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An approach to recognize and pronounce words with alternative pronunciations in Farsi

机译:在波斯语中识别和发音具有其他发音的单词的方法

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In Farsi orthography some words have more than one pronunciation which corresponds to different meanings. For a good text to speech system, the words with alternative pronunciation should be determined. The proposed system in this paper is capable of recognizing and pronouncing the words with alternative pronunciations. A new definition of parameter Vowel State (VS) is used to determine the phonemes of a word. A multi layer perceptron neural network with 48, 150 and 7 neurons in the input layer, the hidden layer and the output layer is chosen to extract the phonemes. Comparing with other reported works which employ neural networks the proposed network shows efficient results according to the number of interconnections and performance. The proposed network is tested over 2024 words and results show a performance index of 85% to 95% depending on the percentage of the training set.
机译:在波斯语拼写法中,某些单词的发音不只一种,对应于不同的含义。对于良好的文本到语音系统,应确定具有替代发音的单词。本文提出的系统能够识别和发音具有替代发音的单词。参数元音状态(VS)的新定义用于确定单词的音素。选择在输入层,隐藏层和输出层中具有48、150和7个神经元的多层感知器神经网络来提取音素。与采用神经网络的其他报道的工作相比,根据互连的数量和性能,所提出的网络显示出有效的结果。拟议的网络经过2024个单词的测试,结果表明,根据训练集的百分比,性能指数为85%至95%。

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