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Speech-controlled human-computer interface for audio-visual breast self-examination guidance system

机译:语音控制的人机界面,用于视听乳腺自我检查指导系统

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This paper presents the development of a speech-controlled human-computer interface (SR-HCI) as a subsystem of the audio-visual breast self-examination guidance system. This aims to better control the system during computer-guided breast self-examination (BSE) performance and allows for user indications of possible tumor locations by dictating it to the system through the speech recognition feature. Speech database for English and Hiligaynon languages are gathered and trained for this application. The speech recognition architecture includes Mel frequency cepstrum coefficients (MFCCs) for speech feature extraction, artificial neural network (ANN) for training and classification, and genetic algorithm for optimization. The authors performed tests in the speech recognition system and present the outcomes.
机译:本文介绍了语音控制人机界面(SR-HCI)作为视听乳腺自我检查指导系统的子系统的开发。这旨在在计算机引导的乳房自我检查(BSE)性能期间更好地控制系统,并通过语音识别功能将其指示给系统,从而允许用户指示可能的肿瘤位置。针对该应用程序收集并培训了英语和希里盖农语的语音数据库。语音识别架构包括用于语音特征提取的梅尔频率倒谱系数(MFCC),用于训练和分类的人工神经网络(ANN),以及用于优化的遗传算法。作者在语音识别系统中进行了测试,并给出了结果。

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