An Intelligent Mobile application to Assist in Taking Mathematical Notes using Speech Recognition and Natural Language Processing

Casson Qin, Jack Wagner
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Abstract

This study evaluated the accuracy and reliability of Voice Note Taking, a technology designed to transcribe spoken language and support note-taking. The experiment analyzed the transcription accuracy and word definition selection feature of Voice Note Taking using a series of audio files featuring individuals speaking in English in different settings. The results showed that Voice Note Taking is reliable and accurate, with an overall transcription accuracy rate of 87.81%. However, the study identified room for improvement, particularly in improving accuracy in noisy environments and developing more sophisticated algorithms for word definition selection. Future research could explore the integration of advanced natural language processing techniques to improve the accuracy of word definition selection, including leveraging machine learning algorithms to recognize the specific context and meaning of words. Several previous studies have shown the potential of mobile note-taking apps to enhance student achievement, satisfaction, and accessibility, suggesting further research in this area. Overall, this study highlights the strengths and limitations of Voice Note Taking and provides insight into potential areas for future development.
使用语音识别和自然语言处理帮助记数学笔记的智能移动应用程序
这项研究评估了语音笔记的准确性和可靠性,语音笔记是一项旨在转录口语和支持笔记的技术。本实验使用一系列不同环境下以英语说话的人的音频文件,分析了语音笔记的抄写准确性和单词定义选择特征。结果表明,语音记录可靠、准确,整体转录准确率为87.81%。然而,该研究发现了改进的空间,特别是在提高嘈杂环境中的准确性和开发更复杂的词定义选择算法方面。未来的研究可以探索整合先进的自然语言处理技术来提高单词定义选择的准确性,包括利用机器学习算法来识别单词的特定上下文和含义。之前的几项研究表明,移动笔记应用程序在提高学生成绩、满意度和可访问性方面具有潜力,这表明在这一领域有进一步的研究。总的来说,这项研究突出了语音笔记的优势和局限性,并为未来的发展提供了潜在的领域。
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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