“Schedule”版本间的差异

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Generation Model (Aodong li)
Chao Xing
第21行: 第21行:
  
 
====Chao Xing====
 
====Chao Xing====
 +
2016-05-17 :
 +
            1. Code & Test HRNN model.
 +
2016-05-16 :
 +
            1. Work done for CDSSM model.
 
2016-05-15 :
 
2016-05-15 :
 
             1. Test CDSSM model package version.
 
             1. Test CDSSM model package version.
第54行: 第58行:
 
             Tensorflow's version in huilan is 0.7.0 and install by pip, this cause using error in creating gpu graph,
 
             Tensorflow's version in huilan is 0.7.0 and install by pip, this cause using error in creating gpu graph,
 
             one possible solution is build tensorflow from source code.
 
             one possible solution is build tensorflow from source code.
 
  
 
====Aiting Liu====
 
====Aiting Liu====

2016年5月17日 (二) 07:37的版本

Text Processing Team Schedule

Members

Former Members

  • Rong Liu (刘荣) : 优酷
  • Xiaoxi Wang (王晓曦) : 图灵机器人
  • Xi Ma (马习) : 清华大学研究生
  • DongXu Zhang (张东旭) : --

Current Members

  • Tianyi Luo (骆天一)
  • Chao Xing (邢超)
  • Qixin Wang (王琪鑫)
  • Yiqiao Pan (潘一桥)
  • Aodong Li (李傲冬)
  • Ziwei Bai (白子薇)
  • Aiting Liu (刘艾婷)

Work Process

Question answering system

Chao Xing

2016-05-17 :

            1. Code & Test HRNN model.

2016-05-16 :

            1. Work done for CDSSM model.

2016-05-15 :

            1. Test CDSSM model package version.

2016-05-13 :

            1. Coding done CDSSM model package version. Wait to test.

2016-05-12 :

            1. Begin to package CDSSM model for huilan.

2016-05-11 :

            1. Prepare for paper sharing.
            2. Finish CDSSM model in chatting process.
            3. Start setup model & experiment in dialogue system.

2016-05-10 :

            1. Finish test CDSSM model in chatting, find original data has some problem.
            2. Read paper:
                   A Hierarchical Recurrent Encoder-Decoder for Generative Context-Aware Query Suggestion
                   A Neural Network Approach to Context-Sensitive Generation of Conversational Responses
                   Building End-To-End Dialogue Systems Using Generative Hierarchical Neural Network Models
                   Neural Responding Machine for Short-Text Conversation

2016-05-09 :

            1. Test CDSSM model in chatting model.
            2. Read paper : 
                   Learning from Real Users Rating Dialogue Success with Neural Networks for Reinforcement Learning in Spoken Dialogue Systems
                   SimpleDS A Simple Deep Reinforcement Learning Dialogue System
            3. Code RNN by myself in tensorflow.

2016-05-08 :

            Fix some problem in dialogue system team, and continue read some papers in dialogue system.

2016-05-07 :

            Read some papers in dialogue system.

2016-05-06 :

            Try to fix RNN-DSSM model in tensorflow. Failure..

2016-05-05 :

            Coding for RNN-DSSM in tensorflow. Face an error when running rnn-dssm model in cpu : memory keep increasing. 
            Tensorflow's version in huilan is 0.7.0 and install by pip, this cause using error in creating gpu graph,
            one possible solution is build tensorflow from source code.

Aiting Liu

2016-05-16:Process the data collected from the interview site、interview books and American TV subtitles(38.2M+23.2M)

2016-05-11:

           Fetch American TV subtitles
          (1.Friends 2.Big Bang Theory 3.The descendant of the Sun 4.Modern Family 5.House M.D. 6.Grey's Anatomy)

2016-05-08:Fetch data from 'http://news.ifeng.com/' and 'http://www.xinhuanet.com/'(13.4M)

2016-05-07:Fetch data from 'http://fangtan.china.com.cn/' and interview books (10M)

2016-05-04:Establish the overall framework of our chat robot,and continue to build database

Ziwei Bai

2016-05-16:

           1、find datasets in paper 'Neural Responding Machine for Short-Text Conversation'
           2、reconstruct 15 scripts into our expected formula 

2016-05-15:

           1、find 130 scripts
           2、 reconstruct 11 scripts into our expected formula 
           problem:many files cann't distinguish between dialogue and scenario describes by program. 

2016-05-11:

            1、read paper“Movie-DiC: a Movie Dialogue Corpus for Research and Development”
            2、reconstruct a new film scripts into our expected formula 

2016-05-08: convert the pdf we found yesterday into txt,and reconstruct the data into our expected formula

2016-05-07: Finding 9 Drama scripts and 20 film scripts

2016-05-04:Finding and dealing with the data for QA system

Generation Model (Aodong li)

2016-05-16 : Denoise and segment more lyrics and prepare for keywords to sequence model
2016-05-15 : Train some different models and analyze performance: song to song, paragraph to paragraph, etc.
2016-05-12 : complete sequence to sequence model's prediction process and the whole standard sequence to sequence lstm-based model v0.0
2016-05-11 : complete sequence to sequence model's training process in Theano
2016-05-10 : complete sequence to sequence lstm-based model in Theano
2016-05-09 : try to code sequence to sequence model
2016-05-08 :
   denoise and train word vectors of  Lijun Deng's lyrics (110+ pieces)
   decide on using raw sequence to sequence model
2016-05-07 :
   study attention-based model
   learn some details about the poem generation model
   change my focus onto lyrics generation model
2016-05-06 : read the paper about poem generation and learn about LSTM
2016-05-05 : check in and have an overview of generation model

Past progress

nlp-progress-2016-05

nlp-progress-2016-04