osanseviero HF staff commited on
Commit
25e3d78
1 Parent(s): ed067ae

Create pipeline.py

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  1. pipeline.py +35 -0
pipeline.py ADDED
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+ from typing import Any, List, Tuple
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+ import numpy as np
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+
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+ class PreTrainedPipeline():
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+ def __init__(self, path=""):
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+ # IMPLEMENT_THIS
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+ # Preload all the elements you are going to need at inference.
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+ # For instance your model, processors, tokenizer that might be needed.
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+ # This function is only called once, so do all the heavy processing I/O here"""
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+
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+ self.sampling_rate = # IMPLEMENT THIS
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+
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+ raise NotImplementedError(
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+ "Please implement PreTrainedPipeline __init__ function"
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+ )
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+
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+ def __call__(self, inputs: np.array) -> Tuple[np.array, int, List[str]]:
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+ """
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+ Args:
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+ inputs (:obj:`np.array`):
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+ The raw waveform of audio received. By default sampled at `self.sampling_rate`.
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+ The shape of this array is `T`, where `T` is the time axis
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+ Return:
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+ A :obj:`tuple` containing:
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+ - :obj:`np.array`:
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+ The return shape of the array must be `C'`x`T'`
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+ - a :obj:`int`: the sampling rate as an int in Hz.
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+ - a :obj:`List[str]`: the annotation for each out channel.
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+ This can be the name of the instruments for audio source separation
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+ or some annotation for speech enhancement. The length must be `C'`.
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+ """
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+ # IMPLEMENT_THIS
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+ raise NotImplementedError(
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+ "Please implement PreTrainedPipeline __call__ function"
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+ )