Add pad_or_trim function to handle segment before encoding (#705)
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@@ -102,3 +102,18 @@ def _resample_frames(frames, resampler):
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# Add None to flush the resampler.
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for frame in itertools.chain(frames, [None]):
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yield from resampler.resample(frame)
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def pad_or_trim(array, length: int, *, axis: int = -1):
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"""
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Pad or trim the audio array to N_SAMPLES, as expected by the encoder.
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"""
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if array.shape[axis] > length:
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array = array.take(indices=range(length), axis=axis)
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if array.shape[axis] < length:
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pad_widths = [(0, 0)] * array.ndim
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pad_widths[axis] = (0, length - array.shape[axis])
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array = np.pad(array, pad_widths)
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return array
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@@ -11,7 +11,7 @@ import ctranslate2
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import numpy as np
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import tokenizers
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from faster_whisper.audio import decode_audio
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from faster_whisper.audio import decode_audio, pad_or_trim
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from faster_whisper.feature_extractor import FeatureExtractor
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from faster_whisper.tokenizer import _LANGUAGE_CODES, Tokenizer
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from faster_whisper.utils import download_model, format_timestamp, get_end, get_logger
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@@ -492,6 +492,7 @@ class WhisperModel:
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)
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segment = features[:, seek : seek + segment_size]
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segment_duration = segment_size * self.feature_extractor.time_per_frame
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segment = pad_or_trim(segment, self.feature_extractor.nb_max_frames)
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if self.logger.isEnabledFor(logging.DEBUG):
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self.logger.debug(
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