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- # PyLaia Rimes
 
 
 
 
 
 
 
 
 
 
 
 
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- ## Datasets
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- Trained on text-lines from the [Rimes 2011 dataset](https://teklia.com/research/rimes-database/).
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- | split | N lines |
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- |--------|--------:|
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- | train | 10,188 |
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- | val | 1,138 |
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- | test | 778 |
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- ## Results
 
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- * Fixed line height: 128 pixels
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- * Language model: 6-gram character model trained on the training set with KenLM
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- | Model | val CER | test CER | val WER | test WER |
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- |:--------------------------------|--------:|---------:|--------:|---------:|
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- | Model without LM | 4.55 | 4.53 | 14.39 | 15.06 |
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- | Model with LM (`weight = 1.5`) | 3.68 | 3.47 | 10.01 | 10.20 |
 
 
 
 
 
 
 
 
 
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+ ---
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+ library_name: PyLaia
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+ license: mit
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+ tags:
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+ - PyLaia
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+ - PyTorch
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+ - Handwritten text recognition
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+ metrics:
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+ - CER
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+ - WER
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+ language:
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+ - fr
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+ ---
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+ # French handwritten text recognition
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+ This model performs Handwritten Text Recognition in French.
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+ ## Model description
 
 
 
 
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+ The model has been trained using the PyLaia library on the [RIMES](https://teklia.com/research/rimes-database/) dataset.
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+ Training images were resized with a fixed height of 128 pixels, keeping the original aspect ratio.
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+ ## Evaluation results
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+
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+ The model achieves the following results:
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+
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+ | set | Language model | CER (%) | WER (%) | N lines |
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+ |:------|:---------------|:----------:|:-------:|----------:|
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+ | test | no | 4.53 | 15.06 | 778 |
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+ | test | yes | 3.47 | 10.20 | 778 |
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+
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+ ## How to use
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+
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+ Please refer to the [documentation](https://atr.pages.teklia.com/pylaia/).