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Research on Isolated Word Recognition Algorithm Based on Machine Learning

机译:基于机器学习的孤立词识别算法研究

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Natural language communication between humans and machines is a popular direction of artificial intelligence. As a technology for realizing direct dialogue between humans and machines, speech recognition technology can convert human speech signals into language information, providing technical support for human-machine language communication. In this paper, we conduct a speech recognition study. First, we collect more than 1,000 pieces of speech data, preprocess the speech data, extract three different characteristics of speech such as LPC, LPCC, and MFCC, and divide the speech data into a training set and a test set. Two naive Bayesian and KNN classifiers are used for classification, and the classification accuracy is obtained. This paper mainly studies the accuracy of isolated word recognition in three different features and two different classification algorithms.
机译:人与机器之间的自然语言交流是人工智能的流行方向。语音识别技术作为一种实现人机对话的技术,可以将人的语音信号转换为语言信息,为人机语言交流提供技术支持。在本文中,我们进行了语音识别研究。首先,我们收集了1000多个语音数据,对语音数据进行预处理,提取了三种不同的语音特征(例如LPC,LPCC和MFCC),并将语音数据分为训练集和测试集。使用两个朴素贝叶斯和KNN分类器进行分类,并获得分类精度。本文主要研究三种不同特征和两种不同分类算法中孤立词识别的准确性。

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