“ASR:2015-01-26”版本间的差异
来自cslt Wiki
(→Text Processing) |
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==== Environment ==== | ==== Environment ==== | ||
− | * May gpu760 of grid-14 | + | * May gpu760 of grid-14 has been repairing. |
− | * grid-11 often shutdown automatically | + | * grid-11 often shutdown automatically, too slow computation speed. |
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==== RNN AM==== | ==== RNN AM==== | ||
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* details at http://liuc.cslt.org/pages/rnnam.html | * details at http://liuc.cslt.org/pages/rnnam.html | ||
− | ====Dropout & Maxout & | + | ====Dropout & Maxout & rectifier ==== |
− | + | * Need to solve the too small learning-rate problem | |
− | + | * 20h small scale sparse dnn with rectifier. --Chao liu | |
− | + | * 20h small scale sparse dnn with Maxout/rectifier based on weight-magnitude-pruning. --Mengyuan Zhao | |
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====Convolutive network==== | ====Convolutive network==== | ||
* Convolutive network(DAE) | * Convolutive network(DAE) | ||
:* http://cslt.riit.tsinghua.edu.cn/cgi-bin/cvss/cvss_request.pl?account=zhangzy&step=view_request&cvssid=311 | :* http://cslt.riit.tsinghua.edu.cn/cgi-bin/cvss/cvss_request.pl?account=zhangzy&step=view_request&cvssid=311 | ||
− | : | + | :* Technical report to draft, Mian Wang, Yiye Lin, Shi Yin, Mengyuan Zhao |
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− | ====DNN-DAE(Deep | + | ====DNN-DAE(Deep Auto-Encode-DNN)==== |
− | + | * Technical report to draft, Xiangyu Zeng, Shi Yin, Mengyuan Zhao and Zhiyong Zhang, | |
− | + | * http://cslt.riit.tsinghua.edu.cn/cgi-bin/cvss/cvss_request.pl?account=zhangzy&step=view_request&cvssid=318 | |
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− | ====RNN-DAE(Deep based | + | ====RNN-DAE(Deep based Auto-Encode-RNN)==== |
− | + | * http://cslt.riit.tsinghua.edu.cn/cgi-bin/cvss/cvss_request.pl?account=zhangzy&step=view_request&cvssid=261 | |
− | + | * HOLD | |
====VAD==== | ====VAD==== | ||
− | * | + | * DAE |
− | * | + | * Technical report --Shi Yin |
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====Speech rate training==== | ====Speech rate training==== |
2015年1月30日 (五) 02:16的最后版本
目录
Speech Processing
AM development
Environment
- May gpu760 of grid-14 has been repairing.
- grid-11 often shutdown automatically, too slow computation speed.
RNN AM
- details at http://liuc.cslt.org/pages/rnnam.html
Dropout & Maxout & rectifier
- Need to solve the too small learning-rate problem
- 20h small scale sparse dnn with rectifier. --Chao liu
- 20h small scale sparse dnn with Maxout/rectifier based on weight-magnitude-pruning. --Mengyuan Zhao
Convolutive network
- Convolutive network(DAE)
- http://cslt.riit.tsinghua.edu.cn/cgi-bin/cvss/cvss_request.pl?account=zhangzy&step=view_request&cvssid=311
- Technical report to draft, Mian Wang, Yiye Lin, Shi Yin, Mengyuan Zhao
DNN-DAE(Deep Auto-Encode-DNN)
- Technical report to draft, Xiangyu Zeng, Shi Yin, Mengyuan Zhao and Zhiyong Zhang,
- http://cslt.riit.tsinghua.edu.cn/cgi-bin/cvss/cvss_request.pl?account=zhangzy&step=view_request&cvssid=318
RNN-DAE(Deep based Auto-Encode-RNN)
VAD
- DAE
- Technical report --Shi Yin
Speech rate training
- http://cslt.riit.tsinghua.edu.cn/cgi-bin/cvss/cvss_request.pl?account=zhangzy&step=view_request&cvssid=268
- Technical report to draft. Shi Yin
- Prepare for ChinaSIP
Confidence
- Reproduce the experiments on fisher dataset.
- Use the fisher DNN model to decode all-wsj dataset
- preparing scoring for puqiang data
- HOLD
Neural network visulization
Speaker ID
Language ID
- GMM-based language is ready.
- Delivered to Jietong
- Prepare the test-case
- http://cslt.riit.tsinghua.edu.cn/cgi-bin/cvss/cvss_request.pl?account=zhangzy&step=view_request&cvssid=328
Voice Conversion
- Yiye is reading materials
- HOLD
Text Processing
LM development
Domain specific LM
- LM2.1
- mix the sougou2T-lm,kn-discount continue
- train a large lm using 25w-dict.(hanzhenglong/wxx)
- add more data including poi, document information.
- add v1.0 vocab and filter the useless word
- set the test set
tag LM
- Tag Lm
- tag Probability should test add the weight(hanzhenglong) and handover to hanzhenglong ("this month")
- similar word extension in FST
- write a draft of a paper
- result :16.32->10.23
RNN LM
- rnn
- test wer RNNLM on Chinese data from jietong-data
- generate the ngram model from rnnlm and test the ppl with different size txt.
- lstm+rnn
- check the lstm-rnnlm code about how to Initialize and update learning rate.(hold)
Word2Vector
W2V based doc classification
- data prepare.
Knowledge vector
- Knowledge vector
- run the big data
- prepare the paper.
- result
Character to word
- Character to word conversion(hold)
Translation
- v5.0 demo released
- cut the dict and use new segment-tool
Sparse NN in NLP
- write a technical report
QA
improve fuzzy match
- add Synonyms similarity using MERT-4 method(hold)
improve lucene search
- add more feature to improve search.
- POS, NER ,tf ,idf ..
- extract more features about lexical, syntactic and semantic to improve re-ranking performance.
- using sentence vector
context framework
- code for organization
- change to knowledge graph
query normalization
- using NER to normalize the word
- new inter will install SEMPRE