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cbdd616
1
Parent(s):
8bec389
Update hubert/inference.py
Browse files- hubert/inference.py +35 -2
hubert/inference.py
CHANGED
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@@ -4,6 +4,8 @@ import numpy as np
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import argparse
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import torch
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import librosa
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from hubert import hubert_model
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@@ -22,6 +24,37 @@ def load_model(path, device):
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return model
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def pred_vec(model, wavPath, vecPath, device):
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audio = load_audio(wavPath)
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audln = audio.shape[0]
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@@ -62,6 +95,6 @@ if __name__ == "__main__":
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vecPath = args.vec
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device = "cuda" if torch.cuda.is_available() else "cpu"
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-
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-
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pred_vec(hubert, wavPath, vecPath, device)
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import argparse
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import torch
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import librosa
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import requests
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from tqdm import tqdm
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from hubert import hubert_model
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return model
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def check_and_download_model():
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temp_dir = "/tmp"
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model_path = os.path.join(temp_dir, "hubert-soft-0d54a1f4.pt")
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if os.path.exists(model_path):
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return f"モデルは既に存在します: {model_path}"
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url = "https://github.com/bshall/hubert/releases/download/v0.1/hubert-soft-0d54a1f4.pt"
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try:
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response = requests.get(url, stream=True)
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response.raise_for_status()
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total_size = int(response.headers.get('content-length', 0))
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with open(model_path, 'wb') as f, tqdm(
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desc=model_path,
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total=total_size,
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unit='iB',
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unit_scale=True,
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unit_divisor=1024,
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) as pbar:
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for data in response.iter_content(chunk_size=1024):
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size = f.write(data)
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pbar.update(size)
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return f"モデルのダウンロードが完了しました: {model_path}"
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except Exception as e:
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return f"エラーが発生しました: {e}"
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def pred_vec(model, wavPath, vecPath, device):
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audio = load_audio(wavPath)
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audln = audio.shape[0]
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vecPath = args.vec
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device = "cuda" if torch.cuda.is_available() else "cpu"
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_ = check_and_download_model()
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hubert = load_model("/tmp/hubert-soft-0d54a1f4.pt", device)
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pred_vec(hubert, wavPath, vecPath, device)
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