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--- |
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license: mit |
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datasets: |
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- squad |
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- eli5 |
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- sentence-transformers/embedding-training-data |
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language: |
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- da |
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--- |
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# MiniLM-L6-danish-reranker |
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This is a lightweight (~22 M parameters) [sentence-transformers](https://www.SBERT.net) model for Danish NLP: It takes two sentences as input and outputs a relevance score. Therefore, the model can be used for information retrieval, e.g. given a query and candidate matches, rank the candidates by their relevance. |
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The maximum sequence length is 512 tokens (for both passages). |
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The model was not pre-trained from scratch but adapted from the English version of [cross-encoder/ms-marco-MiniLM-L-6-v2](https://huggingface.co/cross-encoder/ms-marco-MiniLM-L-6-v2) with a [Danish tokenizer](https://huggingface.co/KennethTM/bert-base-uncased-danish). |
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Trained on ELI5 and SQUAD data machine translated from English to Danish. |
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## Usage with Transformers |
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```python |
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from transformers import AutoTokenizer, AutoModelForSequenceClassification |
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import torch |
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model = AutoModelForSequenceClassification.from_pretrained('KennethTM/MiniLM-L6-danish-reranker') |
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tokenizer = AutoTokenizer.from_pretrained('KennethTM/MiniLM-L6-danish-reranker') |
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features = tokenizer(['Kører der cykler på vejen?', 'Kører der cykler på vejen?'], ['En panda løber på vejen.', 'En mand kører hurtigt forbi på cykel.'], padding=True, truncation=True, return_tensors="pt") |
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model.eval() |
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with torch.no_grad(): |
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scores = model(**features).logits |
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print(scores) |
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``` |
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## Usage with SentenceTransformers |
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The usage becomes easier when you have [SentenceTransformers](https://www.sbert.net/) installed. Then, you can use the pre-trained models like this: |
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```python |
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from sentence_transformers import CrossEncoder |
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model = CrossEncoder('KennethTM/MiniLM-L6-danish-reranker', max_length=512) |
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scores = model.predict([('Kører der cykler på vejen?', 'En panda løber på vejen.'), ('Kører der cykler på vejen?', 'En mand kører hurtigt forbi på cykel.')]) |
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``` |
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