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import gradio as gr | |
from transformers import AutoTokenizer, AutoModelForCausalLM, pipeline | |
# Define the function to handle text generation | |
def generate_text(model_name, text, num_beams, max_length, top_p, temperature, repetition_penalty, no_repeat_ngram_size): | |
# Load tokenizer and model | |
tokenizer = AutoTokenizer.from_pretrained(model_name) | |
model = AutoModelForCausalLM.from_pretrained(model_name) | |
# Initialize pipeline | |
pipe = pipeline("text-generation", model=model, tokenizer=tokenizer) | |
# Generate text with the specified parameters | |
generated_text = pipe(text, | |
pad_token_id=tokenizer.eos_token_id, | |
num_beams=num_beams, | |
max_length=max_length, | |
top_p=top_p, | |
temperature=temperature, | |
repetition_penalty=repetition_penalty, | |
no_repeat_ngram_size=no_repeat_ngram_size)[0]['generated_text'] | |
return generated_text | |
# Define model options | |
model_options = [ | |
"riotu-lab/ArabianGPT-01B", | |
"riotu-lab/ArabianGPT-03B", | |
"riotu-lab/ArabianGPT-08B" | |
] | |
# Define Gradio interface components | |
inputs_component = [ | |
gr.Dropdown(choices=model_options, label="Select Model"), | |
gr.Textbox(lines=2, placeholder="Enter your text here...", label="Input Text"), | |
gr.Slider(minimum=1, maximum=10, step=1, label="Num Beams"), | |
gr.Slider(minimum=50, maximum=300, step=10, label="Max Length"), | |
gr.Slider(minimum=0.0, maximum=1.0, step=0.1, label="Top p"), | |
gr.Slider(minimum=0.0, maximum=1.0, step=0.1, label="Temperature"), | |
gr.Slider(minimum=1.0, maximum=5.0, step=0.5, label="Repetition Penalty"), | |
gr.Slider(minimum=2, maximum=5, step=1, label="No Repeat Ngram Size") | |
] | |
# Setup the interface | |
iface = gr.Interface( | |
fn=generate_text, | |
inputs=inputs_component, | |
outputs="text", | |
title="ArabianGPT Playground", | |
description="Explore the capabilities of ArabianGPT models. Adjust the hyperparameters to see how they affect text generation.", | |
live=True | |
) | |
# Launch the app | |
iface.launch() | |