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rapid_paraformer.utils.timestamp_utils
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@ -3,6 +3,7 @@ from rapid_paraformer import Paraformer
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model_dir = "/Users/shixian/code/funasr2/export/damo/speech_paraformer-large-vad-punc_asr_nat-zh-cn-16k-common-vocab8404-pytorch"
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model_dir = "/Users/shixian/code/funasr2/export/damo/speech_paraformer-large_asr_nat-zh-cn-16k-common-vocab8404-pytorch"
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model = Paraformer(model_dir, batch_size=1)
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wav_path = ['/Users/shixian/code/funasr2/export/damo/speech_paraformer-tiny-commandword_asr_nat-zh-cn-16k-vocab544-pytorch/example/asr_example.wav']
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@ -14,7 +14,7 @@ from .utils.utils import (CharTokenizer, Hypothesis, ONNXRuntimeError,
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read_yaml)
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from .utils.postprocess_utils import sentence_postprocess
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from .utils.frontend import WavFrontend
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from funasr.utils.timestamp_tools import time_stamp_lfr6_pl
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from .utils.timestamp_utils import time_stamp_lfr6_onnx
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logging = get_logger()
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@ -68,7 +68,7 @@ class Paraformer():
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preds, raw_token = self.decode(am_scores, valid_token_lens)[0]
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res['preds'] = preds
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if us_cif_peak is not None:
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timestamp = time_stamp_lfr6_pl(us_alphas, us_cif_peak, copy.copy(raw_token), log=False)
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timestamp = time_stamp_lfr6_onnx(us_cif_peak, copy.copy(raw_token))
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res['timestamp'] = timestamp
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asr_res.append(res)
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return asr_res
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@ -0,0 +1,59 @@
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import numpy as np
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def time_stamp_lfr6_onnx(us_cif_peak, char_list, begin_time=0.0):
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if not len(char_list):
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return []
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START_END_THRESHOLD = 5
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MAX_TOKEN_DURATION = 14
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TIME_RATE = 10.0 * 6 / 1000 / 3 # 3 times upsampled
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cif_peak = us_cif_peak.reshape(-1)
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num_frames = cif_peak.shape[-1]
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import pdb; pdb.set_trace()
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if char_list[-1] == '</s>':
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char_list = char_list[:-1]
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# char_list = [i for i in text]
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timestamp_list = []
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new_char_list = []
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# for bicif model trained with large data, cif2 actually fires when a character starts
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# so treat the frames between two peaks as the duration of the former token
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fire_place = np.where(cif_peak>1.0-1e-4)[0] - 1.5 # np format
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num_peak = len(fire_place)
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assert num_peak == len(char_list) + 1 # number of peaks is supposed to be number of tokens + 1
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# begin silence
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if fire_place[0] > START_END_THRESHOLD:
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# char_list.insert(0, '<sil>')
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timestamp_list.append([0.0, fire_place[0]*TIME_RATE])
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new_char_list.append('<sil>')
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# tokens timestamp
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for i in range(len(fire_place)-1):
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new_char_list.append(char_list[i])
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if MAX_TOKEN_DURATION < 0 or fire_place[i+1] - fire_place[i] < MAX_TOKEN_DURATION:
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timestamp_list.append([fire_place[i]*TIME_RATE, fire_place[i+1]*TIME_RATE])
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else:
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# cut the duration to token and sil of the 0-weight frames last long
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_split = fire_place[i] + MAX_TOKEN_DURATION
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timestamp_list.append([fire_place[i]*TIME_RATE, _split*TIME_RATE])
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timestamp_list.append([_split*TIME_RATE, fire_place[i+1]*TIME_RATE])
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new_char_list.append('<sil>')
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# tail token and end silence
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if num_frames - fire_place[-1] > START_END_THRESHOLD:
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_end = (num_frames + fire_place[-1]) / 2
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timestamp_list[-1][1] = _end*TIME_RATE
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timestamp_list.append([_end*TIME_RATE, num_frames*TIME_RATE])
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new_char_list.append("<sil>")
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else:
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timestamp_list[-1][1] = num_frames*TIME_RATE
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if begin_time: # add offset time in model with vad
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for i in range(len(timestamp_list)):
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timestamp_list[i][0] = timestamp_list[i][0] + begin_time / 1000.0
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timestamp_list[i][1] = timestamp_list[i][1] + begin_time / 1000.0
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assert len(new_char_list) == len(timestamp_list)
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res_txt = ""
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for char, timestamp in zip(new_char_list, timestamp_list):
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res_txt += "{} {} {};".format(char, timestamp[0], timestamp[1])
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res = []
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for char, timestamp in zip(new_char_list, timestamp_list):
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if char != '<sil>':
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res.append([int(timestamp[0] * 1000), int(timestamp[1] * 1000)])
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return res
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@ -55,6 +55,7 @@ def time_stamp_lfr6_pl(us_alphas, us_cif_peak, char_list, begin_time=0.0, end_ti
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res.append([int(timestamp[0] * 1000), int(timestamp[1] * 1000)])
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return res
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def time_stamp_sentence(punc_id_list, time_stamp_postprocessed, text_postprocessed):
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res = []
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if text_postprocessed is None:
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