P. Chandankhede, Abhijit S. Titarmare, Sarang Chauhvan
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引用次数: 8

摘要

下面的回顾描述了一种独特的语音识别技术,基于有计划的分析和利用神经网络和谷歌API,利用语音的特征。多因素安全系统开创了声音模式和身份验证。经过项目驱动的完全独特的独立卷积层策略结构和完全独特的卷积的参与包括频谱和mel频率倒谱系数。本综述采用按比例放大和按比例缩小的频谱图对声音进行统计分析,同时利用谷歌语音转文本API将语音转换为密码,将进行交叉验证以扩展安全目的。我们的研究表明,整合的方法和结果阐明了这一领域的研究倾向,并鼓励我们在这一领域向前发展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Voice Recognition Based Security System Using Convolutional Neural Network
Following review depicts a unique speech recognition technique, based on planned analysis and utilization of Neural Network and Google API using speech’s characteristics. Multifactor security system pioneered for the authentication of vocal modalities and identification. Undergone project drives completely unique strategy of independent convolution layers structure and involvement of totally unique convolutions includes spectrum and Mel-frequency cepstral coefficient. This review takes in the statistical analysis of sound using scaled up and scaled down spectrograms, conjointly by exploitation the Google Speech-to-text API turns speech to pass code, it will be cross-verified for extended security purpose. Our study reveals that the incorporated methodology and the result provided elucidate the inclination of research in this area and encouraged us to advance in this field.
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