提供给神经网络进行训练,并在此基础上识别出与语音信号相对应的文本,该系统将独立于说话者,因为它使用录音具有不同语音情感的语音样本的标准数据库。

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