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alessandro trinca tornidor
feat: refactor get_resulting_string to reduce its complexity, improve some return typing
0746ae5
import numpy as np | |
import torch | |
from aip_trainer.models import ModelInterfaces | |
class NeuralASR(ModelInterfaces.IASRModel): | |
word_locations_in_samples = None | |
audio_transcript = None | |
def __init__(self, model: torch.nn.Module, decoder) -> None: | |
super().__init__() | |
self.model = model | |
self.decoder = decoder # Decoder from CTC-outputs to transcripts | |
def getTranscript(self) -> str: | |
"""Get the transcripts of the process audio""" | |
assert self.audio_transcript is not None, 'Can get audio transcripts without having processed the audio' | |
return self.audio_transcript | |
def getWordLocations(self) -> list: | |
"""Get the pair of words location from audio""" | |
assert self.word_locations_in_samples is not None, 'Can get word locations without having processed the audio' | |
return self.word_locations_in_samples | |
def processAudio(self, audio: torch.Tensor): | |
"""Process the audio""" | |
audio_length_in_samples = audio.shape[1] | |
with torch.inference_mode(): | |
nn_output = self.model(audio) | |
self.audio_transcript, self.word_locations_in_samples = self.decoder( | |
nn_output[0, :, :].detach(), audio_length_in_samples, word_align=True) | |