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第259行: |
第259行: |
| |Qi Qu | | |Qi Qu |
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− | * | + | * AED: |
| + | ** Fixed some bugs while developing c/jni/python/go libs. |
| + | ** Unit test. |
| + | ** More positive/negative samples collected for classifier training. |
| + | * KWS: |
| + | ** Data collected and cleaned for the new Mandarin Chinese wordlist: 48 keywords, ~200 speakers, ~60k audio segments. |
| + | ** Contextual keyword data (keyword embedded in contextual utterances) collected and annotated (and yet to be delivered). |
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− | * | + | * AED: |
| + | ** Classifier to be trained. |
| + | ** On-device integration test. |
| + | * KWS: |
| + | ** Test datasets to be delivered. |
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People |
This Week |
Next Week |
Task Tracking (DeadLine)
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Dong Wang
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- ISCSLP 2 papers refinement
- AI Graph slildes checking (to chapt 23)
- Content design for medcine vocational education
- Paper review for NC
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Lantian Li
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- GPU status [1]
- Rabbit05 will be ready in this week.
- Projects
- AED -> miniaturization
- TSE -> finish 1st phase delivery
- VSR -> start a new data collection phase
- Finance -> R^2 testing
- Papers
- NeuralScoring
- check ISCSLP paper
- AI graph
- Slides checking (18/50)
- High school handbook (2/40)
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Ying Shi
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- Text enroll keywords spotting here
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Zhenghai You
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- Finish huawei project first phase delivery
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Junming Yuan
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- check the multi-lingual experiment again, the result in [2]
- the opposite trend appears on different English datasets
- our MT pretrained model show the better performance in 2-mixed test with multi-lingual
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Chen Chen
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Xiaolou Li
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- Different length inference test
- MLLM paper reading and LLaMA-Factroy testing
- Report and Interview preparation
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- Prepare dataset for LLaMA finetuning
- Try different PEFT method.
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Zehua Liu
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- Friday Report
- HUAWEI Interview
- Training For VSP-LLM(443h)
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Pengqi Li
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- Supervised learning of the ASP has been successfully trained[3].
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Wan Lin
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- Neural Scoring
- Experiments(CN & layer_num & chunk_len)
- Paper revision
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Tianhao Wang
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- Neural Scoring [4]
- parameter tuning for three genre CN fine-tuning (minDCF is weak)
- noisy training and testing with musan (minDCF is weak)
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Zhenyu Zhou
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- Huawei Project Submission
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Junhui Chen
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- Neural Scoring
- One transformer encoder layer exps (get good performance)
- paper refinement
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Jiaying Wang
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- dptnet wsj 2mix(training)
- dptnet libri3ix (done)
- dptnet libri3mix cohort(training, seems overfit with poor performance)
- condition chain code preparing
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Yu Zhang
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Wenqiang Du
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- Training of some local dialect models [5]
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Yang Wei
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- AIBabel
- Train Uyghur and Kazakh KWS model.
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Lily
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- Thesis writing
- ISCSLP paper submission
- AIRadiance daily works
- Live broadcast
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Turi
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- Updated the Data collection app to enable uploading in the background while users record.
- Prepared 60hrs of data to start experiment
- Tried running using wenet toolkit for few epochs(loss fluctuates)
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Yue Gu
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- paper writing: finish 5.5 pages (5.5/9)
- find a bug which influence the real time factor (RTF), now test again
|
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|
Qi Qu
|
- AED:
- Fixed some bugs while developing c/jni/python/go libs.
- Unit test.
- More positive/negative samples collected for classifier training.
- KWS:
- Data collected and cleaned for the new Mandarin Chinese wordlist: 48 keywords, ~200 speakers, ~60k audio segments.
- Contextual keyword data (keyword embedded in contextual utterances) collected and annotated (and yet to be delivered).
|
- AED:
- Classifier to be trained.
- On-device integration test.
- KWS:
- Test datasets to be delivered.
|
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