Far-field Speech-controlled Smart Classroom with Natural Language Processing built under KNX Standard for Appliance Control

A. Yumang, Melanie G. Abando, Elijah Paul M. de Dios
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Abstract

As the world continues to embark on its era of innovation, recent technological advancements easily become integrated into people's everyday living. With the establishing premise of artificial intelligence (AI) on the horizon, technology becomes increasingly transparent to its users (termed as ambient technology) in an attempt to mimic human nature when handling complex processes and delivering efficient results. In spite of this, majority of research on voice user interfaces (VUIs) have been partial to the benefit of people with disabilities. This study overwhelms this limitation as the implementation of a VUI in a smart classroom is achieved for the purposes of ambient technology. The main objective of this study is to develop a far-field speech-controlled smart classroom with natural language processing (NLP) built under KNX standard for appliance control. Using NLP techniques such as shallow parsing and Naïve Bayes classification, the researchers were able to write their own API in Python for a VUI codenamed Luna. From the experiment conducted in this study, Luna was able to obtain a confusion matrix (CM) accuracy of 95.56% with the implementation of the Naïve Bayes classifier alongside the shallow parser.
基于KNX设备控制标准的自然语言处理远场语音控制智能教室
随着世界继续进入创新时代,最新的技术进步很容易融入人们的日常生活。随着人工智能(AI)的建立前提即将到来,技术对其用户变得越来越透明(称为环境技术),试图在处理复杂过程和提供高效结果时模仿人性。尽管如此,大多数关于语音用户界面(VUIs)的研究都偏向于残疾人的利益。这项研究突破了这一限制,因为在智能教室中实现VUI是为了环境技术的目的。本研究的主要目的是开发一个基于KNX标准的自然语言处理(NLP)的远场语音控制智能教室。使用NLP技术,如浅层解析和Naïve贝叶斯分类,研究人员能够用Python为代号为Luna的VUI编写自己的API。从本研究中进行的实验中,Luna能够通过Naïve贝叶斯分类器和浅解析器的实现获得95.56%的混淆矩阵(CM)准确率。
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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