Security System Using A Robot Based On Speech Recognition

Wayan Dadang, Hera Hikmarika, Herma Hermawati, B. Suprapto, Suci Dwijayanti
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引用次数: 1

Abstract

This study describes a security system using a humanoid robot by utilizing speech recognition. The robot has two main parts, namely, Raspberry Pi 3 and two Arduino UNO R3 as a slave. This robot is designed as a combination of speech recognition and voice biometric. The instruction given by a speaker must be obeyed by the robot using servo motor. Meanwhile, for voice biometric, robot may give access to an authorized person using speech recognition. Mel Frequency Cepstral Coefficients (MFCCs), their delta, and delta-delta are used as feature extraction which is fed to a classifier, Gaussian Mixture Model (GMM). Results of this study show that the robot may recognize the speaker with an accuracy of 99.4% and 99% for 50% of testing data and 20% of testing data, respectively. Thus, this suggests that the combination of MFCC and GMM can be implemented in speech recognition for security system performed by the robot.
基于语音识别的机器人安全系统
本研究描述一种利用语音识别的人形机器人安全系统。该机器人有两个主要部分,即树莓派3和两个Arduino UNO R3作为从机。这个机器人被设计成语音识别和语音生物识别的结合。使用伺服电机的机器人必须服从扬声器发出的指令。同时,对于语音生物识别,机器人可以使用语音识别来访问授权人员。Mel频率倒谱系数(MFCCs),它们的δ和δ - δ被用作特征提取,并被馈送到分类器高斯混合模型(GMM)中。本研究结果表明,在50%的测试数据和20%的测试数据下,机器人识别说话人的准确率分别为99.4%和99%。因此,这表明MFCC和GMM的结合可以在机器人执行的安防系统语音识别中实现。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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