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首页> 外文期刊>IEEE Transactions on Neural Networks >Glove-Talk: a neural network interface between a data-glove and a speech synthesizer
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Glove-Talk: a neural network interface between a data-glove and a speech synthesizer

机译:手套对话:数据手套和语音合成器之间的神经网络接口

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摘要

To illustrate the potential of multilayer neural networks for adaptive interfaces, a VPL Data-Glove connected to a DECtalk speech synthesizer via five neural networks was used to implement a hand-gesture to speech system. Using minor variations of the standard backpropagation learning procedure, the complex mapping of hand movements to speech is learned using data obtained from a single 'speaker' in a simple training phase. With a 203 gesture-to-word vocabulary, the wrong word is produced less than 1% of the time, and no word is produced about 5% of the time. Adaptive control of the speaking rate and word stress is also available. The training times and final performance speed are improved by using small, separate networks for each naturally defined subtask. The system demonstrates that neural networks can be used to develop the complex mappings required in a high bandwidth interface that adapts to the individual user.
机译:为了说明多层神经网络用于自适应接口的潜力,使用了通过五个神经网络连接到DECtalk语音合成器的VPL数据手套来实现手势手势系统。使用标准反向传播学习程序的较小变化,就可以在简单的训练阶段中,使用从单个“说话者”获得的数据来学习手部动作到语音的复杂映射。使用203个手势到单词的词汇表,不到1%的时间就会产生错误的单词,而大约5%的时间不会产生任何单词。还可以自适应控制语速和单词重音。通过为每个自然定义的子任务使用小型,独立的网络,可以提高训练时间和最终执行速度。该系统演示了神经网络可用于开发适用于各个用户的高带宽接口中所需的复杂映射。

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