rajeshradhakrishnan
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Added the malayalam classify
Browse filesAfter cloning it to hugginglearners updated the model card and added the pipelinetag for widget
README.md
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---
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tags:
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- fastai
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---
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🥳
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1. Fill out this model card with more information (see the template below and the [documentation here](https://huggingface.co/docs/hub/model-repos))!
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---
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@@ -23,10 +48,23 @@ Greetings fellow fastlearner 🤝! Don't forget to delete this content from your
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# Model card
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## Model description
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## Intended uses & limitations
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## Training and evaluation data
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---
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tags:
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- fastai
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pipeline_tag:
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- text-classification
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---
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# Malayalam (മലയാളം) Classifier using fastai (Working in Progress)
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🥳 This model is my attempt to use machine learning using Malayalam Language. Huge inspiration from [Malayalam Text Classifier](https://kurianbenoy.com/2022-05-30-malayalamtext-0/). Courtesy to @waydegilliam for [blurr](https://ohmeow.github.io/blurr/text-examples-multilabel.html)
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🌈 മലയാളത്തിൽ മെഷീൻ ലീർണിങ് പഠിക്കാനും പിന്നേ പരിചയപ്പെടാനും, to be continued...
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# How its built ? & How to use ?
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Please find the [notebook](https://nbviewer.org/github/rajeshradhakrishnanmvk/kitchen2.0/blob/feature101-frontend/ml/fastai_X_Hugging_Face_Group_2022.ipynb) used for training the model
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Usage:
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First, install the utilities to load the model as well as `blurr`, which was used to train this model.
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```bash
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!pip install huggingface_hub[fastai]
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!git clone https://github.com/ohmeow/blurr.git && cd blurr && pip install -e ".[dev]"
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```
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```python
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from huggingface_hub import from_pretrained_fastai
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learner = from_pretrained_fastai("rajeshradhakrishnan/ml-news-classify-fastai")
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sentences = ["ഓഹരി വിപണി തകരുമ്പോള് നിക്ഷേപം എങ്ങനെ സുരക്ഷിതമാക്കാം",
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"വാര്ണറുടെ ഒറ്റക്കയ്യന് ക്യാച്ചില് അമ്പരന്ന് ക്രിക്കറ്റ് ലോകം"]
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probs = learner.predict(sentences)
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# 'business', 'entertainment', 'sports', 'technology'
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for idx in range(len(sentences)):
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print(f"Probability that sentence '{sentences[idx]}' is business is: {100*probs[idx]['probs'][0]:.2f}%")
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print(f"Probability that sentence '{sentences[idx]}' is entertainment is: {100*probs[idx]['probs'][1]:.2f}%")
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print(f"Probability that sentence '{sentences[idx]}' is sports is: {100*probs[idx]['probs'][2]:.2f}%")
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print(f"Probability that sentence '{sentences[idx]}' is technology is: {100*probs[idx]['probs'][3]:.2f}%")
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```
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---
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# Model card
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## Model description
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The is a Malayalam classifier model for labels 'business', 'entertainment', 'sports', 'technology'.
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## Intended uses & limitations
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The model can be used to categorize malayalam new sfeed.
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## Training and evaluation data
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Data is from the [AI4Bharat-IndicNLP Dataset](https://github.com/AI4Bharat/indicnlp_corpus#indicnlp-news-article-classification-dataset) and wrapper to extract only Malayalam data( [HF dataset](https://huggingface.co/datasets/rajeshradhakrishnan/malayalam_news))!.
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## Citation
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```
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@article{kunchukuttan2020indicnlpcorpus,
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title={AI4Bharat-IndicNLP Corpus: Monolingual Corpora and Word Embeddings for Indic Languages},
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author={Anoop Kunchukuttan and Divyanshu Kakwani and Satish Golla and Gokul N.C. and Avik Bhattacharyya and Mitesh M. Khapra and Pratyush Kumar},
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year={2020},
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journal={arXiv preprint arXiv:2005.00085},
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}
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```
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