dfsgs / pipeline.py
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Create pipeline.py
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import json
from typing import Any, Dict, List
import sklearn
import os
import joblib
import numpy as np
import whatlies
class PreTrainedPipeline():
def __init__(self, path: str):
# load the model
self.model = joblib.load(os.path.join(path, "model.pkl"))
def __call__(self, inputs):
predictions = self.model.predict_proba([inputs])
labels = []
for cls in predictions[0]:
labels.append({
"label": f"LABEL_{cls}",
"score": predictions[0][cls],
})
return labels