Update app.py
Browse files
app.py
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@@ -1,34 +1,21 @@
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import gradio as gr
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import subprocess
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# Function to load a model using Hugging Face Spaces
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def
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print(f"Attempting to load {model_name}
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try:
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# Use subprocess to run hf.space_info and get GPU setting
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result = subprocess.run(
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["python", "-c", f"from huggingface_hub import space_info; print(space_info('{model_name}').hardware)"],
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capture_output=True,
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text=True,
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check=True
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)
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hardware = result.stdout.strip()
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print(f"Hardware for {model_name}: {hardware}")
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demo = gr.load(name=model_name, src="spaces")
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# Return the loaded model demo
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print(f"Successfully loaded {model_name}")
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return demo
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except Exception as e:
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print(f"Error loading model {model_name}: {e}")
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return None
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# Load the models
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deepseek_r1_distill =
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deepseek_r1 =
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deepseek_r1_zero =
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# --- Chatbot function ---
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def chatbot(input_text, history, model_choice, system_message, max_new_tokens, temperature, top_p):
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@@ -46,16 +33,22 @@ def chatbot(input_text, history, model_choice, system_message, max_new_tokens, t
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default_response = "Model not selected or could not be loaded."
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history.append((input_text, default_response))
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return history, history, "", model_choice, system_message, max_new_tokens, temperature, top_p
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#
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# Check if model_output is iterable and has expected number of elements
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if not isinstance(model_output, (list, tuple)) or len(model_output) < 2:
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error_message = "Model output does not have the expected format."
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history.append((input_text, error_message))
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return history, history, "", model_choice, system_message, max_new_tokens, temperature, top_p
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response = model_output[-1][1] if model_output[-1][1] else "Model did not return a response."
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history.append((input_text, response))
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return history, history, "", model_choice, system_message, max_new_tokens, temperature, top_p
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import gradio as gr
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import subprocess
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# Function to load a model using Hugging Face Spaces
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def load_model_from_space(model_name):
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print(f"Attempting to load {model_name}...")
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try:
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demo = gr.load(name=model_name, src="spaces")
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print(f"Successfully loaded {model_name}")
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return demo
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except Exception as e:
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print(f"Error loading model {model_name}: {e}")
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return None
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# Load the models
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deepseek_r1_distill = load_model_from_space("deepseek-ai/DeepSeek-R1-Distill-Qwen-32B")
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deepseek_r1 = load_model_from_space("deepseek-ai/DeepSeek-R1")
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deepseek_r1_zero = load_model_from_space("deepseek-ai/DeepSeek-R1-Zero")
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# --- Chatbot function ---
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def chatbot(input_text, history, model_choice, system_message, max_new_tokens, temperature, top_p):
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default_response = "Model not selected or could not be loaded."
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history.append((input_text, default_response))
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return history, history, "", model_choice, system_message, max_new_tokens, temperature, top_p
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# Call the model's 'predict' function.
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try:
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model_output = model_demo(input_text, history, max_new_tokens, temperature, top_p, system_message, fn_index=0)
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except Exception as e:
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print(f"An error occurred: {e}")
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model_output= "An error occurred please check the model and try again."
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history.append((input_text, model_output))
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return history, history, "", model_choice, system_message, max_new_tokens, temperature, top_p
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# Check if model_output is iterable and has expected number of elements
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if not isinstance(model_output, (list, tuple)) or len(model_output) < 2:
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error_message = "Model output does not have the expected format."
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history.append((input_text, error_message))
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return history, history, "", model_choice, system_message, max_new_tokens, temperature, top_p
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response = model_output[-1][1] if model_output[-1][1] else "Model did not return a response."
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history.append((input_text, response))
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return history, history, "", model_choice, system_message, max_new_tokens, temperature, top_p
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