计算机科学
人工智能
人工神经网络
自然语言
循环神经网络
抽象
计算
卷积神经网络
时滞神经网络
语言模型
神经系统网络模型
图形
自然语言处理
机器学习
理论计算机科学
人工神经网络的类型
程序设计语言
哲学
认识论
摘要
Over the past few years, neural networks have re-emerged as powerful machine-learning models, yielding state-of-the-art results in fields such as image recognition and speech processing. More recently, neural network models started to be applied also to textual natural language signals, again with very promising results. This tutorial surveys neural network models from the perspective of natural language processing research, in an attempt to bring natural-language researchers up to speed with the neural techniques. The tutorial covers input encoding for natural language tasks, feed-forward networks, convolutional networks, recurrent networks and recursive networks, as well as the computation graph abstraction for automatic gradient computation.
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