Demo Fixes 11
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@@ -24,14 +24,26 @@ app = Flask(__name__)
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app.config['SECRET_KEY'] = 'your-secret-key'
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socketio = SocketIO(app, cors_allowed_origins="*")
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# Select the best available device
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if torch.cuda.is_available():
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device = "cuda"
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whisper_compute_type = "float16"
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elif torch.backends.mps.is_available():
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device = "mps"
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whisper_compute_type = "float32"
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else:
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# Check for CUDA availability and handle potential CUDA/cuDNN issues
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try:
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cuda_available = torch.cuda.is_available()
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# Try to initialize CUDA to check if libraries are properly loaded
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if cuda_available:
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_ = torch.zeros(1).cuda()
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device = "cuda"
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whisper_compute_type = "float16"
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print("CUDA is available and initialized successfully")
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elif torch.backends.mps.is_available():
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device = "mps"
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whisper_compute_type = "float32"
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print("MPS is available (Apple Silicon)")
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else:
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device = "cpu"
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whisper_compute_type = "int8"
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print("Using CPU (CUDA/MPS not available)")
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except Exception as e:
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print(f"Error initializing CUDA: {e}")
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print("Falling back to CPU")
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device = "cpu"
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whisper_compute_type = "int8"
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@@ -51,7 +63,9 @@ def load_models():
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print("Loading Whisper model...")
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# Import here to avoid immediate import errors if package is missing
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from faster_whisper import WhisperModel
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whisper_model = WhisperModel("base", device=device, compute_type=whisper_compute_type, download_root="./models/whisper")
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# Force CPU for Whisper if we had CUDA issues
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whisper_device = device if device != "cpu" else "cpu"
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whisper_model = WhisperModel("base", device=whisper_device, compute_type=whisper_compute_type, download_root="./models/whisper")
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print("Whisper model loaded successfully")
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except Exception as e:
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print(f"Error loading Whisper model: {e}")
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@@ -60,7 +74,9 @@ def load_models():
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# Initialize CSM model for audio generation
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try:
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print("Loading CSM model...")
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csm_generator = load_csm_1b(device=device)
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# Force CPU for CSM if we had CUDA issues
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csm_device = device if device != "cpu" else "cpu"
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csm_generator = load_csm_1b(device=csm_device)
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print("CSM model loaded successfully")
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except Exception as e:
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print(f"Error loading CSM model: {e}")
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@@ -71,11 +87,14 @@ def load_models():
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print("Loading Llama 3.2 model...")
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llm_model_id = "meta-llama/Llama-3.2-1B" # Choose appropriate size based on resources
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llm_tokenizer = AutoTokenizer.from_pretrained(llm_model_id, cache_dir="./models/llama")
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# Force CPU for LLM if we had CUDA issues
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llm_device = device if device != "cpu" else "cpu"
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llm_model = AutoModelForCausalLM.from_pretrained(
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llm_model_id,
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torch_dtype=torch.bfloat16,
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device_map=device,
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cache_dir="./models/llama"
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torch_dtype=torch.bfloat16 if llm_device != "cpu" else torch.float32,
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device_map=llm_device,
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cache_dir="./models/llama",
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low_cpu_mem_usage=True
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)
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print("Llama 3.2 model loaded successfully")
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except Exception as e:
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