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| import torch | |
| from transformers import BartForConditionalGeneration, BartTokenizer | |
| import gradio as gr | |
| # Load the fine-tuned model and tokenizer | |
| model_path = "difinative/AIBuddy" # Path to the pretrained fine-tuned model | |
| model = BartForConditionalGeneration.from_pretrained(model_path) | |
| tokenizer = BartTokenizer.from_pretrained(model_path) | |
| # Translate function using the fine-tuned model | |
| def translate_instruction(context, input_text): | |
| full_input = context + " " + input_text | |
| input_ids = tokenizer.encode(full_input, truncation=True, return_tensors='pt') | |
| with torch.no_grad(): | |
| outputs = model.generate(input_ids, max_length=50, num_beams=4, early_stopping=True) | |
| translated_text = tokenizer.decode(outputs[0], skip_special_tokens=True) | |
| return translated_text | |
| # Gradio Interface | |
| iface = gr.Interface( | |
| fn=translate_instruction, | |
| inputs=[ | |
| gr.inputs.Textbox(label="Enter Context"), | |
| gr.inputs.Textbox(label="Enter Human Instruction") | |
| ], | |
| outputs=gr.outputs.Textbox(label="Generated CLI Command"), | |
| title="CLI Command Generator", | |
| description="<p>This tool generates CLI commands from human instructions and context.</p>" | |
| "<p>Provide a context and human instruction, and click 'Generate' to get the CLI command.</p>", | |
| examples=[ | |
| ["Pod xyz is called as tiger.", "Show me a list of pods in the current namespace."], | |
| ["Nickname of deployment development is cap", "Display the pods running in the cap."], | |
| ["Production is also known as", "List all pods in the 'production' environment."], | |
| ["Kubernetes", "Show the pods running in the 'testing' namespace?"], | |
| ["Docker", "What command should I use to get the list of containers?"] | |
| ] | |
| ) | |
| # Launch the Gradio app using Ngrok | |
| iface.launch() |