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Polyphone Recognition Using Neural Networks

机译:使用神经网络的多声道电话识别

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In this paper, we explore the recognition of polyphone. The cognition process is complex, which needs other additional information, otherwise it may cause uncertainty in decision. Recent research is almost focused on phonetics, while we plan to explore the question with neural networks. H. Haken used synergetic neural network to discuss the recognition of ambivalent patterns and the evolution equation of order parameters can interpret the oscillation in perception. Based on his idea, we argue that the process of cognition is phase transformation. Then we apply Hopfield network (associative memory network) with depressing synapse to simulate the recognition process. With our model, a Chinese polyphone is demonstrated. The result supports our interpretation strongly.
机译:在本文中,我们探讨了多音素的识别。认知过程很复杂,需要其他附加信息,否则可能会导致决策的不确定性。最近的研究几乎都集中在语音学上,而我们计划使用神经网络来探索这个问题。 H. Haken使用协同神经网络来讨论歧义模式的识别,并且阶数参数的演化方程可以解释感知中的振荡。基于他的想法,我们认为认知过程是相变。然后,我们使用带有压触的Hopfield网络(联想存储网络)来模拟识别过程。用我们的模型演示了一个中文复音器。结果有力地支持了我们的解释。

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