胆小的
计算机科学
辍学(神经网络)
端到端原则
规范化(社会学)
卷积神经网络
语音识别
人工神经网络
循环神经网络
残余物
序列(生物学)
人工智能
字错误率
时滞神经网络
隐马尔可夫模型
算法
机器学习
生物
社会学
遗传学
人类学
出处
期刊:Cornell University - arXiv
日期:2017-10-12
摘要
This thesis introduces the sequence to sequence model with Luong's attention mechanism for end-to-end ASR. It also describes various neural network algorithms including Batch normalization, Dropout and Residual network which constitute the convolutional attention-based seq2seq neural network. Finally the proposed model proved its effectiveness for speech recognition achieving 15.8% phoneme error rate on TIMIT dataset.
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