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首页> 外文期刊>IEEE Transactions on Consumer Electronics >Analysis of parallel genetic algorithms on HMM based speech recognition system
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Analysis of parallel genetic algorithms on HMM based speech recognition system

机译:基于HMM的语音识别系统的并行遗传算法分析。

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摘要

A hidden Markov model (HMM) is a natural and highly robust statistical method for automatic speech recognition. It has been tested and proved effective in a wide range of applications. The HMM model parameters are used to describe the utterance of the speech segment presented by the HMM. Many successful heuristic algorithms are developed to optimize the model parameters to best describe the training observation sequences. However, all these methods are exploring for only one local maximum in practice. No single method can be recovered from the local maximum and to obtain the global maximum or other more optimized local maxima. In this paper, a stochastic search method called the genetic algorithm (GA) is presented for HMM training. GA mimics natural evolution and performs searching within the defined searching space. Experimental results showed that using GA for HMM training (GA-HMM training) can obtain better solutions than using heuristic algorithms. One of the major drawbacks is that GAs require a lot of computation power for global searching before it can converge. Therefore, in order to outperform heuristic algorithms, a parallel version of GA called the parallel genetic algorithm (PGA) is introduced. Experimental results showed that using PGA in speech recognition systems provides 18% improvement in recognition rate with the same amount of computational time.
机译:隐马尔可夫模型(HMM)是一种用于自动语音识别的自然且高度鲁棒的统计方法。它已经过测试,并被证明在广泛的应用中有效。 HMM模型参数用于描述HMM呈现的语音段的发音。开发了许多成功的启发式算法来优化模型参数,以最好地描述训练观察序列。但是,所有这些方法在实践中仅探索一个局部最大值。无法从局部最大值中恢复任何单一方法并获得全局最大值或其他更优化的局部最大值。本文提出了一种随机搜索方法,称为遗传算法(GA),用于HMM训练。 GA模仿自然进化并在定义的搜索空间内执行搜索。实验结果表明,使用遗传算法进行HMM训练(GA-HMM训练)比使用启发式算法可以获得更好的解决方案。主要缺点之一是,GA在收敛之前需要大量计算能力才能进行全局搜索。因此,为了优于启发式算法,引入了并行版本的GA,称为并行遗传算法(PGA)。实验结果表明,在相同的计算时间下,在语音识别系统中使用PGA可以使识别率提高18%。

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