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from typing import Dict, List |
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import os |
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import fasttext.util |
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class PreTrainedPipeline(): |
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def __init__(self, path=""): |
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""" |
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Initialize model |
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""" |
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self.model = fasttext.load_model(os.path.join(path, 'debate2vec.bin')) |
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def __call__(self, inputs: str) -> List[List[Dict[str, float]]]: |
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""" |
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Args: |
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inputs (:obj:`str`): |
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a string containing some text |
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Return: |
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A :obj:`list`:. The object returned should be a list of one list like [[{"label": 0.9939950108528137}]] containing : |
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- "label": A string representing what the label/class is. There can be multiple labels. |
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- "score": A score between 0 and 1 describing how confident the model is for this label/class. |
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""" |
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preds = self.model.get_nearest_neighbors("dog", k=10) |
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result = [] |
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for distance, word in preds: |
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result.append({"label": word, "score": distance}) |
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return [result] |
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