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https://github.com/RashadGarayev/TRSpeech-to-text


https://github.com/RashadGarayev/TRSpeech-to-text

deepspeech mozilla speech-recognition tensorflow tensorflowdeepspeech turkish-language

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# A TensorFlow implementation of Baidu's DeepSpeech architecture

----------

DeepSpeech is an open source Speech-To-Text engine, using a model trained by machine learning techniques based on `Baidu's Deep Speech research paper `_. Project DeepSpeech uses Google's `TensorFlow `_ to make the implementation easier.

## Training Your Own Model
https://github.com/mozilla/DeepSpeech/blob/master/doc/TRAINING.rst#training-your-own-model

'Turkish Language TSV file'
https://voice.mozilla.org/tr/datasets

### Installation
-----------

git clone https://github.com/mozilla/DeepSpeech
cd DeepSpeech
pip3 install -r requirements.txt
pip3 install deepspeech

To install and use deepspeech all you have to do is:


pip3 install deepspeech





### pre-trained Turkish model
For the language model, I used kenlm’
lmplz -o 2 < vocabulary > text.arpa
build_binary text.arpa lm.binary

##### after training
loss = 6.42

/model/output_graph.pb

## Training model
sudo ./run-ldc93s1.sh

Quicker inference can be performed using a supported NVIDIA GPU on Linux. See the `release notes `_ to find which GPUs are supported. To run ``deepspeech`` on a GPU, install the GPU specific package:

### Install DeepSpeech CUDA enabled package
pip3 install deepspeech-gpu

-------------------------------------------------------
## Testing model
#### download lm.binary file from google drive
https://drive.google.com/open?id=1n2VCKosd2JsCVF1TQWIkKbVdeLQf2OYJ

deepspeech --model '/model/output_graph.pb' --lm '/data/lm/lm.binary' --trie '/data/lm/trie' --audio example.wav

-------------------------------------------------------
## Real-time DeepSpeech Analysis
python code example

https://discourse.mozilla.org/t/real-time-deepspeech-analysis-using-built-in-microphone/42669