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Test spacy
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from typing import Dict, List, Any
import spacy
import os
class EndpointHandler():
def __init__(self, path=""):
# load the optimized model
os.system("python -m spacy download en_core_web_sm")
self.pipeline = spacy.load("en_core_web_sm")
def __call__(self, data: Any) -> List[List[Dict[str, float]]]:
"""
Args:
data (:obj:):
includes the input data and the parameters for the inference.
Return:
A :obj:`list`:. The object returned should be a list of one list like [[{"label": 0.9939950108528137}]] containing :
- "label": A string representing what the label/class is. There can be multiple labels.
- "score": A score between 0 and 1 describing how confident the model is for this label/class.
"""
inputs = data.pop("inputs", data)
doc = self.pipeline(inputs)
res = []
for token in doc:
res.append({"token": token.text, "pos": token.pos_, "dep": token.dep_})
return res