Jo Kristian Bergum
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Add model card
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README.md
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---
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license: apache-2.0
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tags:
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- generated_from_trainer
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datasets:
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- emotion
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metrics:
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- accuracy
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model-index:
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- name: xtremedistil-l6-h384-emotion
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results:
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- task:
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name: Text Classification
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type: text-classification
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dataset:
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name: emotion
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type: emotion
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args: default
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metrics:
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- name: Accuracy
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type: accuracy
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value: 0.928
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---
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# xtremedistil-l6-h384-emotion
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This model is a fine-tuned version of [microsoft/xtremedistil-l6-h384-uncased](https://huggingface.co/microsoft/xtremedistil-l6-h384-uncased) on the emotion dataset.
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It achieves the following results on the evaluation set:
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- Accuracy: 0.928
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This model can be quantized to int8 and retain accuracy
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- Accuracy 0.912
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<pre>
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import transformers
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import transformers.convert_graph_to_onnx as onnx_convert
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from pathlib import Path
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pipeline = transformers.pipeline("text-classification",model=model,tokenizer=tokenizer)
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onnx_convert.convert_pytorch(pipeline, opset=11, output=Path("xtremedistil-l6-h384-emotion.onnx"), use_external_format=False)
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from onnxruntime.quantization import quantize_dynamic, QuantType
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quantize_dynamic("xtremedistil-l6-h384-emotion.onnx", "xtremedistil-l6-h384-emotion-int8.onnx",
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weight_type=QuantType.QUInt8)
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</pre>
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### Training hyperparameters
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The following hyperparameters were used during training:
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- learning_rate: 3e-05
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- train_batch_size: 128
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- eval_batch_size: 8
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- seed: 42
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- num_epochs: 14
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### Training results
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<pre>
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Epoch Training Loss Validation Loss Accuracy
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1 No log 0.960511 0.689000
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2 No log 0.620671 0.824000
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3 No log 0.435741 0.880000
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4 0.797900 0.341771 0.896000
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5 0.797900 0.294780 0.916000
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6 0.797900 0.250572 0.918000
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7 0.797900 0.232976 0.924000
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8 0.277300 0.216347 0.924000
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9 0.277300 0.202306 0.930500
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10 0.277300 0.192530 0.930000
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11 0.277300 0.192500 0.926500
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12 0.181700 0.187347 0.928500
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13 0.181700 0.185896 0.929500
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14 0.181700 0.185154 0.928000
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</pre>
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