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--- |
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language: |
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- en |
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license: apache-2.0 |
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tags: |
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- text-classification |
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- emotion |
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- pytorch |
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datasets: |
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- emotion |
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metrics: |
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- Accuracy, F1 Score |
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thumbnail: https://avatars3.githubusercontent.com/u/32437151?s=460&u=4ec59abc8d21d5feea3dab323d23a5860e6996a4&v=4 |
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model-index: |
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- name: bhadresh-savani/electra-base-emotion |
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results: |
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- task: |
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type: text-classification |
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name: Text Classification |
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dataset: |
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name: emotion |
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type: emotion |
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config: default |
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split: test |
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metrics: |
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- type: accuracy |
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value: 0.9265 |
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name: Accuracy |
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verified: true |
|
verifyToken: eyJhbGciOiJFZERTQSIsInR5cCI6IkpXVCJ9.eyJoYXNoIjoiMjYwNGQxMzRmMjViNzVhODJjM2UxOGNkYmNjOTE3OTczNzUxN2IyNGY1ZmFiY2VlNzNkOWY3M2I5YmZlNDlmMyIsInZlcnNpb24iOjF9.4e7MLUVHIBXYIwOgAcSDRJ7ziMXMSwk2-Ip8DH1RjxBDthc4MiBglMxbOUUjSzTPtSSEZKqfTZonUq7yR_rwBQ |
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- type: precision |
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value: 0.911532655431019 |
|
name: Precision Macro |
|
verified: true |
|
verifyToken: eyJhbGciOiJFZERTQSIsInR5cCI6IkpXVCJ9.eyJoYXNoIjoiNzFkYzRjZGUwYmJmNmUxYjM3NzY3NWY0NzBhZjU5MDQxZWY4ZjA3OWMwMjQxMWJlODg5ZjIxZWFhYTg0ZGY2NCIsInZlcnNpb24iOjF9.I0j92y0SToxjoKkKX7AD8h5p3pDePSdQwOCBeZj-OGF0MRBeqo1Ejg-1snFFplU0mtoFF6rCvRq9WosqvRhfCA |
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- type: precision |
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value: 0.9265 |
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name: Precision Micro |
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verified: true |
|
verifyToken: eyJhbGciOiJFZERTQSIsInR5cCI6IkpXVCJ9.eyJoYXNoIjoiNGE2YzUyN2ZhYTdjZjQ4OWVkN2M4MzhjZWM0YzAyYWU2YjllZDYzOTYxYTZlZDAxNjA4ODY5NTk1MmE3ODQwZiIsInZlcnNpb24iOjF9.VQSaLzlreAIfy0iDJsCo-Mg1xF4gMv-KQkeIzoTKLhyp3V7rn5d5oaD8EEsay3gDamSC-xj8LndOqFL1AokZCg |
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- type: precision |
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value: 0.9305456360257519 |
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name: Precision Weighted |
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verified: true |
|
verifyToken: eyJhbGciOiJFZERTQSIsInR5cCI6IkpXVCJ9.eyJoYXNoIjoiNjcyZDdjMWE5YzhlNWUyZDg5YWUwOGRkYWFiMDNmMTY4N2QxZDg1YTU0MGQ2ZWI1ZDI5Mjk2MTVmN2JmZTA1YiIsInZlcnNpb24iOjF9.EvcL-mfmJ3rGQCaVRejoWplButUT_dQjgwPw-rWlqSC7Ex3reLa3hQ9PtYuXtYM3ymVl77rFgW2Yxf3lIn6RBg |
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- type: recall |
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value: 0.8536923122511134 |
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name: Recall Macro |
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verified: true |
|
verifyToken: eyJhbGciOiJFZERTQSIsInR5cCI6IkpXVCJ9.eyJoYXNoIjoiNjIwNjU1ZmIwYzgyYzNmNmY2NDkyNjA2MDg0NDcxOWQwMmJmZTFlYzg0NjI0YWMxNzhmYTQwNzU0Yzg5ZTk4MCIsInZlcnNpb24iOjF9.8he8WOjzHqJp5h2TUig7oDrn4jwSbSB1J69fmh-2UUrpH46VpwxD5bO0MG3Nm4HHYK2ZIzPb-sTX7hhMJHM7Bw |
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- type: recall |
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value: 0.9265 |
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name: Recall Micro |
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verified: true |
|
verifyToken: eyJhbGciOiJFZERTQSIsInR5cCI6IkpXVCJ9.eyJoYXNoIjoiZjRiODljZTc0ZDU3YWNlZTRlYjQwY2M5YWFiY2VkOWM5Yjg5NjYzZTNkYTA1ZTc3ZjU3YjY3ZGMzNWFiNTNhNSIsInZlcnNpb24iOjF9.W74pDxOq18_Wr3Mmd0f1whXMJuVT3DhmYCWh3Z_VKB6QMSgNUf4l1iBYukIT8Lrwr50z4pscBGY3YktlUgg5Bg |
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- type: recall |
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value: 0.9265 |
|
name: Recall Weighted |
|
verified: true |
|
verifyToken: eyJhbGciOiJFZERTQSIsInR5cCI6IkpXVCJ9.eyJoYXNoIjoiMjgxNDhjMDcwZTA2ZWQ2NTFlMTFjOGU4NDE4ZDY0MDJjNGMwOGYzMDViYTM5Y2M5ZTc2NDM3OTdmYTc1NzhhMiIsInZlcnNpb24iOjF9.x4sUtEJWliLYqyKkKMEvb10lSxqN8vhrmSAnwtyCp0tEag6DUNEUA6_nojaC3ABIDb4ZwVd7JIcQ5yD2PKU-Dg |
|
- type: f1 |
|
value: 0.8657529340483895 |
|
name: F1 Macro |
|
verified: true |
|
verifyToken: eyJhbGciOiJFZERTQSIsInR5cCI6IkpXVCJ9.eyJoYXNoIjoiZmUzZjNiOTZhNjE0ZWE5NDI2NzBmOGViYTc0NWYwYWQ3ZjA1ZTE1NmM5ZWRiZjA0NGYyZDM2OWE5YzA4NDY1MyIsInZlcnNpb24iOjF9.OLYrJI7nW4-nvCbEsJDIwyGL9lI1UNM-TBpMmosbkUCLu8MhhCdMo0tdKRaCRoDUtfLlwcUG9mOayAsDdfrqCw |
|
- type: f1 |
|
value: 0.9265 |
|
name: F1 Micro |
|
verified: true |
|
verifyToken: eyJhbGciOiJFZERTQSIsInR5cCI6IkpXVCJ9.eyJoYXNoIjoiZWE1ZDI1MzA3YTcwODU0NTgxYTNmYjc5ZDZkYzI3OWZmYjNlNjI5OWI4MDE4NDRhOWMyNWZiMjZlMTIwNWU3YSIsInZlcnNpb24iOjF9.ZpLdxeqJjKiLxUxRIVbBZa9u5w0UMPKVwvOha4tHMTiyq3RaW8TNOkFdO7TIsgxoPdQb6wzWNDojrqJOY4vsDg |
|
- type: f1 |
|
value: 0.924844632421077 |
|
name: F1 Weighted |
|
verified: true |
|
verifyToken: eyJhbGciOiJFZERTQSIsInR5cCI6IkpXVCJ9.eyJoYXNoIjoiY2VhNWZmM2E4NDI5NmRiMWJkNDk2MDMyMDZmYmE2ODBlNTA2NTdhYTc4NzRkOGU1ODczZDU4MTdhYTZlOTRiZCIsInZlcnNpb24iOjF9.93XiZO_2N0nLa2PU3TICEOT8HjURPzpaAVD_5e5MFMHrtMIB1Barg0cvzc3TCisKxV_vlt1i20d2YwtfWKgrBQ |
|
- type: loss |
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value: 0.3268870413303375 |
|
name: loss |
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verified: true |
|
verifyToken: eyJhbGciOiJFZERTQSIsInR5cCI6IkpXVCJ9.eyJoYXNoIjoiM2IyMjdlMWZkNjQwNWVkYzU1MWYyODJkMzAwOWJmZWJiYTI0OGRlZjhkMmZkN2JhMjJmMDdkMzQ1Y2U3NDY3MyIsInZlcnNpb24iOjF9.aEnyBFvFKixU1zh5GYkIUDcf4uD6PV7pESdbdvG_oJ1lIisOg6CEb6nekcYtDebcoL3q1cbrBdhgK6dgdShJBQ |
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--- |
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# Electra-base-emotion |
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## Model description: |
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## Model Performance Comparision on Emotion Dataset from Twitter: |
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| Model | Accuracy | F1 Score | Test Sample per Second | |
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| --- | --- | --- | --- | |
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| [Distilbert-base-uncased-emotion](https://huggingface.co/bhadresh-savani/distilbert-base-uncased-emotion) | 93.8 | 93.79 | 398.69 | |
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| [Bert-base-uncased-emotion](https://huggingface.co/bhadresh-savani/bert-base-uncased-emotion) | 94.05 | 94.06 | 190.152 | |
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| [Roberta-base-emotion](https://huggingface.co/bhadresh-savani/roberta-base-emotion) | 93.95 | 93.97| 195.639 | |
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| [Albert-base-v2-emotion](https://huggingface.co/bhadresh-savani/albert-base-v2-emotion) | 93.6 | 93.65 | 182.794 | |
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| [Electra-base-emotion](https://huggingface.co/bhadresh-savani/electra-base-emotion) | 91.95 | 91.90 | 472.72 | |
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## How to Use the model: |
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```python |
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from transformers import pipeline |
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classifier = pipeline("text-classification",model='bhadresh-savani/electra-base-emotion', return_all_scores=True) |
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prediction = classifier("I love using transformers. The best part is wide range of support and its easy to use", ) |
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print(prediction) |
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""" |
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Output: |
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[[ |
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{'label': 'sadness', 'score': 0.0006792712374590337}, |
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{'label': 'joy', 'score': 0.9959300756454468}, |
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{'label': 'love', 'score': 0.0009452480007894337}, |
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{'label': 'anger', 'score': 0.0018055217806249857}, |
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{'label': 'fear', 'score': 0.00041110432357527316}, |
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{'label': 'surprise', 'score': 0.0002288572577526793} |
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]] |
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""" |
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``` |
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## Dataset: |
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[Twitter-Sentiment-Analysis](https://huggingface.co/nlp/viewer/?dataset=emotion). |
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## Training procedure |
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[Colab Notebook](https://github.com/bhadreshpsavani/ExploringSentimentalAnalysis/blob/main/SentimentalAnalysisWithDistilbert.ipynb) |
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## Eval results |
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```json |
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{ |
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'epoch': 8.0, |
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'eval_accuracy': 0.9195, |
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'eval_f1': 0.918975455617076, |
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'eval_loss': 0.3486028015613556, |
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'eval_runtime': 4.2308, |
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'eval_samples_per_second': 472.726, |
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'eval_steps_per_second': 7.564 |
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} |
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``` |
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## Reference: |
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* [Natural Language Processing with Transformer By Lewis Tunstall, Leandro von Werra, Thomas Wolf](https://learning.oreilly.com/library/view/natural-language-processing/9781098103231/) |