91 lines
3.6 KiB
Python
91 lines
3.6 KiB
Python
import numpy as np
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import requests
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from PIL import Image
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import io
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import torch
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from .common import preprocess_image, image_to_base64, poll_status_until_completed
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class RemoveForegroundNode():
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@classmethod
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def INPUT_TYPES(self):
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return {
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"required": {
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"image": ("IMAGE",), # Input image from another node
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"api_key": ("STRING", {"default": "BRIA_API_TOKEN"}), # API Key input with a default value
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},
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"optional": {
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"visual_input_content_moderation": ("BOOLEAN", {"default": False}),
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"visual_output_content_moderation": ("BOOLEAN", {"default": False}),
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"preserve_alpha": ("BOOLEAN", {"default": True}),
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}
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}
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RETURN_TYPES = ("IMAGE",)
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RETURN_NAMES = ("output_image",)
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CATEGORY = "API Nodes"
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FUNCTION = "execute" # This is the method that will be executed
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def __init__(self):
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self.api_url = "https://engine.prod.bria-api.com/v2/image/edit/erase_foreground" # remove foreground API URL
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# Define the execute method as expected by ComfyUI
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def execute(self, image, visual_input_content_moderation, visual_output_content_moderation, preserve_alpha, api_key):
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if api_key.strip() == "" or api_key.strip() == "BRIA_API_TOKEN":
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raise Exception("Please insert a valid API key.")
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# Check if image is tensor, if so, convert to NumPy array
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if isinstance(image, torch.Tensor):
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image = preprocess_image(image)
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# Prepare the API request payload
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# temporary save the image to /tmp
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# temp_img_path = "/tmp/temp_img.jpeg"
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# image.save(temp_img_path, format="JPEG")
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# files=[('file',('temp_img.jpeg', open(temp_img_path, 'rb'),'image/jpeg'))
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# ]
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payload = {
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"image": image_to_base64(image),
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"visual_input_content_moderation": visual_input_content_moderation,
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"visual_output_content_moderation":visual_output_content_moderation,
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"preserve_alpha": preserve_alpha
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}
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headers = {
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"Content-Type": "application/json",
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"api_token": f"{api_key}"
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}
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try:
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response = requests.post(self.api_url, json=payload, headers=headers)
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if response.status_code == 200 or response.status_code == 202:
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print('Initial request successful, polling for completion...')
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response_dict = response.json()
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status_url = response_dict.get('status_url')
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request_id = response_dict.get('request_id')
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if not status_url:
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raise Exception("No status_url returned from API")
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print(f"Request ID: {request_id}, Status URL: {status_url}")
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# Poll status URL until completion
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final_response = poll_status_until_completed(status_url, api_key)
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# Get the result image URL
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result_image_url = final_response['result']['image_url']
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image_response = requests.get(result_image_url)
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result_image = Image.open(io.BytesIO(image_response.content))
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result_image = np.array(result_image).astype(np.float32) / 255.0
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result_image = torch.from_numpy(result_image)[None,]
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return (result_image,)
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else:
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raise Exception(f"Error: API request failed with status code {response.status_code} {response.text}")
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except Exception as e:
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raise Exception(f"{e}")
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