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Initial Release.

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CHANGELOG.md ADDED
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+ # Changelog
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+
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+ ## v0.1 - 2024-04-06 - @0xnu
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+ * Initial release.
LICENSE ADDED
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+ 0xnu/pmmlv2-fine-tuned-yoruba
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+ Copyright (c) 2024 Finbarrs Oketunji.
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+
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+ MIT License
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+
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+ Permission is hereby granted, free of charge, to any person obtaining a copy
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+ of this software and associated documentation files (the "Software"), to deal
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+ in the Software without restriction, including without limitation the rights
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+ to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
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+ copies of the Software, and to permit persons to whom the Software is
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+ furnished to do so, subject to the following conditions:
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+
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+ The above copyright notice and this permission notice shall be included in all
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+ copies or substantial portions of the Software.
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+
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+ THE SOFTWARE IS PROVIDED *AS IS*, WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
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+ IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
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+ FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
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+ AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
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+ LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
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+ OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE
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+ SOFTWARE.
NOTICE ADDED
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+ @name: 0xnu/AGTD-v0.1
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+ @author: Finbarrs Oketunji
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+ @contact: f@finbarrs.eu
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+ @time: 06/04/2024 - 21:02
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+
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+ This product includes software developed by [Finbarrs Oketunji](https://finbarrs.eu).
README.md ADDED
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+ ---
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+ language:
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+ - multilingual
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+ - ar
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+ - bg
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+ - ca
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+ - cs
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+ - da
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+ - de
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+ - el
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+ - en
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+ - es
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+ - et
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+ - fa
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+ - fi
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+ - fr
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+ - gl
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+ - gu
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+ - he
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+ - hi
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+ - hr
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+ - hu
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+ - hy
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+ - id
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+ - it
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+ - ja
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+ - ka
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+ - ko
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+ - ku
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+ - lt
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+ - lv
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+ - mk
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+ - mn
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+ - mr
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+ - ms
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+ - my
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+ - nb
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+ - nl
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+ - pl
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+ - pt
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+ - ro
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+ - ru
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+ - sk
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+ - sl
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+ - sq
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+ - sr
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+ - sv
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+ - th
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+ - tr
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+ - uk
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+ - ur
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+ - vi
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+ - yo
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+ license: mit
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+ library_name: sentence-transformers
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+ tags:
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+ - sentence-transformers
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+ - feature-extraction
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+ - sentence-similarity
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+ - transformers
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+ language_bcp47:
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+ - fr-ca
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+ - pt-br
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+ - zh-cn
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+ - zh-tw
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+ pipeline_tag: sentence-similarity
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+ inference: false
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+ ---
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+
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+ ## 0xnu/pmmlv2-fine-tuned-yoruba
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+
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+ Yoruba fine-tuned LLM using [sentence-transformers/paraphrase-multilingual-MiniLM-L12-v2](https://huggingface.co/sentence-transformers/paraphrase-multilingual-MiniLM-L12-v2).
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+
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+ ### Usage (Sentence-Transformers)
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+
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+ Using this model becomes easy when you have [sentence-transformers](https://www.SBERT.net) installed:
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+
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+ ```
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+ pip install -U sentence-transformers
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+ ```
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+
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+ Then you can use the model like this:
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+
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+ ```python
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+ from sentence_transformers import SentenceTransformer
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+ sentences = ["This is an example sentence", "Each sentence is converted"]
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+
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+ model = SentenceTransformer('0xnu/pmmlv2-fine-tuned-yoruba')
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+ embeddings = model.encode(sentences)
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+ print(embeddings)
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+ ```
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+
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+ ### Usage (HuggingFace Transformers)
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+ Without [sentence-transformers](https://www.SBERT.net), you can use the model like this: First, you pass your input through the transformer model, then you have to apply the right pooling-operation on-top of the contextualized word embeddings.
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+
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+ ```python
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+ from transformers import AutoTokenizer, AutoModel
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+ import torch
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+
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+
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+ # Mean Pooling - Take attention mask into account for correct averaging
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+ def mean_pooling(model_output, attention_mask):
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+ token_embeddings = model_output[0] #First element of model_output contains all token embeddings
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+ input_mask_expanded = attention_mask.unsqueeze(-1).expand(token_embeddings.size()).float()
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+ return torch.sum(token_embeddings * input_mask_expanded, 1) / torch.clamp(input_mask_expanded.sum(1), min=1e-9)
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+
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+ # Sentences we want sentence embeddings for
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+ sentences = ['This is an example sentence', 'Each sentence is converted']
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+
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+ # Load model from HuggingFace Hub
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+ tokenizer = AutoTokenizer.from_pretrained('0xnu/pmmlv2-fine-tuned-yoruba')
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+ model = AutoModel.from_pretrained('0xnu/pmmlv2-fine-tuned-yoruba')
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+
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+ # Tokenize sentences
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+ encoded_input = tokenizer(sentences, padding=True, truncation=True, return_tensors='pt')
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+
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+ # Compute token embeddings
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+ with torch.no_grad():
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+ model_output = model(**encoded_input)
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+
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+ # Perform pooling. In this case, max pooling.
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+ sentence_embeddings = mean_pooling(model_output, encoded_input['attention_mask'])
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+
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+ print("Sentence embeddings:")
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+ print(sentence_embeddings)
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+ ```
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+
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+ ### License
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+
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+ This project is licensed under the [MIT License](./LICENSE).
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+
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+ ### Copyright
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+
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+ (c) 2024 [Finbarrs Oketunji](https://finbarrs.eu).
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