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4195e71
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Parent(s):
f7a0c83
Update app.py
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app.py
CHANGED
@@ -2,16 +2,17 @@ from huggingface_hub import InferenceClient
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import gradio as gr
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from deep_translator import GoogleTranslator
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client = InferenceClient("mistralai/Mixtral-8x7B-Instruct-v0.1")
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#
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def translate_to_english(text):
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return GoogleTranslator(source='arabic', target='english').translate(text)
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# Function to translate English text to Arabic
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def translate_to_arabic(text):
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return GoogleTranslator(source='
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def format_prompt(message, history):
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prompt = "<s>"
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for user_prompt, bot_response in history:
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prompt += f"[INST] {message} [/INST]"
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return prompt
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repetition_penalty=repetition_penalty,
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do_sample=True,
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seed=42,
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)
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# Translate the Arabic prompt to English
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english_prompt = translate_to_english(prompt)
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formatted_prompt = format_prompt(english_prompt, history)
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stream = client.text_generation(formatted_prompt, **generate_kwargs, stream=True, details=True, return_full_text=False)
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output = ""
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for response in stream:
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output += response
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# Translate the English response back to Arabic
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gr.Slider(
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label="Temperature",
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value=0.9,
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minimum=0.0,
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maximum=1.0,
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step=0.05,
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interactive=True,
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info="Higher values produce more diverse outputs",
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),
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gr.Slider(
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label="Max new tokens",
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value=256,
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minimum=0,
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maximum=1048,
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step=64,
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interactive=True,
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info="The maximum numbers of new tokens",
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),
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gr.Slider(
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label="Top-p (nucleus sampling)",
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value=0.90,
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minimum=0.0,
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maximum=1,
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step=0.05,
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interactive=True,
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info="Higher values sample more low-probability tokens",
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),
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gr.Slider(
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label="Repetition penalty",
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value=1.2,
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minimum=1.0,
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maximum=2.0,
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step=0.05,
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interactive=True,
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info="Penalize repeated tokens",
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)
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]
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fn=generate,
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import gradio as gr
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from deep_translator import GoogleTranslator
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# Initialize the Hugging Face client with your model
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client = InferenceClient("mistralai/Mixtral-8x7B-Instruct-v0.1")
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# Define the translation functions
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def translate_to_arabic(text):
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return GoogleTranslator(source='auto', target='ar').translate(text)
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def translate_to_english(text):
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return GoogleTranslator(source='auto', target='en').translate(text)
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# Format the prompt for the model
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def format_prompt(message, history):
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prompt = "<s>"
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for user_prompt, bot_response in history:
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prompt += f"[INST] {message} [/INST]"
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return prompt
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# Generate a response from the model
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def generate(prompt, history=[], temperature=0.1, max_new_tokens=256, top_p=0.95, repetition_penalty=1.0):
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# Translate the Arabic prompt to English before sending to the model
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prompt_in_english = translate_to_english(prompt)
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formatted_prompt = format_prompt(prompt_in_english, history)
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generate_kwargs = {
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"temperature": temperature,
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"max_new_tokens": max_new_tokens,
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"top_p": top_p,
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"repetition_penalty": repetition_penalty,
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"do_sample": True,
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"seed": 42, # Seed for reproducibility, remove or change if randomness is preferred
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}
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# Generate the response
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stream = client.text_generation(formatted_prompt, **generate_kwargs, stream=True, details=True, return_full_text=False)
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output = ""
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for response in stream:
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output += response["token"]["text"]
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# Translate the English response back to Arabic
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response_in_arabic = translate_to_arabic(output)
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return response_in_arabic
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# Define additional inputs for Gradio interface
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additional_inputs = [
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gr.Slider(label="Temperature", value=0.9, minimum=0.0, maximum=1.0, step=0.05),
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gr.Slider(label="Max new tokens", value=256, minimum=0, maximum=1048, step=64),
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gr.Slider(label="Top-p (nucleus sampling)", value=0.90, minimum=0.0, maximum=1.0, step=0.05),
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gr.Slider(label="Repetition penalty", value=1.2, minimum=1.0, maximum=2.0, step=0.05)
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]
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# Set up the Gradio interface
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iface = gr.Interface(
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fn=generate,
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inputs=[
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gr.Textbox(lines=5, placeholder='Type your Arabic query here...', label='Arabic Query'),
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*additional_inputs
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],
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outputs='text',
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title="DorjGPT Arabic-English Translation Chatbot",
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)
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# Launch the Gradio interface
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iface.launch()
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