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Update README.md

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@@ -124,6 +124,10 @@ pillow_image = pipe(image_path) # applies mask on input and returns a pillow ima
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  Or load the model
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  ```python
 
 
 
 
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  from transformers import AutoModelForImageSegmentation
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  from torchvision.transforms.functional import normalize
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  model = AutoModelForImageSegmentation.from_pretrained("briaai/RMBG-1.4",trust_remote_code=True)
@@ -153,6 +157,7 @@ model.to(device)
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  image_path = "https://farm5.staticflickr.com/4007/4322154488_997e69e4cf_z.jpg"
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  orig_im = io.imread(image_path)
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  orig_im_size = orig_im.shape[0:2]
 
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  image = preprocess_image(orig_im, model_input_size).to(device)
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  # inference
 
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  Or load the model
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  ```python
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+ from PIL import Image
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+ from skimage import io
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+ import torch
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+ import torch.nn.functional as F
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  from transformers import AutoModelForImageSegmentation
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  from torchvision.transforms.functional import normalize
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  model = AutoModelForImageSegmentation.from_pretrained("briaai/RMBG-1.4",trust_remote_code=True)
 
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  image_path = "https://farm5.staticflickr.com/4007/4322154488_997e69e4cf_z.jpg"
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  orig_im = io.imread(image_path)
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  orig_im_size = orig_im.shape[0:2]
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+ model_input_size = [1024, 1024]
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  image = preprocess_image(orig_im, model_input_size).to(device)
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  # inference