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Add guide for documentation-9-"RNN模型" #8882

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24 changes: 24 additions & 0 deletions doc/v2/howto/rnn/index_cn.rst
Original file line number Diff line number Diff line change
@@ -1,10 +1,34 @@
RNN模型
===========
循环神经网络(RNN)是对序列数据建模的重要工具。PaddlePaddle提供了灵活的接口以支持复杂循环神经网络的构建。
这一部分将分以下章节详细介绍如何使用PaddlePaddle搭建循环神经网络。
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全文中的“本章节”词语太大了,可重新调整下。比如第四行:
这一部分将分为以下四方面详细介绍如何使用PaddlePaddle搭建循环神经网络?
下同

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Done.


.. toctree::
:maxdepth: 1

rnn_config_cn.rst

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介绍需要放在子目录的上面,现在都在下面。请重新调整下顺序,可参考命令行参数设置在不同集群中运行的格式。

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Done.

本章节由浅入深的展示了使用PaddlePaddle搭建循环神经网络的全貌:首先以简单的循环神经网络(vanilla RNN)为例,
说明如何封装配置循环神经网络组件;然后更进一步的通过sequence to sequence模型,逐步讲解如何构建完整而复杂的循环神经网络模型。
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sequence to sequence-》序列到序列(sequence to sequence)

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Done.


.. toctree::
:maxdepth: 1

recurrent_group_cn.md

Recurrent Group是PaddlePaddle中实现复杂循环神经网络的关键,本章节阐述了PaddlePaddle中Recurrent Group的相关概念和原理,
对Recurrent Group接口进行了详细说明。另外,对双层RNN(对应的输入为双层序列)及Recurrent Group在其中的使用进行了介绍。

.. toctree::
:maxdepth: 1

hierarchical_layer_cn.rst

本章节对双层序列进行了解释说明,列出了PaddlePaddle中支持双层序列作为输入的Layer并对其使用进行了逐一介绍。
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这句太长,需要断句下:列出了PaddlePaddle中支持双层序列作为输入的Layer,并对其使用进行了逐一介绍。

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Done.


.. toctree::
:maxdepth: 1

hrnn_rnn_api_compare_cn.rst

本章节以PaddlePaddle的双层RNN单元测试中的网络配置为示例,辅以效果相同的单层RNN网络配置作为对比,讲解了多种情况下双层RNN的使用。