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# Model Arcitecture
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The implemented arcitecure of Deepspeech2 online model is based on [Deepspeech2 model](https://arxiv.org/pdf/1512.02595.pdf) with some changes.
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The figure of arcitecture is shown in ![image](../image/ds2onlineModel.png).
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The model is mainly composed of 2D convolution subsampling layer and single direction rnn layers. To illustrate the model implementation in detail, 5 parts is introduced.
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1. Feature Extraction.
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2. 2D Convolution subsampling layer.
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3. RNN layer with only forward direction.
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4. Softmax Layer.
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5. CTC Decoder.
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# Feature Extraction
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Three methods of feature extraction is implemented, which are linear, fbank and mfcc.
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For a single utterance $x^i$ sampled from the training set $S$,
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$ S= {(x^1,y^1),(x^2,y^2),...,(x^m,y^m)}$, where $y^i$ is the label correspodding to the ${x^i}
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