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Add application file

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app.py ADDED
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+ from typing import Dict
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+
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+ import gradio as gr
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+ import whisper
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+ from whisper.tokenizer import get_tokenizer
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+
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+ import classify
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+
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+
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+ def zero_shot_classify(audio_path: str, class_names: str, model_name: str) -> Dict[str, float]:
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+ class_names = class_names.split(",")
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+ tokenizer = get_tokenizer(multilingual=".en" not in model_name)
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+ model = whisper.load_model(model_name)
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+
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+ internal_lm_average_logprobs = classify.calculate_internal_lm_average_logprobs(
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+ model=model,
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+ class_names=class_names,
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+ tokenizer=tokenizer,
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+ )
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+ audio_features = classify.calculate_audio_features(audio_path, model)
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+ average_logprobs = classify.calculate_average_logprobs(
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+ model=model,
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+ audio_features=audio_features,
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+ class_names=class_names,
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+ tokenizer=tokenizer,
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+ )
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+ average_logprobs -= internal_lm_average_logprobs
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+ scores = average_logprobs.softmax(-1).tolist()
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+ return {class_name: score for class_name, score in zip(class_names, scores)}
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+
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+
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+ def main():
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+ CLASS_NAMES = "[dog barking],[helicopter whirring],[laughing],[birds chirping],[clock ticking]"
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+ AUDIO_PATHS = [
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+ "./data/(dog)1-100032-A-0.wav",
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+ "./data/(helicopter)1-181071-A-40.wav",
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+ "./data/(laughing)1-1791-A-26.wav",
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+ "./data/(chirping_birds)1-34495-A-14.wav",
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+ "./data/(clock_tick)1-21934-A-38.wav",
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+ ]
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+ EXAMPLES = []
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+ for audio_path in AUDIO_PATHS:
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+ EXAMPLES.append([audio_path, CLASS_NAMES, "small"])
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+
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+ DESCRIPTION = """
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+ <div style="text-align: center;">
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+ <p>
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+ This demo allows you to try out zero-shot audio classification using
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+ [Whisper](https://github.com/openai/whisper).
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+ </p>
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+ <p>Github: [https://github.com/jumon/zac](https://github.com/jumon/zac)</p>
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+ <p>
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+ Example audio files are from the [ESC-50](https://github.com/karolpiczak/ESC-50)
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+ dataset (CC BY-NC 3.0).
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+ </p>
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+ </div>
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+ """
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+
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+ demo = gr.Interface(
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+ fn=zero_shot_classify,
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+ inputs=[
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+ gr.Audio(source="upload", type="filepath", label="Audio File"),
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+ gr.Textbox(lines=1, label="Candidate class names (comma-separated)"),
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+ gr.Radio(
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+ choices=["tiny", "base", "small", "medium", "large"],
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+ value="small",
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+ label="Model Name",
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+ ),
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+ ],
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+ outputs="label",
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+ examples=EXAMPLES,
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+ title="Zero-shot Audio Classification using Whisper",
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+ description=DESCRIPTION,
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+ )
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+
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+ demo.launch()
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+
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+
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+ if __name__ == "__main__":
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+ main()
classify.py ADDED
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+ from typing import List, Optional
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+
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+ import torch
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+ import torch.nn.functional as F
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+ from whisper.audio import N_FRAMES, N_MELS, log_mel_spectrogram, pad_or_trim
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+ from whisper.model import Whisper
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+ from whisper.tokenizer import Tokenizer
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+
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+
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+ @torch.no_grad()
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+ def calculate_audio_features(audio_path: Optional[str], model: Whisper) -> torch.Tensor:
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+ if audio_path is None:
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+ segment = torch.zeros((N_MELS, N_FRAMES), dtype=torch.float32).to(model.device)
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+ else:
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+ mel = log_mel_spectrogram(audio_path)
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+ segment = pad_or_trim(mel, N_FRAMES).to(model.device)
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+ return model.embed_audio(segment.unsqueeze(0))
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+
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+
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+ @torch.no_grad()
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+ def calculate_average_logprobs(
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+ model: Whisper,
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+ audio_features: torch.Tensor,
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+ class_names: List[str],
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+ tokenizer: Tokenizer,
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+ ) -> torch.Tensor:
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+ initial_tokens = (
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+ torch.tensor(tokenizer.sot_sequence_including_notimestamps).unsqueeze(0).to(model.device)
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+ )
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+ eot_token = torch.tensor([tokenizer.eot]).unsqueeze(0).to(model.device)
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+
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+ average_logprobs = torch.zeros(len(class_names))
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+ for i, class_name in enumerate(class_names):
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+ class_name_tokens = (
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+ torch.tensor(tokenizer.encode(" " + class_name)).unsqueeze(0).to(model.device)
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+ )
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+ input_tokens = torch.cat([initial_tokens, class_name_tokens, eot_token], dim=1)
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+
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+ logits = model.logits(input_tokens, audio_features) # (1, T, V)
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+ logprobs = F.log_softmax(logits, dim=-1).squeeze(0) # (T, V)
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+ logprobs = logprobs[len(tokenizer.sot_sequence_including_notimestamps) - 1 : -1] # (T', V)
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+ logprobs = torch.gather(logprobs, dim=-1, index=class_name_tokens.view(-1, 1)) # (T', 1)
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+ average_logprob = logprobs.mean().item()
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+ average_logprobs[i] = average_logprob
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+
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+ return average_logprobs
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+
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+
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+ def calculate_internal_lm_average_logprobs(
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+ model: Whisper,
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+ class_names: List[str],
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+ tokenizer: Tokenizer,
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+ verbose: bool = False,
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+ ) -> torch.Tensor:
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+ audio_features_from_empty_input = calculate_audio_features(None, model)
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+ average_logprobs = calculate_average_logprobs(
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+ model=model,
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+ audio_features=audio_features_from_empty_input,
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+ class_names=class_names,
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+ tokenizer=tokenizer,
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+ )
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+ if verbose:
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+ print("Internal LM average log probabilities for each class:")
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+ for i, class_name in enumerate(class_names):
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+ print(f" {class_name}: {average_logprobs[i]:.3f}")
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+ return average_logprobs
data/(chirping_birds)1-34495-A-14.wav ADDED
Binary file (441 kB). View file
 
data/(clock_tick)1-21934-A-38.wav ADDED
Binary file (441 kB). View file
 
data/(dog)1-100032-A-0.wav ADDED
Binary file (441 kB). View file
 
data/(helicopter)1-181071-A-40.wav ADDED
Binary file (441 kB). View file
 
data/(laughing)1-1791-A-26.wav ADDED
Binary file (441 kB). View file
 
packages.txt ADDED
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+ ffmpeg
requirements.txt ADDED
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+ git+https://github.com/openai/whisper.git
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+ tqdm