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v0.6.1
...
eos_multi_turn
| Author | SHA1 | Date | |
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| 09670dd3c7 |
+54
-51
@@ -229,8 +229,7 @@ class TranscriptionServer:
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websocket.close()
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return False # Indicates that the connection should not continue
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if self.backend.is_tensorrt():
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self.vad_detector = VoiceActivityDetector(frame_rate=self.RATE)
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self.vad_detector = VoiceActivityDetector(frame_rate=self.RATE)
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self.initialize_client(websocket, options, faster_whisper_custom_model_path,
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whisper_tensorrt_path, trt_multilingual)
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return True
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@@ -248,17 +247,15 @@ class TranscriptionServer:
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frame_np = self.get_audio_from_websocket(websocket)
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client = self.client_manager.get_client(websocket)
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if frame_np is False:
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if self.backend.is_tensorrt():
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client.set_eos(True)
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client.set_eos(True)
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return False
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if self.backend.is_tensorrt():
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voice_active = self.voice_activity(websocket, frame_np)
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if voice_active:
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self.no_voice_activity_chunks = 0
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client.set_eos(False)
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if self.use_vad and not voice_active:
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return True
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voice_active = self.voice_activity(websocket, frame_np)
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if voice_active:
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self.no_voice_activity_chunks = 0
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client.set_eos(False)
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if self.use_vad and not voice_active:
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return True
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client.add_frames(frame_np)
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return True
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@@ -331,13 +328,8 @@ class TranscriptionServer:
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raise ValueError(f"Custom faster_whisper model '{faster_whisper_custom_model_path}' is not a valid path.")
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if whisper_tensorrt_path is not None and not os.path.exists(whisper_tensorrt_path):
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raise ValueError(f"TensorRT model '{whisper_tensorrt_path}' is not a valid path.")
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if single_model:
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if faster_whisper_custom_model_path or whisper_tensorrt_path:
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logging.info("Custom model option was provided. Switching to single model mode.")
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self.single_model = True
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# TODO: load model initially
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else:
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logging.info("Single model mode currently only works with custom models.")
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self.single_model = single_model
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if not BackendType.is_valid(backend):
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raise ValueError(f"{backend} is not a valid backend type. Choose backend from {BackendType.valid_types()}")
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with serve(
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@@ -416,6 +408,7 @@ class ServeClientBase(object):
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self.add_pause_thresh = 3 # add a blank to segment list as a pause(no speech) for 3 seconds
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self.transcript = []
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self.send_last_n_segments = 10
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self.eos = False
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# text formatting
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self.pick_previous_segments = 2
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@@ -423,6 +416,18 @@ class ServeClientBase(object):
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# threading
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self.lock = threading.Lock()
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def set_eos(self, eos):
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"""
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Sets the End of Speech (EOS) flag.
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Args:
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eos (bool): The value to set for the EOS flag.
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"""
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self.lock.acquire()
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self.eos = eos
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self.lock.release()
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def speech_to_text(self):
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raise NotImplementedError
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@@ -543,7 +548,8 @@ class ServeClientBase(object):
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self.websocket.send(
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json.dumps({
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"uid": self.client_uid,
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"segments": segments,
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"text": segments,
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"eos": self.eos
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})
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)
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except Exception as e:
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@@ -648,17 +654,6 @@ class ServeClientTensorRT(ServeClientBase):
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for i in range(warmup_steps):
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self.transcriber.transcribe(mel)
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def set_eos(self, eos):
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"""
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Sets the End of Speech (EOS) flag.
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Args:
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eos (bool): The value to set for the EOS flag.
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"""
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self.lock.acquire()
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self.eos = eos
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self.lock.release()
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def handle_transcription_output(self, last_segment, duration):
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"""
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Handle the transcription output, updating the transcript and sending data to the client.
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@@ -784,7 +779,7 @@ class ServeClientFasterWhisper(ServeClientBase):
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self.task = task
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self.initial_prompt = initial_prompt
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self.vad_parameters = vad_parameters or {"threshold": 0.5}
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self.no_speech_thresh = 0.45
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self.no_speech_thresh = 0.35
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device = "cuda" if torch.cuda.is_available() else "cpu"
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@@ -796,6 +791,7 @@ class ServeClientFasterWhisper(ServeClientBase):
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self.create_model(device)
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ServeClientFasterWhisper.SINGLE_MODEL = self.transcriber
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else:
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print("Re-using already initialized model.")
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self.transcriber = ServeClientFasterWhisper.SINGLE_MODEL
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else:
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self.create_model(device)
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@@ -888,8 +884,9 @@ class ServeClientFasterWhisper(ServeClientBase):
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initial_prompt=self.initial_prompt,
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language=self.language,
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task=self.task,
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vad_filter=self.use_vad,
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vad_parameters=self.vad_parameters if self.use_vad else None)
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vad_filter=False,
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vad_parameters=self.vad_parameters if self.use_vad else None,
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beam_size=5)
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if ServeClientFasterWhisper.SINGLE_MODEL:
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ServeClientFasterWhisper.SINGLE_MODEL_LOCK.release()
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@@ -932,17 +929,16 @@ class ServeClientFasterWhisper(ServeClientBase):
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result (str): The result from whisper inference i.e. the list of segments.
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duration (float): Duration of the transcribed audio chunk.
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"""
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segments = []
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if len(result):
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self.t_start = None
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last_segment = self.update_segments(result, duration)
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segments = self.prepare_segments(last_segment)
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else:
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# show previous output if there is pause i.e. no output from whisper
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segments = self.get_previous_output()
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if len(segments):
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self.send_transcription_to_client(segments)
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if len(self.text):
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if self.eos and last_segment is None:
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self.send_transcription_to_client(' '.join([s.strip() for s in self.text]))
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self.set_eos(False)
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self.text = []
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elif not self.eos:
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self.send_transcription_to_client(' '.join([s.strip() for s in self.text]))
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def speech_to_text(self):
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"""
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@@ -972,7 +968,12 @@ class ServeClientFasterWhisper(ServeClientBase):
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self.clip_audio_if_no_valid_segment()
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input_bytes, duration = self.get_audio_chunk_for_processing()
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if duration < 1.0:
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if duration < 0.6:
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if len(self.text) and self.eos:
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self.send_transcription_to_client(' '.join([s.strip() for s in self.text]))
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self.set_eos(False)
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self.text = []
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time.sleep(0.1)
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continue
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try:
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input_sample = input_bytes.copy()
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@@ -980,7 +981,7 @@ class ServeClientFasterWhisper(ServeClientBase):
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if result is None or self.language is None:
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self.timestamp_offset += duration
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time.sleep(0.25) # wait for voice activity, result is None when no voice activity
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time.sleep(0.1) # wait for voice activity, result is None when no voice activity
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continue
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self.handle_transcription_output(result, duration)
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@@ -1029,13 +1030,13 @@ class ServeClientFasterWhisper(ServeClientBase):
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dict or None: The last processed segment with its start time, end time, and transcribed text.
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Returns None if there are no valid segments to process.
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"""
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last_segment = None
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offset = None
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self.current_out = ''
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# process complete segments
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if len(segments) > 1:
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for i, s in enumerate(segments[:-1]):
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text_ = s.text
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self.text.append(text_)
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start, end = self.timestamp_offset + s.start, self.timestamp_offset + min(duration, s.end)
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if start >= end:
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@@ -1043,15 +1044,17 @@ class ServeClientFasterWhisper(ServeClientBase):
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if s.no_speech_prob > self.no_speech_thresh:
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continue
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self.text.append(text_)
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self.transcript.append(self.format_segment(start, end, text_))
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offset = min(duration, s.end)
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self.current_out += segments[-1].text
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last_segment = self.format_segment(
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self.timestamp_offset + segments[-1].start,
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self.timestamp_offset + min(duration, segments[-1].end),
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self.current_out
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)
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if segments[-1].no_speech_prob <= self.no_speech_thresh:
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self.current_out += segments[-1].text
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last_segment = self.format_segment(
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self.timestamp_offset + segments[-1].start,
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self.timestamp_offset + min(duration, segments[-1].end),
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self.current_out
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)
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# if same incomplete segment is seen multiple times then update the offset
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# and append the segment to the list
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@@ -1060,7 +1063,7 @@ class ServeClientFasterWhisper(ServeClientBase):
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else:
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self.same_output_threshold = 0
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if self.same_output_threshold > 5:
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if self.same_output_threshold > 2:
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if not len(self.text) or self.text[-1].strip().lower() != self.current_out.strip().lower():
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self.text.append(self.current_out)
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self.transcript.append(self.format_segment(
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