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+ model-00001-of-00003.safetensors filter=lfs diff=lfs merge=lfs -text
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+ tokenizer.model filter=lfs diff=lfs merge=lfs -text
README.md ADDED
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+ ---
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+ license: apache-2.0
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+ language:
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+ - en
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+ tags:
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+ - music
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+ - art
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+ - text-generation-inference
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+ - transformers
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+ pipeline_tag: text-generation
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+ library_name: transformers
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+ ---
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+
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+ # Stage 1 Model
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+
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+ # ScrapeGoatMusic Generation API
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+
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+ A music generation system powered by ScrapeGoatMusic, optimized for NVIDIA H100 GPUs with FastAPI integration.
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+
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+ ## System Requirements
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+
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+ - NVIDIA H100 GPU
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+ - CUDA 12.0 or higher
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+ - Python 3.8
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+ - 32GB+ RAM
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+ - Ubuntu 22.04 LTS or higher
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+
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+ ## Installation
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+
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+ 1. Create and activate a conda environment:
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+ ```bash
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+ conda create -n ScrapeGoatMusic python=3.8
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+ conda activate ScrapeGoatMusic
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+ ```
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+
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+ 2. Install PyTorch with CUDA support:
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+ ```bash
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+ conda install pytorch torchvision torchaudio pytorch-cuda=12.1 -c pytorch -c nvidia
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+ ```
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+
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+ 3. Install dependencies:
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+ ```bash
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+ pip install descript-audio-codec
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+ pip install npy_append_array soundfile
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+ pip install fastapi uvicorn python-multipart
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+ pip install flash-attn --no-build-isolation
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+ ```
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+
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+ 4. Clone and install RepCodec:
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+ ```bash
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+ cd inference/xcodec_mini_infer
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+ git clone https://github.com/mct10/RepCodec.git
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+ cd RepCodec
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+ pip install .
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+ ```
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+
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+ 5. Download required model files:
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+ ```bash
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+ # Download models from Hugging Face
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+ git lfs install
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+ cd inference
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+ git clone https://huggingface.co/Nathan9/xcodec_mini_infer
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+ ```
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+
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+ ## API Setup
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+
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+ 1. Create a new file `api.py`:
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+ ```python
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+ from fastapi import FastAPI, UploadFile, File, Form
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+ from fastapi.responses import FileResponse
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+ import uvicorn
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+ import torch
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+ import os
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+ import argparse
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+ from pathlib import Path
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+ import uuid
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+ from typing import Optional
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+
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+ app = FastAPI(title="ScrapeGoatMusic Generation API")
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+
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+ # Initialize models and configurations
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+ def init_models():
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+ parser = argparse.ArgumentParser()
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+ # Add all your existing arguments here
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+ args = parser.parse_args([])
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+ args.stage1_model = "scrapegoat/ScrapeGoat-Music-Stage1"
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+ args.stage2_model = "scrapegoat/ScrapeGoat-Music-Stage1"
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+ args.max_new_tokens = 3000
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+ args.run_n_segments = 2
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+ args.stage2_batch_size = 4
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+ args.output_dir = "./output"
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+ args.cuda_idx = 0
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+ # Add other default arguments
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+ return args
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+
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+ @app.on_event("startup")
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+ async def startup_event():
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+ global args
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+ args = init_models()
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+ os.makedirs(args.output_dir, exist_ok=True)
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+
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+ @app.post("/generate")
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+ async def generate_music(
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+ genre_file: UploadFile = File(...),
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+ lyrics_file: UploadFile = File(...),
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+ audio_prompt: Optional[UploadFile] = File(None),
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+ prompt_start_time: float = Form(0.0),
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+ prompt_end_time: float = Form(30.0)
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+ ):
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+ # Create unique session ID
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+ session_id = str(uuid.uuid4())
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+ session_dir = Path(args.output_dir) / session_id
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+ os.makedirs(session_dir, exist_ok=True)
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+
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+ # Save uploaded files
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+ genre_path = session_dir / "genre.txt"
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+ lyrics_path = session_dir / "lyrics.txt"
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+
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+ with open(genre_path, "wb") as f:
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+ f.write(await genre_file.read())
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+ with open(lyrics_path, "wb") as f:
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+ f.write(await lyrics_file.read())
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+
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+ # Handle optional audio prompt
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+ audio_prompt_path = None
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+ if audio_prompt:
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+ audio_prompt_path = session_dir / "audio_prompt.wav"
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+ with open(audio_prompt_path, "wb") as f:
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+ f.write(await audio_prompt.read())
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+
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+ # Run inference
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+ try:
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+ # Import your inference code here
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+ from infer import run_inference
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+ output_path = run_inference(
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+ args,
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+ str(genre_path),
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+ str(lyrics_path),
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+ str(audio_prompt_path) if audio_prompt_path else None,
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+ prompt_start_time,
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+ prompt_end_time
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+ )
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+
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+ return FileResponse(
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+ output_path,
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+ media_type="audio/mpeg",
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+ filename=f"generated_music_{session_id}.mp3"
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+ )
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+ except Exception as e:
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+ return {"error": str(e)}
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+
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+ if __name__ == "__main__":
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+ uvicorn.run(app, host="0.0.0.0", port=8000)
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+ ```
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+
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+ 2. Create a new file `infer.py` with your existing inference code, modified to be imported as a module.
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+
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+ ## Running the API
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+
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+ 1. Start the API server:
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+ ```bash
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+ python api.py
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+ ```
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+
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+ 2. The API will be available at `http://localhost:8000`
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+
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+ ## API Endpoints
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+
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+ ### POST /generate
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+ Generates music based on provided genre and lyrics.
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+
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+ **Parameters:**
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+ - `genre_file`: Text file containing genre tags (Required)
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+ - `lyrics_file`: Text file containing lyrics (Required)
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+ - `audio_prompt`: Audio file for prompt (Optional)
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+ - `prompt_start_time`: Start time for audio prompt (Default: 0.0)
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+ - `prompt_end_time`: End time for audio prompt (Default: 30.0)
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+
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+ **Example using curl:**
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+ ```bash
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+ curl -X POST "http://localhost:8000/generate" \
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+ -H "accept: application/json" \
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+ -H "Content-Type: multipart/form-data" \
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+ -F "genre_file=@/path/to/genre.txt" \
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+ -F "lyrics_file=@/path/to/lyrics.txt" \
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+ -F "prompt_start_time=0.0" \
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+ -F "prompt_end_time=30.0"
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+ ```
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+
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+ **Example genre.txt format:**
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+ ```
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+ instrumental pop energetic female vocals
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+ ```
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+
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+ **Example lyrics.txt format:**
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+ ```
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+ [verse]
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+ Your lyrics here
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+ [chorus]
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+ Your chorus here
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+ ```
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+
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+ ## H100 Optimization
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+
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+ 1. Enable Flash Attention:
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+ ```python
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+ model = AutoModelForCausalLM.from_pretrained(
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+ stage1_model,
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+ torch_dtype=torch.bfloat16,
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+ attn_implementation="flash_attention_2"
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+ )
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+ ```
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+
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+ 2. Optimize memory usage:
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+ ```python
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+ # Add to your inference configuration
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+ torch.cuda.set_device(0) # Use first H100
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+ torch.backends.cudnn.benchmark = True
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+ ```
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+
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+ 3. For multi-GPU setup, modify `cuda_idx` in the API configuration.
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+
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+ ## Monitoring
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+
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+ The API includes Swagger documentation at `http://localhost:8000/docs` for testing and monitoring endpoints.
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+
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+ ## Troubleshooting
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+
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+ 1. CUDA Out of Memory:
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+ - Reduce `stage2_batch_size`
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+ - Adjust `max_new_tokens`
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+ - Use gradient checkpointing
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+
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+ 2. Audio Quality Issues:
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+ - Check input audio format (16kHz, mono)
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+ - Verify genre tags format
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+ - Ensure lyrics follow the correct structure
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+
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+ ## Training
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+
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+ This model was created through a multi-stage training process optimized for music generation. You can further fine-tune the model on your own data using the following steps:
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+
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+ ### Data Preparation
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+
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+ 1. Prepare your training data using the provided script:
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+ ```bash
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+ python prepare_training_data.py
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+ ```
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+
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+ The script expects the following directory structure:
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+ ```
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+ training_data/
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+ ├── audio_tracks/ # 16kHz mono WAV files
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+ ├── lyrics/ # Corresponding lyrics files
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+ └── genres/ # Genre tag files
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+ ```
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+
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+ ### Training Requirements
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+
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+ - NVIDIA H100 GPU (recommended)
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+ - 32GB+ GPU memory
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+ - Training dataset with:
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+ - High-quality audio files (16kHz mono)
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+ - Aligned lyrics in structured format
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+ - Genre annotations
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+ - At least 10,000 samples recommended
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+
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+ ### Fine-tuning Steps
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+
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+ 1. Install additional training dependencies:
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+ ```bash
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+ pip install accelerate datasets transformers
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+ ```
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+
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+ 2. Prepare your configuration:
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+ ```bash
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+ # For Stage 1 model (7B)
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+ export MODEL_PATH="Nathan9/ScrapeGoatMusic-s1-7B-anneal-en-cot"
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+ export OUTPUT_DIR="./fine_tuned_model_s1"
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+
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+ # For Stage 2 model (1B)
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+ export MODEL_PATH="Nathan9/ScrapeGoatMusic-s2-1B-general"
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+ export OUTPUT_DIR="./fine_tuned_model_s2"
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+ ```
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+
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+ 3. Start training:
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+ ```bash
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+ python train.py \
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+ --model_name_or_path $MODEL_PATH \
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+ --output_dir $OUTPUT_DIR \
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+ --num_train_epochs 3 \
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+ --per_device_train_batch_size 4 \
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+ --gradient_accumulation_steps 4 \
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+ --learning_rate 1e-5 \
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+ --warmup_steps 500 \
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+ --logging_steps 100 \
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+ --save_steps 1000 \
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+ --evaluation_strategy steps \
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+ --load_best_model_at_end \
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+ --gradient_checkpointing true
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+ ```
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+
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+ ### Training Tips
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+
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+ 1. Stage 1 Model:
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+ - Use larger batch sizes (8-16) for better convergence
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+ - Enable gradient checkpointing for memory efficiency
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+ - Start with a lower learning rate (1e-5)
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+ - Train for at least 3 epochs
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+
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+ 2. Stage 2 Model:
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+ - Use smaller batch sizes (4-8)
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+ - Higher learning rate possible (2e-5)
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+ - Shorter training time needed
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+ - Focus on audio quality metrics
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+
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+ 3. Monitoring:
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+ - Use Weights & Biases for training visualization
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+ - Monitor loss curves for convergence
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+ - Validate generation quality periodically
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+ - Check for overfit on validation set
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+
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+ 4. Performance Optimization:
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+ - Enable Flash Attention during training
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+ - Use mixed precision training (bf16)
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+ - Distribute training across multiple GPUs if available
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+ - Implement proper gradient clipping
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+
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+ ## License
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+
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+ FULL ACCESS, ENJOY
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+
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+ "transformers_version": "4.42.0",
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+ "vocab_size": 83968
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