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Duplicate from mutisya/kik_asr_demo_1

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  1. .gitattributes +34 -0
  2. README.md +13 -0
  3. app.py +72 -0
  4. packages.txt +3 -0
  5. requirements.txt +11 -0
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README.md ADDED
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+ ---
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+ title: Kikuyu Asr Demo 1
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+ emoji: 🌖
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+ colorFrom: pink
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+ colorTo: purple
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+ sdk: gradio
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+ sdk_version: 3.19.1
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+ app_file: app.py
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+ pinned: false
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+ duplicated_from: mutisya/kik_asr_demo_1
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+ ---
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+
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+ Check out the configuration reference at https://huggingface.co/docs/hub/spaces-config-reference
app.py ADDED
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+ import os
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+ import gradio as gr
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+ from pydub import AudioSegment
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+ import pyaudioconvert as pac
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+ import torch
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+ import torchaudio
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+ import sox
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+ from transformers import Wav2Vec2ForCTC, Wav2Vec2Processor,Wav2Vec2ProcessorWithLM
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+
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+
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+ def convert (audio):
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+ file_name = audio
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+ if file_name.endswith("mp3") or file_name.endswith("wav") or file_name.endswith("ogg"):
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+ if file_name.endswith("mp3"):
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+ sound = AudioSegment.from_mp3(file_name)
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+ sound.export(audio, format="wav")
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+ elif file_name.endswith("ogg"):
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+ sound = AudioSegment.from_ogg(audio)
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+ sound.export(audio, format="wav")
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+ else:
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+ return False
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+ pac.convert_wav_to_16bit_mono(audio,audio)
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+ return True
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+
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+
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+ def parse_transcription_with_lm(logits):
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+ result = processor_with_LM.batch_decode(logits.cpu().numpy())
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+ text = result.text
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+ transcription = text[0].replace('<s>','')
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+ return transcription
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+
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+ def parse_transcription(logits):
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+ predicted_ids = torch.argmax(logits, dim=-1)
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+ transcription = processor.decode(predicted_ids[0], skip_special_tokens=True)
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+ return transcription
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+
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+ def transcribe(audio, audio_microphone, applyLM):
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+ audio_path = audio_microphone if audio_microphone else audio
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+ speech_array, sampling_rate = torchaudio.load(audio_path)
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+ speech = torchaudio.functional.resample(speech_array, orig_freq=sampling_rate, new_freq=16000).squeeze().numpy()
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+ """
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+ if convert(audio_path)== False:
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+ return "The format must be mp3,wav and ogg"
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+ speech, sample_rate = torchaudio.load(audio_path)
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+ """
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+
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+ inputs = processor(speech, sampling_rate=16_000, return_tensors="pt", padding=True)
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+ with torch.no_grad():
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+ logits = model(inputs.input_values).logits
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+
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+ if applyLM:
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+ return parse_transcription_with_lm(logits)
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+ else:
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+ return parse_transcription(logits)
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+
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+ auth_token = os.environ.get("key") or True
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+ model_id = "mutisya/wav2vec2-300m-kik-t22-1k-ft-withLM"
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+ processor = Wav2Vec2Processor.from_pretrained(model_id, use_auth_token=auth_token)
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+ processor_with_LM = Wav2Vec2ProcessorWithLM.from_pretrained(model_id, use_auth_token=auth_token)
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+ model = Wav2Vec2ForCTC.from_pretrained(model_id, use_auth_token=auth_token)
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+
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+
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+ gradio_ui = gr.Interface(
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+ fn=transcribe,
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+ title="Kikuyu Speech Recognition",
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+ description="",
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+ inputs=[gr.Audio(label="Upload Audio File", type="filepath", optional=True),
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+ gr.Audio(source="microphone", type="filepath", optional=True, label="Record from microphone"),
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+ gr.Checkbox(label="Apply LM", value=False)],
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+ outputs=[gr.outputs.Textbox(label="Recognized speech")]
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+ )
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+ gradio_ui.launch(enable_queue=True)
packages.txt ADDED
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+ libsndfile1
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+ sox
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+ ffmpeg
requirements.txt ADDED
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+ gradio
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+ https://github.com/kpu/kenlm/archive/master.zip
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+ pyctcdecode
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+ soundfile
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+ torch
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+ torchaudio
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+ transformers
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+ pydub
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+ pyaudioconvert
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+ sox
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+ scipy